Method for manufacturing layers of optimized self-sealing products

By varying the thickness of self-sealing layers based on perforation risk, the method addresses the weight inefficiency of uniform thickness tires, achieving a lightweight tire with enhanced puncture resistance.

JP7846685B2Active Publication Date: 2026-04-15MICHELIN & CO (CIE GEN DES ESTAB MICHELIN)
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Patent Information

Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-09-24
Publication Date
2026-04-15

AI Technical Summary

Technical Problem

Existing tires with self-sealing layers are heavier due to uniform thickness distribution, which does not account for varying perforation risks across the tread, compromising weight efficiency and effectiveness.

Method used

A method to manufacture tires with axially variable self-sealing layers by varying winding parameters, such as axial overlap and winding pitch, to match thickness with the risk of perforation, allowing for thicker layers where needed and thinner or no layers where less critical.

Benefits of technology

Results in a lightweight tire with effective self-sealing capabilities, optimizing weight reduction while maintaining or enhancing puncture resistance where needed.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method by which a tire can be manufactured, the tire comprising: - tread (14) and an airtight inner layer (18); at least one layer (80) of a self-sealing product extending circumferentially radially inside a portion of the gas-tight inner layer (18); During this method, a strip or bead (200) of a layer of self-sealing product is wound radially inside the airtight inner layer (18) of the tire, which does not yet have a layer (80) of self-sealing product, in a number of circumferential turns (Nai, Nbi), conforming to at least a portion of the tread (18). The winding step is carried out according to a winding rule for the circumferential turns of the strip or bead (200). During the winding step, at least one parameter of the winding rule is changed, which allows the thickness of the layer (80) of self-sealing product to be varied in the axial direction.
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Description

Technical Field

[0001] The present invention relates to a method for manufacturing a tire. The tire is understood to mean a casing intended to cooperate with a support element, such as a rim, to form a cavity that can be pressurized to a pressure exceeding atmospheric pressure. The tire according to the present invention has a substantially toroidal shape structure that exhibits rotational symmetry with respect to the main axis of the tire.

Background Art

[0002] European Patent No. 2629964 comprises a tread intended to contact the ground via the tread surface when the tire is running. The tread comprises main circumferential cutouts and central ribs, each central rib being arranged axially between two adjacent main circumferential cutouts and axially delimited by two adjacent main circumferential cutouts.

[0003] The tire of European Patent No. 2629964 comprises an airtight inner layer intended to form a cavity that is airtight with respect to the inflation gas when the tire is attached to a mounting support, such as a rim, and a layer of self-sealing product that extends circumferentially radially inside a part of the airtight inner layer.

[0004] In order to manufacture such a tire, a method is known in which a strip or bead of self-sealing product is wound by a plurality of circumferential windings in the radial direction, at least partially coinciding with the tread, inside the airtight layer of a tire that does not yet have a layer of self-sealing product.

[0005] The winding step is carried out according to rules for winding strips or beads, and the parameters of these rules are kept constant throughout the winding step. Thus, in the case of strips, the strip is wound so as to form a lapping, i.e., two consecutive circumferential windings partially overlap in the axial direction. In the case of beads, the bead is wound by substantially positioning the circumferential windings of the bead at an axial distance equal to half the axial width of the preceding circumferential winding bead, so that the self-sealing product of the circumferential winding contacts the self-sealing product of the preceding circumferential winding. In the case of strips, the amount of axial overlap between two consecutive circumferential windings is constant, and in the case of beads, the distance between two consecutive windings relative to each other is similarly constant.

[0006] When a tire is punctured by a perforating object, a layer of self-sealing material can seal the hole created by the perforating object under the action of the tire's internal pressure. This is because, under the action of the tire's internal pressure, the self-sealing material is designed to allow air to flow outwards into the hole, sealing it and re-establishing airtightness against expanding gases. Numerous self-sealing materials are described in the prior art, particularly U.S. Patent No. 4,426,468, European Patent No. 1,090,069, International Publication No. 99 / 62998, U.S. Patent No. 4,113,799, U.S. Patent No. 4,115,172, U.S. Patent No. 4,913,209, U.S. Patent No. 5,085,942, U.S. Patent No. 5,295,525, French Patent No. 2,955,877, and European Patent No. 2,167,329.

[0007] While the presence of a self-sealing fabrication layer has proven effective in resisting punctures, it inevitably makes the tire heavier than one without this layer. [Prior art documents] [Patent Documents]

[0008] [Patent Document 1] European Patent No. 2629964 [Patent Document 2] U.S. Patent No. 4426468 [Patent Document 3] European Patent No. 1090069 [Patent Document 4] International Publication No. 99 / 62998 [Patent Document 5] U.S. Patent No. 4113799 [Patent Document 6] U.S. Patent No. 4115172 [Patent Document 7] U.S. Patent No. 4913209 [Patent Document 8] U.S. Patent No. 5085942 [Patent Document 9] U.S. Patent No. 5295525 [Patent Document 10] French Patent No. 295587 [Patent Document 11] European Patent No. 2167329 [Overview of the project] [Problems that the invention aims to solve]

[0009] An object of the present invention is to provide a method for manufacturing a tire having a self-sealing product layer, the tire being as lightweight as possible, and whose self-sealing product layer being substantially as effective against perforation as the self-sealing product layer of a prior art tire. [Means for solving the problem]

[0010] For this purpose, one subject of the present invention is a method for manufacturing a tire, wherein the tire is -Tread and, -Airtight inner layer, - A layer of at least one self-sealing fabrication extending circumferentially within a portion of the radially inward portion of the airtight inner layer, Equipped with, During this method, a strip or bead of the self-sealing product layer is wrapped in multiple circumferential turns radially inward of the airtight layer of the tire that does not yet have a self-sealing product layer, coinciding with at least a portion of the tread, and the wrapping step is performed according to rules for wrapping the circumferential turns of the strip or bead. During the winding step, at least one parameter of the winding rule is varied over at least 50% of the circumferential length of the layers of the self-sealing product, which allows for axial variation in the thickness of the layers of the self-sealing product.

[0011] The inventors involved in the present invention determined that a specific axial portion of the tread is at a much higher risk of perforation than another axial portion of the tread. Therefore, the method according to the present invention makes it possible to intentionally vary the thickness of the self-sealing layer in order to differentiate the axial portion of the self-sealing layer that is positioned to coincide with the axial portion of the tread that is at a relatively high risk of perforation from the axial portion of the self-sealing layer that is positioned to coincide with the axial portion of the tread that is at a low risk of perforation. With the present invention, depending on the application of the tire and the application of the tread, a person skilled in the art can determine which axial portion of the tread is at a relatively high risk of perforation and position the axial portion of the self-sealing layer to be relatively thicker to coincide with it. Similarly, a person skilled in the art can determine which axial portion of the tread is at a low risk of perforation and position the axial portion of the self-sealing layer to be relatively thin or to have no thickness at all to coincide with it.

[0012] If a tire is punctured by a perforating object, the self-sealing fabric layer allows the tire's internal pressure to seal the hole caused by the object. This is because, under the influence of the tire's internal pressure, the self-sealing fabric is designed to allow air to flow outwards through the hole, sealing it and re-establishing airtightness against expanding gases.

[0013] To manufacture a layer of such self-sealing products, the method according to the invention provides for varying one of the regular parameters for winding circumferential windings. Thus, the arrangements of the circumferential windings related to one another are axially varied such that, in the case of a strip, the amount of axial overlap between two successive circumferential windings is varied and, in the case of a bead, the distance at which two successive circumferential windings are placed is varied. By varying one or more of the parameters, the thickness of the layer of self-sealing products can be varied.

[0014] A strip means an elongated element of a self-sealing product having a cross-section with a large dimension L in a first direction and a small dimension I in a second direction perpendicular to the first direction, and the ratio L / I is understood to be 1.50 or more. A bead means an elongated element of a self-sealing product where L / I is strictly 1.50 or less. [[ID=!]]

[0015] Since the layer of self-sealing products exhibits a thickness that is axially variable over at least 50% of its circumferential length, it is possible to envisage embodiments where the tire does not have a layer of self-sealing products over a maximum of 50% of the circumferential length of the layer of self-sealing products, or embodiments where the layer of self-sealing products does not exhibit a thickness that is variable over 100% of its circumferential length, and instead extends over 100% of the circumferential length of the layer of self-sealing products. Of course, in order to maximize the effect of the present invention, the layer of self-sealing products exhibits a thickness that is variable over at least 75% of its circumferential length, more preferably over at least 95% of its circumferential length, and ideally over 100% of its circumferential length.

