Single-layer cable having improved energy at break and improved total elongation

The single-layer cable with enhanced breaking energy and total elongation at break addresses the issues of high perforation rates and reduced tire service life, achieving improved durability and resistance to deformation forces.

WO2025124998A1PCT designated stage expired Publication Date: 2025-06-19MICHELIN & CO (CIE GEN DES ESTAB MICHELIN)
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Patent Information

Application Number
PCT/EP2024/084482
Authority / Receiving Office
WO · WO
Patent Type
Applications
Current Assignee / Owner
Priority Date
2023-12-12
Filing Date
2024-12-03
Publication Date
2025-06-19

AI Technical Summary

Technical Problem

Existing cables used in tires, particularly for heavy industrial vehicles, suffer from high perforation rates and reduced service life due to low breaking energy and total elongation at break, leading to potential corrosive agent entry and tire damage.

Method used

A single-layer cable design featuring N metallic wire elements wound in a helix, with a total elongation at break exceeding 10% and a breaking energy indicator greater than 4000 N%, achieved by optimizing the cable's structure and manufacturing process.

Benefits of technology

The improved cable design significantly reduces the number of breaks and perforations, thereby extending the tire's service life by effectively absorbing deformation forces and reducing the risk of punctures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a cable (50) comprising a single layer (52) consisting of N helically wound metal wire elements (54), wherein each metal wire element (54) of the layer (52) describes, when the cable (50) extends in a substantially straight direction, a helical path around a main axis (A) substantially parallel to the substantially straight direction, wherein: - the cable (50) has a total elongation At ≥ 10.00% determined by ASTM D2969-04 standard of 2014; and - the energy at break indicator Er of the cable (50) is strictly greater than 4000 N.%.
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Description

Single-layer cable with improved breaking energy and improved total elongation

[0001] The present invention relates to a cable and a tire comprising such a product.

[0002] Although not limited to this type of application, the invention will be more particularly described with reference to a tire for heavy industrial vehicles.

[0003] Known from the state of the art and in particular from application WO2021124154 is a metal cable comprising a single layer of N=4 metal wire elements wound in a helix around a textile yarn. Each metal wire element is made of a steel monofilament and has a diameter equal to 0.14 mm. The assembly on a textile core and the internal arch provides the cable, once assembled, with relatively significant ventilation, in other words, a relatively large space between each pair of adjacent metal wire elements. Such ventilation results in a relatively significant total elongation at break At of the cable equal to 15.1%. Such a cable is intended in particular for use in tires.

[0004] These cables have the advantage of having a relatively high total elongation at break, but the breaking energy criterion could be improved to reduce the risk of perforations which allow the entry of corrosive agents into the crown reinforcement of the tire and reduce its service life.

[0005] On the other hand, it has been observed that the cables of the protective layers can present ruptures following deformations and relatively significant forces exerted on the cable, in particular when the tire passes over obstacles.

[0006] The invention aims to provide a cable which makes it possible to reduce, or even eliminate, the number of breaks and the number of perforations.

[0007] To this end, the invention relates to a cable comprising a single layer consisting of N metallic wire elements wound in a helix, each metallic wire element of the layer describing, when the cable extends in a substantially rectilinear direction, a helix-shaped trajectory around a main axis (A) substantially parallel to the substantially rectilinear direction, in which: - the cable has a total elongation At > 10.00% determined by the ASTM D2969-04 standard of 2014; and - the breaking energy indicator Er of the cable defined by Er = ;)) with F(Aj) being the tensile force in N measured at elongation Ai (in %) and F(Aj+i) being the tensile force measured at elongation Aj+i such that Er is strictly greater than 4000 N. %.

[0008] Due to the relatively high total elongation at break and the relatively high breaking energy of the cable, the cable according to the invention makes it possible to reduce perforations and therefore to extend the life of the tire. Indeed, the inventors behind the invention discovered that a less rigid cable than that of the prior art is more effective against obstacles. The inventors found that it was more effective to hug the obstacle using a cable with less rigidity rather than trying to stiffen and strengthen the cables as much as possible to oppose the deformations imposed by the obstacles as is generally taught in the prior art. By hugging the obstacles, the force opposing the obstacles is reduced and therefore the risk of puncturing the tire.

