TIRE PROVIDED WITH A RADIO FREQUENCY COMMUNICATION MODULE
20210001671 ยท 2021-01-07
Inventors
Cpc classification
B60C23/0479
PERFORMING OPERATIONS; TRANSPORTING
B60C23/0452
PERFORMING OPERATIONS; TRANSPORTING
B60C2015/0614
PERFORMING OPERATIONS; TRANSPORTING
B60C2019/004
PERFORMING OPERATIONS; TRANSPORTING
B60C15/0607
PERFORMING OPERATIONS; TRANSPORTING
B60C19/00
PERFORMING OPERATIONS; TRANSPORTING
B60C2015/0621
PERFORMING OPERATIONS; TRANSPORTING
B60C2015/061
PERFORMING OPERATIONS; TRANSPORTING
B60C15/06
PERFORMING OPERATIONS; TRANSPORTING
B60C15/0072
PERFORMING OPERATIONS; TRANSPORTING
B60C2015/009
PERFORMING OPERATIONS; TRANSPORTING
B60C15/0027
PERFORMING OPERATIONS; TRANSPORTING
B60C15/0603
PERFORMING OPERATIONS; TRANSPORTING
International classification
B60C19/00
PERFORMING OPERATIONS; TRANSPORTING
B60C15/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A tire is equipped with a radiofrequency communication module with a carcass reinforcement comprising two carcass plies such that the communication module is positioned in the bead axially on the outside of and against the second carcass ply.
Claims
1.-14. (canceled)
15. A tire comprising a crown, two sidewalls and two beads with an axis of revolution and a carcass reinforcement with two carcass plies, each anchored in each bead, each bead comprising: a bead wire; a part of a first carcass ply extended by a turn-up around the bead wire of the first carcass ply such that the end of the turn-up is situated axially and radially on an outside relative to the bead wire; a filler arranged radially on the outside relative to the bead wire and axially between the first carcass ply and the turn-up; a part of a second carcass ply arranged axially on the outside relative to the first carcass ply, to the filler and to the turn-up; a protective rubber and a sidewall rubber axially furthest toward the outside; and a communication module comprising a radiofrequency transponder with an electronic chip and a helical radiating antenna, wherein an additional filler is positioned axially between the second carcass ply and the cushion gum and the sidewall rubber, and wherein the communication module is positioned at an interface between the second carcass ply and the additional filler.
16. The tire according to claim 15, wherein, with the turn-up having an end situated radially below a radially outer end of the filler, the communication module is positioned radially substantially at a level of the end of the filler.
17. The tire according to claim 16, wherein the radiofrequency transponder of the communication module is positioned radially at a distance less than 30 mm from the radially outer end of the filler.
18. The tire according to claim 17, wherein the radiofrequency transponder of the communication module is positioned at a distance less than 10 mm from the radially outer end of the filler.
19. The tire according to claim 15, wherein the communication module consists of the radiofrequency transponder encapsulated in an electrically insulating encapsulating rubber mass.
20. The tire according to claim 19, wherein the radiofrequency transponder is sandwiched between two sheets of rubber.
21. The tire according to claim 19, wherein a tensile elastic modulus of the encapsulating rubber mass is lower than or equal to a tensile elastic modulus of adjacent rubber compounds.
22. The tire according to claim 19, wherein a relative dielectric constant of the encapsulating rubber mass is lower than a relative dielectric constant of adjacent rubber compounds.
23. The tire according to claim 15, wherein, with the helical radiating antenna of the radiofrequency transponder defining a first longitudinal axis, the first longitudinal axis is oriented circumferentially.
24. The tire according to claim 15, wherein, with the radiating antenna comprising two helical antenna segments, the electronic chip is galvanically connected to the two helical antenna segments.
25. The tire according to claim 15, wherein the radiofrequency transponder further comprises a primary antenna electrically connected to the electronic chip, wherein the primary antenna is inductively coupled to the helical radiating antenna, and wherein the helical radiating antenna is a dipole antenna consisting of a single-strand helical spring defining a first longitudinal axis.
26. The tire according to claim 25, wherein the primary antenna is a coil having at least one turn defining a second longitudinal axis that is circumscribed by a cylinder an axis of revolution of which is parallel to the second longitudinal axis and a diameter of which is between one third and three times the average diameter of the helical spring of the helical radiating antenna.
27. The tire according to claim 26, wherein, with the helical radiating antenna having a central region between two lateral regions and the primary antenna having a median plane perpendicular to the second longitudinal axis, the first and second longitudinal axes are parallel to one another and the median plane of the primary antenna is arranged in a central region of the helical radiating antenna.