[0016] In embodiments that enable the thickness of the layer of self-sealing products to be easily varied, a specific parameter is selected. Thus, during the winding step, at least one of the winding parameters that enables the thickness of the layer of self-sealing products to be axially varied is varied, and at least one parameter is - the winding pitch of the strip or bead, - the winding speed of the strip or bead with respect to the device for applying the strip or bead to the inside of the tire, - The axial movement speed of the tire for an apparatus for applying a strip or bead inside the tire, - The extrusion speed of an apparatus for extruding a strip or bead, - The width of the strip or bead, - The thickness of the strip or bead, is selected from, and preferably, the winding pitch of the strip or bead varies.

[0017] All of these parameters are known to those skilled in the art. The winding pitch is the axial distance between exactly the same edges of two successive circumferential windings of the strip or bead. The winding speed is the relative circumferential rotational speed of the tire with respect to an apparatus for applying the strip or bead inside the tire. The axial movement speed is the relative axial movement speed of the tire with respect to an apparatus for applying the strip or bead. The width of the strip is the value of the maximum dimension L described above. The thickness of the strip is the value of the minimum dimension I described above. It should be noted that by setting the width or thickness to zero, it is possible to obtain an axial portion of a layer of a self-sealing product having a thickness of zero.

[0018] In a preferred embodiment, the variation in thickness is obtained by varying the number of layers. Thus, - The strip or bead is wound onto itself by circumferential windings radially superposed with Nai>1 on an axial portion (s) of a layer of the self-sealing product with L≧1, where i ranges from 1 to L, - The strip or bead is wound onto itself by circumferential windings radially superposed with Nbj>1, or the strip or bead is wound by circumferential windings with Nbj = 1 on an axial portion (s) of a layer of the self-sealing product with M≧1, where j ranges from 1 to M, Each value of i ranges from 1 to L, at least 50% of the values of j range from 1 to M, preferably 100% of the values of j range from 1 to M, and Nbj < Nai.

[0019] In this embodiment, in one variant, Na1 = Na2 = ··· = NaL, and Nb1 = Nb2 = ··· = NbM, and thus, the relationship Nbj < Nai is satisfied for 100% of the values of j from 1 to M for each value of i from 1 to L. In another variant, a particular value of Nai can be different from other values according to a compromise between the effectiveness desired for the layer of the self-sealing product and the mass benefit, and if it is desired to maximize the mass benefit, the relationship Nbj < Nai can be satisfied for at least 50% of the values of j, preferably for 100% of the values of j, for each value of i. Similarly, for the same reason, a particular value of Nbj can be different from other values.

[0020] In a preferred embodiment, for each value of i in the range from 1 to L, at least 50% of the values of j in the range from 1 to M, preferably 75% of the values of j in the range from 1 to M, more preferably 100% of the values of j in the range from 1 to M, are such that Nai / Nbj ≧ 1.20, preferably Nai / Nbj ≧ 1.50, more preferably Nai / Nbj ≧ 1.75, and even more preferably Nai / Nbj ≧ 2.00. For a given value of Nai, the larger the ratio Nai / Nbj, the smaller the thickness of the axial portion with the circumferential winding of Nbj, and the greater the mass benefit. For a given value of Nbj, the larger the ratio Nai / Nbj, the larger the thickness of the axial portion with the circumferential winding of Nai, thereby promoting the effectiveness of the sealing of the holes that can occur in the axial portion(s) of the tread with a high risk of perforation.

[0021] In certain embodiments, for each value of i in the range of 1 to L, at least 50% of the j values ​​in the range of 1 to M, preferably 75% of the j values ​​in the range of 1 to M, and more preferably 100% of the j values ​​in the range of 1 to M, satisfy Nai / Nbj ≤ 3.00, preferably Nai / Nbj ≤ 2.75, and more preferably Nai / Nbj ≤ 2.50. A smaller ratio Nai / Nbj with respect to a given value of Nai results in a larger thickness in the axial portion having a circumferential winding of Nbj, a lower risk of perforation, improved effectiveness in sealing any holes that may occur in or in the axial portion, although holes are still present, albeit relatively few. A smaller ratio Nai / Nbj with respect to a given value of Nbj results in a smaller thickness in the axial portion having a circumferential winding of Nai, thereby reducing the mass of the self-sealing product.

[0022] In one embodiment, the layers of the self-sealing product are axially separated by two axial ends, and a strip or bead of the self-sealing material is wound around the strip or bead without interruption between the two axial ends. This reduces the construction time of the layers of the self-sealing product.

[0023] In one equally advantageous embodiment, the layers of the self-sealing product are axially separated by two axial ends, and a strip or bead of the self-sealing material is wound starting from one of the axial ends and stopping when it reaches the other axial end.

[0024] Another subject of the present invention is a tire obtained by the method defined above.

[0025] In new tires, the notch depth is the maximum radial distance between the bottom of the notch and the part of the tire that protrudes above the ground when the tire is in motion. The maximum notch depth is called the tread pattern height.

[0026] A notch refers to either a groove or a sipe, which forms an open space on the tread surface.

[0027] A sipe or groove has two main characteristic dimensions on the tread surface: width and curve length, such that the curve length is at least twice the width. Thus, a sipe or groove is divided by at least two main sides, which determine its curve length and are connected by a bottom surface, and these two main sides are spaced apart by a non-zero distance called the notch width.

[0028] For new tires, the notch width W is the maximum distance between two main side surfaces, measured at the radial side surface that coincides with the tread surface if the notch is not chamfered, and at the outermost radial side surface of the notch and the innermost radial side surface of the chamfered portion if the notch is chamfered. This width is measured substantially perpendicular to the main side surfaces.

[0029] On the other hand, the axial width of the notch is measured in the axial direction of the tire, for example, in the meridional cross-section of the tire.

[0030] The distance between the main sides of the sipes is such that, especially when the tire is new and under normal driving conditions, including the tire being under nominal load and nominal pressure, the main sides defining the sipes are at least partially in contact with each other at the contact surface.

[0031] The grooves are designed so that, under normal driving conditions, including when the tire is under nominal load and nominal pressure, the distance between the main sides of the grooves prevents these main sides from coming into contact with each other.

[0032] The notch can be lateral or circumferential.

[0033] A lateral notch is configured to extend in an average direction at an angle of more than 30°, preferably 45° or greater, with respect to the circumferential direction of the tire. The average direction is the shortest curve connecting the two ends of the notch and is parallel to the tread surface. A lateral notch can be continuous, that is, not interrupted by a tread pattern block or another notch, so that the two main sides determining its length are uninterrupted over the length of the lateral notch. Similarly, a lateral notch can be discontinuous, that is, interrupted by one or more tread pattern blocks and / or one or more other notches, so that the two main sides determining its length are interrupted by one or more tread pattern blocks and / or one or more other notches.

[0034] A circumferential notch is configured to extend in an average direction at an angle of 30° or less, preferably 10° or less, with respect to the circumferential direction of the tire. The average direction is the shortest curve connecting the two ends of the notch and is parallel to the tread surface. If the circumferential notch is continuous, the two ends coincide and are connected by a curve that goes around the entire circumference of the tire. The circumferential notch can be continuous, that is, not interrupted by a tread pattern block or another notch, so that the two main sides that determine its length are uninterrupted around the entire circumference of the tire. Similarly, the circumferential notch can be discontinuous, that is, interrupted by one or more tread pattern blocks and / or one or more other notches, so that the two main sides that determine its length are interrupted around the entire circumference of the tire by one or more tread pattern blocks and / or one or more other notches.

[0035] In the case of a circumferential notch located on the outer side of the midline of a tire, its sides are called the axial inner surface and the axial outer surface, and the axial inner surface is positioned axially inward of the axial outer surface with respect to the midline at a given azimuth angle.

[0036] Each circumferential notch has an axial inner end and an axial outer end. Whether or not the circumferential notch has a chamfer, each axial inner and outer end is located on the tread surface and therefore coincides with the axial edges of the circumferential notch that are in contact with the ground on which the tire travels.

[0037] In the case of a lateral notch, the sides are called the front and rear, and the front is the side whose edge enters the contact surface before the edge of the rear with respect to a given circumferential line.

[0038] In some embodiments, whether or not it is a principal circumferential notch, such or each circumferential notch is chamfered. The chamfer of a circumferential notch can be a straight chamfer or a rounded chamfer. A straight chamfer is formed by a flat surface inclined with respect to the axial inner and outer surfaces, extending to the axial inner or outer edge that axially divides the circumferential notch. A rounded chamfer is formed by a curved surface that tangentially merges with the subsequent axial inner or outer surface. The chamfer of a circumferential notch is characterized by its height and width, which are equal to the radial distance and axial distance, respectively, between the common point of the axial inner or outer surface to which the chamfer extends and the axial inner or outer edge that axially divides the circumferential notch.

