High load capacity tire having tear-resistant sidewalls

EP4705124A1Pending Publication Date: 2026-03-11MICHELIN & CO (CIE GEN DES ESTAB MICHELIN)
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Patent Information

Authority / Receiving Office
EP · EP
Patent Type
Applications
Current Assignee / Owner
Filing Date
2024-04-30
Publication Date
2026-03-11

AI Technical Summary

Technical Problem

High load capacity tires face significant bending and tearing issues due to increased load requirements, particularly when used in deep holes, large bumps, or under conditions of lower pressure or excessive load, which compromises their durability.

Method used

A tire with a specific elastomeric composition comprising an elastomeric matrix, reinforcing filler, and rubber crumb, where the sum of the reinforcing filler and rubber crumb rates range from 46 to 62 pce, and the weight ratio between rubber crumb and reinforcing filler ranges from 0.20 to 1.50, enhancing tear resistance.

Benefits of technology

The tire achieves improved load-carrying capacity without compromising vehicle habitability, compactness, or comfort, while significantly reducing the risk of sidewall tears, maintaining performance across various road conditions.

✦ Generated by Eureka AI based on patent content.

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Abstract

The tire (10) for a passenger vehicle comprises a crown (12), two beads (32), and two sidewalls (30) connecting each bead (32) to the crown (12). The tire (10) is a high load capacity tire according to the ETRTO Standards Manual 2021. At least one of the two sidewalls (30) comprises an elastomer composition based on: at least one elastomer matrix, at least one reinforcing filler, and at least one crumb rubber. The sum of the reinforcing filler content and the crumb rubber content ranges from 46 to 62 phr. The weight ratio between the crumb rubber content in phr and the reinforcing filler content in phr ranges from 0.20 to 1.50.
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Description

High load capacity tire with tear-resistant sidewalls

[0001] The present invention relates to a tire. By tire is meant a bandage intended to form a cavity by cooperating with a support element, for example a rim, this cavity being capable of being pressurized to a pressure higher than atmospheric pressure. A tire according to the invention has a structure of substantially toroidal shape of revolution around a main axis of the tire.

[0002] The advent of electric or hybrid passenger vehicles leads to an increase in the weight of vehicles, particularly due to the batteries, whose weight is relatively high and significantly proportional to the vehicles' range. For example, to increase the range of an electric vehicle, it is necessary to increase the size of the batteries and, consequently, the weight of the vehicle.

[0003] Simply put, it is estimated today that one kilometer of electric motor range increases the vehicle's weight by one kilogram. Thus, to achieve a range of 500 kilometers, it is necessary to increase the weight of a thermal engine vehicle by approximately 500 kg. To equip such vehicles, it is necessary to use tires capable of carrying a very high load.

[0004] Thus, tire manufacturers decided to create a new type of tire. This new type is now known as "HIGH LOAD CAPACITY" (which translates into French as Haute Capacité de Chargement) in the ETRTO 2021 standard manual. This new type ensures that the load that the tire of a given size is capable of carrying is greater than that which a tire of the same size but in its EXTRA-LOAD version would be capable of carrying. For the 255 / 35R18 size, the HIGH LOAD CAPACITY tire thus has a load index equal to 98 indicating that it is capable of carrying a load of 750 kg at a pressure of 290 kPa. By comparison, for the same dimension 255 / 35R18, the EXTRA-LOAD type tire has a load index equal to 94 meaning that, at a pressure of 290 kPa, this tire is capable of carrying a load of 670 kg.

[0005] A problem encountered is linked to the fact that, for a given dimension, a HIGH LOAD CAPACITY type tire is required to carry a relatively high load causing significant flexing of the sidewalls and making them susceptible to tearing, particularly when driving in a deep hole in the road or over a large bump in the road, when driving suddenly up a sidewalk, when used at a pressure significantly lower than the recommended pressure or when used under a significantly higher load. greater than the maximum load.

[0006] The invention aims to provide a tire capable of carrying a greater load than existing tires while improving its tear resistance.

[0007] For this purpose, the subject of the invention is a passenger vehicle tire comprising a crown, two beads, two sidewalls connecting each bead to the crown, the tire being of the HIGH LOAD CAPACITY type according to the ETRTO 2021 standard manual, at least one of the two sidewalls comprises an elastomeric composition based on at least one elastomeric matrix, at least one reinforcing filler, at least one rubber crumb, the sum of the reinforcing filler content and the rubber crumb content is within a range from 46 to 62 pce and the weight ratio between the rubber crumb content expressed in pce and the reinforcing filler content expressed in pce being within a range from 0.20 to 1.50.

[0008] The inventors have surprisingly discovered that one way to solve this problem is to use a specific elastomeric composition based on at least one elastomeric matrix, at least one reinforcing filler, at least one rubber crumb having certain weight characteristics between the rate of the reinforcing filler and the rate of rubber crumb. This elastomeric composition has excellent tear resistance.

[0009] According to the invention, the tire is for a passenger vehicle. Such a tire is for example defined in the ETRTO 2021 (European Tire and Rim Technical Organization) standard manual. Such a tire has, generally on at least one of the sidewalls, a marking in accordance with the marking in the ETRTO 2021 standard manual indicating the dimension of the tire in the form X / Y a VU p with X designating the nominal section width, Y designating the nominal aspect ratio, a designating the structure and possibly being R or ZR, V designating the nominal rim diameter, U designating the load index and designating the speed symbol.

[0010] By increasing the load index of the tire compared to the load index of a tire having the same dimension in its EXTRA-LOAD version, the invention makes it possible to increase the load capacity of the tire without modifying the habitability, compactness and comfort of the vehicle on which it is used. Indeed, the dimension of the tire of the invention being identical to that of the tire in its EXTRA-LOAD version, the tire does not take up more space than the tire in its EXTRA-LOAD version. A tire of the invention may bear a distinctive marking making it possible to distinguish it from its STANDARD LOAD version and from its EXTRA-LOAD version, for example a marking of the type HL (for HIGH LOAD) or XL+ (for EXTRA LOAD +). Such a marking is notably disclosed in the ETRTO 2021 standard manual, page 3 of the General Notes - Passenger Car tyres section to designate HIGH LOAD CAPACITY type tyres. Examples of dimensions are also disclosed in the ETRTO 2021 standard manual, page 44, paragraph 9.1 of the Passenger Car tyres - Tyres with metric designation section.

[0011] A HIGH LOAD CAPACITY tire can be characterized by its load index LI such that LI > Ll'+1 and LI' being the load index of an EXTRA LOAD tire with the same dimension according to the ETRTO 2021 standard manual. The load index Ll' is the load index of an EXTRA-LOAD tire with the same dimension, i.e. the same nominal section width, the same nominal aspect ratio, the same structure (R and ZR being considered identical) and the same nominal rim diameter. The load index Ll' is given by the ETRTO 2021 standard manual, in particular in the section entitled Passenger Car Tires - Tires with Metric Designation, pages 22 to 43. Depending on the dimension, we will have LI=U'+1, LI=LI'+2, LI=LI'+3 or even LI=LI'+4. In most embodiments, Ll'+1 < Ll < LI'+4, and even LI'+2 < Ll < LI'+4.

[0012] The tire according to the invention has a substantially toric shape around an axis of revolution substantially coincident with the axis of rotation of the tire. This axis of revolution defines three directions conventionally used by those skilled in the art: an axial direction, a circumferential direction and a radial direction.

[0013] Axial direction means the direction substantially parallel to the axis of revolution of the tire, i.e. the axis of rotation of the tire.

[0014] Circumferential direction means the direction which is substantially perpendicular to both the axial direction and a radius of the tire (in other words, tangent to a circle whose center is on the axis of rotation of the tire).

[0015] By radial direction is meant the direction along a radius of the tire, that is to say any direction intersecting the axis of rotation of the tire and substantially perpendicular to this axis.

[0016] By median plane of the tire (noted M), we mean the plane perpendicular to the axis of rotation of the tire which is located at the axial midpoint of the two beads and passes through the axial center of the crown reinforcement.

[0017] By equatorial circumferential surface of the tire, we mean the association of the planes passing, in each meridian cutting plane, through the equator (noted E) of the tire and perpendicular to the median plane and to the radial direction. The equator of the tire is, in a meridian cutting plane (plane perpendicular to the direction circumferential and parallel to the radial and axial directions) the axis parallel to the axis of rotation of the tire and located equidistant between the radially outermost point of the tread intended to be in contact with the ground and the radially innermost point of the tire intended to be in contact with a support, for example a rim, the distance between these two points being equal to H.

[0018] Meridian plane means a plane parallel to and containing the axis of rotation of the tire and perpendicular to the circumferential direction.

[0019] By radially inner, respectively radially outer, is meant closer to the tire's axis of rotation, respectively further from the tire's axis of rotation. By axially inner, respectively axially outer, is meant closer to the tire's median plane, respectively further from the tire's median plane.

[0020] A bead means the portion of the tire intended to allow the tire to be attached to a mounting support, for example a wheel comprising a rim. Thus, each bead is in particular intended to be in contact with a hook on the rim allowing it to be attached. Thus, the radially outer end of the outer surface of the tire bead is defined as the point on the radially outermost outer surface of the tire in contact with a tire measurement rim according to the ETRTO standard manual, 2021 when the tire is inflated to its nominal pressure on this measurement rim.

[0021] Any interval of values ​​designated by the expression "between a and b" represents the domain of values ​​from more than a to less than b (i.e., excluding the limits a and b), while any interval of values ​​designated by the expression "from a to b" means the domain of values ​​from a to b (i.e., including the strict limits a and b).

