CA2006989C - Integrated circuit transponder in a pneumatic tire for tire identification - Google Patents

Integrated circuit transponder in a pneumatic tire for tire identification

Info

Publication number
CA2006989C
CA2006989C CA002006989A CA2006989A CA2006989C CA 2006989 C CA2006989 C CA 2006989C CA 002006989 A CA002006989 A CA 002006989A CA 2006989 A CA2006989 A CA 2006989A CA 2006989 C CA2006989 C CA 2006989C
Authority
CA
Canada
Prior art keywords
transponder
tire
pneumatic tire
integrated circuit
ply
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Expired - Fee Related
Application number
CA002006989A
Other languages
French (fr)
Other versions
CA2006989A1 (en
Inventor
Robert Walter Brown
William Frank Dunn
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Goodyear Tire and Rubber Co
Original Assignee
Goodyear Tire and Rubber Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Goodyear Tire and Rubber Co filed Critical Goodyear Tire and Rubber Co
Publication of CA2006989A1 publication Critical patent/CA2006989A1/en
Application granted granted Critical
Publication of CA2006989C publication Critical patent/CA2006989C/en
Anticipated expiration legal-status Critical
Expired - Fee Related legal-status Critical Current

Links

Classifications

    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C23/00Devices for measuring, signalling, controlling, or distributing tyre pressure or temperature, specially adapted for mounting on vehicles; Arrangement of tyre inflating devices on vehicles, e.g. of pumps or of tanks; Tyre cooling arrangements
    • B60C23/02Signalling devices actuated by tyre pressure
    • B60C23/04Signalling devices actuated by tyre pressure mounted on the wheel or tyre
    • B60C23/0408Signalling devices actuated by tyre pressure mounted on the wheel or tyre transmitting the signals by non-mechanical means from the wheel or tyre to a vehicle body mounted receiver
    • B60C23/0422Signalling devices actuated by tyre pressure mounted on the wheel or tyre transmitting the signals by non-mechanical means from the wheel or tyre to a vehicle body mounted receiver characterised by the type of signal transmission means
    • B60C23/0433Radio signals
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C13/00Tyre sidewalls; Protecting, decorating, marking, or the like, thereof
    • B60C13/001Decorating, marking or the like
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C23/00Devices for measuring, signalling, controlling, or distributing tyre pressure or temperature, specially adapted for mounting on vehicles; Arrangement of tyre inflating devices on vehicles, e.g. of pumps or of tanks; Tyre cooling arrangements
    • B60C23/02Signalling devices actuated by tyre pressure
    • B60C23/04Signalling devices actuated by tyre pressure mounted on the wheel or tyre
    • B60C23/0408Signalling devices actuated by tyre pressure mounted on the wheel or tyre transmitting the signals by non-mechanical means from the wheel or tyre to a vehicle body mounted receiver
    • B60C23/0479Communicating with external units being not part of the vehicle, e.g. tools for diagnostic, mobile phones, electronic keys or service stations
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60CVEHICLE TYRES; TYRE INFLATION; TYRE CHANGING; CONNECTING VALVES TO INFLATABLE ELASTIC BODIES IN GENERAL; DEVICES OR ARRANGEMENTS RELATED TO TYRES
    • B60C23/00Devices for measuring, signalling, controlling, or distributing tyre pressure or temperature, specially adapted for mounting on vehicles; Arrangement of tyre inflating devices on vehicles, e.g. of pumps or of tanks; Tyre cooling arrangements
    • B60C23/02Signalling devices actuated by tyre pressure
    • B60C23/04Signalling devices actuated by tyre pressure mounted on the wheel or tyre
    • B60C23/0491Constructional details of means for attaching the control device
    • B60C23/0493Constructional details of means for attaching the control device for attachment on the tyre
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K19/00Record carriers for use with machines and with at least a part designed to carry digital markings
    • G06K19/06Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
    • G06K19/067Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
    • G06K19/07Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
    • G06K19/077Constructional details, e.g. mounting of circuits in the carrier
    • G06K19/07749Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K19/00Record carriers for use with machines and with at least a part designed to carry digital markings
    • G06K19/06Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
    • G06K19/067Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
    • G06K19/07Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
    • G06K19/077Constructional details, e.g. mounting of circuits in the carrier
    • G06K19/07749Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
    • G06K19/07758Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card arrangements for adhering the record carrier to further objects or living beings, functioning as an identification tag
    • G06K19/07764Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card arrangements for adhering the record carrier to further objects or living beings, functioning as an identification tag the adhering arrangement making the record carrier attachable to a tire
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K19/00Record carriers for use with machines and with at least a part designed to carry digital markings
    • G06K19/06Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
    • G06K19/067Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
    • G06K19/07Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
    • G06K19/077Constructional details, e.g. mounting of circuits in the carrier
    • G06K19/07749Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
    • G06K19/07773Antenna details
    • G06K19/07777Antenna details the antenna being of the inductive type
    • G06K19/07779Antenna details the antenna being of the inductive type the inductive antenna being a coil
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K19/00Record carriers for use with machines and with at least a part designed to carry digital markings
    • G06K19/06Record carriers for use with machines and with at least a part designed to carry digital markings characterised by the kind of the digital marking, e.g. shape, nature, code
    • G06K19/067Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components
    • G06K19/07Record carriers with conductive marks, printed circuits or semiconductor circuit elements, e.g. credit or identity cards also with resonating or responding marks without active components with integrated circuit chips
    • G06K19/077Constructional details, e.g. mounting of circuits in the carrier
    • G06K19/07749Constructional details, e.g. mounting of circuits in the carrier the record carrier being capable of non-contact communication, e.g. constructional details of the antenna of a non-contact smart card
    • G06K19/07773Antenna details
    • G06K19/07777Antenna details the antenna being of the inductive type
    • G06K19/07779Antenna details the antenna being of the inductive type the inductive antenna being a coil
    • G06K19/07781Antenna details the antenna being of the inductive type the inductive antenna being a coil the coil being fabricated in a winding process
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K7/00Methods or arrangements for sensing record carriers, e.g. for reading patterns
    • G06K7/0008General problems related to the reading of electronic memory record carriers, independent of its reading method, e.g. power transfer
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K7/00Methods or arrangements for sensing record carriers, e.g. for reading patterns
    • G06K7/0013Methods or arrangements for sensing record carriers, e.g. for reading patterns by galvanic contacts, e.g. card connectors for ISO-7816 compliant smart cards or memory cards, e.g. SD card readers
    • G06K7/0086Methods or arrangements for sensing record carriers, e.g. for reading patterns by galvanic contacts, e.g. card connectors for ISO-7816 compliant smart cards or memory cards, e.g. SD card readers the connector comprising a circuit for steering the operations of the card connector
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K7/00Methods or arrangements for sensing record carriers, e.g. for reading patterns
    • G06K7/06Methods or arrangements for sensing record carriers, e.g. for reading patterns by means which conduct current when a mark is sensed or absent, e.g. contact brush for a conductive mark
    • G06K7/065Methods or arrangements for sensing record carriers, e.g. for reading patterns by means which conduct current when a mark is sensed or absent, e.g. contact brush for a conductive mark for conductive marks
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K7/00Methods or arrangements for sensing record carriers, e.g. for reading patterns
    • G06K7/10Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation
    • G06K7/10009Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves
    • G06K7/10316Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves using at least one antenna particularly designed for interrogating the wireless record carriers
    • G06K7/10326Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves using at least one antenna particularly designed for interrogating the wireless record carriers the antenna being of the very-near field type, e.g. capacitive
    • GPHYSICS
    • G06COMPUTING; CALCULATING OR COUNTING
    • G06KGRAPHICAL DATA READING; PRESENTATION OF DATA; RECORD CARRIERS; HANDLING RECORD CARRIERS
    • G06K7/00Methods or arrangements for sensing record carriers, e.g. for reading patterns
    • G06K7/10Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation
    • G06K7/10009Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves
    • G06K7/10316Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves using at least one antenna particularly designed for interrogating the wireless record carriers
    • G06K7/10336Methods or arrangements for sensing record carriers, e.g. for reading patterns by electromagnetic radiation, e.g. optical sensing; by corpuscular radiation sensing by radiation using wavelengths larger than 0.1 mm, e.g. radio-waves or microwaves using at least one antenna particularly designed for interrogating the wireless record carriers the antenna being of the near field type, inductive coil
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T152/00Resilient tires and wheels
    • Y10T152/10Tires, resilient
    • Y10T152/10495Pneumatic tire or inner tube
    • Y10T152/10765Characterized by belt or breaker structure
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T152/00Resilient tires and wheels
    • Y10T152/10Tires, resilient
    • Y10T152/10495Pneumatic tire or inner tube
    • Y10T152/10819Characterized by the structure of the bead portion of the tire
    • YGENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
    • Y10TECHNICAL SUBJECTS COVERED BY FORMER USPC
    • Y10TTECHNICAL SUBJECTS COVERED BY FORMER US CLASSIFICATION
    • Y10T152/00Resilient tires and wheels
    • Y10T152/10Tires, resilient
    • Y10T152/10495Pneumatic tire or inner tube
    • Y10T152/10855Characterized by the carcass, carcass material, or physical arrangement of the carcass materials

Abstract

A combination pneumatic tire and integrated circuit transponder for tire identification. The transponder is located within the tire structure and is capable of transmitting an identifying digital signal in response to interrogation by an R/F electric field emanating from outside the tire. The transponder then transmits the identifying signal, which is received, conditioned and demodulated. The tire has a steel-reinforced component, such as an annular tensile member in its bead or a steel-reinforced ply. The transponder has first and second electrodes, the first of which is positioned such that the average spacing of this first electrode's surface from one of the steel-reinforced tire components is substantially less than the average spacing of the second electrode's surface from such component. The transponder is capable of transmitting the electrical signal from the tire both prior to and after its vulcanization, thus permitting identification and control of the tire during its manufacture and after its distribution and use.