[0039] In some embodiments, the transverse notches, or each transverse notch, are chamfered. In other words, each transverse notch is defined radially by a front and rear surface that are connected to each other by a bottom surface that divides the transverse notch circumferentially and radially inward. The chamfer of the transverse notch can be a straight chamfer or a rounded chamfer. A straight chamfer is formed by a flat surface inclined with respect to the front and rear surfaces that extends to the front or rear edge that divides the transverse notch circumferentially. A rounded chamfer is formed by a curved surface that tangentially merges with the subsequent front or rear surface. The chamfer of the transverse notch is characterized by its height and width, which are equal to the radial distance and the distance perpendicular to the front or rear surface between the common point of the front or rear surface to which the chamfer extends and the front or rear edge that divides the transverse notch circumferentially, respectively.

[0040] In conventional methods, the axial end of the tread is determined as the axial end of the tread surface that contacts the ground when the unloaded tire, mounted on the nominal rim and inflated to its nominal pressure, travels, in the sense of the European Tire and Rim Technology Organization (ETRTO) standard (2019). If there is a clear boundary between the tread surface and the rest of the tire, the axial end of the tread is easily determined. If the tread surface is continuous with the outer surface of the tire's sidewall, each axial end of the tread passes through a point where the angle between the tangent to the tread surface and the axial direction is equal to 30°. If there are multiple points in the meridional section where this angle is equal to 30° in absolute value, the outermost radial point is used.

[0041] The tire according to the present invention has a toroidal shape centered on a rotation axis substantially coinciding with the tire's axis of rotation. This rotation axis defines three directions conventionally used by those skilled in the art: axial, circumferential, and radial.

[0042] The term "axial direction" refers to the direction substantially parallel to the tire's axis of rotation, i.e., the tire's axis of rotation.

[0043] The term "circumferential direction" refers to a direction that is substantially perpendicular to both the axial direction and the tire's radius (in other words, a direction tangent to a circle centered on the tire's axis of rotation).

[0044] The term "radial direction" refers to any direction along the radius of the tire, that is, any direction that intersects the tire's axis of rotation and is substantially perpendicular to that axis.

[0045] The term "median plane" (indicated by M) is understood to mean a plane perpendicular to the tire's axis of rotation, located midway between the two beads in terms of axial direction and passing through the axial center of the crown reinforcement.

[0046] The expression "tire equatorial plane (denoted as E)" is understood to mean the plane passing through the tire's equator, perpendicular to the median plane and radial direction in the meridional section. The tire's equator is the axis in the meridional section (a plane perpendicular to the circumferential direction and parallel to the radial and axial directions) that is parallel to the tire's axis of rotation and is equidistant from the radially outermost point of the tread intended to contact the ground and the radially innermost point of the tire intended to contact the support, the distance between these two points being equal to H.

[0047] The meridional plane is understood to be a plane that is parallel to and contains the tire's axis of rotation, and perpendicular to the circumferential direction.

[0048] "Radially inward from" and "radially outward from" are understood to mean "closer to the tire's axis of rotation than from" and "further from the tire's axis of rotation than from," respectively. "Axially inward from" and "axially outward from" are understood to mean "closer to the tire's midline than from" and "further from the tire's midline than from," respectively.

[0049] The bead is understood to be the portion of the tire intended to allow it to be mounted to a mounting support, such as a wheel with a rim. Therefore, each bead is specifically intended to contact the flange of the rim, which enables the tire to be mounted.

[0050] The expression "between a and b" indicates a range of values ​​that extends from greater than a to less than b (i.e., excluding the endpoints a and b), whereas the expression "from a to b" indicates a range of values ​​that extends from a to b (i.e., including the exact endpoints a and b).

[0051] In a preferred embodiment of the present invention, the tire is intended for passenger cars as defined in accordance with the European Tire and Rim Technology Organization or the "ETRTO" standard (2019). Such a tire has a cross section within a meridional section characterized by a section height H and a nominal section width S, in accordance with the European Tire and Rim Technology Organization or the "ETRTO" standard (2019), in which case the ratio H / S, expressed as a percentage, is equal to a maximum of 90, preferably a maximum of 80, more preferably a maximum of 70, at least 30, preferably at least 40, and the nominal section width S is equal to at least 115 mm, preferably at least 155 mm, more preferably at least 175 mm, at a maximum of 285 mm, preferably at a maximum of 315 mm, more preferably at a maximum of 285 mm, and even more preferably at a maximum of 55 mm. Furthermore, the diameter D in the rim flange that defines the diameter of the tire mounting rim is equal to at least 12 inches, preferably at least 16 inches, and at most 24 inches, preferably at most 20 inches.

[0052] In certain embodiments, the layer of the self-sealing product is - At least one axial portion relating to the thick wall, and at least one axial portion relating to the thin wall, and / or - At least two axially thickened and / or axially thinned portions, separated axially from each other by an axial portion having a zero-thickness self-sealing fabrication, Equipped with, -The axial thickening portion or each axial thickening portion is axially separated by two adjacent inflection points of the radial inner surface curve of the layer of the self-sealing product, and the thickness of the axial thickening portion increases in the axial direction toward the inside of the axial thickening portion from each of the inflection points. - The axial thin portion or each axial thin portion is axially separated by two adjacent inflection points of the radial inner surface curve of the layer of the self-sealing product, and the thickness of the axial thin portion decreases in the axial direction toward the inside of the axial thin portion from each of the inflection points, or decreases in the axial direction toward the inside of the axial thin portion from one of the inflection points and increases in the axial direction toward the inside of the axial thin portion from the other of the inflection points. This is understood.

[0053] In a second alternative to these embodiments, it is possible to have two axially thickened portions separated from each other in the axial direction by an axial portion having zero thickness of the self-sealing product, or two axially thinned portions separated from each other in the axial direction by an axial portion having zero thickness of the self-sealing product, or an axially thickened portion and an axially thinned portion separated from each other in the axial direction by an axial portion having zero thickness of the self-sealing product.

[0054] An inflection point is the point in the meridional section where the curvature direction of the radial inner surface curve of the self-sealing product layer changes. It is similarly defined as the endpoint of the radial inner surface curve of the self-sealing product layer in contact with the airtight layer. The axial width of the said or each axial thickness portion is, for example, the axial distance between two inflection points, measured in the meridional section.

[0055] The present invention may envision embodiments in which the layers of the self-sealing product extend discontinuously or continuously circumferentially over all or part of the circumferential length of the layers of the self-sealing product. Preferably, in order to ensure high effectiveness of the layers of the self-sealing product against perforation, each thick axially thickened portion and axially thinned portion extends continuously circumferentially over at least 50%, preferably at least 75%, more preferably at least 95%, and ideally 100% of the circumferential length of the layers of the self-sealing product.

[0056] The present invention similarly allows for the assumption of axial portions of a self-sealing product having circumferentially variable thickness. However, in order to maximize the mass benefit and ensure the uniform effectiveness of the self-sealing product's layers, the average thickness of each axially thickened and axially thinned portion is substantially constant in the circumferential direction over at least 50%, preferably at least 75%, and more preferably at least 95% of the circumferential length of the self-sealing product's layers.

[0057] In one embodiment, the thickness of the layer of a self-sealing product is provided to vary between a relatively large average thickness corresponding to an axial portion with a high risk of perforation and a relatively small average thickness corresponding to an axial portion with a low risk of perforation. Thus, in a layer of a self-sealing product comprising axially thickened portions (may be multiple) and axially thinned portions (may be multiple) with L≧1, the axially thickened portion or each axially thinned portion has an average thickness EEm for m in the range of 1 to L, the axially thinned portion or each axially thickened portion has an average thickness EMn for n in the range of 1 to M, and for each value of m in the range of 1 to L, EMn is at least 50% of the value of n in the range of 1 to M, preferably 100% of the value of n in the range of 1 to M. <EEimである。

[0058] The average thicknesses EE and EM of the axial portions of the layers of a self-sealing product are measured by averaging the thicknesses at multiple meridional sections of the layer of the self-sealing product between inflection points defining the axial ends of the axial portions of the layers of the self-sealing product, all of which are measured in millimeters, for example. If it is preferable that the average thickness is substantially constant in the circumferential direction, the number of meridional sections is reduced. If the average thickness is not constant in the circumferential direction, a number of meridional sections, e.g., 16 sections, are obtained, and the thicknesses measured at all meridional sections are averaged. The thickness measured at a particular point is, of course, the shortest straight-line distance passing through that point between the radial outer and radial inner surfaces of the layer of the self-sealing product. It should be noted that the sections at the meridional sections are obtained without degrading the layers of the self-sealing product in order to accurately measure the thickness in detail, due to various geometric variables. In particular, a very high-pressure water jet cutting process can be used.

