Tires equipped with radio frequency transponders
The tire casing design optimizes the performance of passive radio frequency transponders by enhancing electromagnetic coupling and mechanical stability, addressing the challenges of mechanical stress and communication effectiveness in tire environments.
Patent Information
- Application Number
- JP2022517904
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2019-09-25
- Filing Date
- 2020-09-22
- Publication Date
- 2025-10-10
- Estimated Expiration
- 2040-09-22
AI Technical Summary
Passive radio frequency transponders used in tire casings face challenges in optimizing the performance compromise between mechanical strength and wireless communication effectiveness, particularly in environments with high mechanical stress, and often suffer from suboptimal radio frequency communication, especially for long-distance interrogations.
A tire casing design incorporating a toroidal shape with a passive radio frequency transponder featuring a radial dipole antenna and a primary antenna electromagnetically coupled to an electronic chip, optimized by adjusting the helical pitch and winding diameter ratios, and positioned to ensure optimal electromagnetic coupling and mechanical stability within the tire structure.
The design enhances communication performance and mechanical durability by improving electromagnetic coupling and reducing resistance, allowing reliable long-distance communication and robust operation under severe thermomechanical stresses.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to tire casings fitted with electronic radio frequency identification devices or radio frequency transponders, which are subjected to severe thermomechanical stresses, in particular when fitted and used on land vehicles. [Background technology]
[0002] In the field of RFID devices (RFID is an acronym for Radio Frequency IDentification), passive radio frequency transponders are traditionally used to identify, track and manage objects. These devices allow for more reliable and rapid automated management.
[0003] These passive radio frequency identification transponders generally consist of at least one electronic chip and one antenna formed by a magnetic loop or radiating antenna fastened to the object to be identified.
[0004] The communication performance of a radio frequency transponder is expressed in terms of the maximum distance over which the radio frequency transponder can communicate with the radio frequency reader for a given signal communicated to or by the radio frequency reader.
[0005] For example, in the case of highly elastic products such as tires, there is a need to identify the product from production to removal from the market, especially during use. Therefore, to facilitate this task, especially under vehicle conditions of use, high communication performance is required, which is expressed as the ability to interrogate wireless transponders via radio frequency readers even at large distances (several meters) from the product. Finally, it is desirable that the manufacturing costs of such devices be as competitive as possible.
[0006] A passive radio frequency identification transponder that meets the requirements of tires is known in the prior art, particularly from document WO 2016 / 193457 A1. The transponder consists of an electronic chip connected to a printed circuit board, to which a first primary antenna is electrically connected. The primary antenna is electromagnetically coupled to a single-strand helical spring that forms a radial dipole antenna. Communication with an external radio frequency reader is performed, for example, using radio waves, specifically the UHF band (UHF stands for Ultra-High Frequency). The characteristics of the helical spring are therefore tailored to the selected communication frequency. This eliminates the mechanical connection between the printed circuit board and the radiating antenna, improving the mechanical resistance of the radio frequency transponder.
[0007] However, such passive radio frequency transponders exhibit weaknesses in their use when incorporated into tire casings. While such radio frequency transponders are suitable for operating at the communication frequencies of external radio frequency readers, radio frequency communication via the radiating antenna is not optimal, especially for long-distance interrogations. In addition, the mechanical behavior of the radiating antenna must be considered in environments with high mechanical stress. Thus, to optimize the potential performance of such passive radio frequency transponders while maintaining the durability of the tire casing, it is necessary to optimize the performance compromise between the antenna's mechanical strength and the effectiveness of wireless communication, i.e., radioelectric performance and, secondarily, electromagnetic performance. [Prior art documents] [Patent documents]
[0008] [Patent Document 1] International Publication No. 2016 / 193457A1 Summary of the Invention [Problem to be solved by the invention]
[0009] The present invention relates to a tire casing fitted with a passive radio frequency transponder, aimed at improving the performance compromise, particularly the wireless communication performance, of passive radio frequency transponders used in tire designs when used on vehicles. [Means for solving the problem]
[0010] The present invention relates to a tire casing having a toroidal shape about a reference axis and including a passive radio frequency transponder. The tire casing is 1. A tire casing having a toroidal shape about a reference axis and including a passive radio frequency transponder, the tire casing comprising: a crown block including a crown reinforcement having axial ends at each edge and a tread, the crown block being connected at each axial end by a sidewall to a bead having an inner end located axially and radially inwardly of a reference axis; a first thread forming an outward portion and a return portion disposed adjacent to one another, aligned in a circumferential direction and anchored at each bead with a loop each connecting the outward portion and the return portion, the first thread forming at least one circumferential alignment defining a carcass reinforcement and dividing the tire casing into two regions, inner and outer relative to the carcass reinforcement; in each bead, means for locking a first thread, the locking means including a second thread circumferentially oriented and axially tangent to the first thread, forming at least one spiral; a first layer of elastomeric compound forming the outer surface of the tire casing in the region of the beads, the first layer intended to come into contact with the rim; a second layer of elastomeric compound positioned radially outwardly of and in contact with the first layer of elastomeric compound, the second layer forming an outer surface of the sidewall; Equipped with The passive radio frequency transponder includes an electronic portion and a radial dipole antenna, the radial dipole antenna having a helical pitch P, a winding diameter D, a mid-plane, and a wire diameter defining an inner diameter and an outer diameter of the radiating antenna, the length of which is designed to communicate in a frequency band with an external radio frequency reader defining a first longitudinal axis, a central region, and two lateral regions aligned with the first longitudinal axis; the electronic portion includes an electronic chip and a coil-type primary antenna including at least one turn, thus defining a second longitudinal axis and a mid-plane perpendicular to the second longitudinal axis, the primary antenna being galvanically connected to the electronic chip and electromagnetically coupled to the radial dipole antenna, the primary antenna being surrounded by a cylindrical portion having an axis of rotation parallel to the second longitudinal axis and a diameter equal to or greater than one-third of the inner diameter of the radiating antenna positioned perpendicular to the primary antenna; The passive radio frequency transponder is positioned such that the first longitudinal axis and the second longitudinal axis are parallel and the midplane of the primary antenna is positioned in a central region of the helical spring. The tire casing is the radial dipole antenna includes a second region in which the radial dipole antenna is positioned perpendicular to the electronic portion, and a first region in which the radial dipole antenna is not positioned perpendicular to the electronic portion, and a ratio of a helical pitch P1 to a winding diameter D1 of at least one loop of the helical spring in the first region is greater than 0.8; a ratio of a helical pitch P1 to a winding diameter D1 of each loop of the helical spring in the first region of the radial dipole antenna is less than 3; a radial dipole antenna positioned perpendicular to the at least two first threads of the carcass reinforcement; a passive radio frequency transponder is located axially outside the inner end of the bead and radially between the radially outermost end of the at least one spiral and the axial end of the crown reinforcement, preferably inside the tire casing; It is characterized by:
[0011] The term "elastomer" is understood here to mean all elastomers, including, for example, diene polymers, ie polymers containing diene units, silicones, polyurethanes and TPEs (acronym for ThermoPlastic Elastomers), such as polyolefins.
[0012] Here, the term "electromagnetic coupling" is understood to mean coupling by electromagnetic radiation, i.e. coupling via energy transfer without physical contact between the two systems, including inductive coupling on the one hand and capacitive coupling on the other hand. The primary antenna is preferably composed of a coil, a loop, a wire segment or a group including a combination of these conductive elements.
[0013] Here, the term "parallel" is understood to mean that the angle formed by the axial direction of each antenna is less than 30 degrees, which optimizes the electromagnetic coupling between the two antennas and significantly improves the communication performance of the passive radio frequency transponder.
[0014] First, we need to determine the central plane of the coil and the helical spring. By definition, this is an imaginary plane that separates the object into two equal parts. In this case, this central plane is perpendicular to the axis of each antenna. Finally, the term "central" is understood here to mean that the relative distance between the central planes is less than one-tenth the length of the radiating antenna.