Description

INTEGRATED CIRCUIT TRANSPONDER IN A PNEUMATIC TIRE
FOR TIRE IDENTIFICATION
Background of the Invention This invention relates to electronic identification of a pneumatic tire both during its manufacture and thereafter. More particularly, the invention relates to the combination of a pneumatic tire and an integrated circuit transponder located within the structure of the tire. The integrated circuit transponder is a passive device in that it has no source of electrical energy but instead depends upon the receipt of an "interrogation" signal emanating from a source outside of the tire. The interrogation signal is rectified by the integrated circuit transponder, which then utilizes the rectified signal as a source of electrical energy for use in its transmission of an electrical signal digitally encoded to identify the tire. A unique code can be used for each tire.
An "Identification System" is described in United States Patent 4,730,188 issued March 8, 1988, to Thomas A. Milheiser and assigned to Identification Devices, Inc. of Boulder, Colorado, now known as Destron/IDI, Inc. of Boulder, Colorado. The Milheiser patent describes a system which utilizes circuitry similar in many ways to prior-art circuitry described herein, the description herein being of an integrated circuit marketed by Destron/IDI. Uowever, the circuitry described in the Milheiser patent is regarded by the inventors as being less desirable than the integrated circuit described herein and now sold by Destron/IDI.
The Milheiser patent describes a device called an "exciter" that is used to transmit the interrogation signal to the circuitry i.n the transponder used to identify an animal or article with which the transponder is associated for identification. The exciter consists of an A/C or oscillating radio frequency (R/F) signal source and power driver which provides a high current, high voltage excitation signal to an interrogator coil. The magnetic field propagated by the interrogator coil couples inductively to a very small coil associated with the circuitry of the transponder, thereby, inductively supplying A/C energy to the transponder circuitry.
One of the present inventors conceived the use of the inductively coupled R/F transponders manufactured by Identification Devices, Inc. in pneumatic tires prior to May, 1986, when such transponders were first built into passenger tires at facilities of Goodyear, the assignee of this invention, for evaluation. While such inductively-coupled transponders worked reasonably well in the passenger tire application, the development and product costs lead to reduced interest in the passenger tire application.
Interest in the use of the inductively-coupled transponder for radial-ply) all steel truck tires has continued, and Destron/IDI has installed inductively coupled transponders to the radially inner side of the innerliner in such pneumatic truck tires. The devices typically have been utilized with flat inductive coils connected to an integrated circuit in the transponder.
The flat coils and integrated circuit were embedded in a plastic material about the size and shape of a credit ~oos~~~
card. The "credit card" device then was inserted within the inside of an already cured pneumatic tire by adhering the device to the innerliner of the tire with a patch material. This identification technique requires special materials surrounding the "credit card" device, can only be used after tire vulcanization) and is expensive to implement. More-over, the inductively-coupled exciter device used to interrogate the "credit card" integrated circuit transponder had to be located closer to the tire than is desirable.
It has been known by Destron/IDI and the present inventors that electric field or capacitive coupling of an A/C electric field into a transponder device is possible. This requires very strong electric fields in order to excite the transponder when the transponder is located in free space.
The inventors have discovered that a transponder which has separate first and second electrodes, rather than an inductive coil, for receipt of energy supplied by.the oscillating electric field from the exciter can be used for a transponder positioned within a tire provided the transponder has its electrodes suitably designed and positioned within the tire structure with respect to its steel components. This capacitive coupling to the transponder can even be accomplished in a steel-reinforced radial ply truck tire in which the steel carcass ply forms an equipotential surface.
Accordingly) the inventors have provided a combination tire and integrated circuit transponder which can withstand. the severe environmental conditions a tire must endure during its manufacture and use and which can be used in automation of manufacturing) tracking of tires during and after manufacture, sorting, inventory control, shipping of the tire, statistical process control, field engineering, anti-theft, and control of truck tire retreading, and vehicle or trailer tire application or identification.
Summary of the Tnvention The invention provides) in combination, a pneumatic tire and an integrated circuit transponder located within the structure of the tire. The pneumatic tire has spaced beads including annular tensile members of wound or cabled steel wire. The tire has a plurality of plies at least one of which is a continuous ply extending between the annular tensile members and having its ends turned axially (or both radially and axially) and radially outwardly about the annular tensile members.
The transponder in the combination has first and second electrodes and is able to transmit an electrical signal after an oscillating electric field of sufficient intensity is applied between its first and second electrodes. The average spacing of the surface of the first electrode of the transponder from steel in a component of the tire, which component is selected from the group consisting of the plies and the annular tensile members, is substantially less than the average spacing of the surface of the second electrode of the transponder from the steel wire in such component ply or annular tensile member. The transponder within the tire structure is capable of transmitting the electrical signal in response to an oscillating electric field emanating from a source spaced from the tire and located radially (or both radially and axially) away from the tread surface. Moreover, the transponder is capable of transmitting the electrical signal from the tire both prior to and after the tire's vulcanization. This results from the transponder being positioned within the tire structure at an early point in its manufacturing process.
In order for a transponder device to be satisfactory in the pneumatic tire combination described above, it must be compatible with the tire in that, as a "foreign material in the tire" it must not cause separations within this laminated structure. Its size must be small and it should be placed in the tire as its components are being added at the building machine and prior to its vulcanization. The transponder must be durable in that within the tire it must be able to withstand normal curing temperatures, compression in the mold and the resulting stresses and strains and shaping of the tire carcass. Also, it must continue to be operable throughout the tire's life, which for a truck tire is approximately seven years.
Furthermore, the device should be able to survive normal use of the tire, which is subjected to shock, flexing, stress, strain, centrifugal forces, heat, cold, mounting and dismounting, retreading, etc.
Moreover) the system used to interrogate the transponder must be inexpensive and portable, readings should be fast, and the transponder should be readable while the tire is in a tire stack or on a dual wheel of a vehicle.

The invention described briefly above and detailed below is expected to satisfy the mentioned requirements for a tire identification system, as may be better understood by reference to the following specification and drawings in which:
Fig. lb is a sectional view of a pneumatic tire and transponder according to the invention and Fig. la is a schematic illustration of a prior-art tire ZO identification system that can be used to identify the combination tire and transponder;
Fig. 2 is a half-sectional view of a radial-ply, steel-reinforced pneumatic truck tire having an integrated circuit transponder located within it;
Fig. 3 is a partial sectional view of the tire of Fig. 2 showing the integrated circuit transponder at an alternate location;
Fig. 4 is a half-sectional view of a radial-ply passenger tire having an integrated circuit transponder within its structure;
Fig. S is a partial sectional view of the tire of Fig. 4 showing an alternate location for the transponder;
Fig. 6 is a schematic equivalent circuit illustrating the manner in which oscillatory R/F
electrical energy is capacitively coupled into and out of transponder when positioned in a tire;

Fig. 7 is an enlarged elevational view of a hermetically sealed transponder having plates formed from a lead frame and embedded in an elastomeric material;
Fig. 8 is a plan view of the transponder of Fig. 7;

Fig. 9 is an end view of the transponder of Figures 7 and 8;
Fig. 10 is an enlarged view of a hermetically sealed transponder having a pair of lead wires extending from the hermetically sealed package rather than the lead-frame plates shown in Fig. 7;
Fig. 11 is a sectional view of a tire containing transponders of the type illustrated in Figures 7 through 9, the tire being shown with a source of A/C
energy and electric field lines emanating from such source as they go to a ground plane;
Fig. 12 is an electrical block diagram of circuitry in the exciter and the signal conditioner unit 12 shown in Fig. l;
Fig. 13 is a detailed schematic diagram of the exciter and signal conditioner circuitry shown in block form in Figure 12;
Fig. 14 illustrates the oscillating R/F or A/C
voltage appearing on the electric field source plate used in interrogating the transponder in a pneumatic tire;

_8_ Fig. 15 is a physical-layout block diagram of an integrated circuit of a transponder to be used in combination with a pneumatic tire for purposes of identification;
Fig. 16 is a schematic block diagram of the circuitry included on the integrated circuit of Fig. 15;
Fig. 17 illustrates the timing of signals in the clock generator and divider circuits of the integrated circuit of Fig. 15;
Fig. 18 illustrates the timing of signals of the encoder in the integrated circuit of Fig. 15;
Fig. 19 illustrates signals related to sample timing of the modulator in the integrated circuit of Fig. 15;
Fig. 20 is a schematic electrical diagram of the power supply, modulator and clock generator circuits in the integrated circuit of Fig. 15;
Fig. 21 is a schematic diagram of the divider in the integrated circuit of Fig. 15;
Fig. 22 is a schematic diagram of the modulo six and modulo eight counters in the integrated circuit of Figure 15;
Fig. 23 is a schematic diagram of a row and column decode circuit and data matrix included in the integrated circuit of Fig. 15; and Fig. 24 is a schematic diagram of the encoder and modulator circuitry of the integrated circuit of Fig. 15.
To facilitate understanding of the invention and claims, the following definitions related to pneumatic tires are provided:
"Axial" and "axially" are used herein to refer to lines or directions that are parallel to the axis of rotation of the tire.
"Bead" means that part of the tire comprising an annular tensile member wrapped by ply cords and shaped, with or without other reinforcement elements such as flippers, chippers, apexes, toeguards and chafers, to fit the design rim for the tire.
"Belt" means a ply of parallel cords, woven or unwoven, underlying the tread, unanchored to the bead, and having a cord angle either left or right, in the range from 17° to 27° with respect to the equatorial plane of the tire.
"Breaker" is a word more generic than belt and includes unanchored plies underlying the tread having cord angles with respect to the equatorial plane fornning angles, either left or right, up to 90° with respect to the equatorial plane of the tire.
"Carcass" means the tire structure apart from the belt or breaker structure, tread, undertread, and sidewall rubber over the plies, but including the beads.

~ooss~s "Cord" means one of the reinforcement strands of which the plies in the tire are comprised.
"Cord angle" means the acute angle, either left or right, in a plan view of the tire, formed by a cord with respect to the equatorial plane.
"Equatorial plane" (EP) means the plane perpendicular to the tire's access of rotation and IO passing through the center of its tread.
"Inner" means toward the inside of the tire, and "outer" means toward its exterior.
"Innerliner" means the Layer or layers of the elastomer or other material that forms the inside surface of a tubeless tire and that contains the inflating fluid within the tire.
"Ply" unless otherwise specified means a continuous layer of rubber-coated parallel cords.
"Pneumatic tire" means a laminated mechanical device of generally toroidal shape (usually an open torus) having beads and a tread and made of rubber) chemicals, fabric and steel, or other materials. When mounted on the wheel on a motor vehicle, the tire through its tread) provides traction and contains the fluid that sustains the vehicle load.
"Radial" and "radially" are used to mean directions radially toward or away from the axis of rotation of the tire.

200E~989 "Radial-ply tire" means a belted or circumferentially restricted pneumatic tire in which the ply cords which extend from bead to bead are laid at cord angles between 65° and 90° with respect to the equatorial plane of the tire.
"Tread" means a molded rubber component which when bonded to a tire casing includes that portion of the tire that comes into contact with the road when the tire is normally inflated and under normal load.
Reference now is made to the drawings, wherein like numerals or identification refer to like parts in the several figures.
In Fig, la, there is shown a system 10 suitable for use in identification of a combination tire 22 and passive integrated circuit transponder 24, together generally identified by the numeral 20 in Fig. lb. The interrogating tire identification system 10 is known in the prior art) preferably is a system commercially available from Destron/IDI, Inc. and includes a portable, hand-held module 12 having within it an exciter and signal conditioner electrical circuit.
The exciter and signal conditioner unit 12 is connected electrically to a demodulator and display unit 14 for indicating on its face the numerical identification of the tire/transponder 20 in response to an interrogation signal transmitted by the exciter and signal conditioner unit 12. A power supply 16 may be separate from or incorporated into the unit 14 and an optional digital computer 18 may be used to display) print, or otherwise utilize the identification data obtained in the unit 14.

