vehicle tires

The tire design addresses uneven wear by using incisions with varying amplitudes to balance stiffness, resulting in even wear patterns and improved durability.

DE102023213015A1Pending Publication Date: 2025-06-26CONTINENTAL REIFEN DEUTSCHLAND GMBH
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Patent Information

Application Number
DE102023213015
Authority / Receiving Office
DE · DE
Patent Type
Applications
Current Assignee / Owner
Filing Date
2023-12-20
Publication Date
2025-06-26

AI Technical Summary

Technical Problem

Existing vehicle tires suffer from uneven tread wear due to unoptimized stiffness differences in the tread pattern, particularly under lateral forces, which increases the risk of premature wear.

Method used

The tire design incorporates incisions with varying amplitudes that gradually decrease or increase from the peripheral sectors to central sectors, ensuring a uniform stiffness distribution across the tread, balanced by matching lateral sector amplitudes and controlled amplitude differences.

Benefits of technology

This design significantly reduces uneven tread wear by uniformly influencing stiffness, leading to even wear patterns and improved tread durability.

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Abstract

The invention relates to a vehicle tire with a tread having a profile rib (1, 1') with incisions (3, 3'), wherein each incision (3, 3'), viewed in plan view, runs corrugated over at least one main section (6, 6') and is composed in the main section (6, 6') of sectors (6a, 6b, 6c, 6a', 6b', 6c') each extending over half a wavelength (λ / 2). The amplitude (A c , A c ') of the two peripheral sectors (6c, 6c') is identical and decreases or increases in a corresponding manner starting from the peripheral sectors (6c, 6c') in the direction of the central sector or the central sectors (6a, 6a').
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Description

[0001] The invention relates to a vehicle tire, in particular a commercial vehicle tire, with a tread having at least one profile rib with incisions which, in plan view, run at an angle of 0° to 50° to the axial direction, having a width of 0.40 mm to 1.60 mm and a maximum depth of 70% to 100% of the profile depth, each incision, viewed in plan view, running in a corrugated manner over at least one main section, the main section having a corrugation center line and the incision in the main section being composed of sectors each running over half a wavelength and on one of the sides of the corrugation center line, each sector having an amplitude, the sectors having two edge sectors, with an odd number of sectors a single central sector, with an even number of sectors two central sectors and between each edge sector and the one or more sectors.each central sector includes a single lateral sector or a corresponding number of lateral sectors, with successive sectors being provided in which the amplitude changes gradually from sector to sector.

[0002] Such a vehicle tire is known, for example, from DE 10 2005 058 365 A1. The vehicle tire has a tread with profile blocks in which, when viewed from above, wave-shaped incisions are formed. The incisions each have a progressively increasing amplitude, so that the incisions are each formed from sectors extending over half a wavelength, over which the amplitude increases gradually. The progressively increasing amplitude enables increasing stiffening of the tread block elements along the increase, which should provide sufficient stiffening in the area of ​​the maxima and, in a relatively long area with reduced amplitude, allows the incisions to open up significantly when passing through the contact surface, which is beneficial with regard to snow grip.

[0003] Another vehicle tire of the type mentioned above is known from EP 1 529 662 A1. The vehicle tire has a tread with profile positives provided with incisions extending substantially in the axial direction and in a wave-like manner. The incisions have an amplitude that increases in one of the extension directions of the incisions. In the exemplary embodiment, sectors extending over half a wavelength are provided, and the increase in amplitude occurs gradually from sector to sector. These incisions are intended to stiffen the profile positives under the action of transverse forces and improve handling characteristics while maintaining good grip properties.

[0004] In vehicle tires of the type mentioned above, the wave-shaped sipes are advantageous for grip, especially on snow. Especially under lateral forces, the sipe walls support each other in a manner that is beneficial for the stiffness of the tread pattern. Local stiffness differences in the positive tread areas associated with the tread pattern, which may occur due to circumferential grooves that appear wave-shaped when viewed from above or due to an irregular tread block shape, are currently not optimally compensated, thus increasing the risk of uneven tread wear.

[0005] The invention is therefore based on the object of noticeably reducing the risk of uneven tread wear in a vehicle tire of the type mentioned above.

[0006] The object is achieved according to the invention in that the amplitude of the two peripheral sectors is overruled and, starting from the peripheral sectors, decreases or increases in a consistent manner in the direction of the central sector or sectors.

[0007] The measures taken influence the stiffness of the profile positives in a targeted and uniform manner across the cross-section, whereby stiffness differences are balanced in such a way that tread wear is significantly evened out.