[0015] In this way, since the current strength is greatest at the center of the radiating antenna, the magnetic field induced by this current is also greatest at the center of the radiating antenna, thus ensuring optimal inductive coupling between the two antennas, thereby improving the communication performance of the passive radio frequency transponder.
[0016] By sizing the primary antenna relative to the helical spring characteristics of the radiating antenna, it is ensured that the distance between the two antennas is less than the diameter of the primary antenna when the primary antenna is located inside the radiating antenna, thus optimizing the electromagnetic coupling between the two antennas and therefore the communication performance of the radio frequency transponder during transmission and reception.
[0017] Similarly, in the region of the radiating antenna other than the region perpendicular to the electronics, i.e., the primary antenna, a ratio of the helical pitch to the turn diameter of the radiating antenna loop greater than 0.8 has the effect of stretching the helical spring. This reduces the length of wire required to cover the nominal distance of the radiating antenna, thereby reducing the resistance of the radiating antenna. Therefore, for a given electric field, the current strength flowing through the radiating antenna is greater at the antenna's natural frequency, improving the communication performance of the radio frequency transponder. Stretching the helical spring also improves the ratio of radiation resistance to loss resistance, thereby improving the efficiency of the radiating antenna, which in turn maximizes the electric field radiated by the radiating antenna for a given flow of current through the radiating antenna. Finally, for a radiating antenna with a given pitch, stretching the radiating antenna minimizes the volume occupied by the helical spring. Therefore, in environments with dimensional constraints, such as the thickness of a tire casing, it is possible to increase the thickness of the insulating rubber surrounding the radiating antenna in this first region. This electrical isolation minimizes losses and therefore improves the communication performance of the radio frequency transponder both during transmission and reception. Of course, ideally, each loop in the first region of the radiating antenna is elongated, which accordingly improves the communication performance of the passive radio frequency transponder, especially in the case of RFID tags.
[0018] The term "located horizontally with the two first threads" is understood to mean that when the tire casing is in the green tire state, the orthogonal projection of the element, in this case the radiating dipole antenna, onto the plane defined by the two parallel first threads of the carcass reinforcement intersects these two first threads.
[0019] Finally, the fact that the characteristic dimension of the radiating dipole antenna (defined by the first longitudinal axis) is perpendicular to the plurality of first threads of the carcass reinforcement layer ensures that the passive radio frequency transponder is located in a controlled position within the thickness of the tire casing, particularly when the tire is in a green tire state. Specifically, this configuration reduces the possibility of shifting of the radiating dipole antenna, particularly within the various uncrosslinked layers relative to the carcass reinforcement, when the tire casing is being constructed in a green state. Because the carcass reinforcement of the tire casing extends from one bead wire to another, it provides a wide area within the tire casing within which the passive radio frequency transponder can be installed and operated. Specifically, the amount of elastomer material surrounding the passive radio frequency transponder is controlled to ensure that the length of the radiating dipole antenna can be robustly adapted to the electrical environment of the radiating dipole antenna within the tire.
[0020] Finally, the radio frequency transponder is located in the bead and sidewall regions of the tire casing, particularly between the spiral and the crown reinforcement of the crown block, to facilitate communication between the transponder and an external radio frequency reader, particularly during operation on a vehicle. Specifically, because vehicle body elements, typically made of metal, such as wheels or wings, impede the propagation of radio waves between the passive radio frequency transponder (particularly in the UHF frequency range) located with the tire casing, placing the passive radio frequency transponder radially outside the spiral of the tire casing in the sidewall and bead regions facilitates the passive radio frequency transponder being interrogated and read from multiple locations and over long distances by an external radio frequency reader when the tire casing is in service on the vehicle. Therefore, communication with the passive radio frequency transponder is robust and reliable. Although radio frequency communication is not essential, the passive radio frequency transponder is located inside the tire casing. The passive radio frequency transponder is then incorporated into the tire casing during its manufacture, thereby protecting the read-only data contained in the memory of the passive radio frequency transponder's electronic chip, such as the tire casing identifier. An alternative is to use techniques known in the prior art to attach a patch made of an elastomeric compound containing the passive radio frequency transponder to the outer surface of the tire casing, such as the inner liner layer or sidewall. This process can be performed at any time during the tire casing's life, reducing the reliability of the tire casing data contained in the memory of the passive radio frequency transponder's electronic chip.
[0021] Optionally, when the radial dipole antenna includes a second region positioned perpendicular to the electronic portion, a ratio between the helical pitch P2 and the winding diameter D2 of each loop in the second region is less than or equal to 0.8.
[0022] Specifically, in the second region of the radial dipole antenna, more specifically in the region perpendicular to the primary antenna, the desired effect of the radial dipole antenna is electromagnetic coupling, particularly inductive coupling, with the primary antenna of the electronics section. Therefore, the first measure to improve this coupling is to increase the inductance of the radiating antenna in this second region, which means shrinking the helical spring. Shrinking the radial dipole antenna in this second region also increases the exchange area provided by the radial dipole antenna for a given length of the primary antenna facing the radial dipole antenna, thereby facilitating energy transfer between the primary antenna and the radial dipole antenna. This improved energy transfer results in better communication performance from passive radio frequency transponders.
[0023] Preferably, the ratio of the helical pitch to the winding diameter of each loop of the helical spring in the first region of the radiating antenna is less than 3, preferably less than 2.
[0024] While it is advantageous to improve the radio wave performance of the radiating antenna, it is necessary not to neglect the other functions that the radiating antenna must fulfill. In particular, the helical spring is a stretchable structure designed to withstand the three-dimensional stresses that a radio frequency transponder in a tire casing must face from the construction of the tire casing to its use as a moving object on a vehicle. Therefore, it is recommended to limit the amount by which the radiating antenna is stretched in this first region so that the radiating antenna as a whole remains sufficiently flexible, thereby ensuring the physical integrity of the passive radio frequency transponder.
[0025] Preferably, the primary antenna is connected to a terminal of the circuit board containing the electronic chip, and the electrical impedance of the primary antenna is matched to the electrical impedance of the circuit board of the radio frequency transponder.
[0026] The term "electrical impedance of the circuit board" is understood to mean the electrical impedance between the terminals of the primary antenna, which represents the electrical impedance of a circuit board including at least one electronic chip and the printed circuit board to which the electronic chip is connected.
[0027] By matching the impedance of the primary antenna to the impedance of the circuit board, the radio frequency transponder is optimized at the communication frequency by improving gain and enabling a more selective form factor and narrow passband circuit board. In this way, for a given amount of energy transmitted to the radio frequency transponder, the communication performance of the radio frequency transponder is improved. This results in, among other things, an increase in the read distance of the radio frequency transponder for a given radiated power. The impedance matching of the primary antenna is achieved by adjusting at least one of the geometric characteristics of the primary antenna, such as the wire diameter, the wire material, and the wire length.
[0028] Impedance matching of the primary antenna can also be obtained by adding an impedance matching circuit between the primary antenna and the electronic circuit, which consists of additional electronic components, such as inductor-based filters, capacitors, transmission lines, etc.
[0029] The impedance matching of the primary antenna can also be achieved by combining the characteristics of the primary antenna with the characteristics of the impedance matching circuit.
[0030] According to one particular embodiment, the electronic chip and at least a portion of the primary antenna are embedded in a rigid and electrically insulating mass, such as a high temperature epoxy resin, this assembly forming the electronic portion of the radio frequency transponder.
[0031] In this way, the electronics, including the primary antenna and at least a portion of the electronic chip connected to the printed circuit board, are rigidified, making the mechanical connection between its components more reliable with respect to the thermomechanical stresses to which the tire casing is subjected both during connection and in use.
[0032] This also makes it possible to manufacture the electronic part of the radio frequency transponder independently from the radiating antenna and the tire casing. In particular, using a microcoil with many turns as the primary antenna, for example, allows for the miniaturization of the electronic components, including the primary antenna and the electronic chip.