[0022] The expression "composition based on" means a composition comprising the mixture and / or the in situ reaction product of the different constituents used, some of these constituents being able to react and / or being intended to react with each other, at least partially, during the different phases of manufacture of the composition; the composition can thus be in a totally or partially crosslinked state or in a non-crosslinked state.

[0023] By the expression "part by weight per hundred parts by weight of elastomer" (or pce), it is meant, within the meaning of the present invention, the part, by mass per hundred parts by mass of elastomer in the sense of the preparation of the composition before curing. That is to say, in the case of the presence of a rubber crumb, the term "pce" means part by weight per hundred parts of "new" elastomers, therefore excluding from the base 100 the elastomers contained in the rubber crumb.

[0024] In this document, unless expressly stated otherwise, all percentages (%) indicated are percentages (%) by mass.

[0025] When a “majority” compound is referred to, within the meaning of the present invention, this compound is the majority among the compounds of the same type in the composition, i.e. it is the one that represents the largest quantity by mass among the compounds of the same type. Thus, for example, a majority elastomer is the elastomer representing the largest mass relative to the total mass of the elastomers in the composition. In the same way, a so-called majority filler is the one representing the largest mass among the fillers in the composition. For example, in a system comprising a single elastomer, this is the majority within the meaning of the present invention; and in a system comprising two elastomers, the majority elastomer represents more than half of the mass of the elastomers. On the contrary, a “minority” compound is a compound that does not represent the largest mass fraction among the compounds of the same type.Preferably by majority, we mean present at more than 50%, preferably more than 51%, 60%, 70%, 80%, 90%, and more preferably the “majority” compound represents 100%.

[0026] The compounds mentioned in the description may be of fossil or bio-sourced origin. In the latter case, they may be, partially or totally, derived from biomass or obtained from renewable raw materials derived from biomass. Obviously, the compounds mentioned may also come from the recycling of materials already in use, that is to say, they may be, partially or totally, derived from a recycling process, or obtained from raw materials themselves derived from a recycling process. This includes in particular polymers, plasticizers, fillers, etc.

[0027] The elastomeric composition comprises at least one elastomer, for example a diene elastomer. In certain optional embodiments, the elastomeric composition comprises several elastomers, in particular several diene elastomers. This elastomer or this mixture of elastomers, in particular diene elastomers, is referred to in the remainder of the description as the elastomeric matrix. In the case where the composition comprises several elastomers, these elastomers are of course different in pairs.

[0028] The term "elastomer" means a polymer, i.e., a homopolymer or copolymer, with elastic properties obtained after crosslinking. The term rubber is a common synonym for elastomer.

[0029] By "diene elastomer" or indistinctly "diene rubber", whether natural or synthetic, must be understood in a known manner an elastomer made up of less in part (i.e., a homopolymer or a copolymer) of diene monomer units (monomers carrying two carbon-carbon double bonds, conjugated or not). Diene elastomers are by definition non-thermoplastic.

[0030] Preferably, the elastomeric matrix comprises at least two diene elastomers different from each other.

[0031] These diene elastomers can be classified into two categories: "essentially unsaturated" or "essentially saturated". "Essentially unsaturated" generally means a diene elastomer derived at least in part from conjugated diene monomers, having a content of units or patterns of diene origin (conjugated dienes) which is greater than 15% (mol %); thus, diene elastomers such as butyl rubbers or copolymers of dienes and alpha-olefins such as EPDM do not fall within the previous definition and can be described in particular as "essentially saturated" diene elastomers (low or very low content of patterns of diene origin, always less than 15%).

[0032] The term diene elastomer capable of being used in elastomeric compositions particularly means: - any homopolymer of a diene monomer, conjugated or not, having from 4 to 18 carbon atoms; - any copolymer of a diene, conjugated or not, having from 4 to 18 carbon atoms and at least one other monomer; the other being able to be ethylene, an olefin or a diene, conjugated or not.

[0033] Suitable conjugated dienes are conjugated dienes having 4 to 12 carbon atoms, in particular 1,3-dienes, such as 1,3-butadiene and isoprene.

[0034] Suitable non-conjugated dienes are non-conjugated dienes with 6 to 12 carbon atoms, such as 1,4-hexadiene, ethylidene norbornene, dicyclopentadiene.

[0035] Suitable olefins are vinylaromatic compounds with 8 to 20 carbon atoms and aliphatic α-monoolefins with 3 to 12 carbon atoms.

[0036] Suitable vinyl aromatic compounds are, for example, styrene, ortho-, meta-, para-methylstyrene, the commercial mixture "vinyl-toluene", para-tert-butylstyrene.

[0037] Suitable aliphatic α-monoolefins are, in particular, acyclic aliphatic α-monoolefins having from 3 to 18 carbon atoms.

[0038] More specifically, the diene elastomer is: - any homopolymer of a conjugated diene monomer, in particular any homopolymer obtained by polymerization of a conjugated diene monomer having from 4 to 12 carbon atoms; - any copolymer obtained by copolymerization of one or more conjugated dienes with each other or with one or more vinylaromatic compounds having from 8 to 20 carbon atoms; - any copolymer obtained by copolymerization of one or more dienes, conjugated or not, with ethylene, an α-monoolefin or their mixture such as for example elastomers obtained from ethylene, propylene with a non-conjugated diene monomer of the aforementioned type.

[0039] According to an advantageous embodiment making it possible to improve the tear resistance, the elastomeric matrix comprises at least one isoprene elastomer and at least one butadiene elastomer.

[0040] By "isoprenic elastomer" is meant, in a known manner, a homopolymer or a copolymer of isoprene, in other words an isoprene elastomer can be chosen from the group consisting of natural rubber (NR), synthetic polyisoprenes (IR), the various isoprene copolymers and the mixtures of these elastomers. Among the isoprene copolymers, mention will be made in particular of isobutene-isoprene copolymers (butyl rubber - HR), isoprene-styrene (SIR), isoprene-butadiene (BIR) or isoprene-butadiene-styrene (SBIR). Preferably, the isoprene elastomer can be chosen from the group consisting of natural rubber, synthetic cis-1,4 polyisoprenes, and the mixtures of these elastomers.Even more preferably, the isoprene elastomer is chosen from the group consisting of natural rubber, synthetic polyisoprenes having a rate (mol%) of cis-1,4 bonds greater than 90% (even more preferably greater than 98%), and mixtures of these elastomers. In a preferred embodiment, the rate of isoprene elastomer is within a range from 20 to 80 phr, preferably from 30 to 70 phr, more preferably between 30 and 70 phr and even more preferably from 35 to 65 phr.

[0041] By "butadiene elastomer" is meant, in a known manner, a homopolymer or a copolymer of butadiene, in particular a diene elastomer which can be chosen from the group consisting of polybutadienes (BR), the different copolymers of butadiene and the mixtures of these elastomers. Among the copolymers of butadiene, mention will be made in particular of copolymers of butadiene-styrene (SBR), or of ethylene-butadiene (EBR). Preferably, the butadiene elastomer can be a cis-1,4 polybutadiene; in particular a polybutadiene having a rate (mol%) of cis-1,4 bonds greater than 90%, more preferably still greater than 96%. In a preferred embodiment, the level of butadiene elastomer is within a range from 20 to 80 phr, preferably from 30 to 70 phr, more preferably between 30 and 70 phr and even more preferably from 35 to 65 phr.

[0042] Preferably in this advantageous embodiment, the elastomeric matrix comprises at least one isoprene elastomer chosen from the group consisting of natural rubber (NR), synthetic cis-1,4 polyisoprenes (IR), in particular those having a rate (mol%) of cis-1,4 bonds greater than 90% (more preferably still greater than 98%), isoprene-styrene copolymers (SIR), isoprene-butadiene copolymers (BIR), isoprene-butadiene-styrene copolymers (SBIR), and mixtures of these elastomers and at least one butadiene elastomer chosen from the group consisting of polybutadienes (BR), in particular a cis-1,4 polybutadiene having a rate (mol%) of cis-1,4 bonds greater than 90% (more preferably still greater than 96%), butadiene-styrene copolymers (SBR), ethylene-butadiene copolymers (EBR), and blends of these elastomers.

[0043] More preferably still, the elastomeric matrix comprises at least one isoprene elastomer chosen from the group consisting of natural rubber (NR), synthetic cis-1,4 polyisoprenes (IR), in particular those having a rate (mol%) of cis-1,4 bonds greater than 90% (more preferably still greater than 98%), and mixtures of these elastomers and at least one butadiene elastomer which is a polybutadiene (BR), in particular a cis-1,4 polybutadiene having a rate (mol%) of cis-1,4 bonds greater than 90% (more preferably still greater than 96%).

[0044] Even more preferably, the elastomeric matrix comprises at least one isoprene elastomer which is natural rubber (NR) and at least one butadiene elastomer which is a polybutadiene (BR), in particular a cis-1,4 polybutadiene having a rate (mol%) of cis-1,4 bonds greater than 90% (even more preferably greater than 96%).

[0045] In preferred embodiments in which the elastomeric matrix comprises at least one isoprene elastomer and at least one butadiene elastomer, the content of the isoprene elastomer is in a range from 20 to 80 phr and the content of butadiene elastomer is in a range from 20 to 80 phr. Preferably, in this embodiment, the content of the isoprene elastomer is in a range from 30 to 70 phr and the content of butadiene elastomer is in a range from 30 to 70 phr. More preferably, the content of the isoprene elastomer is in a range from 30 to 70 phr and the content of butadiene elastomer is in a range from 30 to 70 phr. More preferably again the rate of isoprene elastomer is included in a range going from 35 to 65 pce and the rate of butadiene elastomer is included in a range going from 35 to 65 pce. These rates make it possible to obtain a sidewall presenting good resistance to tearing.

