Contactless RFID tags for tires

The RFID tag design with a plastic package and reinforcing materials addresses positioning and adhesion issues, enhancing durability and signal strength by precise placement within the tire structure.

JP7799089B2Active Publication Date: 2026-01-14KORDSA TEKNIK TEKSTIL AS +1
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Patent Information

Application Number
JP2024577167
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-07-07
Filing Date
2023-06-12
Publication Date
2026-01-14
Estimated Expiration
2043-06-12

AI Technical Summary

Technical Problem

Existing RFID tags in tires face challenges in positioning antennas for efficient data transmission, avoiding interference from metal reinforcing cords, withstanding cyclic stresses, and securing adhesion to rubber materials, leading to reduced durability and signal integrity.

Method used

An RFID tag design with a plastic package housing the chip and antenna, featuring a bobbin with coil windings and reinforcing materials, allowing for precise placement within the tire structure without additional coatings, and securing the antenna with adhesive or welding, ensuring durability and signal strength.

Benefits of technology

The solution enhances RFID tag durability and signal performance by allowing precise positioning and adhesion within the tire, reducing handling damage and maintaining signal integrity throughout the tire's life.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to an electrical device having an antenna design for embedding an electronic device during tire manufacturing to improve durability, fatigue performance, and signal level. The electrical device of the present invention includes an antenna having an appropriate adhesive coating. The electrical device of the present invention provides an immediately usable tag that can be embedded in a tire without requiring additional coating or other processing, thereby reducing the operation process in the manufacture of a tire in which an RFID tag is embedded. Further, the present invention eliminates the need for a rubber patching / layering process during the preparation of the electrical device.
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Description

[Technical Field]

[0001] The present invention relates to an electrical device mounted in a tire, and more particularly to an RFID tag mounted in a tire and a tire including such an RFID tag. [Background technology]

[0002] Incorporating electrical devices into tire structures is known to have many advantages, including tracking tires during manufacturing, transportation, and storage operations, and measuring physical parameters such as temperature and pressure. While various types of electrical devices are used in the art for these purposes, radio frequency communication between the tire and an external monitoring or interrogation device is the most common. Such communication systems often include a radio frequency identification (RFID) tag and a reader that communicates with the RFID tag. The RFID tag includes an antenna and an RFID chip. Thus, information from the reader is received via the antenna and stored in the RFID chip, and information stored in the RFID chip is transmitted to the reader via the antenna. The RFID device may be a read-only, write-only, or read / write device.

[0003] RFID tags and other electrical devices may be attached to tires by means of a tire-mountable device. One of the challenges associated with RFID tags is how to position and configure the antenna so that data within the device is accurately transmitted to an information-gathering device located outside the tire. The challenges associated with using RFID tags within tires are (i) positioning the antenna as close as possible to the outside of the tire for improved transmission efficiency, (ii) positioning the antenna away from metal reinforcing cords that would impede signal propagation, (iii) providing a device that can withstand the cyclic stresses of an operating tire, (iv) attaching the device to the tire without excessive handling and damage, and (v) securing the device in place by ensuring adhesion between the antenna (usually a metal element) and the rubber material.

[0004] Below is an example of a state-of-the-art RFID tire tag.

[0005] U.S. Patent No. 7,102,499 discloses an electronic communication device for a tire having a wireless device and an antenna intended to be mounted on or embedded within the tire. The antenna is spirally or helically shaped to absorb the tensile and bending stresses imposed by the tire. The antenna body may be a wire formed from spring steel, brass, zinc-coated spring steel, or spring brass. The wireless device and antenna are coated with a coating of insulating material to operate mounted on or within the tire structure.

[0006] Nos. 8,462,077 and 8,766,874 disclose an apparatus for providing an RFID device to be incorporated into a tire. A printed circuit board (PCB) is provided with notches on opposite ends of the PCB, with guide portions that function as threads for guiding the ends of a corresponding single-pitch helical antenna into appropriately positioned vias on the PCB. Screwing of the helical antenna is aided by the use of an assembly jig having an antenna guide channel and PCB retention and positioning elements, and the antenna is joined by soldering to solder pads on the PCB.

[0007] US Patent No. 9,490,531 discloses an antenna for electronic devices in a tire, which includes a core incorporated into a tire rubber compound, and further includes an electromagnetic signal conductive layer and a chemical insulating layer, the electromagnetic signal conductive layer being made of copper and covering the core, and the chemical insulating layer covering the conductive layer and intended to chemically isolate the rubber compound from the object covered by the insulating layer.