[0033] According to another embodiment, the portion of the primary antenna that is not embedded in the rigid mass is coated with an electrically insulating material.
[0034] Therefore, if the primary antenna is not completely contained in the rigid and electrically insulating mass of the electronics part, it is useful to insulate it via a coating made of an electrically insulating material such as that employed in the insulating sheath of an electrical cable.
[0035] According to one particular embodiment, the tire casing comprises a third layer of elastomeric compound located axially outward from the carcass reinforcement and axially inward from the first and / or second layers of elastomeric compound.
[0036] This construction of the tire casing therefore provides a compromise between differing bead and sidewall performance, and a passive radio frequency transponder can be inserted into and contacted with this third layer of elastomeric compound.
[0037] According to another particular embodiment, if the tire casing comprises an airtight layer of elastomeric material, which can be said to be a layer highly impermeable to air, and this layer is located furthest towards the inside of the tire casing relative to the reference axis, the tire casing comprises a fourth layer of elastomeric compound located inside the carcass reinforcement.
[0038] This tire casing configuration allows for extended extension to be achieved, particularly as a result of the fourth layer of elastomeric compound located in the sidewall of the tire casing, which, in the event of a loss of inflation pressure in the tire casing, can transfer loads between the bead and the crown block without buckling the sidewall of the tire casing.
[0039] Thus, a passive radio frequency transponder can contact this fourth layer of elastomeric compound.
[0040] According to one particular embodiment, the tire casing includes a third reinforcing thread positioned adjacent to form a reinforcement.
[0041] These are specialized casings that, depending on the type of use or the stress load during service, require local reinforcement in the bead area, for example, to prevent friction between the wheel and the tire casing. This reinforcement is also located in certain areas, particularly the axial end of the crown block, and can constrain the geometry of the crown block and the tire casing under severe thermomechanical stress loads. This reinforcement generally has at least one free edge. The passive radio frequency transponder can be in contact with or close to the free edge of the reinforcement.
[0042] According to one particular embodiment, the passive radio frequency transponder is partially encapsulated in a mass of electrically insulating elastomeric compound.
[0043] The term "electrically insulating" is understood here to mean that the electrical conductivity of the elastomeric compound is at least below the conductive charge percolation threshold of the compound.
[0044] According to a last particular embodiment, the relative permittivity of the encapsulating mass is less than 10.
[0045] This value of the relative permittivity of the elastomeric compound that constitutes the encapsulating mass ensures the stability of the environment in which the passive radio frequency transponder is located, thus making the subject of the present invention robust. In this way, the encapsulating mass ensures that the environmental radio waves remain constant, thus making it possible to robustly fix the dimensions of the radiating dipole antenna for operation at the target communication frequency.
[0046] According to another particular embodiment, the tensile modulus of the encapsulating mass is lower than the tensile modulus of at least one elastomeric compound adjacent to said encapsulating mass.
[0047] This creates an assembly that allows the passive radio frequency transponder to easily fit into a green tire casing while suppressing mechanical singularities that the passive radio frequency transponder would create within the tire casing, optionally employing a conventional adhesive rubber layer to secure the assembly to the tire casing, if desired.
[0048] Furthermore, the rigidity and conductive properties of the elastomeric compound ensure high-quality mechanical insertion and electrical isolation of the passive radio frequency transponder within the tire casing, so that the operation of the radio frequency transponder is not hindered by the tire casing.
[0049] According to a first preferred embodiment, the passive radio frequency transponder is located in contact with the layer of elastomer compound of the tire casing.
[0050] This embodiment facilitates the passive radio frequency transponder's compatibility with the tire casing's features. The passive radio frequency transponder is attached directly to the green tire construction by placing it on the outer surface of a layer of elastomer compound. The passive radio frequency transponder is then covered with a second layer of elastomer compound. In this way, the passive radio frequency transponder is completely encapsulated by the tire casing components. The passive radio frequency transponder is thus embedded within the tire casing, ensuring that the electronic chip's memory cannot be tampered with when write-protected. Alternatively, the passive radio frequency transponder can be directly positioned on the sled, but this can prove difficult if the sled is made of metal. If direct placement on the sled is still employed, it would be preferable to pre-coat the passive radio frequency transponder with a mass of electrically insulating elastomer compound. Preferably, the assembly is covered with another layer of elastomer compound. In this case, the radio frequency transponder will still be in contact with the layer of elastomeric compound.
[0051] Preferably, the passive radio frequency transponder is located at a distance of at least 5 mm from the end of the reinforcement of the tire casing.
[0052] A passive radio frequency transponder is a foreign object in the tire structure and constitutes a mechanical singularity. The ends of the reinforcement also constitute mechanical singularities. To ensure the durability of the tire casing, it is desirable that the two singularities are separated from each other by a certain distance. The minimum distance for the influence of a singularity is naturally proportional to the size and nature of the singularity, so the greater this distance, the better. The singularity formed by the ends of the reinforcement is more sensitive the higher the stiffness of the adjacent elastomer compound compared to the stiffness of the reinforcement. If the reinforcement is made of metal or of a woven fabric with a similarly high stiffness, such as in the case of aramid, it is appropriate to keep the two singularities at least 10 millimeters apart.
[0053] Highly preferably, with the orientation of the first thread defining the reinforcement direction, the first longitudinal axis of the radial dipole antenna is perpendicular to the reinforcement direction.
[0054] This is a particular embodiment that allows for a good distribution of loads passing between the passive radio frequency transponder and the tire casing during manufacture of the tire casing or during use of the tire casing. Furthermore, this orientation is reliably determined during manufacture of the tire casing, as it serves as a guide for the manufacture of the tire casing and facilitates the placement of the passive radio frequency transponder in the green form of the tire casing.
[0055] According to one particular embodiment, wireless telecommunication with the radio frequency reader takes place in the UHF band, and most particularly in the range comprised between 860 and 960 MHz.
[0056] Specifically, in this frequency band, the length of the radiating antenna is inversely proportional to the communication frequency. Furthermore, outside this frequency band, wireless communication through standard elastomer materials is highly unstable or even impossible. Thus, this is the best compromise between the size of the radio frequency transponder and its wireless telecommunication, especially in the far field, which allows for a satisfactory communication distance in the tire field.
[0057] According to another particular embodiment, the length L0 of the radiating antenna is comprised between 30 and 50 millimeters.
[0058] Specifically, in the frequency range of 860-960 MHz, depending on the relative permittivity of the elastomer compound surrounding the radio frequency transponder, the total length of the helical spring, adjusted to half the wavelength of the radio waves transmitted and received by the radio frequency transponder, is between 30 and 50 millimeters, preferably between 35 and 45 millimeters. To optimize the operation of the radiating antenna at such wavelengths, it is recommended to fully adjust the length of the radiating antenna to the wavelength.
[0059] Advantageously, the winding diameter of the helical spring in the first region of the radiating antenna is configured between 0.6 and 2.0 mm, preferably between 0.6 and 1.6 mm.
[0060] This allows the volume occupied by the radiating antenna to be limited, which allows the thickness of the electrically insulating elastomeric compound around the radio frequency transponder to be increased. Of course, this diameter of the helical spring in the first region of the radiating antenna can be constant, variable, continuously variable, or piecewise variable. A constant or continuously variable diameter is preferred from the standpoint of the mechanical integrity of the radiating antenna.
[0061] According to a preferred embodiment, the helical pitch of at least one loop of the radiating antenna in the first region of the radiating antenna is comprised between 1 and 4 millimeters, preferably between 1.3 and 2 millimeters.
[0062] This ensures that the ratio of the helical pitch to the winding diameter of the spring, or at least one loop, in the first region of the radiating antenna is less than 3, making it possible to guarantee a minimum stretch of the helical spring. Furthermore, this pitch can be constant or variable over the entire first region of the radiating antenna. Of course, it is preferable that the pitch is continuously variable or variable with small transitions in order to avoid singularities in the radiating antenna that would create mechanical weaknesses in the radiating antenna.