[0009] Thanks to the relatively high total elongation at break and the relatively high breaking energy of the cable, the cable according to the invention also makes it possible to reduce the number of breaks. Indeed, the inventors behind the invention discovered that the determining criterion for reducing cable breaks was not only the breaking force as is widely taught in the prior art but the breaking energy indicator represented in the present application by the area under the stress curve as a function of the elongation as illustrated in Figure 4. Indeed, the cables of the prior art have either a relatively high breaking force but a relatively low total elongation at break, or a relatively high total elongation at break but a relatively low breaking force, as is the case in application WO2021124154.In both cases, the state-of-the-art cables break under a relatively low breaking energy indicator. The cable according to the invention, due to its relatively high total elongation, has a necessarily relatively high total elongation at break. Synergistically, the relatively low modulus makes it possible to postpone the total elongation at break due to a relatively low slope of the force-elongation curve in the elastic range.

[0010] 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 limits a and b), while any interval of values ​​designated by the expression "from a to b" means the domain of values ​​from the limit "a" to the limit "b", i.e., including the strict limits "a" and "b".

[0011] The total elongation at break At, a quantity well known to those skilled in the art, is determined, for example, by applying the ASTM D2969-04 standard of 2014 to a cable tested so as to obtain a force-elongation curve. The At is deduced from the curve obtained as the elongation, in %, corresponding to the projection onto the elongation axis of the breaking point of the cable on the force-elongation curve, i.e. the point at which the load increases up to a maximum force value and then decreases abruptly after breaking. When the decrease in relation to the force exceeds a certain threshold, this means that the cable has broken.

[0012] The breaking energy indicator Er of the cable is determined by calculating the area under the tensile force curve as a function of elongation by the relation Er = + F(4 i+1 )). (4 i+1 - ;)) This breaking energy indicator represents a quantity in N. %. The rectangle method is conventionally used to reach this area: the tensile force F(Aj) being expressed in N measured at the elongation Ai expressed in % without unit; for i=0: Aj=O = AO = 0% elongation and for i=t: Aj=t = At: elongation at total rupture of the cable. The breaking energy indicator Er is thus substantially equal to the sum of (1 / 2( F(Aj) + F(Aj+i)) x (Aj+i - Ai) for i ranging from 0 to t as shown in Figure 4. The cable according to the invention comprises a single layer of helically wound metal wire elements. In other words, the cable according to the invention comprises only one, not two, nor more than two layers of helically wound metal wire elements. The layer is made up of metal wire elements, i.e. several metal wire elements, not a single metal wire element.In one embodiment of the cable, for example when the cable is produced from its manufacturing process, the cable according to the invention consists of the layer of wound metal wire elements.

[0013] The winding direction of a layer of metal wire elements means the direction formed by the metal wire elements relative to the axis of the cable. The winding direction is commonly designated by the letter either Z or S.

[0014] The winding direction of wire elements is determined in accordance with ASTM D2969-04 of 2014.

[0015] The cable according to the invention is single helix. By definition, a single helix cable is a cable in which the axis of each metal wire element of the layer describes a single helix, unlike a double helix cable in which the axis of each metal wire element describes a first helix around the axis of the cable and a second helix around a helix described by the axis of the cable. In other words, when the cable extends in a substantially rectilinear direction, the cable comprises a single layer of metal wire elements wound together in a helix, each metal wire element of the layer describing a helix-shaped path around the substantially rectilinear direction such that the distance between the center of each metal wire element of the layer and the axis of the substantially rectilinear direction is substantially constant and equal for all the metal wire elements of the layer.In contrast, when a double helix cable extends in a substantially straight direction, the distance between the center of each metal wire element in the layer and the substantially straight direction is different for all the metal wire elements in the layer.

[0016] The cable according to the invention has no central metal core. It is also referred to as a 1xN structure cable in which N is the number of metal wire elements or even an open-cord cable. In the cable according to the invention defined above, the internal vault is empty and therefore devoid of any filling material, in particular devoid of any elastomeric composition. We then speak of a cable devoid of filling material.

[0017] By wire element is meant an element extending longitudinally along a main axis and having a section perpendicular to the main axis whose largest dimension G is relatively small compared to the dimension L along the main axis. By relatively small is meant that L / G is greater than or equal to 100, preferably greater than or equal to 1000. This definition covers both wire elements of circular section and wire elements of non-circular section, for example of polygonal or oblong section. Very preferably, each metal wire element has a circular section.

[0018] By definition, the term metallic means a wire element consisting mainly (i.e. for more than 50% of its mass) or entirely (for 100% of its mass) of a metallic material. Each metallic wire element is preferably made of steel, more preferably of pearlitic or ferrito-pearlitic carbon steel, commonly called carbon steel by those skilled in the art, or even stainless steel (by definition, steel containing at least 10.5% chromium).