[0059] In the passenger car and multi-purpose vehicle tires described above, the average thickness EE is advantageously in the range of 2.0 mm to 5.0 mm, preferably 2.5 mm to 4.5 mm, and the average thickness EM is advantageously in the range of 0.5 mm to 4.0 mm, preferably 1.0 mm to 3.0 mm.

[0060] As described above, in certain embodiments that enable increased mass benefits and improved effectiveness in sealing potential holes in each axial portion where the risk of perforation is high, for each value of m in the range of 1 to L, at least 50% of the values ​​of n in the range of 1 to M, preferably 75% of the values ​​of n in the range of 1 to M, and more preferably 100% of the values ​​of n in the range of 1 to M, are such that EEm ≥ 1.10 × EMn, preferably EEm ≥ 1.30 × EMn, and even more preferably EEm ≥ 1.50 × EMn.

[0061] As described above, in other embodiments that enable the mass benefit and increased effectiveness of sealing holes that may occur in the axial portion or in the axial portion where the risk of perforation is low, for each value of m in the range of 1 to L, at least 50% of the values ​​of n in the range of 1 to M, preferably 75% of the values ​​of n in the range of 1 to M, and more preferably 100% of the values ​​of n in the range of 1 to M, are such that EEm ≤ 5.00 × EMn, preferably EEm ≤ 4.00 × EMn, and even more preferably EEm ≤ 2.50 × EMn.

[0062] In one embodiment, the tread is - A circumferential notch, called a circumferential notch, having a depth Ha such that Ha / Hs ≥ 50%, preferably Ha / Hs ≥ 75%, and more preferably Ha / Hs ≥ 90%, -At least one rib, Equipped with, The axial thickened portion or one of the axial thickened portions is positioned at least partially to coincide with the or each circumferential notch, The axially thinned section or one of the axially thinned sections is positioned at least partially in conjunction with the or each rib.

[0063] In this embodiment, the inventors determined that the axial portions of the tread that are at high risk of perforation are those with relatively small tread thickness. These axial portions of the tread are those that have main circumferential notches having a depth equal to at least half the tread pattern height. Accordingly, this embodiment provides that the axially thick portions of the self-sealing product layer are positioned to coincide at least partially with these main circumferential notches, thereby ensuring high effectiveness of the self-sealing product layer against perforation occurring in the main circumferential notches.

[0064] To reduce tire weight, the inventors determined that tire ribs having a greater tread thickness than those located radially inward of the main circumferential notches are axial portions with a lower risk of perforation. This is because, on the one hand, the tread thickness protects the tire from perforation if the perforation is relatively short, and on the other hand, the relatively large thickness of the tread resists perforation to a greater extent than the relatively small thickness. Accordingly, this embodiment provides that the axially thin portions of the layers of the self-sealing product are positioned at least partially along the ribs, thereby making it possible to significantly reduce the weight of the tire.

[0065] The axial portion of the self-sealing product layer that aligns with the main circumferential notch or rib of the tread is the axial portion of the self-sealing product separated by axial ends defined by two circumferential planes perpendicular to the tire's axis of rotation, each passing through the axial end of the main circumferential notch or rib. Therefore, if the axially thickened portion of the self-sealing product layer has an axial width greater than the axial width of the main circumferential notch, only a portion of the axially thickened portion of the self-sealing product layer aligns with the main circumferential notch. If the axially thickened portion of the self-sealing product layer has an axial width less than the axial width of the main circumferential notch, the entire axially thickened portion of the self-sealing product layer aligns with the main circumferential notch. Similarly, if the axially thinned portion of the self-sealing product layer has an axial width greater than the axial width of the rib, only a portion of the axially thinned portion of the self-sealing product layer aligns with the rib. If the axially thinned portion of the self-sealing product layer has an axial width less than the axial width of the rib, the entire axially thinned portion of the self-sealing product layer aligns with the rib.

[0066] Because it has a relatively large depth Ha in relation to other additional circumferential notches that are optionally present on the tire tread, have a relatively small depth, and therefore have a low risk of perforation, this or each of the circumferential notches is called a main circumferential notch.

[0067] In particular, in the case of tires for passenger cars and multi-purpose vehicles, the main circumferential notches are relatively wide main circumferential grooves, and the risk of perforation is very high. Therefore, in embodiments in which the present invention is particularly advantageous, the main circumferential notches or each main circumferential notch have an axial width of 1.0 mm or more, preferably 5.0 mm or more, more preferably 8.0 mm or more, and even more preferably in the range of 8.0 mm to 20.0 mm.

[0068] In particular, in the case of tires for passenger cars and multi-purpose vehicles, the main circumferential notches are relatively deep and the risk of perforation is very high, and therefore in embodiments in which the present invention is particularly advantageous, the main circumferential notches or each main circumferential notch have a depth in the range of 4.0 mm to the height of the tread pattern, preferably in the range of 5.0 mm to the height of the tread pattern, and more preferably in the range of 5.5 mm to the height of the tread pattern.

[0069] Advantageously, the rib or each rib is axially separated by an axial inner end and an axial outer end, and each axial inner end and outer end is selected from the following: - The axial end of the tread, and - The axial inner or outer end of the main circumferential notch(s), The axial inner and outer ends of the ribs are selected from the ends adjacent to each other.

[0070] Advantageously, the layers of the self-sealing product have a significant axial width relative to the axial width of the main circumferential notch near the main circumferential notch, so that any possible pores can be effectively sealed. Thus, the axial width Wx of the axial thickening portion is Wx / Lax ≥ 0.50, preferably Wx / Lax > 1.00, where Lax is the axial width of the main circumferential notch in which the axial thickening portion is at least partially located.

[0071] Therefore, as defined above, the axially thickened portion may have an axial width smaller than the axial width of the main circumferential notch, but still sufficient to effectively seal any holes that may occur. In this case, the axially thickened portion coincides with a portion of the axial part of the self-sealing product layer extending in conjunction with the main circumferential notch. Similarly, the axially thickened portion may preferably have an axial width greater than or equal to the axial width of the main circumferential notch. In this case, a portion of the axially thickened portion coincides with the axial part of the self-sealing product layer extending in conjunction with the main circumferential notch.

[0072] Advantageously, Wx / Lax ≤ 4.00, preferably Wx / Lax ≤ 3.00, more preferably Wx / Lax ≤ 2.00, even more preferably Wx / Lax ≤ 1.50, and very preferably Wx / Lax ≤ 1.25. In order to avoid excessively increasing the weight of the tire, it is preferable not to provide axially wide axially thickened sections unless it is found to be particularly advantageous in optimizing puncture prevention performance at the shoulder of the tire. Thus, axially thickened sections corresponding to the outermost main circumferential notches may not satisfy the above conditions, while other axially thickened sections corresponding to other main circumferential notches may satisfy those conditions.

[0073] In the case of a rib that is axially separated by the axial end of the tread and the axial inner or outer end of a main circumferential notch, it is generally called a lateral rib because it is located on the side of the tread. In the case of a rib that is axially separated by the axial inner (or outer) end of a main circumferential notch and the adjacent axial outer (or inner) end of another main circumferential notch, it is generally called a central rib because it is located in the center of the tread.

[0074] The phrase "adjacent ends" should be understood to mean that the axial inner or outer ends of the main circumferential notch are not located between the axial directions of adjacent ends.

[0075] In another embodiment, the tread is -Hs is defined as the tread pattern height, and includes at least one rib, called a deeply cut rib, which has a depth Ht such that Ht / Hs ≥ 50% - At least one rib, referred to as an uncut or slightly cut rib, which has no lateral notches or has lateral notches, and each of these ribs meets the following conditions with respect to at least 50%, preferably 75%, and more preferably 100% of the number of lateral notches of the uncut or slightly cut rib: - The lateral notches of the ribs that are not cut off or are only slightly cut off have a width of strictly less than 1.6 mm, preferably strictly less than 1.0 mm, and more preferably strictly less than 0.7 mm. -The lateral notches of the ribs that are not cut off or are only slightly cut off have a depth H such that H / Hs < 50%, preferably H / Hs ≤ 30%. At least one rib that satisfies at least one of the following conditions, Equipped with, The axially thickened section, or one of the axially thickened sections, is positioned at least partially to coincide with the deeply cut rib. The axially thinned section, or one of the axially thinned sections, is positioned to at least partially coincide with an uncut or slightly cut rib.

[0076] The inventors involved in this invention determined that the axial portions of the tread at high risk of perforation are the ribs where the deepest lateral notches are formed. These axial portions have lateral notches having a depth equal to at least half the height of the tread pattern. Accordingly, the present invention makes it possible to ensure that the axially thickened portions of the self-sealing product layer are positioned at least partially to coincide with these deeply cut ribs, thereby guaranteeing high effectiveness of the self-sealing product layer against perforation occurring in these deeply cut ribs.