[0063] According to one advantageous embodiment, the diameter of the wire of the radiating antenna is comprised between 0.05 and 0.25 millimeters, ideally between 0.12 and 0.23 millimeters.
[0064] This wire range ensures low loss resistance and therefore improves the radio wave performance of the radiating antenna. In addition, limiting the wire diameter allows for a longer distance between the radiating antenna and the conductor by increasing the thickness of the electrically insulating elastomer compound. However, without optimizing the breaking stress of the material of these wires, which are generally mild steel, it is necessary to ensure a certain mechanical strength so that they can withstand the thermomechanical stresses experienced in high-stress environments such as tire casings. This allows the radiating antenna to represent a satisfactory technical and economic compromise.
[0065] Advantageously, a first pitch P1 of the radial dipole antenna, which corresponds to the helical pitch of the radial dipole antenna in the first region, is greater than a second pitch P2 of the radial dipole antenna, which corresponds to the helical pitch of the radial dipole antenna in the second region where the radial dipole antenna is positioned perpendicular to the electronic part.
[0066] By requiring the helical pitch P2 of the radial dipole antenna in the second region where the radial dipole antenna is perpendicular to the electronic section to be smaller than the pitch P1 of the radial dipole antenna outside this region, the electromagnetic compatibility of the radiating dipole antenna in this region is favored without impairing the enhanced radiation effect in the first region of the radiating dipole antenna. Thus, compressing the helical pitch of the radial dipole antenna improves the inductance of the antenna in this region. For a given flow of current through the radial dipole antenna, this is the lever arm necessary to increase the magnetic field generated by the antenna. Furthermore, this improvement in the inductance of the radial dipole antenna is obtained without necessarily changing the winding diameter of the radiating antenna. Furthermore, for a given length of the primary antenna, compressing the pitch of the radial dipole antenna perpendicular to the primary antenna of the electronic section ensures a larger exchange area between the two antennas, thereby improving the electromagnetic coupling between the two antennas. Consequently, the communication performance of the radio frequency transponder is improved. Finally, compressing the pitch of the radial dipole antenna allows for minimizing and better controlling the manufacturing tolerances of the radial dipole antenna in this second region, particularly with regard to defining the winding diameter of the radial dipole antenna. Thus, scrap rates of the radial dipole antenna are reduced because it is control over this diameter that defines the positioning of the electronics relative to the radial dipole antenna.
[0067] Highly advantageously, when the electronic part is arranged in the radiating antenna, the first inner diameter D1' of the radiating dipole antenna in the first region is smaller than the second inner diameter D2' of the radiating dipole antenna in the second region, and the electronic part is surrounded by a cylindrical part whose rotation axis is parallel to the first longitudinal axis and whose diameter is the same as or larger than the first inner diameter D1' of the radiating dipole antenna.
[0068] By ensuring that the cylindrical portion surrounding the electronic portion has a rotation axis parallel to the first longitudinal axis and a diameter equal to or greater than the first inner diameter of the radial dipole antenna, the first region of the radial antenna forms a stop against axial movement of the electronic portion. The fact that this first region is located on either side of the region of the radiating dipole antenna that is positioned perpendicular to the electronic portion due to the central positioning of the electronic portion relative to the radiating dipole antenna therefore ensures that there are two mechanical end stops located axially outside the electronic portion and limiting any axial movement of the electronic portion of the radio frequency transponder. Furthermore, because the diameter of the cylindrical portion surrounding the electronic portion is located inside the radiating antenna in the second region, this diameter must be smaller than the second inner diameter of the radiating antenna. Therefore, any radial shift of the electronic portion is limited by the second inner diameter of the radial dipole antenna. This restriction of the electronic portion's movement ensures the physical integrity of the electronic portion and the radial dipole antenna of the passive radio frequency transponder while ensuring the communication performance of the radio frequency transponder. Finally, the durability of the tire casing housing this radio frequency transponder is not affected by this design choice. Furthermore, the radio frequency transponder is easy to handle due to its attachment to the structure of the tire casing without the need to take additional precautions.
[0069] The present invention will be best understood from the following detailed description, examples of which are given by way of example and with reference to the accompanying drawings in which like reference numerals indicate the same parts throughout. [Brief explanation of the drawings]
[0070] [Figure 1] 1 is a perspective view of a prior art radio frequency transponder; [Figure 2] 1 is a perspective view of a radio frequency transponder according to the present invention; [Figure 3a] FIG. 10 is a diagram showing the wire length of a radial antenna as a function of the ratio of the helical pitch and the winding diameter of a helical spring for a given base length of a radial dipole antenna. [Figure 3b] FIG. 10 illustrates the wire length of a radial antenna depending on whether a constant pitch or a constant winding diameter is employed. [Figure 4] 1 is an example of a radio frequency transponder according to the invention, with certain particularities. [Figure 5] 1 is an exploded view of an identification tag according to the present invention. [Figure 6] 1 is a graph showing the power transmitted to two passive radio frequency transponders incorporated into a tire casing according to the present invention as a function of the observation frequency band; [Figure 7] 1 is a meridian cross-section of a prior art tire casing. [Figure 8] 1 shows a meridian section through the bead and sidewall of a tire casing according to the invention, where the passive radio frequency transponder is located in the outer region of the tire casing; [Figure 9] 1 shows a meridian section through the bead and sidewall of a tire casing according to the invention, when the passive radio frequency transponder is located in the inner region of the tire casing; [Figure 10] FIG. 1 is a meridian section of a tire casing with a passive radio frequency transponder in the upper part of the sidewall. DETAILED DESCRIPTION OF THE INVENTION
[0071] In the following, the terms "tire" and "pneumatic tire" are used equivalently and refer to any type of pneumatic or non-pneumatic tire.
[0072] FIG. 1 shows a prior art radio frequency transponder 1 in which the electronic part 20 is located inside the radiating antenna 10. The radiating antenna 10 consists of a steel wire 12 that has been plastically deformed to form a helical spring with a rotation axis 11. This helical spring is primarily determined by the winding diameter and helical pitch of the coated wire. These two geometric parameters of the helical spring are constant in this case. Therefore, the inner diameter 13 and outer diameter 15 of the helical spring are precisely determined taking into account the wire diameter. The spring length L0 corresponds to half the wavelength of the transponder's radio frequency transmission signal in the elastomer compound mass. Therefore, it is possible to define a central plane 19 of the helical spring perpendicular to the rotation axis 11, which separates the radiating antenna 10 into two equal parts. The geometric shape of the electronic part 20 circumscribes a cylindrical section, and its diameter is smaller than or equal to the inner diameter 13 of the helical spring. This facilitates insertion of the electronic part 20 into the radiating antenna 10. The central plane 21 of the primary antenna is positioned substantially overlapping with the central plane 19 of the radiating antenna 10. Finally, the axis of the primary antenna is substantially parallel to the axis of rotation 11 of the radiating antenna 10. The radiating antenna can be divided into two different regions: a first region 101 of the radiating antenna 10 in which the helical spring is not positioned perpendicular to the electronic part 20, and a second region 102 which is positioned perpendicular to the electronic part 20. The first region 101 of the radiating antenna 10 comprises two parts 101a and 101b of substantially equal length, which axially flank the second region 102 of the radiating antenna 10.
[0073] FIG. 2 shows a radio frequency transponder 1 according to the present invention, which has the notable feature, compared to prior art radio frequency transponders, that the ratio of the helical pitch to the winding diameter of at least one loop of the radiating antenna in the first region is greater than 0.8. In this case, the ratios of all loops in each region 101a, 101b are changed to be equivalent. This is achieved by reducing the total number of loops in each sub-region 101a, 101b. In this particular case, the winding diameter of the wire of the radiating antenna 10 remains the same. However, by increasing the winding diameter of the steel wire of the radiating antenna 10 in the first region 101 of this antenna, it is possible to change the ratio of the helical pitch to the winding diameter of each loop in the first region 101. In this case, the helical pitch of the radiating antenna 10 in the second region 102 of the radiating antenna 10 is not changed. Therefore, the ratio of the helical pitch to the winding diameter in the second region 102 of the radiating antenna 10 is less than 0.8.