[0008] US Patent No. 11,152,684 discloses a radio frequency communication module incorporated into the structure of a tire. The module includes a radio frequency transponder, embedded in an elastomer blend, including an electronic chip and a radiating antenna capable of communicating with a radio frequency reader. The radio frequency transponder further includes a primary antenna electrically connected to the electronic chip, the primary antenna being electromagnetically coupled to the radiating antenna, the radiating antenna being comprised of a single wire helical spring, the radiating antenna having a core made of steel coated with a conductive layer.

[0009] RFID tags must have a long lifespan throughout the tire's service life. In the prior art, a major technical problem is the reduced durability of soldered tag designs. To address this issue, U.S. Patent No. 10,515,298 discloses an RFID transponder having a chip and an antenna connected for contactless communication. The transponder also includes a plastic package that houses these transponder components as an integrated component. The plastic package has a coil core formed on its outer surface, and a booster antenna with at least one coil winding is disposed on the coil core. The RFID transponder may be subjected to high mechanical stress, and the connection of the booster antenna improves its performance.

[0010] The present invention improves upon this technology by providing an antenna design for embedding electronics during tire manufacturing to improve durability, fatigue performance, and signal levels. The electrical device of the present invention includes an antenna with a suitable adhesive coating. The electrical device of the present invention reduces the operational process in manufacturing tires with embedded RFID tags by providing a ready-to-use tag that can be embedded within the tire without the need for additional coatings or other processing. Furthermore, the present invention eliminates the rubber patching / lamination process during preparation for the electrical device. [Prior art documents] [Patent documents]

[0011] [Patent Document 1] U.S. Patent No. 7,102,499 [Patent Document 2] U.S. Patent No. 8,462,077 [Patent Document 3] U.S. Patent No. 8,766,874 [Patent Document 4] U.S. Patent No. 9,490,531 [Patent Document 5] U.S. Patent No. 1,152,684 [Patent Document 6] U.S. Patent No. 10,515,298 [Brief explanation of the drawings]

[0012] The accompanying drawings are provided solely for purposes of illustrating the electrical device, the advantages of which over the prior art have been outlined above and will be briefly described below.

[0013] The drawings do not limit the scope of protection specified in the claims, and the drawings should not be used alone to interpret the scope specified in the claims without relying on the technical disclosure in the description of the present invention.

[0014] [Figure 1] 1A and 1B show a schematic closed state view and an exploded view of an electrical device equipped with an antenna according to the present invention. [Figure 2] 1 shows a cross section of a tire illustrating an alternative arrangement of an electrical device with an antenna according to the present invention; DETAILED DESCRIPTION OF THE INVENTION

[0015] 1A and 1B show an electrical device (1) according to the present invention. The electrical device (1) may be an identification or tracking device that can be used in manufacturing, distribution, and sales activities, or a monitoring device for measuring the temperature, pressure, or other physical parameters of a tire during operation. In a preferred embodiment of the present invention, the electrical device (1) is an RFID transponder that includes an RFID chip and an antenna that is operatively in communication for wireless communication with an external device, such as an RFID reader.

[0016] The electrical device (1) includes a plastic package (8) containing a chip (not shown) and an antenna (not shown) connected to the chip for contactless communication. The plastic package (8) houses these transponder components as an integrated component and can accommodate larger microchips and longer coils to extend the functional range. The material of the plastic package (8) may be selected based on the application. The plastic material should also include composite materials made of curable resins.

[0017] The plastic package (8) has a bobbin (2) formed on its outer surface. An antenna coupling section (3) having at least one coil winding (4) is disposed on the bobbin (2), the coil winding (4) completely surrounding the chip's integrated antenna to form a backscatter propagation coupling. The two ends (5, 6) of the coil winding (4) form the antenna wires of a dipole antenna for the UHF range.

[0018] The plastic package (8) and the at least one coil winding (4) are preferably incorporated into a main housing (7), which in a preferred embodiment of the invention is in the form of two collapsible cylindrical halves.

[0019] An antenna (not shown) connected to the chip and embedded in the plastic package (8) and at least one coil winding (4) of the antenna coupling portion (3) preferably form conductor loops aligned with each other. In a preferred embodiment of the invention, the bobbin (2) is arranged concentrically with the antenna connected to the chip and preferably configured as a wound coil. The chip is also preferably located at the center of this wound coil.

[0020] The plastic package (1) and at least one coil winding (4) are secured together within the main housing (7) using, for example, adhesive, welding, or other methods known in the art.