[0019] Preferably, the metal wires do not undergo pre-forming. In other words, the cable is obtained by a process without individual pre-forming steps for each of the metal wire elements.

[0020] As described above, the cable according to the invention is manufactured in accordance with a method and by implementing an installation described in documents WO2016083265 and WO2016083267. This method comprises a step of assembling M metal wire elements together in a layer of the M metal wire elements around a transient core to form a transient assembly, and a step of splitting the transient assembly into at least first and second assemblies of M1 metal wire elements and M2 metal wire elements and the transient core. At least one of the first and second assemblies then forms the cable according to the invention, i.e. M1=N and / or M2=N.

[0021] Advantageously, in a first embodiment, the step of splitting the transient assembly comprises a step of separating the transient core from the first and second assemblies. In this embodiment, the first assembly consists of M1 metal wire elements wound together and distributed in a single layer around the axis of the first assembly. Similarly, the second assembly of this embodiment consists of M2 metal wire elements wound together and distributed in a single layer around the axis of the second assembly. In other words, in this first embodiment, the transient core comprising at least one wire element, each wire element of the transient core does not belong to the first and second assemblies of M1 metal wire elements and M2 metal wire elements. We therefore have M1+M2=M.

[0022] In a first preferred variant of this first embodiment, during the splitting step, the first assembly is separated from a transient assembly formed by the second assembly and the transient core, then the second assembly and the transient core are separated from each other. In a second variant, during the splitting step, the transient core, the first assembly and the second assembly are simultaneously separated two by two from each other.

[0023] Advantageously, the method comprises a step of recycling the transient nucleus during which: the transient nucleus is recovered downstream of the fractionation step, and the transient nucleus previously recovered is introduced upstream of the assembly step.

[0024] In a preferred embodiment, the step of recycling the transient nucleus can be carried out continuously, that is to say in which the transient nucleus leaving the separation step is reintroduced into the assembly step without an intermediate storage step of the transient nucleus. In another embodiment, the step of recycling the transient nucleus is discontinuous, that is to say with an intermediate storage step of the transient nucleus.

[0025] More preferably, a textile transitional core is used.

[0026] In a second embodiment, the step of splitting the transient assembly comprises a step of splitting the transient core between at least the first and second assemblies. Thus, in this second embodiment, two assemblies of metal wire elements are obtained, each comprising a layer of P1, P2 metal wire elements wound together in a helix, and for at least one of the assemblies, a central core comprising or consisting of at least a portion of the transient core around which the metal wire elements of the layer are wound. In other words, in this second embodiment, the transient core comprising K metal wire element(s), at least one of the K metal wire element(s) of the transient core belongs to at least one of the first and second assemblies of M1 metal wire elements and M2 metal wire elements.

[0027] Advantageously, during the fractionation step, at least a first part of the transient core is fractionated with first metallic wire elements of the transient assembly so as to form the first assembly.

[0028] Thus, the first assembly comprises a layer of P1 metallic wire elements wound together in a helix and a central core comprising or consisting of a first part (K1 wire element(s)) of the K metallic wire elements of the transient core and around which the P1 metallic wire elements are wound together in a helix. We have P1+K1=M1.

[0029] Advantageously, during the fractionation step, at least a second part of the transient core is fractionated with second metallic wire elements of the transient assembly so as to form the second assembly.

[0030] Thus, the second assembly comprises a layer of P2 metallic wire elements wound together in a helix and a central core comprising or consisting of a second part (K2 wire element(s)) of the K wire elements of the transient core and around which the P2 metallic wire elements are wound together in a helix. We have P2+K2=M2.

[0031] Preferably, the first and second assemblies are formed simultaneously.

[0032] Preferably, before the splitting step, the first and second parts of the transient nucleus constitute the transient nucleus. Thus, the first and second parts of the transient nucleus are complementary. We therefore have K1+K2=K. Alternatively, we could have K1+K2 <K.

[0033] In a variant, the first assembly comprises a layer of P1 metallic wire elements wound together in a helix around a central core comprising or consisting of the transitional core and the second assembly comprises a layer of P2=M2 metallic wire elements wound together in a helix and devoid of a central core.

[0034] In one embodiment, the assembly step is performed by twisting. In such a case, the metal wire elements undergo both collective twisting and individual twisting about their own axis, which generates an untwisting torque on each of the metal wire elements. In another embodiment, the assembly step is performed by cabling. In this case, the metal wire elements do not undergo twisting about their own axis, due to synchronous rotation before and after the assembly point.