[0077] To reduce tire weight, the inventors determined that weaker or slightly trimmed ribs pose a lower risk of puncture. This is because, in the case of untrimmed ribs, a relatively larger tread thickness is considerably more resistant to puncture than a relatively smaller tread thickness. In the case of slightly trimmed ribs with shallow lateral notches, on the one hand, the tread thickness protects the tire from puncture if the perforation is relatively short, and on the other hand, a relatively thick tread is significantly more resistant to puncture than a relatively thin tread. In addition, in the case of slightly trimmed ribs with narrow lateral notches, the likelihood of the perforation being embedded within is relatively low. Therefore, the present invention provides a self-sealing product with a relatively small, or zero, average thickness Eb, matched with untrimmed or slightly trimmed ribs, thereby enabling a significant reduction in tire weight.

[0078] In particular, in the case of tires for passenger cars and multi-purpose vehicles, the lateral notches of the ribs or each deeply cut rib are relatively wide, and the risk of perforation is very high. Therefore, in embodiments in which the present invention is particularly advantageous, the lateral notches of the ribs or each deeply cut rib have a width of 0.7 mm or more, preferably 1.0 mm or more, and more preferably 1.6 mm or more.

[0079] In particular, in the case of tires for passenger cars and multi-purpose vehicles, the lateral notches of the or each deeply cut rib are relatively deep, and the risk of perforation is very high. Therefore, in embodiments in which the present invention is particularly advantageous, the or each lateral notch of the or each deeply cut rib has a depth in the range of 2.0 mm to the height of the tread pattern, preferably in the range of 4.0 mm to the height of the tread pattern, and more preferably in the range of 5.0 mm to the height of the tread pattern.

[0080] Each deeply cut rib and each uncutted or slightly cut rib are axially separated by an axial inner end and an axial outer end, and each axial inner end and outer end are - The axial end of the tread, and - The axial inner or outer end of a circumferential notch called a main circumferential notch, having a depth Ha of -Ha / Hs≧50%, preferably Ha / Hs≧75%, more preferably Ha / Hs≧90%, The axial inner and outer ends of the rib are selected from the following, and the ends are adjacent to each other.

[0081] In the case of a rib that is axially separated by the axial end of the tread and the axial inner or outer end of a main circumferential notch, it is generally called a lateral rib because it is located on the side of the tread. In the case of a rib that is axially separated by the axial inner (or outer) end of a main circumferential notch and the adjacent axial outer (or inner) end of another main circumferential notch, it is generally called a central rib because it is located in the center of the tread.

[0082] The phrase "adjacent ends" should be understood to mean that the axial inner or outer ends of the main circumferential notch are not located between the axial directions of adjacent ends.

[0083] Advantageously, the layers of the self-sealing product have a significant axial width relative to the axial width of each deeply cut rib near the deeply cut ribs, so that any possible holes can be effectively sealed. Thus, the axial width Wy of the axial thickened portion is Wy / Lcy ≥ 0.50, preferably Wy / Lcy > 1.00, where Lcy is the axial width of the deeply cut ribs where the axial thickened portion is at least partially coincident.

[0084] Therefore, as defined above, the axially thickened portion may have an axial width smaller than the axial width of the deeply cut rib, but still sufficient to effectively seal any holes that may occur. In this case, the axially thickened portion coincides with a portion of the axial part of the layer of the self-sealing product that extends in conjunction with the deeply cut rib. Similarly, the axially thickened portion may preferably have an axial width greater than or equal to the axial width of the deeply cut rib. In this case, a portion of the axially thickened portion coincides with a portion of the axial part of the layer of the self-sealing product that extends in conjunction with the deeply cut rib.

[0085] To maximize the effect of the self-sealing product layer over most of the axial width of the tread, each axial outer end of the self-sealing product layer is positioned at a distance of 20% or less, preferably 10% or less, of the axial width of the tread, from each end of the tread, preferably axially inward from each axial end of the tread.

[0086] In conventional designs, a tire comprises a crown, two sidewalls, and two beads, with each sidewall connecting each bead to the crown. The crown also comprises a tread and crown reinforcements positioned radially inward of the tread. The tire also includes carcass reinforcements fixed to each bead, extending radially within each sidewall and axially within the crown.

[0087] In conventional methods, the crown reinforcement comprises at least one crown layer containing reinforcing elements. These reinforcing elements are preferably made of fabric or metal fibrous material.

[0088] In embodiments that enable the acquisition of performance aspects of a tire known as a radial tire as defined by ETRTO, the carcass reinforcement comprises at least one carcass layer, which or each carcass layer comprises a carcass fibrous reinforcing element, each carcass fibrous reinforcing element extending substantially along the principal direction, which forms an angle with the circumferential direction of the tire in the range of 80° to 90° in absolute value.

[0089] The present invention can be better understood by reading the following description, which is given in conjunction with the drawings as merely a non-limiting example. [Brief explanation of the drawing]

[0090] [Figure 1] This is a meridional cross-sectional view parallel to the rotation axis of a tire according to a first embodiment of the present invention. [Figure 2] Figure 1 is a top view of the tire tread. [Figure 3]Figure 1 is a meridional cross-sectional view parallel to the rotation axis of the tire, illustrating the manufacturing method of the tire. [Figure 4] This figure is similar to Figure 1, relating to a tire according to a second embodiment of the present invention. [Modes for carrying out the invention]

[0091] The reference frames X, Y, and Z, corresponding to the normal axial (Y), radial (Z), and circumferential (X) directions of the tire, are shown in the diagram relating to the tire.

[0092] In the following description, the measurements obtained are taken with respect to an unloaded, uninflated tire or to a portion of the tire in the meridional plane.

[0093] Figure 1 shows a tire according to the present invention, represented by reference numeral 10. Tire 10 has a substantially toridal shape around a rotation axis substantially parallel to the axial direction Y. Tire 10 is for passenger cars and has a size of 245 / 45R18. In various figures, tire 10 is shown as new, i.e., unused.

[0094] The tire 10 includes a crown 12, which comprises a tread 14 intended to contact the ground during driving, and a crown reinforcement 16 extending circumferentially X within the crown 12. The tire 10 also includes an airtight layer 18 against expansion gas, which is intended to demarcate the internal cavity of the tire 10 that is closed by the mounting support once the tire 10 is mounted to a mounting support, such as a rim.

[0095] The crown reinforcement 16 comprises a working reinforcement 20 and a hoop reinforcement 22. The working reinforcement 16 comprises at least one working layer, in this case two working layers, comprising a radially outer working layer 26 and a radially inner working layer 24 located radially inside thereof.

[0096] The hoop reinforcement 22 comprises at least one hooping layer, in this case, one hooping layer 28.

[0097] The crown reinforcement 16 supports the tread 14 in the radial direction. In this case, the hoop reinforcement 22, in this example the hooping layer 28, is positioned radially outside the working reinforcement 20 and is therefore inserted radially between the working reinforcement 20 and the tread 14.

[0098] The tire 10 has two sidewalls 30 that extend radially inward from the crown 12. The tire 10 also has two beads 32 radially inward from the sidewalls 30. Each sidewall 30 connects each bead 32 to the crown 12.

[0099] The tire 10 includes carcass reinforcements 34 that are fixed to each bead 32 and wrapped around bead wires 33 in this example. The carcass reinforcements 34 extend radially within each sidewall 30, axially within the crown 12, and radially inward within the crown reinforcement 16. The crown reinforcement 16 is positioned radially between the tread 14 and the carcass reinforcement 34. The carcass reinforcement 34 comprises at least one carcass layer 36.

[0100] Each working layer 24, 26, hooping layer 28, and carcass layer 36 comprises an elastomer matrix in which one or more fibrous reinforcing elements of the corresponding layer are embedded.

[0101] The hoop reinforcement 22, in this example the hooping layer 28, comprises one or more hooping fibrous reinforcing elements, which are spirally wound in the circumferential direction in the principal direction and form an angle AF with the circumferential direction X of the tire 10, which is 10° or less in absolute value, preferably 7° or less, and more preferably 5° or less. In this case, AF = -5°.

[0102] Each of the radially inner working layer 24 and the radially outer working layer 26 is provided with working fibrous reinforcing elements that extend in the principal direction and form opposite angles AT1 and AT2, respectively, where the angles are, in absolute value, more than 10° with respect to the circumferential direction X of the tire 10, preferably in the range of 15° to 50°, and more preferably in the range of 15° to 39°. In this case, AT1 = -26° and AT2 = +26°.

[0103] The carcass layer 36 includes carcass fibrous reinforcing elements that extend in the main direction D3 and form an angle AC with the circumferential direction X of the tire 10, which is 60° or more in absolute value, preferably in the range of 80° to 90°, in this case AC = +90°.