28. The tire according to claim 25, wherein the primary antenna is placed inside the single-strand helical spring of the helical radiating antenna.
Description
DESCRIPTION OF THE FIGURES
[0032] The various subjects of the invention will be better understood by means of the following detailed description and the attached drawings, in which the same reference numbers are used throughout to reference parts which are identical, and in which:
[0033]
[0034]
[0035]
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[0037]
[0038]
DETAILED DESCRIPTION OF THE INVENTION
[0039] In what follows, the terms rubber compound, rubber and compound are used interchangeably to identify rubber constituents of the tyre.
[0040] The axial direction X, circumferential direction C and radial direction Z of the bead 34 of a tyre according to the invention are indicated in
[0041] As regards the axial direction, what is meant by axially outer is an axial direction directed towards the exterior of the tyre and what is meant by axially inner is an axial direction directed towards the internal cavity of the tyre.
[0042] A tyre conventionally comprises a crown, two sidewalls and two beads. Only the radially inner part of the sidewall 32 and the bead 34 are depicted in
[0043] The bead also comprises a second carcass ply 38 extending from the sidewall 32 as far as the bead wire 35. This second carcass ply 38 is positioned axially on the outside relative to the first carcass ply 37, to the filler 46 and to the turn-up 372. The two carcass plies 37 and 38 are, as is known per se, made up of plies reinforced by what are known as radial cords, for example here of textile, that is to say that these cords are disposed virtually parallel to one another and extend from one bead to the other so as to form with the median circumferential plane EP of the tyre an angle of between 80 and 90. An airtight inner liner 40 extends from one bead to the other radially on the inside with respect to the first carcass ply 37. The bead 34 comprises a protective rubber (or protector or cushion gum) 42 able to make contact with the surface of a rim. This cushion gum extends radially on the outside as far as an interface with a sidewall rubber 33. The cushion gum 42 and the sidewall rubber 33 constitute the exterior layer of the tyre. The bead 34 also comprises an additional filler 44 arranged axially between the second carcass ply 38 on the one hand, and the cushion gum 42 and sidewall rubber 33 on the other.
[0044] The bead 34 also comprises a radiofrequency communication module 2 positioned axially at the interface between the second carcass ply 38 and the additional filler 44 and radially between the end 461 of the filler 46 and the end 372 of the turn-up 371 of the first carcass ply.
[0045] As indicated in
[0046]
[0047] The encapsulating elastomer compound contains 100 phr (parts by weight per 100 parts of elastomer) of a polymer such as EPDM (ethylene propylene diene monomer rubber), butyl rubber, neoprene or a diene elastomer such as SBR (styrene-butadiene rubber), polybutadiene, natural rubber or polyisoprene.
[0048] The compound may contain fillers such as silica, carbon black, chalk and kaolin fillers: [0049] with a silica filler in a maximum amount of 50 phr; [0050] with a carbon black filler of ASTM grade higher than 700, in an amount lower than 50 phr; [0051] with a carbon black filler of grade lower than or equal to 500, in a maximum amount of 20 phr. [0052] it is possible to add or replace these fillers with chalk or kaolin.
[0053] Such amounts and types of fillers make it possible to guarantee a relative permittivity lower than 6.5, in particular at a frequency of 915 MHz.
[0054] The stiffness in the cured state of the encapsulating compound is preferably lower than or close to those of the adjacent compounds.
[0055] In a first embodiment, the radiofrequency transponder of the communication module 20 is a conventional radiofrequency transponder, such as depicted in
[0056] The steel wire of the antennas is coated with a conduction layer made of copper, aluminium, silver, zinc or brass covered if necessary with a chemically isolating layer for example made of brass, zinc, nickel or tin in order to protect the rubber compound from the material of the conduction layer.
[0057] The electromagnetic conduction of such an antenna occurs mainly via a skin effect, i.e. it mainly occurs in the exterior layers of the antenna. This skin thickness is in particular dependent on the function of the radiating frequency and of the material from which the conduction layer is made. By way of example, for a UHF frequency (for example 915 MHz), the skin thickness is of the order of 2.1 m for silver, 2.2 m for copper, and 4.4 m for brass.
[0058] The steel wire may be coated with these layers then formed; alternatively it may also be formed then coated.
[0059] The radiofrequency transponder 1 of the electronic member 2 such as shown in
[0060] The radiofrequency transponder 1 according to the second embodiment of the electronic member 2 comprises an electronic portion 20 and a radiating antenna 10 able to communicate with an external radiofrequency reader. The electronic portion 20 (see
[0061]
[0062]
[0063]
[0064] This radiofrequency transponder 1 has the advantage of being mechanically far stronger than conventional transponders.