[0035] Preferably, in the case of a twisting assembly step, the method comprises a step of balancing the transient assembly. Thus, the balancing step being carried out on the assembly consisting of the M metallic wire elements and the transient core, the balancing step is implicitly carried out upstream of the fractionation step.

[0036] Advantageously, the method comprises a step of balancing at least one of the first and second assemblies after the fractionation step.

[0037] Advantageously, the method comprises a step of maintaining the rotation of the first and second assemblies around their respective direction of travel. This step is carried out after the splitting step and before the step of balancing at least one of the first and second assemblies.

[0038] The optional features described below may be combined with each other to the extent that such combinations are technically compatible.

[0039] Preferably, the cable is such that the total elongation At > 11.00% and preferably At > 12.00%.

[0040] Advantageously, the cable has a structural elongation As such that As > 8.0% and preferably such that As > 9.0%.

[0041] The structural elongation As, a quantity well known to those skilled in the art, is determined, for example, by applying the ASTM D2969-04 standard of 2014 to a cable tested so as to obtain a force-elongation curve. The As is deduced from the curve obtained as the elongation, in %, corresponding to the maximum slope of the force-elongation curve. As a reminder, a force-elongation curve comprises, moving towards increasing elongations, a structural part, an elastic part and a plastic part. The structural part corresponds to the structural elongation As resulting from the aeration of the cable, i.e. the vacant space between the different metallic wire elements constituting the cable. The elastic part corresponds to an elastic elongation resulting from the construction of the cable, in particular the angles of the different layers and the diameters of the wires.The plastic part corresponds to the plastic elongation resulting from the plasticity (irreversible deformation beyond the elastic limit) of one or more metallic wire elements.

[0042] Advantageously, Er is strictly greater than 4900 N.%.

[0043] The invention also relates to a cable extracted from a polymer matrix, the extracted cable comprising a single layer consisting of N metallic wire elements wound in a helix, each metallic wire element of the layer describing, when the cable extends in a substantially rectilinear direction, a helix-shaped trajectory around a main axis (A) substantially parallel to the substantially rectilinear direction, in which: - the extracted cable has a total elongation At' > 8.00% determined by the ASTM D2969-04 standard of 2014, - the breaking energy indicator Er' of the extracted cable defined by Er' = (FQ4; ) + FQ4 ;+1 )). G4 i+1 - ; )) with F(Aj) being the tensile force in N measured at elongation Ai (in %) and F(Aj+i) being the tensile force measured at elongation Aj+i such that Er' is strictly greater than 5000 N. %.

[0044] Preferably, the polymeric matrix is ​​an elastomeric matrix.

[0045] The polymeric matrix, preferably elastomeric, is based on a polymeric composition, preferably elastomeric.

[0046] By polymer matrix is ​​meant a matrix comprising at least one polymer. The polymer matrix is ​​therefore based on a polymer composition.

[0047] By elastomeric matrix is ​​meant a matrix comprising at least one elastomer. The preferred elastomeric matrix is ​​thus based on the elastomeric composition.

[0048] By the expression "based on", it is meant that the composition comprises 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.

[0049] By polymeric composition is meant that the composition comprises at least one polymer. Preferably, such a polymer may be a thermoplastic, for example a polyester or a polyamide, a thermosetting polymer, an elastomer, for example natural rubber, a thermoplastic elastomer or a mixture of these polymers.

[0050] By elastomeric composition is meant that the composition comprises at least one elastomer and at least one other component. Preferably, the composition comprising at least one elastomer and at least one other component comprises an elastomer, a crosslinking system and a filler. The compositions which can be used for these plies are conventional compositions for calendering reinforcing filamentary elements and comprise a diene elastomer, for example natural rubber, a reinforcing filler, for example carbon black and / or silica, a crosslinking system, for example a vulcanization system, preferably comprising sulfur, stearic acid and zinc oxide, and optionally a vulcanization accelerator and / or retarder and / or various additives. The adhesion between the metal wires and the matrix in which they are embedded is ensured for example by a metal coating, for example a layer of brass.

[0051] The values ​​of the characteristics described in the present application for the extracted cable are measured on or determined from cables extracted from a polymeric matrix, in particular an elastomeric one, for example from a tire. Thus, for example on a tire, the strip of material is removed radially outside the cable to be extracted so as to see the cable to be extracted radially flush with the polymeric matrix. This removal can be done by peeling using pliers and knives or by planing. Then, the end of the cable to be extracted is released using a knife. Then, the cable is pulled so as to extract it from the matrix by applying a relatively small angle so as not to plasticize the cable to be extracted.The extracted cables are then carefully cleaned, for example using a knife, so as to detach the remains of polymer matrix locally attached to the cable and taking care not to damage the surface of the metal wires.