[0021] Preferably, the chip antenna is a flat coil with a winding plane that can be used to align the antenna coupling portion (3) to achieve optimal coupling between the chip antenna and the antenna coupling portion (3). The antenna coupling portion (3) can be a coiled spring antenna, a helical antenna, a plate antenna, or various rod-shaped antennas. In a preferred embodiment of the present invention, the antenna coupling portion (3) is a helical antenna. In a more preferred embodiment of the present invention, the helix angle between the antenna coupling portion (3) and the axis is between 5° and 60°.

[0022] The antenna coupling portion (3) includes a core material of a wire, such as a coated or uncoated metal alloy. The antenna coupling portion (3) further includes at least one reinforcing material twisted with or wrapped around the core material, so that the antenna coupling portion (3) can withstand the bending and flexural deformations typically experienced by tires. In an alternative embodiment, the antenna coupling portion (3) includes a core material and two reinforcing materials.

[0023] The at least one reinforcing material is selected from the group comprising synthetic or bio-based yarns or textile materials, and metals. The reinforcing material may be dipped cord, greige cord, or high-strength polymer reinforcing yarn. The high-strength polymer reinforcing yarn may be made from any polymer material having a melting point or thermal decomposition point above 200°C. In a preferred embodiment of the present invention, the reinforcing material is selected from the group comprising cotton, polyamide 6, polyamide 4,6, polyamide 5,6, polyamide 6,6, polyester (HMLS), UHMWPE (ultra-high molecular weight polyethylene), and combinations thereof. In a preferred embodiment of the present invention, the high-strength reinforcing yarn has a strength of at least 15 g / dtex, preferably above 20 g / dtex.

[0024] The reinforcing material includes a tackifying component. Preferably, the reinforcing material is treated with a tackifying solution to improve adhesion between the antenna bond (3) and the rubber components of the tire. In a preferred embodiment of the present invention, the reinforcing material is treated by immersion in a resorcinol formaldehyde latex (RFL) solution, which is commonly used in the art. In an alternative embodiment, a resorcinol formaldehyde-free (RF-free) composition, such as a composition including an acrylic resin or natural latex, may be used. In an alternative embodiment, a rosin ester and / or a rosin ester tackifier may be added to the immersion solution. However, one skilled in the art will understand that any method known in the art for improving the adhesion of components to rubber can be used in this application so that the antenna bond (3) remains intact and adhered to or within the tire throughout its life.

[0025] The electrical device (1) can be attached directly to the uncured rubber of a tire prior to the curing process, so that it is embedded between the layers that make up the final tire product. Tire types that can be equipped with the electrical device (1) include, but are not limited to, bias tires, belted bias tires, radial tires, solid tires, semi-pneumatic tires, pneumatic tires, and airless tires. Generally, all tires include an outer tread, a bead that contacts the rim when the tire is mounted, and a sidewall that extends between the tread and the bead. This method is advantageous in that the electrical device (1) can be precisely positioned on the tire in the desired location and alignment without excessive handling and potentially damaging the electrical device (1).

[0026] It is most advantageous to locate the electrical device (1) in a location on the tire where tensile and compressive strains are minimized during operation. Figure 2 shows an alternative location for the electrical device on a tire, with the tire circumferential direction indicated at 15. Preferably, the electrical device (1) is mounted between the carcass layer and the outer rubber layer in the upper (9), middle (10), or lower (11) circumferential sidewall region of the tire. In these locations, the thin gauge and distance from the tire's metal components allow for good tag readability. In another embodiment of the invention, the electrical device (1) is mounted in the bead region of the tire, including the apex (12, 13) rubber and the bead ring (14). The electrical device (1) may also be mounted in or within the apex rubber if the apex rubber is comprised of two or more sections. These locations are advantageous because they reduce lateral deformation during operation. In another embodiment of the invention, the electrical device (1) is mounted between the apex rubber and the bead ring apex, with the electrical device (1) first mounted on the top side of the rubberized bead ring, and the apex rubber attached to the bead ring and tag (1). This position is advantageous as it reduces deformation in all directions under operating conditions.

[0027] After the electrical device (1) is attached to the uncured rubber, other elements of the tire, such as tire cord, are added to the uncured rubber, and the tire is cured to obtain a finished tire product having an electrical device (1), such as an RFID transponder. The tire can then be identified using an RFID reader, which allows the tire to be tracked in a manufacturing or production system, the tire's location to be monitored, and inventory operations to be performed. For example, a single tire may include one or more electrical devices (1) described herein if it is desired to monitor physical parameters at different locations within the tire, or if it is desired to monitor different parameters. The placement of the devices will be determined in part by their function.