[0074] 3a and 3b are diagrams illustrating the importance of the ratio of the helical pitch to the winding diameter for one loop of a helical spring with respect to the radio wave and electromagnetic properties of a radiating antenna.
[0075] FIG. 3a illustrates the variation of the ratio of the helical pitch of a loop to the winding diameter when the helical pitch of the loop and the diameter of the wire from which the loop is formed are constant. For a base length of a radiating antenna equal to the area occupied by a complete loop with a ratio equal to 1, the curvilinear distance of this loop is equal to 2*PI*PI basic units. The solid curve 500 corresponds to this loop. Specifically, the radius of this loop is necessarily equal to PI basic units. Now, consider the dotted curve 501, which corresponds to a ratio equal to 2. Since the helical pitch is constant, the winding diameter of this loop must be half the winding diameter of the previous loop, i.e., PI basic units. Therefore, the curvilinear distance of this loop, indicated by the dotted line 501, is equal to PI*PI basic units. Therefore, the curvilinear length of a first loop, which has a larger ratio of helical pitch to winding diameter than a second loop, is smaller than the curvilinear length of this second loop. Dashed curve 502 represents a ratio of 0.8, and dotted curve 503 represents a ratio of 0.5. The curve lengths of the two loops are equal to 2.5*PI*PI basic units and 4*PI*PI basic units, respectively.
[0076] FIG. 3b illustrates the variation of the ratio of the helical pitch to the turn diameter of a loop when the diameter of the loop and the diameter of the wire forming the loop are constant. For a base length of a radiating antenna equal to the area occupied by a complete loop with a ratio equal to 1, the curvilinear distance of this loop is equal to 2*PI*PI basic unit length. The solid curve 505 corresponds to this loop. Specifically, the radius of this loop is necessarily equal to PI units. Now, considering curve 506, which corresponds to a ratio equal to 2, since the turn diameter is constant, the helical pitch of this loop must be twice the helical pitch of the previous loop, i.e., 4*PI basic units. However, if the base length is limited to 2*PI basic units, the curvilinear distance of this loop, shown dotted, is equal to PI*PI basic units. Similarly, for curves 507 and 508, which correspond to ratios of 0.5 and 0.2, respectively, i.e., the number of loops is doubled and quintupled, respectively, the curvilinear distance of dotted curve 50 is equal to 4*PI*PI basic units. Furthermore, the curve distance of the dashed-dot curve 508 is equal to 10*PI*PI basic units.
[0077] Of course, instead of changing only the helical pitch or the winding diameter of each loop, it is also possible to change both parameters simultaneously, and only the ratio obtained by changing these two parameters will affect the communication performance of the radiating antenna.
[0078] Specifically, the resistance of a conductive wire is proportional to the wire's curved length. The higher the ratio of the helical pitch to the loop's winding diameter, the shorter the wire's curved length. This means that the loop's electrical resistance decreases. Consequently, minimizing the electrical resistance improves the radio wave characteristics of the radiating antenna loop. By minimizing the electrical resistance of the first region of the radiating antenna, the antenna's radiation efficiency is improved in both transmission and reception, and the antenna is primarily comprised of this first region. Furthermore, minimizing the antenna's electrical resistance ensures the generation of the maximum current for a given potential difference. This improves the radioelectric performance of the radio frequency transponder, and ultimately its communication performance.
[0079] Regarding the second region of the radiating antenna, the radiation efficiency of this second region, which is smaller than that of the first region, is not essential. Specifically, the main function of this second region is to ensure electromagnetic coupling with the primary antenna of the electronics. This electromagnetic coupling is primarily due to inductive coupling when the primary antenna is a coil with multiple turns. For this coupling to occur, the radiating antenna must first generate a magnetic field. This magnetic field depends, among other things, on the inductance of the radiating antenna. To maximize the inductance of the coil, it is recommended to reduce the ratio of the helical pitch to the coil's turn diameter or to increase the number of loops in the coil. Reducing the ratio of the helical pitch to the turn diameter of the loops in the second region of the radiating antenna increases the antenna's inductance and maximizes inductive coupling. Furthermore, if this ratio is reduced by changing only the antenna's helical pitch, the number of turns comprising the second region of the antenna increases, thereby increasing the energy transfer area between the two antennas. This increased energy transfer area, of course, favors the communication performance of the radio frequency transponder.
[0080] FIG. 4 is an illustration of a radio frequency transponder 1 operating in the 860-960 MHz frequency band and intended to be integrated into a tire casing. To improve the radio communication performance and physical integrity of the radio frequency transponder 1 in a tire casing with bead wires without compromising the durability of the tire casing, it is preferable to position the rotation axis of the radiating antenna 10 parallel to the axis U and over at least two reinforcing threads of the carcass ply of the tire casing. In particular, optionally, the rotation axis of the radiating antenna 10 is perpendicular to the reinforcement direction defined by the reinforcing threads of the carcass reinforcement, thereby increasing the number of mechanical anchoring points for the passive radio frequency transponder, especially if this transponder is integrated during the tire casing manufacturing process. As a result, the passive radio frequency transponder 1 is positioned circumferentially relative to the reference axis of rotation of the tire casing.
[0081] Additionally, the radio frequency transponder will be positioned axially outward relative to the axially inner end of the bead. This is a mechanically stable area that does not experience large, unexpected fluctuations in thermomechanical deformation. Finally, the passive radio frequency transponder 1 will be positioned radially between the radially upper end of the spiral and the axial end of the crown block of the tire casing. This radial positioning allows the passive radio frequency transponder integrated into the land vehicle tire casing to easily communicate with a radio frequency reader located outside the land vehicle, as there are fewer conductive elements between the radio frequency reader and the passive radio frequency transponder 1.
[0082] Here, the radio frequency transponder 1 comprises a radiating antenna 10 and an electronic section located inside the radiating antenna 10. The electronic section comprises an electronic chip connected to a printed circuit board and a primary antenna consisting of a conductive wire with 17 rectangular turns connected to the printed circuit board. The side of the printed circuit board opposite the primary antenna contains a serpentine-shaped galvanic circuit forming a line 10 mm long and 1 mm wide. Finally, the diameter of the cylindrical section surrounding the primary antenna is 0.8 mm.
[0083] The circuit board thus formed is then embedded in an epoxy resin mass 30, ensuring mechanical reliability of the electronic components and electrical insulation of the circuit board. The cylindrical section surrounding the rigid mass 30 is 1.15 mm in diameter and 6 mm long.
[0084] The length L0 of the radiating antenna 10 is here 45 mm, which corresponds to one half wavelength of a radio wave with a frequency of 915 MHz in a medium with a relative permittivity y equal to about 5. The radiating antenna 10 is manufactured using a steel wire 12 with a diameter of 0.225 mm, the surface of which is coated with a layer of brass.
[0085] The radiating antenna 10 can be divided into two main regions: the first region 101 corresponds to the part of the radiating antenna that is not perpendicular to the electronic part, and includes two sub-regions 101a, 101b located on either side of the rigid and insulating mass 30.
[0086] Each subregion 101a, 101b has a length L1 of 19 mm and includes 12 circular turns with a constant turn diameter D1 of 1.275 mm. This defines an inner diameter of 1.05 mm and an outer diameter of 1.5 mm. The helical pitch P1 of the circular turns is 1.55 mm. Therefore, the ratio of the helical pitch P1 to the turn diameter D1 is 1.21. The axially outer end of each subregion 101a, 101b terminates with two adjacent turns. This high ratio ensures that the effectiveness of the radio wave characteristics of the radiating antenna 10 is maximized in this region 101. Furthermore, the contact between the outermost turns of the radiating antenna 10 prevents the helical springs from crossing each other when handling the radio frequency transponder. Most of the turns in the first region 101 of the radiating antenna 10 have a ratio higher than 0.8, which clearly improves the radioelectric performance of the radio frequency transponder 1.