[0052] Advantageously, the total elongation At' is such that At' > 9.0%.

[0053] The advantageous characteristics described below apply equally to the cable as defined above and to the extracted cable.

[0054] Preferably, N ranges from 4 to 9 and preferably from 5 to 7.

[0055] Preferably, each wire element is wound at a pitch P such that 3 mm < P < 15 mm, preferably 7 mm < P < 12 mm.

[0056] It is recalled that the pitch at which each metallic wire element is wound is the length travelled by this wire element, measured parallel to the axis of the cable in which it is located, at the end of which the wire element having this pitch makes a complete turn around said axis of the cable.

[0057] Advantageously, the diameter D of the cable is such that and preferably 1.40 mm < D < 2.20 mm.

[0058] The diameter or apparent diameter, noted D, is measured by means of a thickness comparator whose contact diameter is at least equal to 1.5 times the winding pitch P of the wire elements (for example, the JD50 model from the KAEFER brand can be cited, allowing an accuracy of 1 / 100 of a millimeter to be achieved, equipped with a type a contact, and having a contact pressure close to 0.6N). The measurement protocol consists of three repetitions of a series of three measurements (carried out perpendicular to the axis of the cable and under zero tension) of which the second and third of these measurements are carried out in a direction angularly offset from the previous one by a third of a turn, by rotating the measurement direction around the axis of the cable.

[0059] Advantageously, the diameter Df of each metallic wire element is such that 0.10 mm < Df < 0.50 mm, preferably 0.25 mm < Df < 0.45 mm and more preferably 0.30 mm < Df < 0.40 mm.

[0060] In an advantageous embodiment, all the metal wire elements have the same diameter Df.

[0061] Preferably, the helix angle a of each wire element is such that 13° < a < 30°.

[0062] The helix angle a is a quantity well known to those skilled in the art and can be determined by the following iterative calculation comprising 3 iterations and in which the index i indicates the number of iteration 1, 2 or 3. Knowing the structural elongation As expressed in %, the helix angle a(i) is such that a(i)=Arcos [ (100 / (100+As) x Cos [ Arctan ( (TT x Df) / (P x Cos(a(i-1)) x Sin(TT / N)) ] ], formula in which P is the pitch expressed in millimeters at which each metal wire element is wound, N is the number of metal wire elements in the layer, Df is the diameter of each metal wire element expressed in millimeters, Arcos, Cos, Arctan and Sin denoting respectively the arcosine, cosine, arctangent and sine functions. For the first iteration, that is to say for the calculation of a(1), we take a(0)=0. At the third iteration, we obtain a(3)=a with at least one significant digit after the decimal point when a is expressed in degrees.

[0063] The invention also relates to the use of such a cable for reinforcing articles or semi-finished products comprising an elastomeric matrix in which the cable is embedded.

[0064] Such articles or semi-finished products are pipes, belts, conveyor belts, tracks, tires for vehicles, both in the raw state (i.e. before crosslinking or vulcanization) and in the cured state (after crosslinking or vulcanization). Such articles or semi-finished products take, in preferred embodiments, the form of a sheet.

[0065] REINFORCED PRODUCT ACCORDING TO THE INVENTION

[0066] The invention also relates to a reinforced product comprising a polymer matrix and at least one extracted cable as defined above.

[0067] Advantageously, the reinforced product comprises one or more cables according to the invention embedded in the polymer matrix, and in the case of several cables, the cables are arranged side by side in a main direction.

[0068] PNEUMATIC ACCORDING TO THE INVENTION

[0069] The invention also relates to a tire comprising at least one extracted cable as defined above or a reinforced product as defined above.

[0070] Preferably, the tire comprises a carcass reinforcement anchored in two beads and surmounted radially by a crown reinforcement itself surmounted by a tread, the crown reinforcement being joined to said beads by two sidewalls and comprising at least one cable as defined above.

[0071] In a preferred embodiment, the crown reinforcement comprises a protective reinforcement and a working reinforcement, the protective reinforcement comprising at least one cable as defined above, the protective reinforcement being radially interposed between the tread and the working reinforcement.

[0072] The cable is particularly intended for industrial vehicles chosen from heavy vehicles such as "Heavy Goods Vehicles" - i.e., metro, bus, road transport equipment (trucks, tractors, trailers), off-road vehicles -, agricultural or civil engineering equipment, other transport or handling vehicles.