2~0~~89 _12-The hand-held unit 12 has a ward 26 which preferably is an insulated electrical conductor that is quite rigid and that electrically conducts an oscillatory or A/C voltage to a conductive plate 28.
The plate 28 has a coating of plastic over it to protect the user of the device fro~~ electric shock;
this plastic has dielectric characteristics that will not cause undue voltage drop across the plastic material. The plate 28 comprises a source of electric ffield oscillating at 400 kHz, which field is directional and emanates from or toward the earth or ground reference applicable to units 14 and/or 16.
The system 10 is very similar in design to that described in aforementioned U. S. Patent 4,730,1$8 of Milheiser, but the Milheiser device described in such patent employs an interrogator coil for inductively coupling 400 kHz energy into a transponder having an inductive or coil antenna. The system 10 has the oscillating electric-field source plate 28 for capacitive coupling to the transponder 24, rather than having a magnetic or an inductive coupling system.
This has substantial advantages over the inductive coupling system, but the design of the transponder 24 must be modified considerably and it must be located within the tire 22 in accordance with the teachings of this invention in order to secure improved tire identification.
The tire and integrated circuit transponder 20 of Fig. lb is shown in greater detail in Fig. 2 in a half-sectional view. The tire 22 is a medium truck tire having a radial ply construction. Thus, tire 22 includes an innerliner 30, a steel-cord 90° radial carcass ply 32 having its respective ends 34 on either side of the tire turned axially and radially outwardly about the respective spaced apart annular tensile members 36) formed of cabled or wound steel wire, in the respective beads of the tire. The beads include a first apex 40 and a second apex 42 typically made of rubber compositions that are harder than those in the sidewall 44 and tread 46 of the tire. The bead also includes a chipper 46, and the toe region 48 of the tire may be strengthened with the use of a hard rubber chaf er .
The tire 22 further includes a belt or breaker structure including a belt or breaker ply 50 and belt plies 52, 54 and 56.
The integrated circuit transponder 24 has an integrated circuit packaged portion 60 with a first electrode 61 extending from it in a direction toward the steel ply 32 and its turned up end 34, such that all or most of the surface area of the electrode 61 is closer to the steel cord ply 32 of the tire than is the surface area of the second electrode 62. The second electrode 62 extends both axially and radially away from the steel ply 32. Thus, the average spacing of the surface of the first electrode 61 from the steel cord in the ply 32 is substantially less than the average spacing of the surface of the second electrode 62.
It may also be noted that the second electrode 62 IS further away from the annular tensile member 36, which as shown and typically is reinforced with wound steel wire, than is the first electrode 61 of the transponder. Thus, the average spacing of the surface of the first electrode of the transponder from the steel wire in a component of the tire, selected from the group consisting of the plies and the annular tensile members, is substantially less than the average spacing of the surface of the second electrode of the transponder from the steel wire in such component ply or annular tensile member.
It may be noted that the electrodes of the transponders 60 need not be elongated as shown in Fig, 2 in order to satisfy this requirement.
Alternative electrode structures and arrangements are disclosed herein, but it should be noted that the arrangement shown in Fig. 2 is advantageous not only from the standpoint of the electrical requirement indicated in the preceding paragraph, but also from the standpoint of positioning between the separate apexes 40 and 42 in the bead of the tire. This permits the transponder 60 to be attached to one of these components prior to installation in the tire when it is being constructed in its green state on the building drum of a tire building machine.
The transponder can be attached to one of the apexes 40 or 42 prior to its being applied to the building drum or after such component has been applied, This operation occurs very early in the manufacture of the tire and permits its identification throughout the manufacturing process for purposes of control as it goes from station to station during fabrication and vulcanization, and also for purposes of process and inventory control. After cure of the tire, the transponder may be used as an identification means in 200f 989 warehousing and distribution of the tire. After sale of the tire) the transponder may be used in tire identification to controJ_ tire positioning on a vehicle and its retreading. Each of the transponders 60 in a tire may have a unique number that it transmits in response to an interrogation signal.
The difference in spacing of the two electrodes from the steel component of the tire is an essential feature of the invention. The "substantially less"
average spacing difference depends upon the location of the transponder in the tire, the strength of the electric field emanating from source plate 28 and its location, the orientation of the electrodes of the transponder, and the characteristics of the rectification and clock-signal circuitry in the integrated circuit of the transponder. However, the electric field across the transponder electrodes must oscillate with the required frequency and with sufficient field intensity to power the integrated circuit and to cause it to transmit the numerical code stored within the transponder. The voltage on the source plate 28, when divided by the distance in meters to its ground reference, determines the magnitude of the electric field in free space. The steel-reinforced components in the tire 22 form equipotential surfaces to which the field lines must be perpendicular by definition, and this situation necessarily produces field gradients that affect transponder location and operability. When the tire is mounted on a wheel and rim, the equipotential effect of the rim may need to be taken into account with respect to positioning of the interrogation wand and its field strength.

~oos~~9 In Fig. 3, there is shown a partial sectional view of the truck tire 22 having the transponder 24 positioned to extend between the shoulder and sidewall of the tire. The resulting combination tire and transponder is identified as 20'. In this tire, the ply 32 extending continuously between the annular tensile members in the respective beads of the tire preferably is made of textile material. The first electrode 6I of the transponder 24 extends parallel with the ply 32, as can its second electrode 62 if ply 32 is reinforced with textile cords. If steel cords are used in ply 32, it may be desirable to have electrode 62 extend away from ply 32. The resulting structure meets the electrical requirement of the invention that the average spacing of the surface of this first electrode of the transponder from the steel wire in a component of the tire be substantially less than the average spacing of the surface of the second electrode of the transponder from the steel wire in such ply.
Fig. 4 is a half-sectional view of a radial-ply passenger tire 70 having a textile-cord reinforced carcass ply 72 and a steel-wire annular tensile member 74 in its bead structure, about which the end 76 of the ply 72 is turned. The tire 70 also has steel-reinforced belt plies 80 and 82.
In the tire 70 illustrated in Fig. 4) the transponder 24 has its first electrode 61 positioned near the wire annular tensile member 74 in the tire bead. The first and second electrodes 61 and 62 extend from the integrated circuit package 60 of the transponder 24 parallel with the surface of the ply 72, ~oos~~9 which in the passenger tire preferably is reinforced with polyester cord. This non-conductive cord enhances the manner in which the transponder 24 behaves, when positioned in the manner indicated in Fig. 4, because the first electrode 61 has its surface positioned substantially closer to the wire in the annular tensile member 74 than does the second electrode 62 of the device. While this would also be true were the ply 72 to be reinforced with steel cord) the steel in the ply 72 would form an equipotential surface that would make the orientation for the transponder 24 depicted in Fig. 2 much more desirable.
Fig. S is a partial sectional view of the tire 70 of Fig. 4, but the transponder 24 has its first electrode 61 positioned under the edge of the steel-reinforced belt ply 80. Both this first electrode and the second electrode 62 extend parallel with the surface of the textile-reinforced ply 72, but the average distance of the surface of the electrode 6I to the steel in the belt ply is substantially less than is the average distance of the the surface of the second electrode 62 to such ply.
The locations of the transponder 24 in Figures 3 and 5 for the respective truck and passenger tires are considered less desirable than the bead locations depicted in Figures 2 and 4. Stresses and deflections in the shoulder regions and sidewalls of the tires are higher than in the bead regions, which are stiffer and tend to deflect very little.
Figure 6 is a schematic electrical diagram illustrating why it is electrically important for the v average spacing of the surface of the first electrode of the transponder 24 from the steel wire in a tire component to be substantially less than the average spacing of the surface of the second electrode 62 of S the transponder from such steel wire.
In Figure 6, the numeral 28 designates the plate on the end of the wand 26 in the exciter and signal conditioner unit 12 of the tire identification interrogation and display system 10 of Figure 1. The plate 28 preferably has a 400 kHz oscillating electrical voltage on it that is generated in a manner hereinafter described. The oscillating voltage preferably oscillates about ground potential, as schematically indicated at 100, with a peak-to-peak variation between about +500 and -500 volts. The ground at 90 is determined by the surroundings of the tire in relation to the power supply 16 and its ground connections. Other voltages may be used, and higher voltages may be desirable in certain applications in order to provide sufficient electric field intensity across the transponder's first and second electrodes., The plate 28 in Figure 6 is a source of an oscillating electric field which at 400 kHz alternates in direction between the source 28 and ground at 90.
The electrodes 61 and 62 of the integrated circuit transponder 24 are within the electric field. The steel-reinforced tire component 92 also is within the electric field. Due to the conductivity of the steel cords in the component 92, the component is at an equipotential in the electric field and the field lines must be perpendicular to this equipotential surface.
Thus, in the tire, if the component is a steel-reinforced carcass ply, then the entire ply forms an equipotential surface. With one of the electrodes 61 of the transponder having its surface located substantially closer to the component 92 than is the surface of the other electrode 62, the equipotential of the component 92 forces the electrode 61 to have a different potential on it than occurs at the other electrode 62 not influenced by the equipotential of the component 92. In other words, the steel component 92 creates capacitive coupling between the source 28 and ground as indicated by the series of capacitances 93) 94 and 95. The second electrode 62 in the circuit is capacitively coupled by the two capacitances 96 and 97.
This produces an oscillatory voltage or electric field across the electrodes 61 and 62 of the transponder 24 in response to the 400 kHz interrogation voltage applied to the plate constituting the source 28; if the oscillating voltage across the electrodes 61 and 62 of the circuit 60 in the transponder is sufficient to provide the electrical energy source required by the circuitry of the passive transponder 24, then the transponder will be energized and will be enabled to transmit its identification signal.
It should be noted that the wavelength of the 400 kHz interrogation signal is 750 meters. This long wavelength means that electrodes 61 and 62 do not act as an "antenna" in the usual sense.
The identification signal is sensed at the plate 28 and is in the form of a 40-to-50 kHz, frequency-shift-keyed (FSK) signal that is coded. Demodulation of this FSK signal enables the tire to be identified by display or by transmission of the demodulated (decoded) signal to a .computer, printer or other device.