[0046] In a particularly advantageous embodiment, the elastomeric matrix comprises at least one isoprene elastomer and at least one butadiene elastomer; the isoprene elastomer being chosen from the group consisting of natural rubber (NR), synthetic cis-1,4 polyisoprenes (IR), in particular those having a rate (mol%) of cis-1,4 bonds greater than 90% (more preferably still greater than 98%) and the rate of this isoprene elastomer being within a range from 20 to 80 phr, preferably, preferably ranging from 30 to 70 phr, preferably between 30 and 70 phr, more preferably still ranging from 35 to 65 phr;the butadiene elastomer being a polybutadiene (BR), in particular a cis-1,4 polybutadiene having a rate (mol%) of cis-1,4 bonds greater than 90% (more preferably still greater than 96%) and the rate of this butadiene elastomer being within a range of 20 to 80 phr, preferably ranging from 30 to 70 phr, preferably between 30 and 70 phr, more preferably still ranging from 35 to 65 phr.;

[0047] Reinforcing charge

[0048] The elastomeric composition of the sidewall of the invention comprises at least one reinforcing filler (i.e. one or more reinforcing fillers).

[0049] Any type of so-called reinforcing filler, known for its ability to reinforce an elastomeric composition usable in particular for the manufacture of tires, may be used, for example an organic filler such as carbon black, an inorganic filler such as silica or alumina or a mixture of these types of fillers. For the purposes of the present invention, the rubber crumb described below is not considered to be a reinforcing filler within the meaning of the invention. Consequently, the level of rubber crumb is not included in the level of reinforcing filler and is a level separate from it.

[0050] Preferably, the rate of the reinforcing filler is within a range from 5 to 70 phr, preferably from 5 to 60 phr, more preferably from 5 to 55 phr, even more preferably between 5 and 55 phr, very preferably between 10 and 50 phr and most preferably still from 20 to 45 phr. These rates make it possible to obtain a sidewall having good tear resistance properties.

[0051] All carbon blacks are suitable as carbon blacks, especially blacks conventionally used in tires. Among these, we will particularly mention the reinforcing carbon blacks of the 100, 200, 300 series, or the 500, 600 or 700 series blacks (grades ASTM D-1765-2017), such as for example blacks N115, N134, N234, N326, N330, N339, N347, N375, N550, N683, N772). These carbon blacks can be used in the isolated state, as commercially available, or in any other form, for example as a carrier for some of the rubber additives used. Carbon blacks could, for example, already be incorporated into the diene elastomer, in particular isoprene, in the form of a masterbatch (see, for example, applications WO97 / 36724-A2 or W099 / 16600-A1).

[0052] By "reinforcing inorganic filler" is meant here any inorganic or mineral filler, whatever its color and origin (natural or synthetic), also called "white" filler, "clear" filler or even "non-black" filler as opposed to carbon black, capable of reinforcing on its own, without any other means than an intermediate coupling agent, an elastomeric composition intended for the manufacture of tires. As is known, certain reinforcing inorganic fillers can be characterized in particular by the presence of hydroxyl groups (-OH) on their surface.

[0053] Suitable reinforcing inorganic fillers are, in particular, mineral fillers of the siliceous type, preferably silica (SiO2) or of the aluminous type, in particular alumina (AI2O3). The silica used may be any reinforcing silica known to those skilled in the art, in particular any precipitated or pyrogenic silica having a BET specific surface area and a CTAB specific surface area both of less than 450 m2 / g, preferably in a range from 30 to 400 m2 / g, in particular from 60 to 300 m2 / g. The BET specific surface area of ​​the silica is determined by gas adsorption using the Brunauer-Emmett-Teller method described in "The Journal of the American Chemical Society" (Vol.60, page 309, February 1938), and more precisely according to a method adapted from the standard NF ISO 5794-1, annex E of June 2010 [multipoint volumetric method (5 points) - gas: nitrogen - vacuum degassing: one hour at 160°C - relative pressure range p / po: 0.05 to 0.17], The CTAB specific surface area values ​​of silica were determined according to the standard NF ISO 5794-1, annex G of June 2010. The process is based on the adsorption of CTAB (N-hexadecyl-N,N,N-trimethylammonium bromide) on the "external" surface of the reinforcing filler.

[0054] Any type of precipitated silica may be used, in particular highly dispersible precipitated silicas (known as "HDS" for "highly dispersible" or "highly dispersible silica"). These precipitated silicas, whether highly dispersible or not, are well known to those skilled in the art. Examples include the silicas described in the applications W003 / 016215-A1 and W003 / 016387-A1. Commercial HDS silicas include the following silicas: “Ultrasil ® 5000GR”, “Ultrasil ® 7000GR” from Evonik, and silicas: “Zeosil ® 1085GR”, “Zeosil® 1115 MP”, “Zeosil® 1165MP”, “Zeosil® Premium 200MP”, “Zeosil® HRS 1200 MP” from Solvay.

[0055] The physical state in which the reinforcing inorganic filler is presented is indifferent, whether in the form of powder, microbeads, granules, or even beads or any other suitable densified form. Of course, the term reinforcing inorganic filler also means mixtures of different reinforcing inorganic fillers, in particular silicas as described above.

[0056] To couple the reinforcing inorganic filler, in particular silica, to the diene elastomer, it is possible to use, in a well-known manner, an at least bifunctional coupling agent (or bonding agent) intended to ensure a sufficient connection, of a chemical and / or physical nature, between the inorganic filler (surface of its particles) and the diene elastomer. In particular, at least bifunctional organosilanes or polyorganosiloxanes comprising a first functional group capable of interacting with the inorganic filler and a second functional group capable of interacting with the diene elastomer are used. For example, such a bifunctional compound may comprise a first functional group comprising a silicon atom, said first functional group being capable of interacting with the hydroxyl groups of an inorganic filler and a second functional group comprising a sulfur atom, said second functional group being capable of interacting with the diene elastomer.Preferably, the organosilanes are chosen from the group consisting of polysulfurized organosilanes (symmetrical or asymmetrical) such as bis(3-triethoxysilylpropyl) tetrasulfide, abbreviated to TESPT, marketed under the name “Si69” by the company Evonik or bis-(triethoxysilylpropyl) disulfide, abbreviated to TESPD, marketed under the name “Si75” by the company Evonik, polyorganosiloxanes, mercaptosilanes, blocked mercaptosilanes, such as S-(3-(triethoxysilyl)propyl) octanethioate marketed by the company Momentive under the name “NXT Silane”. More preferably, the organosilane is a polysulfurized organosilane.

[0057] According to an advantageous embodiment making it possible to confer good tear resistance properties and which can be combined with the other embodiments, the reinforcing filler mainly comprises carbon black, i.e. comprises at least 51% by weight of carbon black relative to the total weight of the reinforcing filler. Optionally in this advantageous embodiment, the reinforcing filler may also comprise silica or another inorganic filler. reinforcing. Preferably in this advantageous embodiment, the carbon black represents more than 60% by weight, preferably more than 80% by weight, more preferably more than 90% by weight, preferably represents 100% by weight of the total weight of the reinforcing filler.

[0058] Preferably, the level of reinforcing filler in the elastomeric composition is within a range from 5 to 70 phr, the carbon black representing more than 51% by weight, more than 60% by weight, preferably more than 80% by weight, more preferably more than 90% by weight, preferably representing 100% by weight of the total weight of the reinforcing filler.

[0059] More preferably, the level of reinforcing filler in the elastomeric composition is within a range from 5 to 60 phr, the carbon black representing more than 51% by weight, more than 60% by weight, preferably more than 80% by weight, more preferably more than 90% by weight, preferably representing 100% by weight of the total weight of the reinforcing filler.

[0060] Preferably again, the level of reinforcing filler in the elastomeric composition is within a range from 5 phr to 55 phr, the carbon black representing more than 51% by weight, more than 60% by weight, preferably more than 80% by weight, more preferably more than 90% by weight, preferably representing 100% by weight of the total weight of the reinforcing filler.

[0061] Preferably again, the level of reinforcing filler in the elastomeric composition is within a range of between 5 and 55 pce, the carbon black representing more than 51% by weight, more than 60% by weight, preferably more than 80% by weight, more preferably more than 90% by weight, preferably representing 100% by weight of the total weight of the reinforcing filler.

[0062] Even more preferably, the level of reinforcing filler in the elastomeric composition is within a range of between 10 and 50 phr, the carbon black representing more than 51% by weight, more than 60% by weight, preferably more than 80% by weight, more preferably more than 90% by weight, preferably representing 100% by weight of the total weight of the reinforcing filler.

[0063] Even more preferably, the level of reinforcing filler in the elastomeric composition is within a range from 20 to 45 phr, the carbon black representing more than 51% by weight, more than 60% by weight, preferably more than 80% by weight, more preferably more than 90% by weight, preferably representing 100% by weight of the total weight of the reinforcing filler.

[0064] Rubber powder

[0065] The elastomeric composition of the sidewall useful in the context of the present invention also contains rubber crumb (also called “crum rubber” in English).

[0066] The powders usable in the context of the present invention are in the form of granules, possibly formed into a rubber plate. Most often these powders are produced by grinding or micronizing vulcanized elastomeric compositions already used for a first application, for example in tires, shoe soles, seals, etc. They are a product of recycling these materials.

[0067] All rubber powders from the recycling of elastomeric compositions, particularly those from used tires, are suitable.

[0068] As is known, rubber crumb can be obtained by reducing used tires or other rubber into granules from which reinforcing materials such as steel or textile fibers have been removed, as well as any other contaminants such as dust, glass or stones.