[0073] Preferably, the tire is for civil engineering vehicles. Thus, the tire has a dimension in which the diameter, in inches, of the seat of the rim on which the tire is intended to be mounted is greater than or equal to 25 inches.

[0074] The invention also relates to a rubber article comprising an assembly according to the invention, or an impregnated assembly according to the invention. By rubber article is meant any type of rubber article such as a ball, a non-pneumatic object such as a non-pneumatic tire, a conveyor belt or a caterpillar.

[0075] The invention will be better understood by reading the examples which follow, given solely by way of non-limiting examples and made with reference to the drawings in which: - figure 1 is a sectional view perpendicular to the circumferential direction of a tire according to the invention; - figure 2 is a detailed view of zone II of figure 1; - figure 3 is a sectional view of a reinforced product according to the invention; - figure 4 illustrates the calculation of the area under the force curve as a function of the elongation of the cable (50) according to the invention; - Figure 5 illustrates the force-elongation curve for the cables according to the invention and those of the state of the art; - figure 6 is a sectional view perpendicular to its axis of a cable 50 of the invention (assumed to be rectilinear and at rest); and - figure 7 is a photograph of the cable (50) according to the invention.

[0076] EXAMPLE OF A TIRE ACCORDING TO THE INVENTION

[0077] In figures 1 and 2, an X, Y, Z reference point is shown corresponding to the usual axial (X), radial (Y) and circumferential (Z) orientations of a tire.

[0078] The “median circumferential plane” M of the tire is the plane which is normal to the axis of rotation of the tire and which is located equidistant from the annular reinforcement structures of each bead.

[0079] Figures 1 and 2 show a tire according to the invention and designated by the general reference P.

[0080] The P tire is for heavy vehicles of the civil engineering type, for example the “dumper” type. Thus, the P tire has a dimension of type 53 / 80R63.

[0081] The tire P comprises a crown 12 reinforced by a crown reinforcement 14, two sidewalls 16 and two beads 18, each of these beads 18 being reinforced with an annular structure, here a bead wire 20. The crown reinforcement 14 is radially surmounted by a tread 22 and joined to the beads 18 by the sidewalls 16. A carcass reinforcement 24 is anchored in the two beads 18, and is here wound around the two bead wires 20 and comprises a turn-up 26 arranged towards the outside of the tire 20 which is here shown mounted on a rim 28. The carcass reinforcement 24 is radially surmounted by the crown reinforcement 14.

[0082] The carcass reinforcement 24 comprises at least one carcass ply 30 reinforced by radial carcass cords (not shown). The carcass cords are arranged substantially parallel to each other and extend from one bead 18 to the other so as to form an angle of between 80° and 90° with the median circumferential plane M (plane perpendicular to the axis of rotation of the tire which is located midway between the two beads 18 and passes through the middle of the crown reinforcement 14).

[0083] The tire P also comprises a sealing ply 32 made of an elastomer (commonly called inner rubber) which defines the radially inner face 34 of the tire P and which is intended to protect the carcass ply 30 from the diffusion of air coming from the space inside the tire P.

[0084] The crown reinforcement 14 comprises, radially from the outside to the inside of the tire P, a protective reinforcement 36 arranged radially inside the tread 22, a working reinforcement 38 arranged radially inside the protective reinforcement 36 and an additional reinforcement arranged radially inside the working reinforcement 38. The protective reinforcement 36 is thus radially interposed between the tread 22 and the working reinforcement 38. The working reinforcement 38 is radially interposed between the protective reinforcement 36 and the additional reinforcement.

[0085] The protective reinforcement 36 comprises first and second protective plies 42, 44 comprising protective metal cables, the first ply 42 being arranged radially inside the second ply 44. Each ply 42, 44 comprises at least one cable 50. Optionally, the working metal cables 50 are crossed from one working ply to the other. The protective metal cables make an angle at least equal to 10°, preferably ranging from 10° to 50° and preferentially from 15° to 40° with the circumferential direction Z of the tire.

[0086] The working reinforcement 38 comprises first and second working plies 46, 48, the first ply 46 being arranged radially inside the second ply 48. Optionally, the working metal cords make an angle at most equal to 60°, preferably ranging from 15° to 40° with the circumferential direction Z of the tire.

[0087] The additional reinforcement, also called a limiting block, the function of which is to partially absorb the mechanical stresses of inflation, comprises, for example and in a manner known per se, additional metal reinforcing elements, for example as described in FR 2 419 181 or FR 2 419 182 making an angle at most equal to 10°, preferably ranging from 5° to 10° with the circumferential direction Z of the tire P.