Figure 7 depicts in enlarged sectional elevational view an hermetically-sealed semiconductor package embedded in an elastomeric material to form a transponder 24'. This transponder 24' and integrated-S circuit package 60' within includes a metal base plate 98 and a metal top cover 99. An integrated circuit die 100 is attached to the base plate 98 and has a first lead wire l0I and a second lead wire 102. Lead wire 101 extends between a first pad on the die 100 to the IO first electrode 61' of package 60'. The second lead wire 102 extends from a second pad on the die 100 to a second electrode 62' in the package 60'. The electrodes 61' and 62' are spaced from one another and bent at 90° angles to form surfaces or "plates" of 15 metal which are parallel to one another and enlarged, as is more clearly depicted in the plan view of the device 60' shown in Figure 8 and in the end view of Figure 9.
20 Figure 8 depicts the package 60' with the top cover 99 removed. The transponder and its first and second plate electrodes 61' and 62' are inserted in an elastomeric material, which preferably is a polyether urethane chemically reacted from a mixture of liquids 25 to form a solid. Such materials are commercially available from UTI Inc. of Santa Anna) California, and others and can be made to have rapid phase transitions from the liquid state to the solid state. The elastomeric material 104 in which the components 30 described above are embedded preferably is cylindrical in shape to facilitate insertion of the device into the apex of a pneumatic tire, or perhaps under its belt structure) such that the plate 61' has its surface 106 parallel to the plane of the steel wire or cords in one of the components of the tire. This causes the surface 108 of the other or second electrode 62 prime to be spaced further from such tire component than the surface 106 and allows the required oscillating voltage between the electrodes to be generated in response to the 400 kHz oscillating field on the plate or source of electrical energy 28 during interrogation for tire identification.
The package 60' for the integrated circuit transponder 24' of Figures 7 to 9 is a design based upon U. S. Patent 4,805,009 issued February 14, 1989, to Pryor) et al. for an "Hermetically Sealed Semiconductor Package" and assigned to Olin Corporation of New Haven, Connecticut. Other techniques for extending electrodes from the integrated circuit die 100) such as glass encapsulation) can be used.
Figure 10 illustrates an integrated circuit package of this kind having the wire electrodes 61 and 62 extending from it to form the transponder 24.
With reference now to Figure 11, there is shown the source of oscillating electrical energy 28) the ground potential 90, and a schematic view of the spaced annular tensile members 36, 36', and the steel-cord reinforced carcass ply 32 with its respectively turned up ends 34, 34' taken from the truck tire 22 shown in Figure 2. The respective beads of this tire include apexes 40, 42 and 40', 42'. The apexes 40, 42 in the right-hand bead of this tire include the transponder 24' illustrated in Figures 7 to 9, as do the apexes 40', 42' in the left-hand side of this tire. However, the left-hand bead has the transponder 24' oriented differently than the transponder 24' in the right-hand 200f 989 bead. In the left-hand bead, the plate or first electrode 61' of the transponder is positioned adjacent the tire's annular tensile member 36' and the other plate or second electrode 62' is more remote therefrom.
In the right-hand bead, the plate 61' is adjacent to the parallel steel cords in the ply 32 and the second plate or electrode 62' is more remote therefrom. In both cases, the second electrode or plate 62' extends axially and/or radially away from the steel-reinforced tire component to which the first electrode or plate 61' is parallel.
The broken lines in Figure 11 depict electric field lines as they are estimated to be oriented with respect to the tire components as they go from the source 28, when positive, to ground potential at 90. The center field line 110 is perpendicular at point P to the steel cords in the carcass ply 32, which is an equipotential component to which the other field lines 112 and 114 depicted in Figure 11 must be perpendicular at the points of intersection Q and R. The fact that the steel-cord ply 32 must be an equipotential surface and the field lines passing through it perpendicular to it, and the presence of external field lines such as shown at 116 and 118) allows an oscillating potential difference to appear across the electrodes 61',62' of the integrated circuit transponder 24' to energize it in response to the 400 kHz interrogation signal emanating from the source 28.
Figure 12 is a block diagram of the circuitry included in the exciter and signal conditioner unit 12 shocm in Figure 1. This circuitry functions in a manner similar to that disclosed in Milheiser Patent 4,730,188, is commercially available from Destron/IDI
of Boulder, Colorado, and is included here because some improvements in the circuitry over that depicted in the aforementioned patent are known to the inventors and may enhance the use of the combination tire and transponder of the invention.
From Figure 12, it may be seen that a reset signal is applied to a clock generator that produces a 400 kHz oscillatory voltage at its output. This signal, which comes from a trigger switch on unit 12, is amplified from 12 volts to 66 volts D/C and is supplied to a pulse-forming network. At the output of the pulse-forming network, a 400 kHz signal oscillating between 450 volts positive and 480 volts negative with respect to ground is produced. This voltage is supplied to a tuned circuit including a coil to which the source plate 28 of the electric field previously described is coupled.
When the source plate 28 receives the Lower frequency 40/50 kHz signal emanating from the transponder in a tire, this signal is transmitted to a passive notch filter, which has a low impedance to ground for the 400 kHz transmitted signal and which passes through the lower frequency signal to a resonance preamplifier tuned to 45 kHz. The preamplified identification signal from the integrated circuit transponder in the tire then passes through a SO 180° phase-shift amplifier and is transmitted to the demodulator and display unit 14.
Figure 13 is a detailed schematic diagram of the circuitry shown in Figure 12. The circuitry) generally designated by the numeral 200 in Figure 13, acts as an exciter, via the electric-field source plate 28, for the remotely located transponder being interrogated.
The circuitry 200 also functions as a conditioner far the signal transmitted from the transponder in the pneumatic tire in response to the 400 kHz interrogation signal. After the return signal is conditioned, it is transferred to the demodulator and display circuitry in the unit 14 shown in Figure 1.
The circuit 200 includes D/C voltage input lines having terminals 202 and 204. Sixty-six volts D/C is applied to the terminal 202 and 12 volts D/C is applied to the terminal 204, these voltages being provided by the power supply 16 (Figure 1). A terminal 206 receives a reset signal from a pushbutton trigger on the hand-held module 12 in which the exciter and signal conditioner circuitry 200 are incorporated. Upon receipt of the identification signal from the transponder, this signal is made available to the demodulator and display device 14 at terminal 208.
When the pushbutton trigger on the unit 12 is depressed, the reset signal is applied at terminal 206 and the electric field source plate 28 has applied to it an oscillatory voltage that immerses the pneumatic tire 20 in a correspondingly oscillating electric field. The pulse train on the source plate 28 has a duration of approximately 20 milliseconds that is then followed by a dead time of approximately 20 to 30 milliseconds. The pulse train has a frequency of 400 kHz with the essentially sinusoidal wave shape depicted in Figure 14. The voltage variations are with respect to a zero or ground potential represented by the ground symbols illustrated in Figure 13. Preferably, this ground reference is the same as building or machinery ground in the vicinity of tire identification.
The circuitry that creates the transmission or interrogation signal described above includes the CMOS
decade counter U2 whose clock signal is derived from a 4 MHz crystal oscillator X1. The clock signal is a square wave that is generated at the RCO output of U2, which drives an unbalanced push/pull amplifier stage that includes transistors Ql, Q2, Q3 and Q4. The push stage of the amplifier uses the clock signal to drive Ql, which in turn drives Q2 and Q3. The diode D2 is placed across the emitter to base of Q2 to insure that Ql will not go into deep saturation, thereby, resulting in faster switching times. The pull section of the amplifier uses the clock signal to directly drive Q4, the output of which is connected to the common node through a 30 ohm resistor R7. Capacitor CI9 is placed across the collector of Q2 and the source of Q3. This bootstrap capacitor supplies more drive voltage to the gate of Q3 to drive it deeper into saturation. The resulting waveform is passed through the filter including inductor L3 and capacitors C7, C8, C9 and C10, at which point it is applied to the electric field source plate 28.
The filter comprising the inductor L3 and capacitor C7 allows the signal at their juncture to be applied to a series/resonant circuit including parallel capacitors C8 and C9, series-connected capacitor C10) and inductor L4. The voltage at the junction between the capacitor C10 and the inductor L4 is very high due to the series resonance and is applied to the electric-field source plate 28.

~ooos~~

The signal conditioner or receiver portion of the circuitry 200 is coupled to the junction between the series/resonant capacitors and inductor L4 to provide a line 210 on which will occur the oscillatory data or identification signal transmitted to the plate 28 from the transponder in the tire 20 after interrogation by the 400 kHz signal. The signal conditioner amplifies the identification signal returned from the transponder while at the same time removing the 400 kHz excitation or interrogation signal. Transistor Q5 is an emitter/follower having a capacitor C13 providing A/C
coupling to its base. The passive notch filter, shown in Figure l2, is comprised of the inductors L5, L6, L7 and L8, resistors R9 and R12 and capacitors C11 and C12. These components effectively provide zero impedance to ground for the 400 kHz excitation signal.
The notch filter 212 is very similar to circuitry included in Figure 3 of the Milheiser patent, which circuitry is described as a low-pass filter. The circuitry 212 passes the low-frequency (40 to 50 kHz) signal from the transponder through the capacitor C13 to the base of the transistor Q5.
Transistor Q5 has its collector coupled, through the inductor L9 and capacitor C15) to the 12 volt D/C
supply voltage that appears on line 214. L9 and C15 resonate at a center frequency of 45 kHz. The output of the emitter follower transistor Q5 is A/C coupled through capacitor C16 to an inverting amplifier including transistor Q6. The signal occurring at the emitter of transistor Q6 is A/C coupled through capacitor C17 and resistor R16 to the terminal 208 and thus made available to the demodulator and display unit 14.

~oosss9 The circuitry described in connection with Figures 12 through 14, and the integrated circuit transponder hereinafter to be described in connection with Figures 15 through 24, exemplify prior art devices that are commercially available from Destron/IDI, Inc. The Destron/IDI integrated circuit transponder transmits a frequency shift keyed (FSK) signal with a transmission rate of 4,000 bits per second.
transmission. The FSK encoding technique involves the modulation of a signal between two frequencies depending upon the state of a digital data signal. The exciter and signal conditioner unit 12 available from Destron/IDI transmits the 400 kHz exciter or interrogation signal, which the integrated circuit transponder 100 then uses both for a clock and as its internal supply voltage. In response to this clock and supply voltage, the transponder 100 transmits its identification signal with FSK encoding and the signal conditioner circuitry described above amplifies the identification signal, which varies in frequency by changing back and forth from 40 kHz to 50 kHz. The signal conditioner then makes the amplifier signal available to the demodulator and display unit 14.
The detailed description which follows although of a prior art device) reflects the best mode known to the inventors for carrying out the claimed invention and represents an improvement over the transponder described in Milheiser Patent 4,730,188.
In Figure 15, there is shown the prior art integrated circuit transponder chip or die 100 that has been commercially available from Destron/IDI or its predecessor company. The die 100 is square and has side dimensions of 1.10 millimeters. The fabrication technology is three-micron-feature CMOS with P-substrate and N-type wells. For input and output, it has four pads: Pl and P2 and power and ground test pads 221 and 222. The lead wires 101 and 102 are respectively bonded to pads P1 and P2 and connect to the first and second electrodes of the transponder in the manner previously described. The various circuit portions are delineated in Figure 1 by boundary lines lU that identify the areas they occupy on the die I00.
The letters B) C, D) E and F in these portions are used in Figures 20 through 24 as partial identification for components in the integrated circuit die. In these Figures, the letters of Figure 15 appear as the center letter in the designation for the various devices schematically illustrated. For example, in Figure 20, the diode DB2 is the second such diode) which is indicated by the numeral "2" and by the letter "D", and is in the portion of the die 100 having the "B"
designation in Figure 15. Similarly, a type-D
flip-flop UC7 shown in Figure 21 is a unified device found in the divider section "C" in Figure 15 and is the seventh of such devices illustrated.
From Figure 15 illustrating the layout of the die and Figure 16, which is a block diagram of the circuitry on the die) it may be seen that a power supply receives the 400 kHz excitation signal transmitted from the unit 12 and from it supplies power to the various blocks included in the die 100. The 400 kHz signal also is applied to a clock generator, which uses the 400 kHz signal in conjunction with a modulator that controls the 40 to 50 kHz signal applied as an oscillatory voltage across the pads Pl and P2 of the n transponder. The clock generator produces a 400 kHz clock pulse that is divided as shown in Figure 17 to produce a 4 kHz signal that is applied to the modulo 8 counter. The resulting 0.5 kHz signal is applied both to a modulo 6 counter and to a column decode device which has associated with it a six word by eight-bit read-only memory) Row decode of the read only memory (ROM) is accomplished through use of the signal produced at the output of the module six counter and row decode circuit. The ROM thus has 48 bits of coding for transmission as an identification signal via FSK
modulation of a 40 to 50 kHz signal. Twenty-four of the bits 13x8) are metal-mask programmable and the other twenty-four bits (3x8) are field programmable through window openings in the passivation of the integrated circuit die 100.
The details of the ROM circuitry containing the identification code for a pneumatic tire are included in the schematic diagram of Figure 23. The device has column decode lines CD1 through CD6 and row decode lines RDl through RD6. The row decode lines are connected to gates and inverters UEl through UE12, and the column decode lines are connected to gates and inverters UE13 through UE36. The D/C supply voltage VDD is supplied to all of the field effect transistors in the ROM array. There are a total of ninety-six (96) (2x48) field effect devices in the ROM array, two of the devices being for each of the data bits and only one of the two devices providing a zero or one logic level in the array depending upon its programming. The first three words or twenty-four bits of data in the ROM are mask programmed. The data is written when the die 100 is fabricated via the metal mask used in its r manufacture. The last three words or twenty-four bits are programmed after chip fabrication is completed.
During fabrication of the die) small windows or openings in the passivation are left over each of the twenty-four bits which are not programmed with the metal mask; through these windows, a laser can be used with the small windows or openings to remove either the zero or one connection for the data bits that are programmable after chip fabrication has been completed.
The first word in the ROM is a start word. It is encoded differently by the encoder based upon its row address of 000. Each of the remaining five words have seven data bits and one parity bit. The left most bit (column address 000) is the parity bit. This bit is a one if an even number of the remaining seven bits are ones and a zero otherwise.
The data from the ROM goes to the encoder. The encoder marks the fifth and seventh bits of the first word (address 000100 and 000110) with a unique code permitting this word (row address 000) to be recognized as the start word. Except as to the fifth and seventh bits of the first word, all zeros from the ROM are encoded as a transition from a low level to a high level and all ones are encoded as a transition from a high level to a low level. These zero and one transitions from low to high and from high to low) respectively, occur in the middle of the bit period, which is 0.25 milliseconds long. Thus, after encoding each data bit is a zero for 0.125 milliseconds and a one for 0.125 milliseconds if the bit is a zero and is a one for 0.125 milliseconds and a zero for 0.125 milliseconds if the bit is a one.