[0087] In the second region 102 of the radiating antenna 10, which corresponds to the portion of the radiating antenna 10 perpendicular to the electronic part, the radiating antenna has a length of 7 millimeters. The helical spring has a constant helical pitch P2 of 1 millimeter and a winding diameter D2 of 1.75 millimeters. Therefore, the inner diameter of the helical spring in the second region of the radiating antenna is 1.35 millimeters. This allows for a constant ratio of helical pitch to winding diameter of approximately 0.63. This ratio allows for maximizing the inductance of the second region 102 of the radiating antenna 10 relative to the first region 101, thereby improving the effectiveness of electromagnetic coupling to the electronic part.
[0088] In this particular case, in the first region 101, the inner diameter of the radiating antenna 10, equal to 1.05 mm, is smaller than the diameter of the mass 30 (equal to 1.15 mm) represented by the cylindrical portion surrounding the electronic part. The sub-regions 101a and 101b of the first region 101 of the radiating antenna 10 thus form mechanical stops that limit the axial movement of the mass 30 inside the radiating antenna 10. The electronic part is installed by inserting the rigid insulating mass 30 into the radiating antenna 10.
[0089] Furthermore, the diameter of the cylindrical portion surrounding the primary antenna is much larger than one-third of the inner diameter of the helical spring of the second region 102 of the radiating antenna. The cylindrical portion surrounding the primary antenna is not coaxial with the rotation axis U of the radiating antenna 10, but is substantially parallel to it. Furthermore, the minimum distance between the second region 102 of the radiating antenna 10 and the primary antenna is less than 0.3 millimeters, i.e., much less than one-quarter of the inner diameter of the radiating antenna 10. This proximity of the antennas is made possible by the compression pitch P2 applied to the second region 102 of the radiating antenna 10, which allows for smaller tolerances on the dimensions of the spring, particularly the winding diameter D2. Furthermore, this proximity ensures a higher quality electromagnetic coupling between the two antennas. Of course, this electromagnetic coupling could have been improved by using turns of the same shape, for example, circular turns, in the primary and radiating antennas. This coupling can also be optimized by coaxially positioning the two antennas, which means placing the circuit board inside the primary antenna in a way that minimizes the axial dimension of the electronics, thus optimizing the quality of the electromagnetic energy transmission area between the two antennas.
[0090] Other particular embodiments can be employed, in particular when the winding diameter of the helical spring varies between the first and second regions of the radiating antenna, and in particular when the inner diameter of the first region of the radiating antenna is smaller than the diameter of the cylindrical portion surrounding the electronic part.
[0091] 5 shows an identification tag 2 including a radio frequency transponder 1 according to the invention embedded in a flexible mass 3 made of an electrically insulating elastomeric material, the mass consisting of blocks 3a and 3b. The radio frequency transponder 1 is generally located in the center of the tag 2 to maximize the minimum distance between the first region 101 of the radiating antenna 10 and the outer surface of the identification tag 2.
[0092] If the winding diameter of the steel wire is reduced and the ratio of the helical pitch to the winding diameter of the loops in the first region 101 of the radiating antenna 10 is increased, the volume occupied by the radio frequency transponder 1 within the mass 3 of elastomeric material will decrease.
[0093] In a first application example, this allows the thickness of each block 3a, 3b of the identification tag 2 to be reduced while maintaining the same distance between the outer surface of the identification tag 2 and the first region 101 of the radiating antenna 10. Reducing the thickness of the identification tag 2 in this manner facilitates its introduction into an object to be identified while maintaining the same electrical insulation potential. In a second application example, this allows the distance between the first region 101 of the radiating antenna 10 and the outer surface of the identification tag 2 to be increased. This second application example improves the radioelectrical performance, and therefore the communication performance, of the radio frequency transponder 1 disposed in the identification tag 2. Specifically, the electrical insulation of the tag 2 is proportional to the distance between the first region 101 of the radiating antenna 10 and the outer surface of the tag 2. By improving the electrical insulation of the identification tag 2, the radioelectrical operation of the radio frequency transponder 1 improves, or remains the same if this distance has reached an effective asymptote.
[0094] Figure 6 shows a graph of the power transmitted by passive radio frequency transponders to an external radio frequency reader. Each passive radio frequency transponder is located within a 235 / 30ZR20 Pilot Sport4S Michelin tire casing. The passive radio frequency transponders are located 40 mm away from the radially outer bead area of the spiral, radially adjacent to the first layer of elastomer compound. The radio frequency transponders' communication frequency is centered at 915 MHz. The measurement protocol used complies with the ISO / IEC 18046-3 standard, "Discrimination Electromagnetic Field Thresholds and Frequency Peaks." Measurements were performed over a wide range of scanning frequencies, rather than at a single frequency as is conventional. The x-axis represents the frequency of the communication signal. The y-axis represents the power received by the radio frequency reader in decibels relative to the maximum power transmitted by the current radio frequency transponder. The dashed curve 1000 represents the response of the radio frequency transponder according to the cited reference. The continuous curve 2000 represents the response of a transponder according to the present invention to the same signal transmitted by a radio frequency reader. Note that at the communication frequency of the radio frequency reader, there is an improvement of about 2 dB in favor of the radio frequency transponder according to the present invention. This improvement remains on the order of at least 1 dB over a wide frequency band around the communication frequency.
[0095] The circumferential or longitudinal direction of the tire is the direction corresponding to the tire's outer periphery and is determined by the direction of travel of the tire casing.
[0096] The lateral or axial direction of the tire is parallel to the axis of rotation or reference axis of the tire casing.
[0097] The radial direction is the direction transverse to and perpendicular to the reference axis of the tire casing.
[0098] The axis of rotation or reference axis of a tire casing is the axis about which it turns during normal use.
[0099] The radial or meridian plane is the plane containing the reference axis of rotation of the tire.
[0100] The circumferential center plane or equatorial plane is the plane perpendicular to the reference axis of the tire casing and dividing the tire casing into two halves.
[0101] FIG. 7 shows a meridian cross section of a tire casing 100 including a crown 82 reinforced by a crown reinforcement or belt 86, two sidewalls 83, and two beads 84. The crown 82 is bounded axially by two axial ends 821 that provide a connection to each sidewall 83 of the tire casing 100. The crown reinforcement 86 extends axially to axial ends 861 at each edge of the crown reinforcement 86. The crown reinforcement 86 is covered radially outward by a tread 89 made of an elastomeric material. A carcass reinforcement 87 anchored to the beads 84 separates the tire casing into two regions, referred to as an inner region in the direction of the fluid cavity and an outer region toward the outside of the wheel-tire assembly. Each of these beads 84 is reinforced by a first spiral 85 located in the inner region of the tire casing and, in this example, a second spiral 88 located in the outer region of the tire casing. The beads 84 have radially and axially inner ends 841. The carcass reinforcement 87 comprises reinforcing threads which form outward and return sections between the ends of the carcass, said ends being sandwiched between two spirals 85, 88 of each bead 84. The carcass reinforcement 87 is made of textile threads in a manner known per se. The carcass reinforcement 87 extends from one bead 84 to the other 84, forming an angle of between 80° and 90° with the circumferential centre plane EP. An airtight inner liner layer 90 extends from one bead 84 to the other and is located inward relative to the carcass reinforcement 87.
[0102] 8 shows a detailed view of the tire casing 100 in the area of the bead 84 and the sidewall 83. This view shows the positioning of the passive radio frequency transponder 1 in the outer area of the tire casing 100 relative to the carcass reinforcement 87.