[0088] EXAMPLE OF A REINFORCED PRODUCT ACCORDING TO THE INVENTION

[0089] Figure 3 shows a reinforced product according to the invention and designated by the general reference R. The reinforced product R comprises at least one cable 50', in this case several cables 50', embedded in the polymer matrix Ma.

[0090] In Figure 3, the polymer matrix Ma, the cables 50' are represented in a reference frame X, Y, Z in which the direction Y is the radial direction and the directions X and Z are the axial and circumferential directions. In Figure 3, the reinforced product R comprises several cables 50 arranged side by side in the main direction X and extending parallel to each other within the reinforced product R and collectively embedded in the polymer matrix Ma. Here, the polymer matrix Ma is an elastomeric matrix based on an elastomeric composition.

[0091] CABLE ACCORDING TO A FIRST EMBODIMENT OF THE INVENTION

[0092] The cable 50 according to the embodiment of the invention is shown in Figure 6 and is photographed in Figure 7.

[0093] Each protective reinforcement element 43, 45 is formed, after extraction from the tire 10, by an extracted cable 50' as described below. The cable 50 is obtained by embedding in a polymer matrix, in this case in a polymer matrix respectively forming each polymer matrix of each protective ply 42, 44 in which the protective reinforcement elements 43, 45 are respectively embedded.

[0094] The 50 cable and the 50' extracted cable are single-layer metallic.

[0095] The cable 50 or the cable 50' comprises a 1xN structural layer comprising a single layer 52 of N = 5 metallic wire elements 54 wound helically around a main axis A extending substantially parallel to the direction in which the cable extends along its greatest length.

[0096] In the illustrated embodiment, each metal wire element 54 comprises a single metal monofilament. Each metal wire element 54 also comprises a layer (not shown) of a metal coating comprising copper, zinc, tin, cobalt or an alloy of these metals, here brass. Each metal monofilament 56 is made of carbon steel and has a mechanical strength here equal to 3100 MPa.

[0097] As described previously, the At value is determined by plotting a stress-strain curve of the 50 cable using ASTM D2969-04 of 2014.

[0098] The cable 50 has a total elongation At> 10.00%, preferably At > 11.00% and more preferably At > 12.00%. Here At=15.4%

[0099] As described previously, from this stress-elongation curve, we deduce the area under this curve. Figure 4 shows the rectangle method for determining the breaking energy indicator of cable 50.

[0100] The breaking energy indicator Er of cable 50 is such that Er = + F(4 i+1 )). ( i+1 - ; )) which is substantially equal to So 1 1 / 2 ( F(Ai) + F(Ai + 1)) x 0.25 = 6000 N. % which is strictly greater than 4000 N. % and strictly greater than 5000 N. %, with tl = rounded up to At / 0.25.

[0101] The cable 50 has a structural elongation As such that As > 8.00%, preferably As > 9.00%. lci As = 10.25%

[0102] The 50' extracted cable has a total elongation At' > 8.00% and preferably At' > 9.00%. Here At'=14.5%.

[0103] The breaking energy indicator Er' of the extracted cable 50' is such that Er' = So (1 / 2 (F(4 ; ) + F(4 i+1 )). (4 i+1 - A)) ) which is substantially equal to Sg 1 ' l / 2( F(Ai) + F(Ai + 1)) x 0.25= 6469 N. % which is strictly greater than 5000 N. %, with tT = rounded up to At' / 0.25.

[0104] Each wire element is wound at a pitch P such that 3 mm < P < 15 mm, preferably 7 mm < P < 12 mm. Here P = 9 mm.

[0105] The diameter D of the cable 50 is such that D < 2.50 mm and preferably 1.40 mm < D < 2.20 mm. Here D = 1.90 mm.

[0106] The helix angle a of each wire element is such that 13° < a < 30°. In this case, as described previously, with the characteristics of the cable 50, we have aa =26°.

[0107] METHOD FOR MANUFACTURING TWO CABLES 50 ACCORDING TO THE INVENTION

[0108] This method comprises a step of assembling M metal wire elements together in a layer of M= 10 metal wire elements around a transient core to form a transient assembly, and a step of splitting the transient assembly into at least first and second assemblies of M1=5 metal wire elements and M2= 5 metal wire elements. The first and second assemblies then form two cables 50 according to the invention, i.e. M 1=5 and M2=5.

[0109] Material loss is thus reduced by forming two cables 50 according to the invention.