[0069] For example, rubber crumbs were prepared by cryogenic grinding of used tires according to the process described in US 7,445,170, comprising the successive and independent steps of granulation, separation of the metal and textile reinforcements, cooling and micronization in order to obtain a rough distribution of micron particles of vulcanized mixture (also called microparticles). This micronization can be carried out using a conical impact crusher as described in US 7,861,958. The cryogenized input enters the crusher (for example, CUM150 crushers from Netzsch or CW250 crushers from Alpine can be used), then is transferred by gravity to a rotor rotating at high speed. The cryogenized input is thus projected onto the walls of the rotor chamber multiple times leading to its micronization.The particles can then pass through a series of two vibrating sieves of the same size in order to separate the last elements not made of vulcanized mixture. A rough distribution of micron particles of vulcanized mixture is obtained. By "microparticles" is meant particles which have a size, namely their diameter in the case of spherical particles or their largest dimension in the case of anisometric particles, of a few tens or hundreds of microns. The size of the microparticles can be determined by techniques known to those skilled in the art such as microscopy for example.

[0070] In embodiments, the rubber crumbs are simple ground / micronised rubber, without further processing. It is also known that rubber crumbs can undergo processing in order to modify them. This treatment can consist of a chemical modification of functionalization or devulcanization. It can also be a thermomechanical, thermochemical, biological treatment...

[0071] According to an advantageous embodiment giving the sidewall good tear resistance properties and which can be combined with the other embodiments, the rubber crumb is a crumb which has not undergone any modification by a treatment chosen from the group consisting of thermal, mechanical, biological and chemical treatments and their combinations.

[0072] According to an advantageous embodiment giving the sidewall good tear resistance properties and which can be combined with the other embodiments, the rubber crumb may have a microparticle size distribution such that it comprises less than 1% by mass of micro particles not retained through a 600 μm sieve and less than 10% by mass of micro particles not retained through a 105 μm sieve relative to the total mass of micro particles of the rubber crumb, more preferably a microparticle size distribution such that it comprises less than 1% by mass of micro particles not retained through a 600 μm sieve and less than 10% by mass of micro particles not retained through a 149 μm sieve;more preferably still a microparticle size distribution such that it comprises less than 1% by mass of microparticles not retained through a 600 μm sieve and less than 10% by mass of microparticles not retained through a 177 μm sieve; a microparticle size distribution such that it comprises less than 1% by mass of microparticles not retained through a 400 μm sieve, and less than 10% by mass of microparticles not retained through a 177 μm sieve relative to the total mass of microparticles of the rubber crumb. The distribution of microparticles of rubber crumb being determined according to standard ASTM D5644-01: 2013.;

[0073] According to an advantageous embodiment giving the sidewall good tear resistance properties and which can be combined with the other embodiments, the rubber crumb can have a microparticle size distribution such that it comprises less than 1% by mass of microparticles not retained through a 250 μm sieve and less than 10% by mass of microparticles not retained through a 177 μm sieve relative to the total mass of microparticles in the rubber crumb.

[0074] To obtain such a rubber powder with such a distribution, an additional sieving step according to a size criterion was carried out. Sieving can be carried out by different technologies (vibration, centrifugation, suction) known of the person skilled in the art. Preferably, this sieving step is carried out using a series of sieves stacked in order of size (sieves with calibrated mesh sizes such as the commercial products of the Gericke company, for example). Thus, the largest particles are retained on the sieve while the smallest pass to the lower stage on the next sieve. The person skilled in the art will understand that the distributions considered subsequently can be composed of all the particles passing a given sieve or of all the particles retained between 2 stages.

[0075] Rubber crumbs are usually made up of ingredients from an elastomeric composition used in tires. In other words, rubber crumbs are usually made up of a composition based on at least one elastomer and at least one filler, particularly a reinforcing filler. They may also include all the ingredients usually used in elastomeric compositions, particularly intended for the manufacture of tires, such as plasticizers, antioxidants, vulcanization additives, etc. These ingredients have been described above and, for the sake of brevity, are not repeated here.

[0076] Thus, the rubber crumbs comprise at least one diene elastomer as described above and at least one carbon black as described above. Preferably, this diene elastomer preferably represents at least 30% by mass, more preferably at least 35% by mass, even more preferably at least 40% by mass relative to the weight of the rubber crumb, percentage determined according to standard ASTM E1131-03. Preferably, the carbon black is present in the rubber crumb at a rate ranging from 20 to 40% by mass, more preferably from 25 to 35% by mass relative to the weight of the rubber crumb; percentage determined according to the method described above.

[0077] The measurement of the mass fraction of carbon black is carried out by thermogravimetric analysis (TGA) according to the NF T-46-07 standard, on a device from the company Mettler Toledo model "TGA / DSC1". Approximately 20g of sample is introduced into the thermal analyzer, then subjected to a thermal program from 25 to 600°C under an inert atmosphere (pyrolyzable phase) then from 400 to 750°C under an oxidizing atmosphere (oxidizable phase). The mass of the sample is measured continuously throughout the thermal program. The organic matter content corresponds to the mass loss measured during the pyrolyzable phase relative to the initial sample mass. The black content corresponds to the mass loss measured during the oxidizable phase relative to the initial sample mass.

[0078] A person skilled in the art knows how to adapt the rate of rubber crumb to the needs of the invention. The rubber crumbs that can be used in the context of the present invention are available from suppliers such as Lehigh Technology.

[0079] Preferably, the rubber powder content is within a range from 2 to 35 pce, more preferably between 5 and 33 pce, more preferably from 6 to 32 pce, more preferably from 7 to 31 pce, even more preferably from 8 to 30 pce.

[0080] According to an advantageous embodiment giving the sidewall good tear resistance properties, the weight ratio between the rubber crumb content expressed in pce and the reinforcing filler content expressed in pce is within a range from 0.25 to 1.50, preferably from 0.25 to 1.30, more preferably from 0.25 to 1.10 and even more preferably from 0.28 to 1.03.

[0081] Crosslinking system

[0082] In embodiments, the elastomeric composition comprises at least one crosslinking system.

[0083] The crosslinking system may be any type of system known to those skilled in the art in the field of elastomeric compositions for tires. It may in particular be based on sulfur, and / or peroxide and / or bismaleimides.

[0084] Preferably, the crosslinking system is sulfur-based, in which case it is referred to as a vulcanization system. The sulfur can be provided in any form, in particular in the form of molecular sulfur, or a sulfur-donating agent. At least one vulcanization accelerator is also preferably present, and, optionally, also preferably, various known vulcanization activators can be used, such as zinc oxide, stearic acid or an equivalent compound such as stearic acid salts and transition metal salts, guanidine derivatives (in particular diphenylguanidine), or even known vulcanization retarders.Any compound capable of acting as an accelerator for the vulcanization of diene elastomers in the presence of sulfur may be used as an accelerator, in particular accelerators of the thiazole type and their derivatives, accelerators of the sulfenamide, thiuram, dithiocarbamate, dithiophosphate, thiourea and xanthate types.

[0085] Sulphur may be used at a preferential rate in the range of 0.5 to 12 pce, in particular 0.7 and 7 pce. The vulcanisation accelerator may be used at a preferential rate in the range of 0.5 to 10 pce, more preferably 0.5 to 5.0 pce.

[0086] Other additives

[0087] The elastomeric composition may optionally also include all or part of the usual additives and implementing agents, known to those skilled in the art and usually used in elastomeric compositions intended in particular for the manufacture of tires, in particular sidewalls, such as for example plasticizers (such as plasticizing oils and / or plasticizing resins), non-reinforcing fillers, pigments, protective agents such as anti-ozone waxes, chemical antiozonants, antioxidants, anti-fatigue agents, reinforcing resins (as described for example in application WO02 / 10269).

[0088] Plasticizing agent

[0089] In embodiments for softening the sidewall and thus making it less susceptible to tearing, the elastomeric composition optionally comprises at least one plasticizing agent (i.e., one or more plasticizing agents). In addition to improving tear resistance, the plasticizing agent makes it possible to reduce the hysteresis of the tire sidewall and therefore the rolling resistance of the tire.

[0090] In preferred and optional embodiments, the plasticizing agent is selected from the group consisting of plasticizing oils, high Tg plasticizing resins, and mixtures of these plasticizing agents.

[0091] According to an advantageous embodiment giving the sidewall good tear resistance properties and which can be combined with the other embodiments, the elastomeric composition comprising a plasticizing agent, the level of plasticizing agent is within a range from 2 to 28 phr, more preferably from 7 to 24 phr, more preferably still from 10 to 20 phr.

[0092] Any extender oil, whether aromatic or non-aromatic, known for its plasticizing properties with respect to the elastomer matrix, can be used. At room temperature (23°C), these oils, more or less viscous, are liquids (that is to say, as a reminder, substances having the capacity to eventually take the shape of their container), in contrast in particular to high Tg hydrocarbon resins which are by nature solid at room temperature and atmospheric pressure.

[0093] Plasticizing oil generally has a glass transition temperature, Tg, below -20°C, preferably below -40°C. The Tg of plasticizing oil is measured according to ASTM D3418 (2008).

[0094] In certain embodiments, particularly suitable, as plasticizing agent for the elastomeric composition, are plasticizing oils chosen from the group consisting of naphthenic oils (low or high viscosity, in particular hydrogenated or not), paraffinic oils, DAE oils (Distillate Aromatic Extracts), polyolefin oils, MES oils (Medium Extracted Solvates), TDAE (Treated Distillate Aromatic Extracts) oils, RAE (Residual Aromatic Extract) oils, TRAE (Treated Residual Aromatic Extract) oils and SRAE (Safety Residual Aromatic Extract) oils, mineral oils, vegetable oils, ether plasticizers, ester plasticizers, phosphate plasticizers, sulfonate plasticizers and mixtures of these plasticizing oils.