The encoded data goes to the modulator where frequency shift keying (FSK) is the modulation technique employed. A zero from the encoder becomes a 50 kHz signal, while a one becomes a 40 kHz signal.
Therefore, a data bit zero from ROM is modulated as a 40 kHz signal for 0.125 milliseconds (five cycles) followed by a 50 kHz signal for 0.125 milliseconds (6.25 cycles). A one data bit from ROM is modulated just opposite to this, that is, a 50 kHz signal for 0.125 milliseconds followed by a 40 kHz signal for 0.125 milliseconds. This FSK signal of 40 and 50 kHz drives the gate of a MOSFET MB3. The drain of the MOSFET MB3 in Figure 20 is connected to the die ground and the source of the MOSFET MB3 is connected through resistor RB1 to the pad P2 on the die. This, due to the presence of the power supply voltage VDD in the die, causes the potential at P2 to oscillate at the 40 to 50 kHz frequency, and this oscillation is sensed at the plate 28 in the exciter and signal conditioner unit 12.
The power supply for die 100 is illustrated in Figure 20. The excitation or interrogation signal at 400 kHz emanating from the electric-field source plate 28 results in an oscillating electric field occurring across the pads P1 and P2 of the die 100. MOSFET's MB1 and MB2 are alternately turned on by the polarity reversals across the gads P1 and P2. Then MBl is conductive, diode DB2 is reverse-biased, diode DBl is forward-biased and charge flows into capacitor CB1.
Similarly, when MB1 is conductive, diode DBl is reverse-biased) and diode DB2 is conductive so that charge again flows into the capacitor CB1. Thus, the voltage~VDD is obtained to supply the other circuit components on the die 100.

The circuitry of Figure 20 includes a clock generator including inverters LB1 through LBS. These provide the clock signal CIN and the inverted clock signal CINB. These clock signals are applied to the circuitry illustrated in Figure 2I, which produces the 4 kHz clock signal CK4K and the 8 kHz clock and inverted clock signals CK8K and CKB8K. This is accomplished with devices UCl to UC11. Signal CK4K is applied to the modulo 8 counter shown in Figure 22. It produces the column decode signals CDI through CD6 supplied to the circuitry of Figure 23 as previously described and provides, through the modulo 6 counter, the KDl through RD5 signals also supplied to the ROM
circuitry of Figure 23.
The modulator circuitry is shown in detail in Figure 24. Inputs to this circuit include the ROMOUT
and ROWOB signals from the 48-bit ROM circuit of Figure 23. Inputs further include various clock signals and column decode signals as shown. The output 300 of the modulator circuit in Figure 20 is supplied to the MOSFET MB3 gate, as is shown in Figure 20. The modulator functions in the manner described above and is consistent with the modulator operation disclosed in the blilheiser patent. Figure 18 illustrates the timing of the encoder, and Figure 19 provides sample timing for the modulator (data bit periods 27 through 31 of the 48 bit periods for data from the ROM axe illustrated).
In Figure 18, the 4$ bit periods are shown along the bottom of the drawing. One bit equals 0.25 milliseconds at a bit-rate R of 4,000 bits per second (bps). From the ROMOUT signal, it may be seen that the 2~~6989 start word occupies bit periods zero through seven and the remaining metal mask programmable bits are included in bit periods 8 through 23. Data bits 24 through 47 are those that are programmable after integrated circuit fabrication. The signals F5, F4, F2, F6, F9, F10, F11, F16) F20 and F23 illustrated in Figures 18 and 19 appear on the correspondingly identified conductors in the portion of the integrated-circuit schematic diagram shown in Figure 24.
The ROMOUT signal from the ROM is displayed as the first waveform in Figure 19. During bit periods 27 and 28, the ROMOUT bits are zeros, are ones during bit periods 29 and 30, and a zero during bit period 31.
Thus, the MOD signal applied to the MOSFET MB3 (Figure 20) is shown as the last waveform in Figure 19 and represents the FSK signal that controls transistor MB3 causing the voltage across pads P1 and PZ of the integrated--circuit die 100 to vary between the 40 and 50 kHz frequencies. As may be seen in the bottom of Figure 19, a "zero" bit in bit period 28 is a transition from a 40 kHz frequency of the MOD signal to a 50 kHz signal, and the "one" bit in bit period 29 is a transition from the 50 kHz frequency to the 40 kHz frequency.
The actual transmission of the 48 bits of data from the transponder requires 12 milliseconds (0.25 milliseconds for each bit). Since the first eight of these bits are a start word) the remaining 40 bits contain identification data unique to the particular transponder and the pneumatic tire with which it is associated.

2~06989 The demodulator and display unit 14 receives the amplified analog FSK modulated signal from the signal conditioner circuitry in unit 12 and processes the data into a 40-bit string. Individual bits may be detected and entered into a shift register one-by-one. These then may be displayed on the unit 14 in hexadecimal or other format. The 40 bits may be five eight-bit words, one bit of each word being a parity bit as previously noted. The manner in which these words are used to identify the pneumatic tire numerically depends upon the degree of verification desired and the maximum number of individual identifications desired. Even with the one bit of parity for each of the five words) there remains 35 bits of data that can be used for tire identification. This would allow a maximum of 34.4 billion unique identifications. If all forty bits in the five eight-bit words were to be used, a total of over one trillion unique identifications would be possible.
The integrated circuit transponder is capable of transmitting an FSK signal at a frequency of 40 or 50 kHz, depending upon the FSK modulation, in response to a 400 kHz interrogation signal emanating as as electric field from a source or plate to which a 400 kHz voltage is applied. The voltage level with respect to ground must be sufficient to supply the power required by the power supply built into the integrated circuit transponder, such as is schematically illustrated in Figure 20. However, the position of the electric field source plate 28 relative to the pneumatic tire 22 containing the transponder can be of some importance.
More importantly, the arrangement of the transponder and its first and second electrodes relative to a steel component in the tire 22 is critical to it having across such electrodes, an oscillating voltage sufficient to cause transmission of the transponder's identification code. After sufficient power has been received, the integrated circuit is capable of serial transmission of the multibit binary identification code using frequency-shift-keying at frequencies reduced from that of the interrogation signal) which also is used as the source of a clock signal. The 400 kHz frequency is not mandatory but is convenient under FCC
R/F band allocations in effect.
The general theory of operation of the integrated circuit transponder in the pneumatic tire 22 has been described particularly in relation to Figures 6 through 11. This operational theory may be summarized as follows:
An integrated circuit transponder will have maximum 2f sensitivity to an applied electric field when oriented such that first and second electrodes, connected to power supply pads on the transponder integrated circuit, are at different equipotential lines with the maximum gradient between them. Maximum sensitivity occurs when the surface of the first electrode is located in proximity (average spacing close) to a metal component and the opposite or second electrode is far from the same component, provided of course that the electric field is properly oriented. In a pneumatic tire, this is particularly important because the steel-reinforced plies and tensile members in the beads of the tire form equipotential surfaces or elements to which electric field lines must be perpendicular. This means that the maximum gradients between transponder electrodes occur when one of the electrodes is near the steel-reinforced component of the tire and the other electrode is away from it.
The transponder of Figures 7 through 9 has plate electrodes, one of which can be positioned parallel with the steel reinforcement in a tire component. In such case, the spacing of such electrode surface from the component should be minimized. The electric field from the source will be perpendicular to the steel in the tire component and to the adjacent plate electrode in the transponder. The second plate electrode advantageously is spaced a comparatively large distance from the first.
If the distance from the field source plate 2$ to ground potential is, for example) one meter, and if the source potential on page 28 is 500 volts at 400 kHz) then the average electric field intensity between the plate and ground is 500 volts per meter or five volts per centimeter. Locating the transponder 24' with this field perpendicular to its plate electrodes should be sufficient to energize the transponder's power supply and thereby result in data transmission. If not, the field strength can be increased as necessary for the application.
Of course) the location of the transponder within the tire must be selected such that it does not interfere with the tire's durability during manufacture and in service. Also, the transponder must be able to survive the manufacturing process, including the temperatures encountered during the vulcanization of the tire's elastomeric components.
r Based upon the foregoing description of the invention, what is claimed is:

Claims (25)