[0104] Conventionally, each hooping fibrous reinforcement element comprises two multifiber plies, each multifiber ply consisting of a single-fiber spun yarn of aliphatic polyamide, in this example nylon, with a count of 140 tex. These two multifiber plies are individually twisted spirally in one direction at 250 turns per meter, and then twisted spirally together in the opposite direction at 250 turns per meter. These two multifiber plies are then spirally wound around each other. As a variation, a hooping fibrous reinforcement element can be used comprising one multifiber ply consisting of a single-fiber spun yarn of aliphatic polyamide, in this example nylon, with a count of 140 tex, and one multifiber ply consisting of a single-fiber spun yarn of aromatic polyamide, in this example aramid, with a count of 167 tex. These two multifiber plies are individually twisted spirally in one direction at 290 turns per meter, and then twisted spirally together in the opposite direction at 290 turns per meter. These two multi-fiber plies are spirally wound around each other. This deformation results in AT1 = -29° and AT2 = +29°.

[0105] Each working fibrous reinforcing element is an aggregate of two steel single fibers spirally wound at a pitch of 14 mm, with each steel single fiber having a diameter of 0.30 mm. As a variation, an aggregate of six steel single fibers can be used, comprising an inner layer of two single fibers spirally wound around each other at a pitch of 12.5 mm in a first direction, e.g., the Z direction, and an outer layer of four single fibers spirally wound around the inner layer at a pitch of 12.5 mm in a second direction opposite to the first direction, e.g., the S direction. In another variation, each working fibrous reinforcing element consists of a single steel single fiber having a diameter of 0.30 mm. More generally, the steel single fibers have diameters ranging from 0.25 mm to 0.32 mm.

[0106] Each carcass fibrous reinforcing element conventionally comprises two multifiber plies, each multifiber ply composed of a single fiber spun yarn of polyester, in this case PET. These two multifiber plies are individually twisted spirally in one direction at 240 turns per meter, and then twisted together in the opposite direction at 240 turns per meter. Each of these multifiber plies has a count equal to 220 tex. Other variations can utilize a count equal to 144 tex and a twist equal to 420 turns per meter, or a count equal to 334 tex and a twist equal to 270 turns per meter.

[0107] Referring to Figures 1 and 2, the tread 14 has a tread surface 38 through which the tread 14 makes contact with the ground. The tread surface 38 is intended to make contact with the road surface when the tire 10 is running. The tread is axially divided by first and second axial edges 41, 42 passing through points N located on each side of the central plane M, in which case the angle between the tangent T to the tread surface 38 passing through these points and the straight line R parallel to the axial direction Y is equal to 30°.

[0108] The tread 14 comprises an axial central portion P0 and first and second axial side portions P1 and P2, one on each axial side of the axial central portion P0 with respect to the central plane M of the tire 10, and positioned axially outward from the axial central portion P0.

[0109] Although not specific to the illustrated embodiment, the axial central portion P0 has an axial width L0 that is 50% or more, preferably 60% or more, and 80% or less, preferably 70% or less, of the axial width L of the tread surface 38 of the tire 10 when new. The first and second axial side portions P1 and P2 have axial widths L1 and L2 that are 25% or less, preferably 20% or less, and 5% or more, preferably 10% or more, of the axial width L of the tread surface 38 of the tire 10 when new. The ratio of the axial width L0 of the central portion P0 to the axial widths L1 and L2 of the first and second axial side portions P1 and P2 is 3.0 or more, preferably in the range of 3.0 to 5.0, and more preferably in the range of 4.0 to 4.5. In this case, L0 = 140 mm and L1 = L2 = 33 mm.

[0110] The axial central portion P0 has N>1 main circumferential notches, in this case N main circumferential grooves, comprising the first, second, third, and fourth main circumferential notches, respectively, represented by reference numbers 52, 54, 56, and 58. The first and second main circumferential notches 52 and 54 are located one on each axial side of the central plane M of the tire 10 and are the outermost axial main circumferential notches of the tread 14.

[0111] Each of the main circumferential notches 52 to 58 is axially separated by an axial outer end represented by reference numbers 521, 541, 561, and 581, respectively, and an axial inner end represented by reference numbers 522, 542, 562, and 582, respectively. The axial central portion P0 extends axially from the axial outer end 521 of the first main circumferential notch 52 to the axial outer end 541 of the second main circumferential notch 54.

[0112] Each of the main circumferential notches 52 to 58 is represented by reference numbers Ha1, Ha2, Ha3, and Ha4, respectively, and has a depth in the range of 4.0 mm to the tread pattern height Hs, preferably in the range of 5.0 mm to the tread pattern height Hs, and more preferably in the range of 5.5 mm to the tread pattern height Hs. Each depth Ha1, Ha2, Ha3, and Ha4 is 50% or more of the tread pattern height Hs. In this example, Hs = Ha3 = Ha4 = 6.5 mm and Ha1 = Ha2 = 6.0 mm. Therefore, for each of the main circumferential notches 52, 54, 56, and 58, since Hs = 6.5 mm, Hai / Hs ≥ 75%, and in this example, Hai / Hs ≥ 90% (i is in the range of 1 to 4).

[0113] Each of the main circumferential notches 52 to 58 is represented by reference numbers La1, La2, La3, and La4, respectively, and has an axial width of 1.0 mm or more, preferably 5.0 mm or more, more preferably 8.0 mm or more, and even more preferably in the range of 8.0 mm to 20.0 mm. In this example, La1=La2=10.0 mm and La3=La4=12.5 mm.

[0114] The axial central portion P0 comprises Q = N-1 ≥ 1 central rib, in this example, the first, second, and third central ribs, represented by reference numbers 62, 64, and 66, respectively. Each central rib 62, 64, and 66 is positioned axially between two adjacent main circumferential notches 52 to 58 and is axially separated by the two adjacent main circumferential notches 52 to 58.

[0115] Each central rib 62, 64, and 66 is axially separated by an axial inner end and an axial outer end, the axial inner end and axial outer end of the main circumferential notches 52 to 58, respectively. The axial inner and outer ends of each central rib 62, 64, and 66 are adjacent to each other. In this particular case, the first central rib 62 is axially separated by the axial inner end 522 of the first main circumferential notch 52 and the axial outer end 561 of the third main circumferential notch 56. The second central rib 64 is axially separated by the axial inner end 562 of the third main circumferential notch 56 and the axial inner end 582 of the fourth main circumferential notch 58. The third central rib 66 is axially separated by the axial outer end 581 of the fourth main circumferential notch 58 and the axial inner end 542 of the second main circumferential notch 54.

[0116] The axial central portion P0 is provided with additional circumferential notches formed in the central ribs 62, 64, and 66. In this example, each central rib 62, 64, and 66 is provided with additional circumferential notches 71, 72, and 73, respectively. Each additional circumferential notch 71, 72, and 73 has a depth of less than 50% of the tread pattern height Hs, preferably 30% or less of the tread pattern height Hs, more preferably in the range of 10% to 30% of the tread pattern height Hs, in this case ranging from 1.0 mm to 4.0 mm, and in this example having a depth equal to 2.0 mm. Each additional circumferential notch 71, 72, 73 has an axial width of 4% to 15%, preferably 4% to 10%, of the axial width of each central rib 62, 64, 66, in which case it is 3.0 mm or less, preferably in the range of 1.0 mm to 3.0 mm, and in this example it has an axial width equal to 1.0 mm.

[0117] Furthermore, each central rib 62, 64, 66 is provided with lateral notches 74, 75, 76, and they satisfy at least one of the following conditions with respect to at least 50%, preferably at least 75%, and more preferably 100% of the number of lateral notches 74, 75, 76 of each central rib 62, 64, 66: - The lateral notch of the central rib has a width of strictly less than 1.6 mm, preferably strictly less than 1.0 mm, and more preferably strictly less than 0.7 mm. - The lateral notch of the central rib has a depth H such that H / Hs < 50%, preferably H / Hs ≤ 30%.

[0118] In this particular case, each central rib 62, 64, 66 is provided with lateral notches 74, 75, 76 that satisfy the condition that each lateral notch 74, 75, 76 has a width of exactly less than 0.7 mm for 100% of the number of lateral notches 74, 75, 76 of each central rib 62, 64, 66. In this regard, each central rib 62, 64, 66 is referred to as being slightly cut out.

[0119] The first axial side portion P1 extends axially from the first axial end 41 of the tread 14 to the axial outer end 521 of the first main circumferential notch 52. The second axial side portion P2 extends axially from the second axial end 42 of the tread 14 to the axial outer end 541 of the second main circumferential notch 54.