[0103] The bead 84 is composed of spirals 85 and 88 located in the inner and outer regions of the tire casing, respectively, sandwiching the end of the carcass reinforcement 87, all of which are covered with a layer of elastomeric compound 97. A first layer 91 of rubber compound, called the bead protector, is located radially inward of the spirals 85 and 88. The first layer 91 has a radially and axially outer free edge 912. The first layer 91 also has two free edges 911, 913 axially inward from the carcass reinforcement 87. The radially innermost free edge 913 here constitutes the inner end of the bead 84. A second layer 92 of elastomeric compound, located radially outward from the first layer 91 of elastomeric compound, defines the outer surface of the sidewall 83. A third layer 93 of rubber compound, called the "reinforcing filler," is adjacent to the second layer 92 of elastomeric compound. The third layer has two free edges. A first free edge 932 is located radially inward and abuts the layer of elastomeric compound 97. The other free edge 931 is located radially outward and terminates on the face of carcass reinforcement 87.
[0104] Axially inward of the carcass reinforcement 87 in this configuration, an airtight innerliner 90 is located in the inner region of the tire casing 100. The airtight innerliner 90 terminates at a free edge 901 adjacent to a layer of elastomeric compound 97. Finally, a fourth layer 94 of elastomeric compound protects the carcass reinforcement.
[0105] The bead 84 and the sidewall 83 of this tire casing 100 are equipped with passive radio frequency transponders (possibly bearing the suffix number 1) located in the outer region of the tire casing 100. The first passive radio frequency transponder 1, previously encapsulated in an electrically insulating encapsulating rubber, is located on the outer surface of the third layer 93 of the elastomer compound. The first passive radio frequency transponder 1 is located at a distance of 10 millimeters from the radially outer free edge of the spiral 88 that constitutes the mechanical singularity. This location ensures an area of mechanical stability for the radio frequency transponder 1 and is advantageous for its mechanical durability. Furthermore, embedding it within the structure of the tire casing 100 itself provides good protection from mechanical attacks from outside the tire casing 100.
[0106] The second radio frequency transponder 1bis is optionally encapsulated in an electrically insulating encapsulating rubber or similar composition compatible with the material of the second layer of elastomer compound 92 and is positioned inside the second layer of elastomer compound 92. The similarity of materials between the second layer of elastomer compound 92 and the encapsulating rubber ensures that the radio frequency transponder 1bis is located inside the sidewall 83 during the curing process. The radio frequency transponder 1bis is simply placed into the material when the raw second layer of elastomer compound 92 is injected during construction of the tire casing 10. Pressurizing the green tire in a curing mold ensures that the radio frequency transponder 1bis is positioned as shown in the cured state. The radio frequency transponder 1bis is located away from any free edges of any other components of the tire casing 100. In particular, the radio frequency transponder 1bis is positioned away from the free edge 931 of the third layer 93 of elastomer compound, the radially outer free edge of the spiral 88, and the free edge 912 of the bead protector 91. This positioning ensures improved communication with an external radio frequency reader by distancing it from metal components of the wheel-tire assembly. Due to the mechanical decoupling between the radiating antenna and the electronics of the passive radio frequency transponder 1bis, cyclic stress loads during driving do not result in damage. Consequently, these two transponders are located outside the end 913 of the first layer 91 of rubber compound, and thus axially at the inner end of the bead 84. They are positioned radially between the radially outer end of the spiral 88 and the axial end 861 of the crown reinforcement 86 relative to the reference axis of the tire casing 100.
[0107] Figure 9 shows a detailed meridian section of the tire casing 100 in the region of the bead 84 and the sidewall 83. This figure shows the location of the passive radio frequency transponder in the inner region of the tire casing 100 relative to the main part of the carcass reinforcement 87.
[0108] The tire casing 100 comprises, particularly in the inner region, an airtight innerliner 90 and a layer 94 of elastomeric compound interposed between the carcass reinforcement 87 and the airtight innerliner 90. This layer 94 of elastomeric compound has a radially inner free edge 941 located below the spiral 85. This layer 94 of elastomeric compound extends from one bead 84 of the tire casing 100 to the other bead 84.
[0109] The positioning of the radio frequency transponder 1bis at the level of the first threads forming the carcass reinforcement 87 allows for mechanical stabilization of the radio frequency transponder 1bis. This position is more than 40 millimeters radially outward of the free edge 913 of the bead protector 91, which means that it can be located radially outward of the rim flange when the tire casing is mounted on a wheel and in operation. In contrast, to ensure adequate wireless communication performance, it is preferable to use an electrically insulating encapsulating rubber to encapsulate the radio frequency transponder 1bis. From the perspective of radio frequency performance, this positioning provides better wireless communication performance than a positioning further radially outward in the tire casing 100. This positioning can be in any direction, as long as it rests on at least two first threads of the carcass reinforcement 87. This ensures axial positioning of the radio frequency transponder 1bis relative to the thickness of the tire casing 100 and allows robust tuning of the resonance of the radiating antenna of the passive radio frequency transponder 1bis when the passive radio frequency transponder 1bis is incorporated into the tire casing 100.
[0110] The second location of the radio frequency transponder 1 according to the present invention is ideal for a passive radio frequency transponder 1, as it is protected from any external mechanical attack and any internal thermomechanical attack. However, it is preferable that the passive radio frequency transponder 1 be encapsulated in an electrically insulating rubber and that the first longitudinal axis of the radiating antenna be arranged so that the radio frequency transponder 1 rests on at least two first threads of the carcass reinforcement 87, which in this example is arranged in the circumferential direction. The passive radio frequency transponder 1 is preferably positioned within the layer of elastomer compound of the tire casing 100. This means that the data contained in the passive radio frequency transponder's electronic chip cannot be tampered with after the first write to the memory associated with the electronic chip, if this chip is write-protected. Furthermore, the uniformity surrounding the radio frequency transponder 1 provides the tire casing 100 and the passive radio frequency transponder 1 with better physical integrity.
[0111] FIG. 10 shows a meridian cross-section of a tire casing 100 in which a radio frequency transponder 1 is embedded in the sidewall 83 of the tire casing 100. In this example, the radio frequency transponder 1 is embedded substantially midway up the sidewall 83 of the tire casing 100, as indicated by the dotted line. This is an ideal area from the perspective of wireless communication, primarily because it is away from the high-metal areas of the tire, ensuring free space outside the tire. Additionally, the surrounding rubber is soft and typically contains only a small amount of filler, making it suitable for proper radio frequency operation of the radio frequency transponder 1. Regarding the physical integrity of the passive radio frequency transponder 1, this geometric area is subject to highly cyclic stresses, especially when entering the ground, but the mechanical decoupling of the radiating dipole antenna from the electronics allows for a sufficient lifespan of the passive radio frequency transponder 1. Regarding the physical integrity of the tire casing 100, the radio frequency transponder 100 must be positioned far enough away from the free edge, which in this example is located in the outer region of the tire casing 100. When resting against the carcass reinforcement 87, if necessary, the passive radio frequency transponder 1, enclosed in an electrically insulating encapsulating mass, should be positioned with its first longitudinal axis so that its projection onto the carcass reinforcement 87 intersects at least two first threads of the carcass reinforcement 87. Ideally, the first longitudinal axis of the radiating dipole antenna is perpendicular to the threads of the carcass reinforcement 87, which corresponds to a circumferential positioning even in the case of a tire casing 1 with a radial structure. This region is subject to high stress under operating conditions, but the mechanical decoupling between the electronics and the radial dipole antenna allows for sufficient mechanical integrity of the passive radio frequency transponder 1. Ideally, the passive radio frequency transponder 1 is not in contact with the first thread of the carcass reinforcement 87 in order to limit the mechanical stresses to which the passive radio frequency transponder 1 is subjected.