1. In combination, a pneumatic tire and an integrated circuit transponder located within the structure of the tire, the pneumatic tire having spaced beads including annular tensile members of wound or cabled steel wire, the tire having a plurality of plies at least one of which is a continuous ply extending between the annular tensile members arid having its ends turned axially and radially outwardly about the annular tensile members, the transponder having first and second electrodes and being able to transmit an electrical signal after an oscillating electric field of sufficient intensity is applied between the first and second electrodes of the transponder, the average spacing of the surface of the first electrode of the transponder from the steel wire in a component of the tire selected from the group consisting of the plies and the annular tensile members being substantially less than the average spacing of the surface of the second electrode of the transponder from the steel wire in such component ply or annular tensile member, the transponder within the tire structure being capable of transmitting the electrical signal in response to an oscillating electric field emanating from a source spaced from the tire and located radially away from the tread surface, and the transponder being capable of transmitting the electrical signal from the tire both prior to and after its vulcanization.
2. A pneumatic tire and transponder combination as in claim 1, wherein the component of the tire is the annular tensile member.
3. A pneumatic tire and transponder combination as in claim 1, wherein the component of the tire is a ply extending continuously between the annular tensile members and having wire cord as its reinforcement material.
4. A pneumatic tire and transponder combination as in claim 1, wherein the component is a belt or breaker ply reinforced with steel cord.
5. A pneumatic tire and transponder combination as in claim 1, wherein the first and second electrodes of the transponder comprise first and second plates spaced from and parallel to one another, the integrated circuit being located between the plates, the plates and integrated circuit being located within the structure of the tire with the first plate positioned closer to the component than the second plate, the plates being parallel with the wire in the component.
6. A pneumatic tire and transponder combination as in claim 1, wherein the integrated circuit includes spaced contact pads, each of the first and second electrodes including conductors extending from the respective contact pads on the integrated circuit, one of the conductors extending toward the steel wire of the component and the other extending away from such steel wire.
7. A pneumatic tire and transponder combination as in claim 2, wherein the integrated circuit includes spaced contact pads, each of the first and second electrodes including conductors extending from the respective contact pads on the integrated circuit, one of the conductors extending toward the steel wire of the component and the other extending away from such steel wire.
8. A pneumatic tire and transponder combination as in claim 3, wherein the integrated circuit includes spaced contact pads, each of the first and second electrodes including conductors extending from the respective contact pads on the integrated circuit, one of the conductors extending toward the steel wire of the component and the other extending away from such steel wire.
9. A pneumatic tire and transponder combination as in claim 4, wherein the integrated circuit includes spaced contact pads, each of the first and second electrodes including conductors extending from the respective contact pads on the integrated circuit, one of the conductors extending toward the steel wire of the component and the other extending away from such steel wire.
10. A pneumatic tire and transponder combination as in claim 5, wherein the component of the tire is a ply extending continuously between the annular tensile members and having wire cord as its reinforcement material.
11. A pneumatic tire and transponder combination as in claim 9, wherein at least a portion of the surface area of the first electrode is positioned between the ply reinforced with steel cord and the wire of the annular tensile member in one of the beads.
12. A pneumatic tire and transponder combination as in claim 8, wherein at least a portion of the surface area of the first conductor is located on the radially outer side of the ply reinforced with steel cord and between its main body and its turn-up portion, the second conductor of the transponder extending radially outwardly from the turn-up portion of such ply.
13. A pneumatic tire and transponder as in claim 12, wherein the second conductor also extends axially away from the main body of the ply.
14. A pneumatic tire and transponder combination as in claim 9, wherein the first conductor is located between the radially outer side of the ply extending between the annular tensile members and the radially inner side of the belt or breaker ply.
15. A pneumatic tire and transponder combination as in claim 10, wherein the tire has an apex or apexes positioned radially outwardly of the annular tensile member of one of its beads, the plates and integrated circuit of the transponder being located within the apex or apexes.
16. A pneumatic tire and transponder as in claim 14, wherein the second conductor of the transponder extends parallel with the cords of the ply and away from the lateral edge of the belt or breaker ply reinforced with steel cord.
17. A pneumatic tire and transponder combination as in claim 6, wherein the second conductor has substantially greater surface area than the first conductor.
18. A pneumatic tire and transponder combination as in claim 6, wherein the tire has two apexes positioned radially outwardly of the annular tensile member of one of its beads, the transponder being positioned between the two apexes.
19. A pneumatic tire and transponder combination as in claim 1, wherein of the ply of the tire extending between the annular tensile members is reinforced with steel cord and wherein the tire has one or more belts or breaker plies reinforced with steel cord.
20. A pneumatic tire and transponder combination as in claim 19, wherein the tire is a radial ply tire.
21. A pneumatic tire and transponder combination as in claim 20, wherein the tire has an apex or apexes, the transponder being located within such apex or apexes.
22. A pneumatic tire and transponder combination as in claim 21, wherein the transponder includes a pair of parallel plates, the integrated circuit being positioned between the parallel plates and the surfaces of the plates being parallel with the annular tensile member associated with the apex or apexes in which the transponder is located.
23. A pneumatic tire and transponder combination as in claim 21, wherein the first and second electrodes of the transponder comprise first and second plates spaced from and parallel to one another, the integrated circuit being located between the plates, the plates and integrated circuit being located within the apex or apexes with the first plate being positioned closer than the second plate to the steel cords of the ply extending between the annular tensile members.
24. A pneumatic tire and transponder combination as in claim 5, wherein the component of the tire is one of the annular tensile members and wherein the transponder and its first and second plate electrodes are embedded in a polyether urethane elastomeric material chemically reacted from a mixture of liquids.
25. A pneumatic tire and transponder combination as in claim 10, wherein the transponder and its first and second plate electrodes are embedded in a polyether urethane elastomeric material chemically reacted from a mixture of liquids.
CA002006989A 1989-03-24 1990-01-02 Integrated circuit transponder in a pneumatic tire for tire identification Expired - Fee Related CA2006989C (en)

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US328,428 1989-03-24
US07/328,428 US4911217A (en) 1989-03-24 1989-03-24 Integrated circuit transponder in a pneumatic tire for tire identification

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CA2006989C true CA2006989C (en) 1999-11-16