[0095] According to an advantageous embodiment giving the sidewall very good tear resistance properties and which can be combined with the other embodiments of the invention, the plasticizing agent is an oil chosen from the group consisting of MES oils, TDAE oils, RAE oils, TRAE oils, SRAE oils, mineral oils, vegetable oils and mixtures of these plasticizing oils.

[0096] By definition, a high Tg hydrocarbon resin is by definition a solid at room temperature and pressure (23°C, 1 atm), while a plasticizing oil is liquid at room temperature and a low Tg hydrocarbon resin is viscous at room temperature.

[0097] Hydrocarbon resins, also called hydrocarbon plasticizing resins, are polymers well known to those skilled in the art, essentially based on carbon and hydrogen but which may contain other types of atoms, for example oxygen, which can be used in particular as plasticizing agents or tackifying agents in polymer matrices. They are by nature at least partially miscible (i.e., compatible) at the rates used with the polymer compositions for which they are intended, so as to act as true diluting agents. They have been described for example in the work entitled "Hydrocarbon Resins" by R. Mildenberg, M. Zander and G. Collin (New York, VCH, 1997, ISBN 3-527-28617-9) of which chapter 5 is devoted to their applications, in particular in pneumatic rubber (5.5. "Rubber Tires and Mechanical Goods").As is known, these hydrocarbon resins can also be described as thermoplastic resins in the sense that they soften upon heating and can thus be molded.

[0098] The softening point of hydrocarbon resins is measured according to ISO 4625 (“Ring and Bail” method). The Tg of the hydrocarbon resin is measured according to ASTM D3418 (2008). The macrostructure (Mw, Mn and Ip) of the hydrocarbon resin is determined by size exclusion chromatography (SEC): tetrahydrofuran solvent; temperature 35°C; concentration 1 g / l; flow rate 1 ml / min; solution filtered through a 0.45 pm porosity filter before injection; Moore calibration with polystyrene standards; set of 3 “WATERS” columns in series (“STYRAGEL” HR4E, HR1 and H R0.5); detection by differential refractometer (“WATERS 2410”) and its associated operating software (“WATERS EMPOWER”).

[0099] Hydrocarbon resins can be aliphatic, or aromatic or of the aliphatic / aromatic type, i.e. based on aliphatic and / or aromatic monomers. They can be natural or synthetic, based on petroleum or not (if this is the case, also known as petroleum resins). Suitable aromatic monomers include, for example, styrene, alpha-methylstyrene, indene, ortho-, meta-, para-methylstyrene, vinyl toluene, para-tert-butylstyrene, methoxystyrenes, chlorostyrenes, vinyl mesitylene, divinylbenzene, vinyl naphthalene, any vinyl aromatic monomer from a C9 fraction (or more generally from a C8 to C10 fraction). Preferably, the vinylaromatic monomer is styrene or a vinylaromatic monomer from a C9 cut (or more generally from a C8 to C10 cut). Preferably, the vinylaromatic monomer is the minority monomer, expressed as a molar fraction, in the copolymer considered.

[0100] In certain embodiments, particularly suitable plasticizing agents for the elastomeric composition are hydrocarbon plasticizing resins selected from the group consisting of cyclopentadiene (abbreviated CPD) or dicyclopentadiene (abbreviated DCPD) homopolymer or copolymer resins, terpene homopolymer or copolymer resins, terpene phenol homopolymer or copolymer resins, C5-cut homopolymer or copolymer resins, C9-cut homopolymer or copolymer resins, alpha-methyl-styrene homopolymer and copolymer resins and mixtures of these resins.The term "terpene" here includes in a known manner the monomers alpha-pinene, beta-pinene and limonene; preferably a limonene monomer is used, a compound which is present in a known manner in the form of three possible isomers: L-limonene (levorotatory enantiomer), D-limonene (dextrorotatory enantiomer), or dipentene, racemic of the dextrorotatory and levorotatory enantiomers. Among the above hydrocarbon plasticizing resins, mention will be made in particular of homo- or copolymer resins of alpha-pinene, beta-pinene, dipentene or polylimonene.

[0101] Very preferably, the hydrocarbon resin is mainly composed of units derived from C5 monomers. By C5 monomers, it is conventionally understood for those skilled in the art to mean monomers derived from C4 to C6 petroleum fractions. Suitable examples are 1,3 pentadienes, cis and trans, pentenes, cyclopentadiene, cyclopentene, piperylene, isoprene, etc. This so-called C5 resin, mainly composed of units derived from C5 monomers, may comprise, in addition to these units, and in a minority, aliphatic or aromatic units or even of the aliphatic / aromatic type, i.e. based on aliphatic and / or aromatic monomers, other than C5. Preferably, the hydrocarbon resin that can be used, is mainly composed of units derived from C5 monomers, has an aromatic proton content of less than 20%, preferably less than 15%, more preferably an aromatic proton content in a range from 7 to 15%, preferably from 9 to 13%. Also preferably, this hydrocarbon resin has an ethylenic proton content of less than 15%, preferably less than 7%, more preferably less than 5%. Preferably, the C5 hydrocarbon resin has a glass transition temperature (Tg) in a range from 30°C to 80°C, preferably from 40 to 60°C. The C5 hydrocarbon resin has an average molecular weight Mn in a range from 500 g / mol to 3000 g / mol and preferably from 700 to 2000 g / mol. Preferably, the hydrocarbon resin has a polymolecularity index (PMI) in a range from 1 to 4, preferably from 1.5 to 3.5, more preferably from 1.7 to 3.There are many hydrocarbon resins available commercially. These resins may have characteristics, including chemical composition, Tg, Mn, aromatic proton content, ethylenic proton content, or Ip, which differ depending on the supplier. The macrostructure (Mw, Mn, Ip, and Mz) of the hydrocarbon resin is determined by size exclusion chromatography (SEC) based on ISO 16014 (Determination of average molecular mass and molecular mass distribution of polymers using size exclusion chromatography), ASTM D5296 (Molecular Weight Averages and molecular weight distribution of polystyrene by High performance size exclusion chromatography), and DIN 55672 (size exclusion chromatography). The aromatic proton content (%HA) and the ethylenic proton content (%HE) are measured by 1 H NMR. This determination is performed relative to all the detected signals. Thus, the results obtained are expressed in % of peak area.C5 resins are commercially available, for example sold by Eastman under the name "Piccotac 1105" or "Impera R1507", by Exxon under the name "Escorez 1102", by Kolon under the name "Hikorez A1100" or by Cray Valley Total under the name "Wingtack98". C5-C9 resins are commercially available, for example sold by Exxon under the name "OPPERA373", by Eastman under the name "Piccotac 8090", by Cray Valley Total under the name "Wingtack STS".

[0102] When the plasticizing agent is a mixture of a hydrocarbon resin and an oil, the plasticizing agent content is the sum of the hydrocarbon resin content in pce and the oil content in pce, for the calculation of the ratio described above.

[0103] According to an advantageous embodiment giving the sidewall good tear resistance properties, the elastomeric composition comprising an agent plasticizer, the weight ratio between the rate of reinforcing filler expressed in pce and the rate of plasticizing agent expressed in pce is less than or equal to 4.50, preferably 4.00 and more preferably 3.75.

[0104] According to an advantageous embodiment giving the sidewall good tear resistance properties, the elastomeric composition comprising a plasticizing agent, the weight ratio between the level of reinforcing filler expressed in pce and the level of plasticizing agent expressed in pce is greater than or equal to 1.00, preferably 2.00 and more preferably 2.42.

[0105] Anti-ozone wax

[0106] Anti-ozone waxes are known and can be, for example, paraffin waxes, microcrystalline waxes or mixtures of paraffin and microcrystalline waxes. They consist of a mixture of linear alkanes and non-linear alkanes (isoalkanes, cycloalkanes, branched alkanes) derived from petroleum refining or the catalytic hydrogenation of carbon monoxide (Fisher Tropsch process) mainly comprising chains of at least 20 carbon atoms.

[0107] All known anti-ozone waxes can be used, including natural waxes such as candelilla wax or carnauba wax. These waxes can also be used for cutting.

[0108] Commercially available anti-ozone waxes include Sasol's "Varazon 4959", "Varazon 6500" and "Varazon 6810", Nippon Seiro's "Ozoace 0355", H&R's "Negozone 9343" and Yanggu Huatai's "H3841".

[0109] According to a preferred embodiment of the elastomeric composition useful in the context of the present invention and which can be combined with the embodiments of the invention, the wax content is within a range from 1 to 3 pce, more preferably within a range from 1.2 pce to 2.8 pce.

[0110] Process for preparing the elastomeric composition useful in the context of the present invention

[0111] The elastomeric composition useful in the context of the present invention is manufactured in suitable mixers, using two successive preparation phases well known to those skilled in the art: - a first phase of thermomechanical working or mixing (so-called "non-productive" phase), which can be carried out in a single thermomechanical step during which all the necessary constituents are introduced into a suitable mixer such as a standard internal mixer (for example of the "Banbury" type), in particular the elastomeric matrix, the reinforcing filler, the rubber crumb and any other various additives, with the exception of the crosslinking system. The non-productive phase can be carried out at high temperature, up to a maximum temperature in the range from 110°C to 200°C, preferably from 130°C to 185°C, for a duration generally of between 2 and 10 minutes; - a second mechanical working phase (so-called "productive" phase), which is carried out in an external mixer such as a roller mixer, after cooling the mixture obtained during the first non-productive phase to a lower temperature, typically below 120°C, for example ranging from 40°C to 100°C. The crosslinking system is then incorporated, preferably the vulcanization system (in particular the vulcanization agent, the vulcanization accelerator and optionally the vulcanization retarder if present), and everything is then mixed for a few minutes, for example from 5 to 15 min.