[0028] Those skilled in the art will appreciate that the electrical device (1) of the present invention can be used with other rubber or rubber-based articles in addition to tires, including, but not limited to, suspension components, cushions, shoe soles, hoses, hockey pucks, conveyor belts, musical instrument mouthpieces, and bowling balls.

[0029] Briefly, the present invention provides an electronic device (1) including a chip, an antenna, and a plastic package (8) incorporating the chip and the antenna, the plastic package having a bobbin (2) formed on its outer surface, an antenna coupling portion (3) having at least one coil winding disposed on the bobbin, and the antenna coupling portion (3) including a core material and at least one reinforcing material twisted with or wound around the core material.

[0030] In one variant of the invention, said at least one reinforcing material is selected from the group comprising synthetic threads, bio-based threads, synthetic textile materials, bio-based textile materials and metals.

[0031] In a further variant of the invention, at least one of the reinforcing materials is a dipped cord, a greige cord or a high-strength polymer reinforcing thread.

[0032] In a further variation of the invention, the high strength polymeric reinforcing yarns are made from a polymeric material having a melting point or thermal decomposition point above 200°C.

[0033] In a further variant of the invention, the reinforcing material is selected from the group comprising cotton, nylon 6, nylon 4,6, nylon 5,6, nylon 6,6, polyester (ultra-high molecular weight polyester, high molecular weight polyester), and combinations thereof.

[0034] In a further variant of the invention, the high-strength reinforcing yarn has a tenacity of more than 15 g / dtex.

[0035] In a further variation of the invention, the reinforcing material comprises an adhesive material.

[0036] In a further variant of the invention, the reinforcing material is treated with a tackifying solution.

[0037] In a further variation of the present invention, the tackifying solution comprises at least one material selected from the group consisting of a resorcinol formaldehyde latex solution, an acrylic resin solution, a rosin ester solution, a natural latex solution, and combinations thereof.

[0038] The present invention further proposes a tire comprising an electronic device (1) according to any one of claims 1 to 9.

[0039] In a variant of the invention, the electronic device (1) is mounted in the sidewall of the tire.

[0040] In a further variant of the invention, said electronic device (1) is mounted in the bead area of ​​the tire.

Claims

1. An electronic device (1) comprising a chip, an antenna, and a plastic package (8) incorporating the chip and the antenna, The plastic package has a bobbin (2) formed on its outer surface, and an antenna coupling portion (3) having at least one coil winding is disposed on the bobbin; The antenna coupling portion (3) comprises a core material and at least one reinforcing material twisted with or wrapped around the core material.

2. 2. The electronic device (1) of claim 1, wherein the at least one reinforcing material is selected from the group comprising synthetic yarns, bio-based yarns, synthetic fiber materials, bio-based fiber materials, and metals.

3. 3. The electronic device (1) according to claim 2, wherein the at least one reinforcing material is a dipped cord, a greige cord, or a high-strength polymer reinforcing thread.

4. 4. The electronic device (1) of claim 3, wherein the high-strength polymer reinforcing yarns are made from a polymer material having a melting point or thermal decomposition point above 200°C.

5. 4. The electronic device (1) of claim 3, wherein the reinforcing material is selected from the group consisting of cotton, nylon 6, nylon 4,6, nylon 5,6, nylon 6,6, polyester (ultra-high molecular weight polyester, high molecular weight polyester), and combinations thereof.

6. 4. The electronic device (1) according to claim 3, wherein the high strength reinforcing yarn has a strength greater than 15 g / dtex.

7. The electronic device (1) of claim 1, wherein the reinforcing material comprises an adhesive material.

8. 8. The electronic device (1) according to claim 7, wherein the reinforcing material is treated with a tackifying solution.

9. 9. The electronic device (1) of claim 8, wherein the tackifying solution comprises at least one material selected from the group consisting of a resorcinol formaldehyde latex solution, an acrylic resin solution, a rosin ester solution, a natural latex solution, and combinations thereof.

10. A tire comprising an electronic device (1) according to any one of claims 1 to 9.

11. Tyre according to claim 10, wherein the electronic device (1) is mounted in the sidewall of the tyre.

12. Tyre according to claim 10, wherein the electronics (1) are mounted in the bead area of ​​the tyre.

Citation Information

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