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EP (1) EP0389406B1 (en)
JP (1) JPH02123404U (en)
AU (1) AU629318B2 (en)
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CA (1) CA2006989C (en)
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Families Citing this family (178)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
ATE98025T1 (en) * 1987-07-31 1993-12-15 Texas Instruments Deutschland TRANSPONDER ARRANGEMENT.
US5451959A (en) * 1988-07-08 1995-09-19 Texas Instruments Deutschland Gmbh Transponder arrangement
US5305008A (en) * 1991-08-12 1994-04-19 Integrated Silicon Design Pty. Ltd. Transponder system
US5181975A (en) * 1991-03-27 1993-01-26 The Goodyear Tire & Rubber Company Integrated circuit transponder with coil antenna in a pneumatic tire for use in tire identification
US5218861A (en) * 1991-03-27 1993-06-15 The Goodyear Tire & Rubber Company Pneumatic tire having an integrated circuit transponder and pressure transducer
US5223851A (en) * 1991-06-05 1993-06-29 Trovan Limited Apparatus for facilitating interconnection of antenna lead wires to an integrated circuit and encapsulating the assembly to form an improved miniature transponder device
FR2682323A1 (en) * 1991-10-15 1993-04-16 Michelin & Cie IMPLEMENTATION OF AN ELECTRONIC CIRCUIT IN A TIRE.
US5294931A (en) * 1992-04-29 1994-03-15 Texas Instruments Deutschland Gmbh Method of interrogating a plurality of transponders arranged in the transmission range of an interrogating device and transponders for use in the said method
US5497140A (en) * 1992-08-12 1996-03-05 Micron Technology, Inc. Electrically powered postage stamp or mailing or shipping label operative with radio frequency (RF) communication
US5621913A (en) * 1992-05-15 1997-04-15 Micron Technology, Inc. System with chip to chip communication
USRE42773E1 (en) 1992-06-17 2011-10-04 Round Rock Research, Llc Method of manufacturing an enclosed transceiver
DE4345610B4 (en) * 1992-06-17 2013-01-03 Micron Technology Inc. Method for producing a radio-frequency identification device (HFID)
US5776278A (en) 1992-06-17 1998-07-07 Micron Communications, Inc. Method of manufacturing an enclosed transceiver
US5227798A (en) * 1992-06-24 1993-07-13 The United States Of America As Represented By The Secretary Of The Air Force Passive transmitting sensor
US7158031B2 (en) 1992-08-12 2007-01-02 Micron Technology, Inc. Thin, flexible, RFID label and system for use
DE4243021A1 (en) * 1992-12-18 1994-06-23 Klaus G Seewe Automatic system for identifying data of individual tyres
US5662048A (en) * 1993-03-08 1997-09-02 Kralj; Nicholas L. Integrated reusable pallet having data collection devices and method for using shipping conveyances
US5479171A (en) * 1993-04-27 1995-12-26 Texas Instruments Deutschland Gmbh Extended range RF-ID transponder
US5432518A (en) * 1993-06-15 1995-07-11 Texas Instruments Incorporated Closed slot antenna having outer and inner magnetic loops
ES2108346T3 (en) * 1993-08-06 1997-12-16 Sedepro TIRE CONTAINING A PERFECTED SHAPE HEEL.
DE69406224T2 (en) * 1993-08-18 1998-03-19 Bridgestone Corp Pneumatic tire with a transponder, device and method for picking up and reading from a transponder
US5491483A (en) * 1994-01-05 1996-02-13 Texas Instruments Incorporated Single loop transponder system and method
US6087930A (en) * 1994-02-22 2000-07-11 Computer Methods Corporation Active integrated circuit transponder and sensor apparatus for transmitting vehicle tire parameter data
DE4419296A1 (en) * 1994-06-01 1995-12-07 Sp Reifenwerke Gmbh Vehicle tire detection system
US5731754A (en) * 1994-06-03 1998-03-24 Computer Methods Corporation Transponder and sensor apparatus for sensing and transmitting vehicle tire parameter data
AU703974B2 (en) * 1994-06-03 1999-04-01 Bridgestone/Firestone North American Tire, Llc Method of monitoring conditions of vehicle tires and tires containing a monitoring device therein
US5500065A (en) * 1994-06-03 1996-03-19 Bridgestone/Firestone, Inc. Method for embedding a monitoring device within a tire during manufacture
US5483827A (en) * 1994-06-03 1996-01-16 Computer Methods Corporation Active integrated circuit transponder and sensor apparatus for sensing and transmitting vehicle tire parameter data
DE4433701A1 (en) * 1994-09-21 1996-03-28 Siemens Ag Device for contactless energy and data transmission by induction, and preferred use thereof for the identification of gas cylinders
US5605182A (en) * 1995-04-20 1997-02-25 Dover Corporation Vehicle identification system for a fuel dispenser
US5704352A (en) * 1995-11-22 1998-01-06 Tremblay; Gerald F. Implantable passive bio-sensor
FR2744396A1 (en) * 1996-02-01 1997-08-08 Michelin & Cie DEVICE FOR MONITORING INFLATION PRESSURE OF TIRES OF A VEHICLE
US5844130A (en) * 1996-04-03 1998-12-01 Ssi Technologies Apparatus for maintaining a constant radial distance between a transmitting circuit and an antenna coil
WO1998016400A1 (en) * 1996-10-14 1998-04-23 The Yokohama Rubber Co., Ltd. Tire with transponder and transponder for tire
US5781112A (en) * 1997-02-03 1998-07-14 Shymko; Wayne W. Electronic tagging device for identifying transported products
US5988510A (en) * 1997-02-13 1999-11-23 Micron Communications, Inc. Tamper resistant smart card and method of protecting data in a smart card
US6329213B1 (en) 1997-05-01 2001-12-11 Micron Technology, Inc. Methods for forming integrated circuits within substrates
JPH10307865A (en) * 1997-05-02 1998-11-17 Bridgestone Corp Method for managing rubber product by identification code
US6339385B1 (en) 1997-08-20 2002-01-15 Micron Technology, Inc. Electronic communication devices, methods of forming electrical communication devices, and communication methods
CA2310735A1 (en) 1997-12-09 1999-06-17 William Frank Dunn Pressure sensor for a tire and method therefor
DE69719822T2 (en) * 1997-12-09 2003-11-20 Goodyear Tire & Rubber RING-SHAPED DEVICE FOR TRANSMITTING TIRE DATA, DEVICE FOR MEASURING TIRE PARAMETERS WITH A TRANSPONDER, AN ANTENNA AND A TIRE WITH A TRANSPONDER AND AN ANTENNA
WO1999029522A1 (en) 1997-12-09 1999-06-17 The Goodyear Tire & Rubber Company Pneumatic tyre with an antenna for radio transponder
WO1999029525A1 (en) 1997-12-09 1999-06-17 The Goodyear Tire & Rubber Company Antenna for radio transponder
US5977870A (en) * 1997-12-22 1999-11-02 Bridgestone/Firestone, Inc. Method and apparatus for transmitting stored data and engineering conditions of a tire to a remote location
US5960844A (en) * 1997-12-22 1999-10-05 Bridgestone/Firestone, Inc. Method and apparatus for monitoring conditions of a vehicle tire
US6826951B1 (en) * 1998-01-15 2004-12-07 International Marketing, Inc. Tire management system and method for surveying and servicing a vehicle tire
US6217683B1 (en) 1998-02-12 2001-04-17 Michelin Recherche Et Technique S.A. Monitored vehicle tire and monitor retainer assembly
US6470933B1 (en) * 1998-03-09 2002-10-29 Pirelli Pneumatici S.P.A. Tire containing at least part of an electrical current generator intended for the supply of sensors and/or other electrical devices present within the tire, and method for manufacture the said tire
CA2319414A1 (en) 1998-04-14 1999-10-21 The Goodyear Tire & Rubber Company Rf transponder and method of measuring parameters associated with a monitored object
US6543279B1 (en) 1998-04-14 2003-04-08 The Goodyear Tire & Rubber Company Pneumatic tire having transponder and method of measuring pressure within a pneumatic tire
EP1071570B1 (en) 1998-04-14 2003-07-16 The Goodyear Tire & Rubber Company Pneumatic tire having a transponder and method of measuring pressure within a pneumatic tire
US6534711B1 (en) 1998-04-14 2003-03-18 The Goodyear Tire & Rubber Company Encapsulation package and method of packaging an electronic circuit module
US6412977B1 (en) 1998-04-14 2002-07-02 The Goodyear Tire & Rubber Company Method for measuring temperature with an integrated circuit device
US6546982B1 (en) 1998-08-03 2003-04-15 The Goodyear Tire & Rubber Company Mounting transponders in pneumatic tires
AU6141099A (en) * 1998-09-11 2000-04-03 Motorola, Inc. Electrostatic rfid/eas system
AU5809099A (en) * 1998-09-11 2000-04-03 Motorola, Inc. Radio frequency identification tag apparatus and related method
JP4179428B2 (en) * 1998-10-01 2008-11-12 横浜ゴム株式会社 Heavy duty pneumatic radial tire
US6244104B1 (en) 1998-12-04 2001-06-12 Bridgestone/Firestone Research, Inc. Method for preparing an innerliner of a pneumatic tire for the quick bonding of an electronic monitoring device
WO2000047430A1 (en) 1999-02-11 2000-08-17 Michelin Recherche Et Technique S.A. Monitored vehicle tire and monitor retainer assembly
US6312539B1 (en) 1999-03-19 2001-11-06 Bridgestone/Firestone Research, Inc. Method of using tire tag protector
US6919799B2 (en) * 1999-04-29 2005-07-19 Bridgestone/Firestone North American Tire, Llc Monitoring device and tire combination
US6192746B1 (en) 1999-04-29 2001-02-27 Bridgestone/Firestone Research, Inc. Apparatus and method of providing electrical power to an active electronic device embedded within a tire
US6474380B1 (en) 1999-04-29 2002-11-05 Bridgestone/Firestone North American Tire, Llc Pneumatic tire and monitoring device including dipole antenna
US6388567B1 (en) 1999-04-29 2002-05-14 Bridgestone/Firestone North American Tire, Llc Combination monitoring device and patch for a pneumatic tire and method of installing the same
US6208244B1 (en) 1999-04-29 2001-03-27 Bridgestone/Firestone Research, Inc. Combination monitoring device and patch for a pneumatic tire and method of installing the same with a coupled antenna
EP1052595B1 (en) * 1999-05-14 2001-09-19 Sokymat Sa Transponder and injection-moulded object and method for manufacturing the same
US6591671B2 (en) 1999-08-16 2003-07-15 The Goodyear Tire & Rubber Company Monitoring pneumatic tire conditions
WO2001012453A1 (en) 1999-08-16 2001-02-22 The Goodyear Tire & Rubber Company Monitoring a dynamic condition of a rotary element, particularly a pneumatic tire
US6581657B1 (en) 1999-08-16 2003-06-24 The Goodyear Tire & Rubber Company Disposition of transponder coupling elements in tires
JP2003507230A (en) 1999-08-16 2003-02-25 ザ・グッドイヤー・タイヤ・アンド・ラバー・カンパニー Arrangement of transponder coupling elements in tires
JP4072802B2 (en) * 1999-08-27 2008-04-09 横浜ゴム株式会社 Pneumatic tire with embedded transponder and method for manufacturing the same
US6273339B1 (en) 1999-08-30 2001-08-14 Micron Technology, Inc. Tamper resistant smart card and method of protecting data in a smart card
US6809637B1 (en) 1999-09-03 2004-10-26 The Goodyear Tire & Rubber Company Monitoring a condition of a pneumatic tire
WO2001017806A1 (en) 1999-09-03 2001-03-15 The Goodyear Tire & Rubber Company Monitoring a condition of a pneumatic tire
US6498991B1 (en) 1999-10-01 2002-12-24 The Goodyear Tire & Rubber Company Process and apparatus for monitoring a physical condition of a hose
EP1222081B1 (en) * 1999-10-01 2003-12-03 The Goodyear Tire & Rubber Company Tire having a tag for monitoring a condition of the tire
US6624748B1 (en) 1999-10-01 2003-09-23 The Goodyear Tire & Rubber Company Method for monitoring a condition of a tire
US7028732B1 (en) 1999-10-01 2006-04-18 The Goodyear Tire & Rubber Company Apparatus for monitoring a condition of a tire
US6255940B1 (en) 1999-10-01 2001-07-03 The Goodyear Tire & Rubber Company Apparatus for monitoring a condition of a tire
GB2360170A (en) * 1999-10-21 2001-09-12 Jan Hendrik Scholtz A tyre tag reader
US6885291B1 (en) 1999-11-15 2005-04-26 The Goodyear Tire & Rubber Company Mouting transponders and antennas in pneumatic tires
WO2001036221A1 (en) 1999-11-15 2001-05-25 The Goodyear Tire & Rubber Company Mounting transponders and antennas in pneumatic tires
US6899153B1 (en) 1999-11-15 2005-05-31 The Goodyear Tire & Rubber Company Mounting transponders and antennas in pneumatic tires
US6462650B1 (en) 2000-08-11 2002-10-08 Raymond J. Balzer Tire module attachment mount
WO2001038111A1 (en) 1999-11-24 2001-05-31 Michelin Recherche Et Technique S.A. Improved tire module attachment mount
US6304232B1 (en) 2000-02-24 2001-10-16 The Goodyear Tire & Rubber Company Circuit module
EP2272689A3 (en) * 2000-07-26 2011-03-09 Bridgestone Americas Tire Operations, LLC Electronic tire management system
US7161476B2 (en) 2000-07-26 2007-01-09 Bridgestone Firestone North American Tire, Llc Electronic tire management system
US8266465B2 (en) 2000-07-26 2012-09-11 Bridgestone Americas Tire Operation, LLC System for conserving battery life in a battery operated device
US7024248B2 (en) * 2000-10-16 2006-04-04 Remon Medical Technologies Ltd Systems and methods for communicating with implantable devices
US7283874B2 (en) 2000-10-16 2007-10-16 Remon Medical Technologies Ltd. Acoustically powered implantable stimulating device
US6764446B2 (en) 2000-10-16 2004-07-20 Remon Medical Technologies Ltd Implantable pressure sensors and methods for making and using them
MXPA03004611A (en) * 2000-11-30 2004-10-14 Pirelli System and method for monitoring tyres.
JP4152595B2 (en) 2001-01-11 2008-09-17 横浜ゴム株式会社 Transponder and its system
JP4501097B2 (en) * 2001-01-12 2010-07-14 横浜ゴム株式会社 Transponder for mounting tire and method for manufacturing tire mounted with transponder
DE60206667T2 (en) 2001-01-29 2006-07-20 The Goodyear Tire & Rubber Co., Akron Tire condition monitoring process
US6518877B1 (en) 2001-05-31 2003-02-11 The Goodyear Tire & Rubber Company Pneumatic tire monitor
US6630910B2 (en) * 2001-10-29 2003-10-07 Marconi Communications Inc. Wave antenna wireless communication device and method
US7017799B2 (en) 2001-12-04 2006-03-28 The Gates Corporation Spindle sleeve with transponder
DE10209580B4 (en) * 2002-03-05 2014-01-30 Goodyear Dunlop Tires Germany Gmbh Vehicle tires with integrated transponder
US20030211273A1 (en) * 2002-05-10 2003-11-13 Karen Perry Tire identification label
US20040095244A1 (en) * 2002-05-10 2004-05-20 Kevin Conwell Tire identification label and tire label film with integrated barrier
US7009576B2 (en) * 2002-06-11 2006-03-07 Michelin Recherche Et Technique S.A. Radio frequency antenna for a tire and method for same
WO2003105509A1 (en) * 2002-06-11 2003-12-18 Societe De Technologie Michelin A radio frequency antenna embedded in a tire
WO2004000579A1 (en) * 2002-06-21 2003-12-31 Bridgestone Corporation Tired wheel with tire-information sending body, installation instrument and fixing instrument for tire-information sending body, and method of installing tire-information sending body
US6809700B2 (en) * 2002-07-24 2004-10-26 The Goodyear Tire & Rubber Company Tag housing and assembly method for annular apparatus
US7050017B2 (en) * 2002-08-14 2006-05-23 King Patrick F RFID tire belt antenna system and method
TW577834B (en) * 2002-08-30 2004-03-01 Lite On Automotive Corp Code learning method for tire pressure monitor
US7019711B2 (en) * 2002-12-16 2006-03-28 The Goodyear Tire & Rubber Company Coupled transponder and antenna system and method
EP1575789B1 (en) * 2002-12-23 2007-08-01 Bridgestone/Firestone North American Tire, LLC Tire with tire tag
JP2006515819A (en) * 2003-01-22 2006-06-08 コーニンクレッカ フィリップス エレクトロニクス エヌ ヴィ Electronic communication system
US20040182494A1 (en) * 2003-03-19 2004-09-23 Dominak Stephen L. Tag attachment for tires and method of attaching tags to tires
US7138955B2 (en) * 2003-10-23 2006-11-21 Michelin Recherche Et Technique S.A. Robust antenna connection for an electronics component assembly in a tire
US20050101843A1 (en) * 2003-11-06 2005-05-12 Welch Allyn, Inc. Wireless disposable physiological sensor
DE102004008929A1 (en) * 2004-02-24 2005-09-01 Bayerische Motoren Werke Ag Vehicle tires with steel belt wires and a arranged in the tread area dipole antenna
US7338914B2 (en) 2004-03-31 2008-03-04 Intermec Ip Corp. RFID tire label
JP4347121B2 (en) 2004-04-15 2009-10-21 横浜ゴム株式会社 Transponder used for in-wheel motor system and wheel equipped with the transponder
US7674117B2 (en) * 2004-04-19 2010-03-09 Michelin Recherche Et Technique S.A. Strain-resistant electrical connection
US7196617B2 (en) * 2004-04-19 2007-03-27 Michelin Recherche Et Technique S.A. Graduated stiffness for electrical connections in tires
JP4487125B2 (en) 2004-08-23 2010-06-23 横浜ゴム株式会社 Pneumatic tire
US7295103B2 (en) 2004-12-22 2007-11-13 The Goodyear Tire & Rubber Company Integrated sensor system and method for a farm tire
EP1674298A1 (en) * 2004-12-23 2006-06-28 Société de Technologie Michelin System for wireless data communication between a vehicle and its tyres
EP1674301A3 (en) 2004-12-23 2010-04-28 Société de Technologie Michelin System for wireless data communication between a vehicle and its tires
CA2605850C (en) * 2005-04-26 2012-03-13 Cooper Tire & Rubber Company Rfid transmitter for tires and method of manufacture
DE102006031044B4 (en) * 2005-07-06 2017-02-02 Denso Corporation Wheel identification device and tire inflation pressure detection device with a wheel identification function
US8078278B2 (en) * 2006-01-10 2011-12-13 Remon Medical Technologies Ltd. Body attachable unit in wireless communication with implantable devices
US7650185B2 (en) * 2006-04-25 2010-01-19 Cardiac Pacemakers, Inc. System and method for walking an implantable medical device from a sleep state
ATE549708T1 (en) * 2006-04-28 2012-03-15 Cooper Tire & Rubber Co LARGE RANGE RFID TRANSPONDER
CA2649880C (en) * 2006-06-22 2015-10-27 Cooper Tire & Rubber Co. Magnetostrictive/piezo remote power generation, battery and method
US20080171941A1 (en) * 2007-01-12 2008-07-17 Huelskamp Paul J Low power methods for pressure waveform signal sampling using implantable medical devices
US8340776B2 (en) * 2007-03-26 2012-12-25 Cardiac Pacemakers, Inc. Biased acoustic switch for implantable medical device
US7604398B1 (en) 2007-03-26 2009-10-20 Akers Jeffrey W Remote indicating cumulative thermal exposure monitor and system for reading same
FR2914585B1 (en) * 2007-04-03 2009-07-03 Michelin Soc Tech PNEUMATIC COMPRISING AN ELECTRONIC MEMBER AND METHOD OF MANUFACTURING SUCH PNEUMATIC
FR2912235A1 (en) * 2007-05-15 2008-08-08 Siemens Vdo Automotive Sas Stored data transmitting method for car, involves realizing communication connection, and configuring electronic case to transmit data received from radio frequency identification tag to CPU of monitoring system
DE102008007239A1 (en) * 2007-09-19 2009-04-02 Robert Bosch Gmbh Module and method for making a module
FR2922486B1 (en) 2007-10-23 2009-12-11 Michelin Soc Tech ASSEMBLY OF A PNEUMATIC AND A FLEXIBLE ORGAN
FR2922487B1 (en) 2007-10-23 2009-12-11 Michelin Soc Tech SUPPORTING MEMBER FOR A DEVICE AND PNEUMATIC COMPRISING SUCH AN ORGAN
DE102008006387A1 (en) 2008-01-29 2009-07-30 Albrecht Otto Method for measuring concentration of plant nutrients e.g. calcium, in agricultural land and transmitting measured values to receiver device, involves effectuating power supply of e.g. measuring bridge during activation phase
US8841785B2 (en) * 2008-04-15 2014-09-23 Infineon Technologies Ag Energy harvester
US20090312650A1 (en) * 2008-06-12 2009-12-17 Cardiac Pacemakers, Inc. Implantable pressure sensor with automatic measurement and storage capabilities
WO2009158062A1 (en) * 2008-06-27 2009-12-30 Cardiac Pacemakers, Inc. Systems and methods of monitoring the acoustic coupling of medical devices
US20100023091A1 (en) * 2008-07-24 2010-01-28 Stahmann Jeffrey E Acoustic communication of implantable device status
EP2361115A1 (en) * 2008-10-27 2011-08-31 Cardiac Pacemakers, Inc. Methods and systems for recharging implantable devices
US9199516B2 (en) * 2009-05-11 2015-12-01 Koninklijke Philips N.V. Inductive power transfer for wireless sensor systems inside a tire
FR2956616A1 (en) * 2010-02-23 2011-08-26 Michelin Soc Tech PNEUMATIC COMPRISING AN ELECTRONIC MEMBER
CN103038072B (en) * 2010-04-09 2016-08-10 倍耐力轮胎股份公司 tire sensor device
US8725330B2 (en) 2010-06-02 2014-05-13 Bryan Marc Failing Increasing vehicle security
WO2012166090A1 (en) * 2011-05-27 2012-12-06 Michelin Recherche Et Technique, S.A. Rfid passive reflector for hidden tags
JP2013126838A (en) * 2011-12-19 2013-06-27 Toppan Forms Co Ltd Tire
FR2992453B1 (en) * 2012-06-22 2014-07-04 Ldl Technology DEVICE FOR COMMUNICATING A WHEEL MONITORING SYSTEM OF A VEHICLE AND METHOD OF COMMUNICATION
KR20160082599A (en) * 2013-12-13 2016-07-08 브리지스톤 어메리카스 타이어 오퍼레이션스, 엘엘씨 Tire having an electronic device in a lower sidewall
WO2016060851A1 (en) * 2014-10-16 2016-04-21 Bridgestone Americas Tire Operations, Llc Tire having embedded electronic device affixed with adhesive
BR112017013686A2 (en) 2014-12-23 2018-01-09 Bridgestone Americas Tire Operations Llc tire having a radio frequency identification device for structural health monitoring
WO2017130956A1 (en) * 2016-01-25 2017-08-03 トッパン・フォームズ株式会社 Tire with embedded rfid tag
JP6612141B2 (en) * 2016-01-25 2019-11-27 株式会社ブリヂストン RFID tag built-in tire
JP6650767B2 (en) * 2016-01-25 2020-02-19 株式会社ブリヂストン RFID tag built-in tire
US10792960B2 (en) 2017-12-20 2020-10-06 The Goodyear Tire & Rubber Company Article with electronic component inclusion
DE102018200556A1 (en) * 2018-01-15 2019-07-18 Continental Reifen Deutschland Gmbh Method for producing a transponder for a vehicle tire
JP6594508B1 (en) * 2018-10-03 2019-10-23 Toyo Tire株式会社 tire
JP7149152B2 (en) * 2018-10-03 2022-10-06 Toyo Tire株式会社 tire
JP6594507B1 (en) * 2018-10-03 2019-10-23 Toyo Tire株式会社 Tire and tire manufacturing method
JP6594504B1 (en) * 2018-10-03 2019-10-23 Toyo Tire株式会社 tire
JP6594505B1 (en) * 2018-10-03 2019-10-23 Toyo Tire株式会社 Tire and tire manufacturing method
JP7272773B2 (en) * 2018-10-03 2023-05-12 Toyo Tire株式会社 tire
JP7186067B2 (en) * 2018-11-14 2022-12-08 Toyo Tire株式会社 Tire and tire manufacturing method
JP6686109B1 (en) * 2018-11-26 2020-04-22 Toyo Tire株式会社 tire
IT201900001575A1 (en) * 2019-02-04 2020-08-04 Bridgestone Europe Nv Sa TIRE FITTED WITH A TRANSPONDER
EP3925802A4 (en) * 2019-02-11 2022-09-14 CEITEC - Centro Nacional de Tecnologia Eletrônica Avançada S.A. Tyre containing an rfid tag
DE102019205298A1 (en) * 2019-04-12 2020-10-15 Continental Reifen Deutschland Gmbh tires
DE102019207022A1 (en) * 2019-05-15 2020-11-19 Continental Reifen Deutschland Gmbh tires
JP7263181B2 (en) * 2019-08-23 2023-04-24 Toyo Tire株式会社 Tire and tire manufacturing method
FR3101019B1 (en) * 2019-09-25 2022-12-16 Michelin & Cie pneumatic EQUIPPED with a radiofrequency transponder
DE102019215986A1 (en) * 2019-10-17 2021-04-22 Continental Reifen Deutschland Gmbh tires
IT202000012595A1 (en) 2020-05-27 2021-11-27 Bridgestone Europe Nv Sa IMPROVED RFID SENSOR DEVICE WITH PATCH TYPE ANTENNA FOR TIRES
JP7410404B2 (en) * 2020-06-29 2024-01-10 横浜ゴム株式会社 pneumatic tires
JP2023085087A (en) * 2021-12-08 2023-06-20 株式会社ブリヂストン tire
JP2023085091A (en) * 2021-12-08 2023-06-20 株式会社ブリヂストン tire
JP2024015903A (en) * 2022-07-25 2024-02-06 株式会社ブリヂストン Tire manufacturing method and tires