[0112] The final elastomeric composition thus obtained is then calendered, for example, in the form of a sheet or plate, in particular for characterization in the laboratory, or extruded in the form of a semi-finished (or profile) rubber usable for a sidewall of a tire.

[0113] The elastomeric composition can be either in the raw state (before crosslinking or vulcanization), or in the cured state (after crosslinking or vulcanization), can be a semi-finished product which can be used in a tire.

[0114] The crosslinking, in particular the vulcanization, of the elastomeric composition can be carried out in a manner known to those skilled in the art, for example at a temperature in a range from 130°C to 200°C, under pressure.

[0115] The tires are intended for passenger vehicles as defined in the ETRTO standard manual, 2021. Such a tire has a section in a meridian cutting plane characterized by a section height H and a nominal section width or flange thickness S within the meaning of the ETRTO standard manual, 2021 such that, optionally, the H / S ratio, expressed as a percentage, is at most equal to 90, preferably at most equal to 50 and more preferably at most equal to 40 and is at least equal to 20, preferably at least equal to 25, and the nominal section width S is at least equal to 155 mm, preferably at least equal to 205 mm and more preferably at least equal to 225 mm and at most equal to 385 mm, preferably at most equal to 335. In addition, the hook diameter D, defining the diameter of the tire mounting rim, is at least equal to 12 inches, preferably at least equal to 16 inches and at most equal to 24 inches.

[0116] Optionally, the tire includes a carcass reinforcement comprising at least one carcass layer anchored in the or each bead and extending radially in the or each sidewall and axially in the crown radially internal to the crown reinforcement.

[0117] Optionally, the or each carcass layer is delimited axially by two axial ends and comprises carcass reinforcement elements extending axially from one axial end to the other of said carcass layer in a main direction forming, optionally and preferably, with the circumferential direction of the tire, an angle, in absolute value, greater than or equal to 60°, preferably ranging from 80° to 90°.

[0118] In some variants, the carcass reinforcement comprises a single carcass layer anchored in the or each bead and extending radially in each sidewall and axially in the crown radially inward to the crown reinforcement. By single carcass layer anchored in the or each bead, it is understood that the carcass reinforcement is, with the exception of the carcass layer, devoid of any layer reinforced by reinforcing elements and anchored in the or each bead. The reinforcing elements of such reinforced layers excluded from the carcass reinforcement of the tire include the metal reinforcing elements and the textile reinforcing elements. Very preferably, the carcass reinforcement is constituted by the single carcass layer. Even more preferably, the tire is devoid of a sidewall reinforcing layer as defined below.

[0119] In a first configuration of the carcass reinforcement comprising a single carcass layer, the carcass layer anchored in each bead forms a wrap around a circumferential reinforcing element of each bead such that an axially inner portion of the carcass layer anchored in each bead is arranged axially inside an axially outer portion of the carcass layer anchored in each bead.

[0120] In a second configuration of the carcass reinforcement comprising a single carcass layer, each bead comprises an axially inner circumferential reinforcing element arranged axially inside the carcass layer and an axially outer circumferential reinforcing element arranged axially outside the carcass layer, for example as described in WO2021 / 123522.

[0121] In some variants, the carcass reinforcement comprises first and second carcass layers anchored in the or each bead and extending radially in each sidewall and axially in the crown radially inward of the crown reinforcement.

[0122] In a first configuration of the carcass reinforcement comprising first and second carcass layers, the first carcass layer forms a wrap around a circumferential reinforcing element of each bead such that an axially inner portion of the first carcass layer is arranged axially inside an axially outer portion of the first carcass layer and such that each axial end of the first carcass layer is arranged radially outside each circumferential reinforcing element, and each axial end of the second carcass layer is arranged radially inside each axial end of the first layer.

[0123] In a first variant of the first configuration, each axial end of the second carcass layer is arranged axially between the axially inner and outer portions of the first carcass layer. In this variant, the second carcass layer is arranged radially outside the first carcass layer in the crown.

[0124] In a second variant of the first configuration, each axial end of the second carcass layer is arranged axially inside each axially inner portion of the first carcass layer. In this variant, the second carcass layer is arranged radially inside the first carcass layer in the crown and axially inside the first carcass layer in each sidewall.

[0125] Such arrangements of the first and second carcass layers in the first and second variants make it possible to obtain an effective mechanical coupling between the first and second carcass layers making it possible to reduce the shear between the first and second carcass layers. Thus, energy dissipation and the rise in the temperature of the tire are reduced, all the more so since the shear is particularly high at high loads.

[0126] Furthermore, thanks to the particular arrangement of the first and second carcass layers, a tyre with optimum energy dissipation and operating temperature in the sidewall is surprisingly obtained, particularly under heavy load and at a pressure lower than or equal to the pressure recommended for a tyre of the same size in its STANDARD LOAD or EXTRA-LOAD version. This is all the more surprising since the particular arrangement of the first and second carcass layers is located in one area of ​​the tyre, here in the bead or close to the bead, and this makes it possible to reduce energy dissipation in another area of ​​the tyre, far from the bead, here the sidewall. It has been discovered that the particular arrangement of the carcass reinforcement, i.e. the fact that each axial end of the second carcass layer is arranged axially between the axially inner and outer portions of the first carcass layer, or axially inside the axially inner portion of the first carcass layer, makes it possible to reduce the difference in tensions between the first carcass layer and the second carcass layer. However, the smaller the difference in tensions between the first and second carcass layers, the less shear is generated between these first and second carcass layers and the less energy is dissipated.

[0127] In a third variant of the first configuration, each axial end of the second carcass layer is arranged axially outside each axially outer portion of the first carcass layer. In this variant, the second carcass layer is arranged radially outside the first carcass layer in the crown and axially outside the first carcass layer in each sidewall.

[0128] This third variant is particularly advantageous for tires with relatively high sidewalls. Indeed, for HIGH LOAD CAPACITY type tires with a relatively high sidewall height, the tension of the end of the first carcass layer becomes high, it is preferable to consider a carcass reinforcement in which, unlike the arrangement described in the first and second configurations, each axial end of the second carcass layer is arranged axially outside each axially outer portion of the first carcass layer. With such an arrangement of the carcass reinforcement, the tension of the end of the first carcass layer will be reduced to a lower level.

[0129] In a second configuration of the carcass reinforcement comprising first and second carcass layers, each bead comprising at least first and second circumferential reinforcing elements, a portion of each first and second carcass layer is arranged axially between two of the at least first and second circumferential reinforcing elements. Such configurations are described in particular in WO2021 / 123522.

[0130] Regardless of the number of carcass layers of each first configuration, in certain variants, each axial end of the carcass layer or of the first carcass layer is arranged radially inside the equator of the tire and even more preferably arranged at a radial distance less than or equal to 30 mm from a radially inner end of each circumferential reinforcing element of each bead.

[0131] By arranging each axial end of the wound carcass layer at inside the equator of the tire, the mass of the carcass reinforcement is significantly reduced. In addition, the vast majority of rims currently used for passenger vehicle tires have J-type hooks whose height is, in all cases, less than 30 mm. The very preferential arrangement of each axial end in an area corresponding radially substantially to the rim hook makes it possible to mechanically protect each axial end.Indeed, if each axial end were arranged radially too far above each circumferential reinforcing element of each bead, i.e. at a radial distance strictly greater than 30 mm from the radially inner end of each circumferential reinforcing element, each axial end would then find itself in a flexible zone of the tyre subjected to excessive stresses, stresses which are very significant in the case of a HIGH LOAD CAPACITY type tyre.

[0132] Regardless of the number of carcass layers of each first configuration, in other variants, each axial end of the carcass layer or of the first carcass layer is arranged radially outside the equator of the tire. Advantageously, in these other embodiments, each axial end of the carcass layer or of the first carcass layer is very preferably arranged axially inside an axial end of the or at least one of the crown layers of the crown reinforcement.

[0133] In still other variants, the carcass reinforcement comprises a single carcass layer anchored in each bead and extending radially in each sidewall and axially in the crown radially inside the crown reinforcement, the tire comprising a sidewall reinforcement layer extending at least radially in each sidewall and having: - a radially inner end arranged radially inside the equator of the tire, - a radially outer end arranged radially outside the equator of the tire.

[0134] In these still other variants, the invention makes it possible in particular to avoid the use of a second carcass layer extending axially in the crown radially inside the crown reinforcement. Thus, the sidewall reinforcement layers are discontinuous under the crown of the tire.

[0135] A sidewall reinforcement layer is not anchored in a bead of the tire. Thus, the radially inner end of the sidewall reinforcement layer is arranged radially outside the bead.

[0136] In advantageous embodiments, the crown frame comprises a working reinforcement comprising at least one working layer and a hoop reinforcement comprising at least one hoop layer, the hoop reinforcement being arranged radially outside the working reinforcement.

[0137] Optionally, the or each hoop layer is delimited axially by two axial ends. The or each hoop layer comprises one or more hoop reinforcement elements wound circumferentially helically so as to extend axially from one axial end to the other of the hoop layer in a main direction. Optionally and preferably, the main direction forms, with the circumferential direction of the tire, an angle, in absolute value, less than or equal to 10°, preferably less than or equal to 7° and more preferably less than or equal to 5°.

[0138] Optionally, the or each working layer is delimited axially by two axial ends. The or each working layer comprises working reinforcement elements extending axially from one axial end to the other substantially parallel to each other in a main direction which, optionally and preferably, forms, with the circumferential direction of the tire, an angle in absolute value, strictly greater than 10°, preferably ranging from 15° to 50° and more preferably ranging from 25° to 45°.

[0139] Preferably, the or each hoop, working and carcass reinforcing element is a wire reinforcing element.