[0120] Each of the first and second axial sides P1 and P2 comprises a first and second lateral rib, respectively, represented by reference numbers 68 and 70, and in this example, each consists of a first and second lateral rib 68 and 70. Thus, the tire 10 has P=2>1 lateral rib. Therefore, the first lateral rib 68 is axially separated by two adjacent ends, in this example by the axial end 41 of the tread 14 and the axial outer end 521 of the first main circumferential notch 52. The second lateral rib 70 is axially separated by two adjacent ends, in this example by the axial end 42 of the tread 14 and the axial outer end 541 of the second main circumferential notch 54. Each of the first and second lateral ribs 68 and 70 has an axial width represented by reference numbers Lc1 and Lc2, respectively, where Lc1=Lc2=33mm.

[0121] Each of the first and second lateral ribs 68, 70 is provided with lateral notches 77, 78 having a depth Ht such that Ht / Hs ≥ 50%, preferably Ht / Hs ≥ 75%, and more preferably Ht / Hs ≥ 90%. Each lateral notch 77, 78 has a depth Ht ranging from 2.0 mm to the tread pattern height Hs, preferably from 4.0 mm to the tread pattern height Hs, and more preferably from 5.0 mm to the tread pattern height Hs, where in this example Ht = 6.0 mm. Each lateral notch 77, 78 has a width of 0.7 mm or more, preferably 1.0 mm or more, and more preferably 1.6 mm or more. In this regard, each lateral rib 68, 70 is referred to as being deeply cut.

[0122] Referring to Figure 1, the tire 10 also includes a self-sealing product layer 80 extending circumferentially and at least partially coincident with the tread 14, radially inward of a portion of the airtight inner layer 18. Self-sealing products are known from the prior art and can be selected from those described in particular in International Publications 2020 / 009849, 2011 / 092122, and 2011 / 092123. The layer of the self-sealing product is axially separated by two axial ends 81, 82, each positioned with respect to each axial end 41, 42 of the tread 14 at an axial distance of 20% or less, preferably 10% or less, of the axial width of the tread. In this example, although embodiments in which each axial end 81, 82 is positioned axially inward of each axial end 81, 82 are preferred, each axial end 81, 82 is radially aligned with each end 41, 42.

[0123] The layer 80 of the self-sealing product comprises axial portions called axial thickening portions, represented in this example by reference numbers 90, 92, 94, and 96, where L≧1, in this example L=4>1, and axial portions called axial thinning portions, represented in this example by reference numbers 100, 102, and 104, where M≧1, in this example M=3>1. As shown in Figure 1, each axial thickening portion and axial thinning portion is separated by two inflection points 81, 82, 83, 84, 85, 86, 87, and 88 on the radial inner surface curve 89 of the layer of the self-sealing product. Each axial thickening portion 90 to 96 is separated axially by two adjacent inflection points such that the thickness of each axial thickening portion 90 to 96 increases in the axial direction toward the axial interior of each axial thickening portion 90 to 96 from each of the inflection points. Each axially thin-walled portion 100 to 104 is axially separated by two adjacent inflection points such that the thickness of each axially thin-walled portion 100 to 104 decreases in the direction toward the axially inward direction of the axially thin-walled portion 100 to 104 from each of the inflection points.

[0124] Each axially thickened section 90 to 96 and each axially thinned section 100 to 104 extends continuously in the circumferential direction for at least 50% of the circumferential length of the layer 80 of the self-sealing product, preferably at least 75%, more preferably at least 95%, and in this example, 100%. The average thicknesses EE1, EE2, EE3, and EE4 of each axially thickened section 90, 92, 94, and 96, and the average thicknesses EM1, EM2, and EM3 of each axially thinned section 100, 102, and 104, are substantially constant in the circumferential direction for at least 50% of the circumferential length of the layer 80 of the self-sealing product, preferably at least 75%, more preferably at least 95%, and in this example, 100%. In this example, EE1=EE2=EE3=EE4=3.45mm and EM1=EM2=EM3=1.95mm. Each axially thickened section 90, 92, 94, and 96 has an axial portion 90', 92', 94', and 96' that extends axially and coincides with each of the main circumferential notches 52, 54, 56, and 58. Thus, the layer 80 of the self-sealing product has N=4 axial portions 90' to 96' that extend axially and coincide with one of the N main circumferential notches 52 to 58. Each axial portion 90' to 96' has an average thickness Eai>0 of the self-sealing product (where i ranges from 1 to 4). In this example, Ea1=Ea2=Ea3=Ea4=3.50mm.

[0125] Each axially thickened section 90, 92 also comprises axial portions 90'', 92'' respectively, which extend axially and coincide with the first and second lateral ribs 68, 70. Each portion 90'', 92'' has an average thickness Ec1>0, Ec2>0. In this example, Ec1=Ec2=3.50mm.

[0126] The thin-walled portions 102, 102, 104 in each axial direction respectively include axial portions 100’, 102’, 104’ that extend axially and coincide with the respective central ribs 62, 64, 66. Thus, the layer 80 of the self-sealing product includes Q = N - 1 = 3 axial portions 100’, 102’, 104’ that extend axially in coincidence with one of the Q central ribs 62, 64, 66. Each of the axial portions 100’, 102’, 104’ is disposed axially between two adjacent axial portions 90’ to 96’. Each of the axial portions 100’, 102’, 104’ has an average thickness Ebj ≧ 0 of the self-sealing product (j ranges from 1 to 3). In this example, Eb1 = Eb2 = Eb3 = 2.00 mm.

[0127] It should be noted that for each value of i in the range from 1 to N, at least 50% of the values of j in the range from 1 to Q, preferably 75% of the values of j in the range from 1 to Q, and in this case 100% of the values of j in the range from 1 to Q, are such that Ebj < Eai, Ebj < Ec1, and Ebj < Ec2.

[0128] Also, it should be noted that for each value of i in the range from 1 to N, at least 50% of the values of j in the range from 1 to Q, preferably 75% of the values of j in the range from 1 to Q, and in this case 100% of the values of j in the range from 1 to Q, on the one hand, are such that Eai ≧ 1.10 × Ebj, preferably Eai ≧ 1.30 × Ebj, more preferably Eai ≧ 1.50 × Ebj, and on the other hand, Eai ≦ 5.00 × Ebj, preferably Eai ≦ 4.00 × Ebj, more preferably Eai ≦ 2.50 × Ebj. In this case, for each value of i in the range from 1 to N, 100% of the values of j in the range from 1 to Q are such that Eai / Ebj = 1.75.

[0129] Furthermore, it should be noted that at least 50% of the j values ​​in the range from 1 to Q, preferably 75% of the j values ​​in the range from 1 to Q, and in this case 100% of the j values ​​in the range from 1 to Q, satisfy the following conditions: on the one hand, Ec1 ≥ 1.10 × Ebj and Ec2 ≥ 1.10 × Ebj, preferably Ec1 ≥ 1.30xEbj and Ec2 ≥ 1.30xEbj, more preferably Ec1 ≥ 1.50xEbj and Ec2 ≥ 1.50xEbj; and on the other hand, Ec1 ≤ 5.00xEbj and Ec2 ≤ 5.00xEbj, preferably Ec1 ≤ 4.00xEbj and Ec2 ≤ 4.00xEbj, and even more preferably Ec1 ≤ 2.50xEbj and Ec2 ≤ 2.50xEbj. In this example, 100% of the values ​​of j in the range from 1 to Q are such that Ec1 / Ebj = 1.75 and Ec2 / Ebj = 1.75.

[0130] Each axial thickened portion 90, 92, 94, and 96 at least partially coincides with all or part of each axial portion 90', 92', 94', and 96', respectively. In this example, as can be seen from Figure 1, each axial thickened portion 90, 92, 94, and 96 has an axial width greater than or equal to the axial width of each main circumferential notch 52, 54, 56, and 58, respectively. Thus, each axial thickened portion 94 and 96 has axial widths W3 and W4, respectively, so on the one hand, W3 / La3 ≤ 4.00 and W4 / La4 ≤ 4.00, preferably W3 / La3 ≤ 3.00 and W4 / La4 ≤ 3.00, more preferably W3 / La3 ≤ 2.00 and W2 / La2 ≤ 2.00, even more preferably W3 / La3 ≤ 1.50 and W4 / La4 ≤ 1.50, and very preferably W3 / La3 ≤ 1.25 and W4 / La4 ≤ 1.25. In this example, since W3 = W4 = 13.5 mm, W3 / La3 = W4 / La4 = 1.08.

[0131] Furthermore, each axially thickened portion 90, 92 coincides, at least partially, with all or part of each axial portion 90'', 92''. In this example, as can be seen from Figure 1, each axially thickened portion 90, 92 has an axial width greater than or equal to the axial width of each main circumferential notch 90'', 92''. Thus, each axially thickened portion 90, 92 has axial widths W1, W2, respectively, so on the one hand, W1 / Lc1 ≥ 0.50 and W2 / Lc2 ≥ 0.50, preferably W1 / Lc1 > 1.00 and W2 / Lc2 > 1.00. In this example, since W1 = W2 = 44 mm, W1 / Lc1 = W2 / Lc2 = 1.33.