[0112] The second location in the sidewall 83 corresponds to positioning the radio frequency transponder 1bis radially inside the layer of rubber compound that defines the sidewall 83 and near the axial end 821 of the crown block 82. The advantage of this location is the uniformity of the material around the passive radio frequency transponder 1bis, which improves the wireless communication performance of the radiating antenna. To meet requirements related to the integrity of the tire casing 100, the radio frequency transponder 1bis should be located away from the free edge 861 of the crown reinforcement or the ends of the rubber mass located in the outer region of the tire casing 100. In particular, care should be taken to position the radio frequency transponder 1bis at least 5 millimeters away from the free edge 861 of the crown reinforcement 86 and the ends 821 of the crown block 82. Of course, the physical integrity of the radio frequency transponder 1bis is better the further its radial location is from the equator, which corresponds to the axial end of the tire, an area frequently subject to impacts from road equipment such as curbs. Other locations not shown in the drawings are possible, particularly in the interior region of the tire casing 100 relative to the carcass reinforcement 87. The interior region of the tire casing is a natural protective region for the passive radio frequency transponder, benefiting its physical integrity at the cost of a slight reduction in wireless communication performance. This interior region also offers the advantage of limiting the number of free edges of the tire casing components, which are potential weak points with regard to the mechanical durability of a tire casing fitted with a passive radio frequency transponder.
[0113] Of course, the orientation of the radiating dipole antenna of the passive radio frequency transponder 1, 1bis relative to the direction defined by the first threads of the carcass reinforcement can be any orientation, as long as the projection of the radiating dipole antenna intersects at least two first threads of the carcass reinforcement. Consequently, when referring to the distance between the end of the layer and the passive radio frequency transponder, this refers to the distance of each material point of the passive radio frequency transponder in each meridian plane of the tire casing to the end of the layer in that same meridian plane. By passive radio frequency transponder, we mean that this transponder potentially comprises an encapsulating mass. However, it is more practical to position the passive radio frequency transponder directly so that its first longitudinal axis is substantially perpendicular to the direction of the first threads of the carcass reinforcement. [Explanation of symbols]
[0114] 1 radio frequency transponder 10 Radiating Antenna 20 Electronic part 101a Part of the first area 101b Part of the first area 102 Second Area
Claims
1. A tire casing (100) of toroidal shape about a reference axis and equipped with a passive radio frequency transponder (1, 1bis), a crown block (82) including a crown reinforcement (86) having an axial end (861) at each edge, and a tread (89), the crown block (82) being connected by a sidewall (83) at each axial end (821) to a bead (84) having an inner end (841) located axially and radially inwardly of the reference axis; a first thread forming an outward portion and a return portion disposed adjacent to one another, aligned circumferentially, and anchored at each bead (84) with a loop each connecting the outward portion and the return portion at said bead (84), said first thread forming at least one circumferential alignment defining a carcass reinforcement (87) and dividing said tire casing into two regions, inner and outer with respect to said carcass reinforcement (87); in each bead (84), means for locking the first thread, the locking means including a second thread circumferentially oriented and axially tangent to the first thread, forming at least one spiral (85, 88); a first layer (91) of elastomeric compound forming the outer surface of the tire casing in the region of the beads (84), the first layer (91) being intended to come into contact with the rim; a second layer (92) of elastomeric compound located radially outwardly of and in contact with said first layer (91) of elastomeric compound, forming said outer surface of said sidewall (83); Equipped with The passive radio frequency transponder (1, 1bis) comprises an electronic part (20) and a radial dipole antenna (10), the radial dipole antenna (10) having a helical pitch P, a winding diameter D, a mid-plane (19), and a wire diameter defining an inner diameter (13) and an outer diameter (15) of the radial dipole antenna (10), the length (L0) of which is designed to communicate in a frequency band with an external radio frequency reader defining a first longitudinal axis (11), a central region, and two lateral regions along the first longitudinal axis (11); the electronic part (20) comprises an electronic chip and a coil-type primary antenna comprising at least one turn, thus defining a second longitudinal axis and a mid-plane (21) perpendicular to the second longitudinal axis, the primary antenna being electrically connected to the electronic chip and electromagnetically coupled to the radial dipole antenna (10); the passive radio frequency transponder (1, 1bis, 1ter) is arranged such that the first longitudinal axis (11) and the second longitudinal axis are parallel and the intermediate plane of the primary antenna is located in the central region of a helical spring; In the tire casing (100), The radial dipole antenna (10) comprises a second region (102) in which the radial dipole antenna (10) is positioned perpendicular to the electronic portion (20), and a first region (101, 101a, 101b) in which the radial dipole antenna (10) is not positioned perpendicular to the electronic portion (20), and a ratio of a helical pitch (P1) to a winding diameter (D1) of at least one loop of the helical spring in the first region (101, 101a, 101b) is greater than 0.8; a rotation axis of a cylindrical portion surrounding the primary antenna is parallel to the second longitudinal axis, and a diameter of the cylindrical portion is greater than one-third of an inner diameter (13) of the second region (102) of the radial dipole antenna (10); a ratio of the helical pitch (P1) of each loop of the helical spring to the winding diameter (D1) in the first region (101, 101a, 101b) of the radial dipole antenna (10) is less than 3; The radial dipole antenna (10) is positioned perpendicular to at least two first threads of the carcass reinforcement (87), the passive radio frequency transponder (1, 1bis) is located axially outside the inner end (841) of the bead (84) and radially between the radially outermost end (851) of the at least one spiral (85) and the axial end (861) of the crown reinforcement (86), A tire casing (100).
2. the tire casing (100) comprises at least a third layer (93) of elastomeric compound located axially outward of the carcass reinforcement (87) and axially inward of the first layer (91) and / or second layer (92) of elastomeric compound, The tire casing (100) of claim 1.
3. the tire casing (100) comprises at least one airtight layer (90) of an elastomer compound located axially furthest toward the inside of the tire casing (100), the tire casing (100) comprising at least a fourth layer (94) of an elastomer compound axially inward of the carcass reinforcement (87); A tire casing (100) according to any one of claims 1 to 2.
4. the passive radio frequency transponder (1, 1bis) is partially encapsulated in a mass of electrically insulating elastomeric compound (3a, 3b); A tire casing (100) according to any one of claims 1 to 3.
5. the tensile modulus of the mass of electrically insulating elastomeric compounds (3a, 3b) is lower than the tensile modulus of at least one elastomeric compound adjacent to said mass (3a, 3b); The tire casing (100) of claim 4.
6. the relative dielectric constant of the mass of the electrically insulating elastomeric compounds (3a, 3b) is lower than 10; A tire casing (100) according to any one of claims 4 to 5.
7. the passive radio frequency transponder (1, 1bis) is located in contact with the layers (91, 92, 93, 94, 96) of the elastomeric compound of the tire casing (100); A tire casing (100) according to any one of claims 1 to 6.
8. the passive radio frequency transponders (1, 1bis) are located at a distance of at least 5 mm from the ends (851, 861) of the tire casing reinforcements (85, 86, 88, 89); The tire casing (100) of claim 7.
9. The orientation of the first thread defines a reinforcement direction, and the first longitudinal axis (11) of the radial dipole antenna (10) is perpendicular to the reinforcement direction. A tire casing (100) according to any one of claims 1 to 8.
10. the ratio between the helical pitch (P2) and the winding diameter (D2) of each loop in the second region (102) is 0.8 or less; A tire casing (100) according to any one of claims 1 to 9.
11. a first pitch (P1) of the radial dipole antenna (10) corresponding to the helical pitch of the radial dipole antenna (10) in the first region (101, 101a, 101b) is larger than a second pitch (P2) of the radial dipole antenna (10) corresponding to the helical pitch of the radial dipole antenna (10) in the second region (102); A tire casing (100) according to any one of claims 1 to 10.
12. When the electronic portion (20) is disposed inside the radial dipole antenna (10), a first inner diameter D1' of the radial dipole antenna (10) in the first region (101, 101a, 101b) is smaller than a second inner diameter D2' of the radial dipole antenna (10) in the second region (102), and the electronic portion (20) is surrounded by a cylindrical portion, the rotation axis of the cylindrical portion being parallel to the first longitudinal axis (11) and the diameter of the cylindrical portion being equal to or larger than the first inner diameter D1' of the radial dipole antenna (10). A tire casing (100) according to any one of claims 1 to 11.
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