Family Cites Families (11)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US2920674A (en) * 1958-12-09 1960-01-12 Us Rubber Co Method of and apparatus for recording information on a pneumatic tire and product obtained thereby
US3160865A (en) * 1960-04-01 1964-12-08 Us Rubber Co Automatic signal-translating apparatus
US3179929A (en) * 1960-12-12 1965-04-20 Us Rubber Co Decoding magnetic information from the bead wires of a tire
US3225810A (en) * 1963-06-26 1965-12-28 Goodyear Tire & Rubber Digital coded elastomeric article
US3460119A (en) * 1965-08-20 1969-08-05 Uniroyal Inc Apparatus for magnetically coding and decoding pneumatic tire members
JPS5769369A (en) * 1980-10-13 1982-04-28 Bridgestone Corp Tire containing magnetic signal recorded and discriminating said tire
JPS6050583B2 (en) * 1982-08-05 1985-11-09 住友ゴム工業株式会社 Data identification method for elastomer articles
DE3242764A1 (en) * 1982-11-19 1984-05-24 Robert Bosch Gmbh, 7000 Stuttgart CODING SYSTEM FOR DETECTING INFORMATION ON MOBILE WORKPIECE CARRIERS AND THE LIKE
US4827395A (en) * 1983-04-21 1989-05-02 Intelli-Tech Corporation Manufacturing monitoring and control systems
JPS60171475A (en) * 1984-02-15 1985-09-04 アイデンティフィケ−ション・デバイセス・インコ−ポレ−テッド Discriminating system
US4805009A (en) * 1985-03-11 1989-02-14 Olin Corporation Hermetically sealed semiconductor package

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AU629318B2 (en) 1992-10-01
US4911217A (en) 1990-03-27
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BR7001560U (en) 1991-11-05
CA2006989A1 (en) 1990-09-24
EP0389406A3 (en) 1990-11-28
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AU5218790A (en) 1990-09-27
JPH02123404U (en) 1990-10-11

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