[0140] By reinforcing element is meant an element allowing the mechanical reinforcement of the polymer matrix in which this reinforcing element is intended to be embedded.

[0141] Preferably, each reinforcing element is wire-like, that is to say that each reinforcing element has a length at least 10 times greater than the largest dimension of its section regardless of the shape of the latter: circular, elliptical, oblong, polygonal, in particular rectangular or square or oval. In the case of a rectangular section, the wire-like reinforcing element has the shape of a strip.

[0142] In optional but advantageous embodiments, the tire has a sidewall height H defined by H=SW x AR / 100 with SW the nominal section width and AR the nominal aspect ratio of the tire and a load index Ll verifying 0.72 < H / LI < 0.98 preferably 0.82 < H / LI < 0.98 and even more preferably 0.82 < H / LI < 0.92 with SW, AR and Ll being defined according to the ETRTO 2021 standard manual. The nominal section width SW and the nominal aspect ratio AR are those of the dimension marking inscribed on the sidewall of the tire and, for example, in accordance with the ETRTO 2021 standard manual. Such H / LI ratios are characteristic of tires having a sidewall likely to flex very strongly considering the height of the sidewall relative to the maximum load likely to be carried.

[0143] The invention will be better understood on reading the description which follows, given solely by way of non-limiting example and made with reference to the drawings in which: Figure 1 is a view, in a meridian section plane parallel to the axis of rotation of the tire, of a tire according to a first embodiment of the invention, Figures 2 to 6 are views similar to that of Figure 1 of tires respectively according to second, third, fourth, fifth and sixth embodiments of the invention.

[0144] In the figures relating to the tire, a reference X, Y, Z is shown corresponding to the usual axial (Y), radial (Z) and circumferential (X) directions of a tire.

[0145] Figure 1 shows a tire, in accordance with the invention and designated by the general reference 10. The tire 10 has a substantially toric shape around an axis of revolution substantially parallel to the axial direction Y. The tire 10 is intended for a passenger vehicle and has dimensions 255 / 35 R18. The tire 10 is of the HIGH LOAD CAPACITY type according to the ETRTO 2021 standard manual. In the various figures, the tire 10 is shown in new condition, that is to say not having yet been driven. The tire 10 has a sidewall height H defined by H=SW x AR / 100 with SW the nominal section width, here 255, and AR the nominal aspect ratio of the tire, here 35. The load index Ll is here equal to 98. Thus, the load index Ll verifies 0.72 < H / LI < 0.98 preferably 0.82 < H / LI < 0.98 and even more preferably 0.82 < H / LI < 0.92 and here H / LI=0.91. SW, AR and Ll are defined according to the ETRTO 2021 standard manual.

[0146] The tire 10 comprises a crown 12 comprising a tread 14 intended to come into contact with a ground during rolling and a crown reinforcement 16 extending in the crown 12 in the circumferential direction X. The tire 10 also comprises an internal sealing layer 18 to an inflation gas being intended to delimit an internal cavity with a mounting support of the tire 10 once the tire 10 is mounted on the mounting support, for example a rim, this cavity being intended to be pressurized by the inflation gas. The internal sealing layer 18 carries an internal surface 19 of the tire 10. The tire 10 also has an external surface 31.

[0147] The top frame 16 comprises a working frame 20 and a frame hooping 22, each of these reinforcements 20, 22 comprising at least one crown layer. The working reinforcement 20 comprises at least one working layer and here comprises two working layers comprising a radially inner working layer 24 arranged radially inside a radially outer working layer 26.

[0148] The hoop reinforcement 22 comprises at least one hoop layer and here comprises a hoop layer 28.

[0149] The crown reinforcement 16 is arranged radially inside the tread 14. Here, the hoop reinforcement 22, here the hoop layer 28, is arranged radially outside the working reinforcement 20 and is therefore radially interposed between the working reinforcement 20 and the tread 14.

[0150] The tire 10 comprises two sidewalls 30 extending the crown 12 radially inwards. The tire 10 further comprises two beads 32 radially inwards to the sidewalls 30. Each sidewall 30 connects each bead 32 to the crown 12. Each sidewall 30 carries a portion of the external surface 31 of said sidewall 30. Each sidewall 30 comprises an elastomeric composition as described above and exemplified below.

[0151] The tire 10 comprises a carcass reinforcement 34. The crown reinforcement 16 is arranged radially between the tread 14 and the carcass reinforcement 34. The carcass reinforcement 34 comprises at least one carcass layer 36, here a single carcass layer 36, anchored in each bead 32. The carcass layer 36 extends radially in each sidewall 30 and axially in the crown 12, radially inside the crown reinforcement 16.

[0152] For the purpose of anchoring the carcass layer 36, the tire 10 comprises an axially inner circumferential reinforcing element 38 arranged axially inside the carcass layer 36 and an axially outer circumferential reinforcing element 40 arranged axially outside the carcass layer 36. Here each reinforcing element 38, 40 comprises a continuous wire reinforcing element wound over several circumferential turns, for example as described in WO2021 / 123522.

[0153] The crown reinforcement 16 comprises two axial ends 161, 162 merged here with the ends of the axially widest layer of the crown reinforcement 16.

[0154] Each working layer 24, 26, hooping layer 28 and carcass layer 36 comprises a polymeric matrix, here elastomeric, in which one or more reinforcing elements of the corresponding layer are embedded, here wire reinforcement elements. The matrix is ​​said to be polymeric because it is based on a polymeric composition, this composition polymeric which may comprise one or more polymers, for example chosen from thermoplastic polymers, thermosetting polymers, elastomers, thermoplastic elastomers, but also fillers and other components usually used in the field of tire compositions, in particular compositions for embedding reinforcing elements.

[0155] The hoop reinforcement 22, here the hoop layer 28, is delimited axially by two axial ends, here the axial ends 161, 162. The hoop reinforcement 22 comprises one or more hoop wire reinforcement elements wound circumferentially helically so as to extend axially from one axial end to the other of the hoop layer 28 in a main direction DO. The main direction DO forms, with the circumferential direction X of the tire 10, an angle AF, in absolute value, less than or equal to 10°, preferably less than or equal to 7° and more preferably less than or equal to 5°. Here, AF=-5°.

[0156] The radially inner working layer 24 is delimited axially by two axial ends. The radially inner working layer 24 comprises working filamentary reinforcing elements extending axially from one axial end to the other substantially parallel to each other in a main direction D1. Similarly, the radially outer working layer 26 is delimited axially by two axial ends. The radially outer working layer 26 comprises working filamentary reinforcing elements extending axially from the axial end to the other substantially parallel to each other in a main direction D2. Each main direction D1, D2 forms, with the circumferential direction X of the tire 10, angles AT1 and AT2 respectively of opposite orientations.Each main direction D1, D2 forms, with the circumferential direction X of the tire 10, an angle respectively AT1, AT2, in absolute value, strictly greater than 10°, preferably ranging from 15° to 50° and more preferably ranging from 25° to 45°. Here, AT1=-33° and AT2=+33°.

[0157] The carcass layer 36 is delimited axially by two axial ends 361, 362. The carcass layer 36 comprises carcass wire reinforcement elements extending axially from one axial end 361, 362 to the other of the carcass layer 36 in a main direction D3 forming with the circumferential direction X of the tire 10, an angle AC, in absolute value, greater than or equal to 60°, preferably ranging from 80° to 90° and here AC=+90°.

[0158] Each hoop, working and carcass wire reinforcement element is, for example, identical to those described in application WO2021 / 123522.

[0159] The 14 tread comprises a 38 tread surface per through which the tread 14 comes into contact with the ground. The tread 14 comprises several circumferential cutouts, here several circumferential grooves, comprising first, second, third and fourth circumferential cutouts respectively designated by the references 52, 54, 56, 58.

[0160] The tread 14 also comprises several central ribs and here first, second and third central ribs respectively designated by the references 62, 64, 66. Each central rib 62, 64, 66 is arranged axially between two of the adjacent circumferential cutouts 52 to 58 and is delimited axially by two adjacent circumferential cutouts 52 to 58. The tread 14 also comprises first and second lateral ribs 68, 70.

[0161] Although not visible in Figure 1, each central rib 62, 64, 66 and each lateral rib 68, 70 includes transverse cutouts formed in each central rib 62, 64, 66 and each lateral rib 68, 70.

[0162] We will now describe tires according to second, third, fourth, fifth and sixth embodiments of the invention respectively with reference to Figures 2 to 6 in which the elements similar to those shown in the preceding figures are designated by identical references.

[0163] Unlike the tire according to the first embodiment, the tire 10 according to the second embodiment of FIG. 2 is such that the carcass layer 36 anchored in each bead 32 forms a winding around a circumferential reinforcing element 35 of each bead 32, here a bead wire, so that an axially inner portion 3611, 3621 of the carcass layer 36 anchored in each bead 32 is arranged axially inside an axially outer portion 3612, 3622 of the carcass layer 36 anchored in each bead 32 and so that each axial end 361, 362 axially delimiting the carcass layer 36 anchored in each bead 32 is arranged radially outside each circumferential reinforcing element. 35. Each axial end 361, 362 of the carcass layer 36 anchored in each bead 32 is arranged radially inside the equator E of the tire.More precisely, each axial end 361, 362 of the carcass layer 36 anchored in each bead 32 is arranged at a radial distance RNC less than or equal to 30 mm from a radially inner end 351 of each circumferential reinforcing element 33 of each bead 32. Here RNC=23 mm.

[0164] Unlike the tire according to the second embodiment, the tire 10 according to the third embodiment of FIG. 3 is such that each axial end 361, 362 of the carcass layer 36 is arranged radially at outside the equator E. Here, each axial end 361, 362 of the carcass layer 36 is arranged very preferably axially inside each axial end 161, 162 of the hooping layer 28.