[0132] Furthermore, W1 / La1 ≥ 0.50 and W2 / La2 ≥ 0.50, preferably W1 / La1 > 1.00 and W2 / La2 > 1.00. In this case, W1 / La1 = W2 / La2 = 4.40 is the value.

[0133] All the conditions that the various axial portions 90 to 96, 90' to 96', 90'', 92'', 100 to 104 and 100' to 104' must satisfy are met over at least 50%, preferably at least 75%, more preferably at least 95%, and in this example, 100% of the circumferential length of the layer 80 of the self-sealing product.

[0134] Each axial portion 90' to 96', 90'', 92'' and 100' to 104' of the self-sealing fabric layer extending in conjunction with each notch 52 to 58 and each rib 62 to 70 extends continuously in the circumferential direction for at least 50%, preferably at least 75%, more preferably at least 95%, and in this example, 100% of the circumferential length of the self-sealing fabric layer 80.

[0135] The average thicknesses Ea1 to Ea4, Ec1, Ec2, and Eb1 to Eb3 of each axial portion 90' to 96', 90”, 92”, and 100' to 104' are substantially constant in the circumferential direction over at least 50%, preferably at least 75%, more preferably at least 95%, and in this example over 100% of the circumferential length of the layer 80 of the self-sealing product.

[0136] Here, the manufacturing method of the tire 10 will be explained with reference to Figure 3.

[0137] Prepare a new vulcanized tire without the self-sealing layer 80.

[0138] An extrusion device and a device for applying a strip 200 of self-sealing product having a width equal to 15 mm and a thickness equal to 0.9 mm are provided. Such a device is described in particular in International Publication No. 2015 / 173120 and includes n. In a modified form, it is possible to use a bead of the self-sealing product.

[0139] The self-sealing product strip 200 is wrapped around the radially inward side of the tire's airtight layer 18 by multiple circumferential turns, in this example, 33 circumferential turns. This wrapping step is carried out according to the principle for wrapping the strip 200, and the result is shown in Figure 3.

[0140] The wrapping of the strip 200 begins at the axial end 81 and stops when it reaches the axial end 82. The strip 200 is wrapped without interruption between the two axial ends 81 and 82.

[0141] During the winding step, the strip 200 is wound around itself by circumferentially winding it Nai > 1 times radially over each axial thick portion 90, 92, 94, 96 of the layer 80 of the self-sealing product (where i ranges from 1 to 4). The strip 200 is wound around itself by circumferentially winding it Nbj > 1 times radially overlapping over each axial thin portion 100, 102, 104 of the layer 80 of the self-sealing product (where j ranges from 1 to M). For any value of i in the range from 1 to L, at least 50%, preferably 75%, and in this case 100% of the values of j in the range from 1 to M are such that Nbj < Nai. In this particular case, for each axial thick portion 90, 92, Na1 = Na2 = 5, for each axial thick portion 94, 96, Na3 = Na4 = 4, and for each axial thin portion 100, 102, 104, Nb1 = Nb2 = Nb3 = 3 applies.

[0142] It should be noted that for any value of i in the range from 1 to L, at least 50%, preferably 75%, more preferably 100% of the values of j in the range from 1 to M in this case are such that on the one hand Nai / Nbj ≧ 1.20 and on the other hand Nai / Nbj ≦ 3.00, preferably Nai / Nbj ≦ 2.75, more preferably Nai / Nbj ≦ 2.50.

[0143] To perform this winding step, the winding principle includes several parameters for axially varying the thickness of the layer 80 of the self-sealing product. These parameters include the winding pitch of the strip 200, the winding speed of the strip 200 relative to the device for applying the strip 200, the axial movement speed of the tire 10 relative to the device for applying the strip 200 into the tire 10, the extrusion speed of the device for extruding the strip 200, the width of the strip 200, or otherwise the thickness of the strip 200. It is possible to choose to vary only one of these parameters or to vary multiple parameters simultaneously. Advantageously, in this case, only the winding pitch of the strip 200 was varied to axially vary the thickness of the layer 80 of the self-sealing product over at least 50%, preferably at least 75%, more preferably at least 95%, and in this example, 100% of the circumferential length of the layer 80 of the self-sealing product, to obtain the layer shown in Figure 3. Now, a tire according to a second embodiment of the present invention will be described with reference to Figure 4. Elements similar to those in the first embodiment are represented by the same reference numerals.

[0144] Compared to the tire according to the first embodiment, each axial thickened portion 90 to 96 perfectly coincides with each axial portion 90' to 96' that extends axially and coincides with each main circumferential notch 52 to 58, respectively.

[0145] Furthermore, the layers of the self-sealing product do not include any of the axially thinned portions 100, 102, and 104. Thus, each axial portion 100', 102', and 104' that extends axially, coinciding with each central rib 62, 64, and 66, respectively, has zero thickness in the self-sealing product. Each axial portion 100', 102', and 104' is positioned between two axially adjacent axial portions 90' to 96', and also between two axial portions 90'' and 92''. During the manufacturing method of the tire 10 according to the second embodiment, what is changed is no longer the pitch at which the strip is attached, but the thickness of the strip 200, which is substantially zero between axially adjacent axial portions 90' to 96'. Thus, the strip 200 is wrapped between the two axial ends 81 and 82, with interruptions in the strip 200 in this example.

[0146] The present invention is not limited to the embodiments described above.

[0147] Specifically, it is also possible to consider an embodiment in which each central rib 62, 64, and 66 does not have a lateral notch. In this case, it can be said that each central rib 62, 64, and 66 is not cut out.

Claims

1. A method for manufacturing a tire, wherein the tire is - Tread (14) and, - Airtight inner layer (18), - comprising at least one layer (80) of self-sealing fabrication extending circumferentially to the radially inward side of a portion of the airtight inner layer (18), During the method described above, the strip or bead (200) of the self-sealing product layer is wrapped in a plurality of circumferential windings (Nai, Nbi) radially inward of the airtight inner layer (18) of the tire, which does not yet have the self-sealing product layer (80), and the winding step is performed according to rules for winding the circumferential windings of the strip or bead (200). During the winding step, at least one parameter of the winding rule, which allows the thickness of the layer (80) of the self-sealing product to be varied in the axial direction, is varied over at least 50% of the circumferential length of the layer (80) of the self-sealing product. A method characterized by the following:

2. During the winding step, at least one parameter of the winding rule is changed, which allows the thickness of the layer (80) of the self-sealing product to be varied in the axial direction, and the at least one parameter is - The winding pitch of the strip or bead (200), - Regarding the apparatus for installing the strip or bead (200) on the inside of the tire (10), the winding speed of the strip or bead (200), - Regarding the apparatus for installing the strip or bead (200) on the inside of the tire (10), the axial movement speed of the tire (10), - The extrusion speed of the device that extrudes the strip or bead (200), - The width of the strip or bead (200), - The thickness of the strip or bead (200), Selected from, The method according to claim 1.

3. - The strip or bead (200) is wound around itself by a circumferential winding superimposed radially on an axial portion (or more) of the layer (80) of the self-sealing product where L≧1, i is in the range of 1 to L (where L is a natural number), - The strip or bead (200) is wound around itself by a circumferential winding superimposed radially with Nbj > 1, or the strip or bead (200) is wound around the axial portion(s) of the layer (80) of the self-sealing product with M ≥ 1 by a circumferential winding with Nbj = 1, where j is in the range from 1 to M (where M is a natural number). Each value of i is in the range of 1 to L, at least 50% of the values ​​of j are in the range of 1 to M, and Nbj < Nai. The method according to claim 1 or 2.

4. For each value of i in the range from 1 to L, at least 50% of the values ​​of j in the range from 1 to M satisfy Nai / Nbj ≥ 1.

20. The method according to any one of claims 1 to 3.

5. For each value of i in the range from 1 to L, at least 50% of the values ​​of j in the range from 1 to M satisfy the condition Nai / Nbj ≤ 3.

00. The method according to any one of claims 1 to 4.

6. The layer (80) of the self-sealing product is axially separated by two axial ends (81, 82), and the strip or bead (200) of the self-sealing material is wound between the two axial ends (81, 82) without interruption. The method according to any one of claims 1 to 5.

7. The layer (80) of the self-sealing product is axially separated by two axial ends (81, 82), and the strip or bead (200) of the self-sealing material is started from one of the axial ends (81, 82) and the winding of the strip or bead (200) of the self-sealing material is stopped when it reaches the other axial end (81, 82). The method according to any one of claims 1 to 6.

Citation Information

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