[0110] It will be noted in Figure 6 that the separation of the textile core, here in PET, causes aeration of the cable 50.

[0111] COMPARATIVE TESTS

[0112] Evaluation of total elongation and breaking energy indicator of cables

[0113] The stress-strain curves of the cables were plotted by applying the ASTM D2969-04 standard of 2014 as shown in Figure 5 and the total elongation and the breaking energy indicator were determined for the different cables 50, 50', 60, 60', 70, 70' according to the invention and for the state-of-the-art cables EDT1, EDT2 and EDT3 and the values ​​were reported in Table 1 below. In Table 1, the mention "NA" means that the quantity was not available.

[0114] [Table 1]

[0115] Table 1 shows that the cables 50, 50', 60, 60', 70 and 70' according to the invention have a high total elongation at break as well as a significantly improved energy at break indicator compared to the cables of the state of the art EDT1, EDT2 and EDT3.

[0116] Thus, the cables according to the invention make it possible to solve the problems mentioned in the preamble.

[0117] The invention is not limited to the embodiments previously described.

Claims

CLAIMS 1. Cable (50) comprising a single layer (52) consisting of N metallic wire elements (54) wound in a helix, each metallic wire element (54) of the layer (52) describing, when the cable (50) extends in a substantially rectilinear direction, a helix-shaped trajectory around a main axis (A) substantially parallel to the substantially rectilinear direction, characterized in that: - the cable (50) has a total elongation At > 10.00% determined by the ASTM D2969-04 standard of 2014; and - the breaking energy indicator Er of the cable (50) defined by Er = + F(4 i+1 )). ( i+1 - 4 ; ))with F(Aj) being the tensile force in N measured at elongation Ai (in %) and F(Aj+i) being the tensile force measured at elongation Aj+i such that Er is strictly greater than 4000 N. %.

2. Cable (50) according to the preceding claim, in which the total elongation At > 11.00% and preferably At > 12.00%.

3. Cable (50) according to any one of the preceding claims, having a structural elongation As such that As > 8.0% and preferably such that As > 9.0%.

4. Cable (50) according to any one of the preceding claims, in which Er is strictly greater than 4900 N.%.

5. Cable extracted (50') from a polymer matrix, the extracted cable (50') comprising a single layer (52) consisting of N metallic wire elements (54) wound in a helix, each metallic wire element (54) of the layer (52) describing, when the cable (50) extends in a substantially rectilinear direction, a helix-shaped trajectory around a main axis (A) substantially parallel to the substantially rectilinear direction, characterized in that: - the extracted cable (50') has a total elongation At' > 8.00% determined by the ASTM D2969-04 standard of 2014, - the breaking energy indicator Er' of the extracted cable (50') defined by Er' = £ Q (1 / 2(F( ) + F(4 i+1 )). ( i+1 - 4 ; ))with F(Aj) being the tensile force in N measured at elongation Ai (in %) and F(Aj+i) being the tensile force measured at elongation Aj+i such that Er' is strictly greater than 5000 N.%.

6. Extracted cable (50') according to the preceding claim, in which the total elongation At' is such that At' > 9.0%.

7. Cable (50, 50') according to any one of the preceding claims, in which N ranges from 4 to 9 and preferably from 5 to 7.

8. Cable (50, 50') according to any one of the preceding claims, in which each metallic wire element is wound at a pitch P such that 3 mm < P < 15 mm, preferably 7 mm < P < 12 mm.

9. Cable (50, 50') according to any one of the preceding claims, wherein the diameter D of the cable (50) is such that D < 2.50 mm and preferably 1.40 mm < D < 2.20 mm.

10. Cable (50, 50') according to any one of the preceding claims, in which the diameter Df of each metallic wire element (54) is such that 0.10 mm < Df < 0.50 mm, preferably 0.25 mm < Df < 0.45 mm and more preferably 0.30 mm < Df < 0.40 mm.

11. Cable (50, 50') according to any one of the preceding claims, wherein the helix angle a of each metallic wire element is such that 13° < a < 30°.

12. Use of a cable (50) according to any one of claims 1 to 4, for reinforcing an article or semi-finished product comprising an elastomeric matrix in which the cable (50) is embedded.

13. Reinforced product (R), characterized in that it comprises a polymer matrix (Ma) and at least one extracted cable (50') according to any one of claims 5 to 11.

14. Pneumatic (P), characterized in that it comprises at least one extracted cable (50') according to any one of claims 5 to 11 or a reinforced product according to claim

Citation Information

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