[0165] Unlike the tires according to the previous embodiments, the carcass reinforcement 34 of the tire 10 according to the fourth embodiment of FIG. 4 comprises first and second carcass layers 36, 37 anchored in each bead 32 and extending radially in each sidewall 30 and axially in the crown 12 radially inside the crown reinforcement 16. The second carcass layer 37 is arranged axially outside the first carcass layer 36 in each sidewall and radially outside the first carcass layer 37 in the crown 12.

[0166] The second carcass layer 37 is delimited axially by two axial ends 371, 372. The second carcass layer 37 comprises wire carcass reinforcement elements extending axially from one axial end 371, 372 to the other of the second carcass layer 37 in a main direction D4 forming with the circumferential direction X of the tire 10, an angle AC, in absolute value, greater than or equal to 60°, preferably ranging from 80° to 90° and here AC=+90°.

[0167] Unlike the tire according to the fourth embodiment, the tire 10 according to the fifth embodiment of Figure 5 is such that the first carcass layer 36 is arranged as in the second embodiment illustrated in Figure 2. Furthermore, each axial end 371, 372 of the second carcass layer 37 is arranged axially between the axially inner 3611, 3621 and outer 3612, 3622 portions of the first carcass layer 36. The second carcass layer 37 is arranged radially outside the first carcass layer 36 in the crown 12.

[0168] Other variants of arrangement of the second carcass layer 37 are possible as previously described in the generic description of the present application.

[0169] Unlike the first and second embodiments, the tire 10 according to the sixth embodiment of FIG. 6 comprises two sidewall reinforcement layers 42, 43 extending at least radially in each sidewall 30 and having a radially inner end 421, 431 arranged radially inside the equator E and a radially outer end 422, 432 arranged radially outside the equator E. The tire 10 therefore comprises two sidewall reinforcement layers 42, 43 which are discontinuous under the crown 12.

[0170] Comparative tests

[0171] In order to confirm the properties of the elastomeric composition useful in the context of the present invention, eleven elastomeric compositions (a reference elastomeric composition T1 and elastomeric compositions C1 to C10) were used. Each of the formulations of the elastomeric compositions is presented in Table 1 with the quantity of the various ingredients expressed in pce.

[0172] Each elastomeric composition was produced as follows: the reinforcing filler, the elastomeric matrix, the anti-ozone wax, the rubber crumb when present, the plasticizing agent and the various other ingredients, with the exception of the vulcanization system, were successively introduced into an internal mixer having an initial tank temperature of 60°C; the “Bandury” type internal mixer being filled to approximately 70% by volume. The thermomechanical working (non-productive phase) was then carried out in a single step lasting from 3 minutes to 4 minutes, until a maximum “drop” temperature of 165°C was reached.The mixture thus obtained was recovered and cooled, then the vulcanizing agent (sulfur) and the vulcanization accelerator (N-cyclohexyl-2-benzothiazolesulfenamide) of the crosslinking system were incorporated on an external mixer (homofinisseur) at a temperature of 30°C, the whole being mixed (productive phase) for a time of more than 5 minutes and less than 12 minutes.

[0173] The elastomeric compositions thus obtained were then calendered in the form of sheets for the measurement of their tear resistance properties.

[0174] Tearability test

[0175] The tear strength is measured as follows. At 100°C, the force required to achieve rupture (FRD, in Mpa (in N / mm)) is determined and, at 100°C, the strain at rupture (DRD, in %) is measured. To do this, a test piece measuring 10 x 145 x 2.5 mm is used, notched in the center of its length by 3 notches to a depth of 3 mm, to cause the specimen to rupture. This allows the energy required to cause rupture (fracture energy) of the specimen to be determined, which is the product of the FRD and DRD. The force required to achieve rupture and the strain at rupture are measured on a specimen stretched at 375 mm / min to cause the specimen to rupture.

[0176] The results (tear performance) are expressed on a base of 100; i.e. the value 100 is assigned to the reference tear energy (T1) and the values ​​of the elastomeric compositions are shown in Table 1. The higher the value, the less likely the material is to tear, i.e. the higher the tear performance.

[0177] [Table 1]

[0178] Table 1

[0179] (1) - Isoprene elastomer: natural rubber; (2) - Butadiene elastomer: cis-1,4 polybutadiene synthesized with a neodymium catalyst having a cis-1,4 bond rate of at least 98 mol%; (3) - Carbon black grade ASTM N550 according to ASTM D1765-14 standard having an STSA measured according to ASTM D6556-10 standard equal to 39 m2 / g, a COAN index measured according to ASTM D3493-16 standard equal to 85 ml / 100g; (4) - Rubber crumb obtained by recycling (tire micronization), rubber crumb marketed by Lehigh Technology whose percentage of crumb microparticles measured according to ASTM D5644-01:2013 standard retained by a 250 pm sieve is less than 1% by weight and the percentage of crumb particles retained by a 177 pm sieve is less than 10% by weight relative to the total weight of the rubber crumb particles, unmodified rubber crumb; (5) - Anti-ozone wax marketed by Sasol under the commercial reference “Vazazon 4959”; (6) - TDAE oil marketed by H&R under the commercial reference “VivaTec 500”; (7) - Mixture of 2 anti-oxidants: ((N-(1,3-dimethylbutyl)-N-phenyl-para-phenylenediamine marketed by Flexsys under the reference “Santoflex 6-PPD” and 2,2,4-trimethyl-1,2-dihydroquinolone marketed by Lanxess; (8) - Stearic acid marketed by Uniquema under the reference “Pristerene 4931”; (9) - Zinc oxide: commercial quality, marketed by Umicore; (10) - N-dicyclohexyl-2-benzothiazolesulfenamide marketed by Flexsys under the reference “Santocure CBS”.

[0180] In Table 1 above, the weight ratio A / C is the ratio between the rate of reinforcing filler expressed in pce and the rate of plasticizing agent expressed in pce, the sum A + B is the sum of the rate of reinforcing filler expressed in pce with the rate of rubber crumb expressed in pce and the weight ratio B / A is the ratio between the rate of rubber crumb expressed in pce and the rate of reinforcing filler expressed in pce.

[0181] The results in Table 1 show that the elastomeric compositions according to the invention have improved tear performance compared to the control elastomeric composition T1 and compared to the elastomeric compositions not in accordance with the invention. On a HIGH LOAD CAPACITY type tire with sidewalls likely to flex significantly, this performance makes it possible to reduce the risk of tears.

[0182] The invention is not limited to the embodiments described above.

Claims

CLAIMS 1. A tire (10) for a passenger vehicle comprising a crown (12), two beads (32), two sidewalls (30) connecting each bead (32) to the crown (12), the tire (10) being of the HIGH LOAD CAPACITY type according to the ETRTO 2021 standard manual, characterized in that at least one of the two sidewalls (30) comprises an elastomeric composition based on at least one elastomeric matrix, at least one reinforcing filler, at least one rubber crumb, in that the sum of the reinforcing filler content and the rubber crumb content is within a range from 46 to 62 pce, and in that the weight ratio between the rubber crumb content expressed in pce and the reinforcing filler content expressed in pce is within a range from 0.20 to 1.

50.

2. Tire (10) according to the preceding claim, in which, the elastomeric composition comprising a plasticizing agent, the weight ratio between the level of the reinforcing filler expressed in pce and the level of plasticizing agent expressed in pce is less than or equal to 4.50, preferably 4.00 and more preferably 3.

75.

3. Tire (10) according to any one of the preceding claims, in which, the elastomeric composition comprising a plasticizing agent, the weight ratio between the level of the reinforcing filler expressed in pce and the level of plasticizing agent expressed in pce is greater than or equal to 1.00, preferably 2.00 and more preferably 2.

42.

4. Tire (10) according to any one of the preceding claims, in which the weight ratio between the rate of rubber crumb expressed in pce and the rate of reinforcing filler expressed in pce is within a range from 0.25 to 1.50, preferably from 0.25 to 1.30, more preferably from 0.25 to 1.10 and even more preferably from 0.28 to 1.

03.

5. Tire (10) according to any one of the preceding claims, in which the reinforcing filler content is within a range from 5 to 70 phr, preferably from 5 to 60 phr, more preferably from 5 to 55 phr, even more preferably between 5 and 55 phr, very preferably between 10 and 50 phr and most preferably still from 20 to 45 phr.

6. Tire (10) according to any one of the preceding claims, in which, the elastomeric composition comprising a plasticizing agent, the level of plasticizing agent is within a range from 2 to 28 phr, more preferably from 7 to 24 phr, more preferably still from 10 to 20 phr.

7. A tire (10) according to any one of the preceding claims, wherein the rubber crumb content is within a range from 2 to 35 pce, more preferably between 5 and 33 pce, more preferably ranging from 6 to 32 pce, more preferably ranging from 7 to 31 pce, more preferably still ranging from 8 to 30 pce.

8. Tire (10) according to any one of the preceding claims, in which the reinforcing filler mainly comprises carbon black.

9. Tire (10) according to any one of the preceding claims, in which the elastomeric matrix comprises at least one isoprene elastomer and at least one butadiene elastomer.

10. Tire (10) according to any one of the preceding claims, in which the elastomeric matrix comprises at least one butadiene elastomer at a rate within a range of 20 to 80 phr, preferably ranging from 30 to 70 phr, more preferably between 30 and 70 phr and even more preferably ranging from 35 to 65 phr.

11. Tire (10) according to any one of the preceding claims, in which the elastomeric matrix comprises at least one isoprene elastomer at a rate within a range of 20 to 80 phr, preferably ranging from 30 to 70 phr, more preferably between 30 and 70 phr and even more preferably ranging from 35 to 65 phr.