[0008] According to a preferred embodiment, lateral sectors are provided whose amplitude matches the amplitude of one of the immediately adjacent sectors. This ensures a certain stiffness influence over a somewhat larger local area of ​​the profile rib.

[0009] According to a further preferred embodiment, a corresponding number of lateral sectors is provided between each edge sector and the respective central sector, wherein the amplitudes of all lateral sectors are the same.

[0010] An advantageous further development consists in that there is a first difference specified in millimetres between the amplitude of the lateral sectors and the amplitude of the central sector(s) and a second difference specified in millimetres between the amplitude of the lateral sectors and the amplitude of the edge sectors, wherein the first difference deviates from the second difference by a maximum of 0.10 mm and preferably the first difference corresponds to the second difference.

[0011] According to a further preferred embodiment, the decrease or increase in amplitude is continued stepwise across the lateral sector or all lateral sectors. This ensures a continuous influence on the stiffness, which is advantageous with regard to a uniform wear pattern.

[0012] A further preferred embodiment is characterized in that the sectors—viewed in plan view and relative to the incision centerline—extend, at least in sections and in the area of ​​the amplitudes, in the form of circular arcs each with a radius, with the radius being larger the smaller the amplitude. This also contributes to a uniform influence on the stiffness.

[0013] In the latter preferred embodiment, according to an advantageous further development, two tangents, which are applied to the circular arc belonging to a sector and pass through the two ends of the respective circular arc, have an intersection point with each other, with all intersection points located on the same side of the shaft centerline lying on an auxiliary line running parallel to the shaft centerline. With incisions constructed in this way, the shaft shape and thus the influence on the stiffness can be adjusted particularly precisely and easily.

[0014] Preferably, the amplitude of the sector(s) with the largest amplitude is between 1.0 mm and 2.5 mm. This is particularly advantageous for the local stiffness increase associated with the mutual support of the incision walls.

[0015] A further preferred embodiment provides that the amplitude of the sector(s) with the smallest amplitude is 25% to 75%, in particular 35% to 65%, preferably 45% to 55%, of the amplitude of the sector(s) with the largest amplitude. This ensures that support effects occur within the notch, which vary particularly advantageously with regard to the extent of the stiffness influence.

[0016] Preferably, the cuts traverse the tread rib. Such cuts are known to be beneficial for tread drainage. Since the tread segments adjacent to such cuts exhibit greater "mobility" during rolling compared to those adjacent to cuts ending within the tread rib, these cuts can achieve particularly advantageous effects in terms of stiffness.

[0017] The influence on stiffness is particularly uniform when the incisions, viewed from above, are rotationally symmetrical with respect to a radial axis, with the incisions being mapped onto themselves by a 180° rotation. Such incisions are particularly advantageous for central profile ribs, which have a symmetrical shape with respect to a circumferential rib centerline and are bordered on both sides by undulating circumferential grooves in plan view.

[0018] According to a further preferred embodiment, the incisions, viewed in plan view, are each composed of two aligned edge sections and the main section, which runs between the edge sections. The main section extends over at least 50%, preferably over at least 60%, particularly preferably over 70% to 95%, of the length of the incision projected in the axial direction relative to the incision centerline. The edge sections contribute to a uniform abrasion pattern.

[0019] A further preferred embodiment is characterized in that - that the wavelengths of the sectors within the notch match or - that the wavelengths of the sectors within the notch decrease or increase in a consistent manner from the edge sectors towards the central sector(s), the longest wavelength(s) preferably being at most 150%, preferably at most 130%, of the smallest wavelength(s).

[0020] Preferably, two to five lateral sectors run between each edge sector and the respective central sector(s).

[0021] Furthermore, it is preferred if the incision between the incision edges and the incision base, viewed in cross-section, is composed in the radial direction of a radially outer section, a corrugated section extending in a wave shape over its entire extent in the radial direction, and a radially inner section, wherein the corrugated section preferably extends over more than one wavelength. This contributes to an improvement in the support effects and, in combination with the specific amplitude variation present in plan view, ensures a greater influence on the stiffness in the radial direction.

[0022] Further features, advantages and details of the invention will now be described in more detail with reference to the drawing, which schematically shows exemplary embodiments of the invention. Fig. 1a is a plan view of a circumferential section of a central profile rib of a tread of a commercial vehicle tire with a first embodiment of the invention, Fig. 1b an oblique view of a visualization of an incision (drawing body of the incision), Fig. 1c an enlarged top view of a visualized incision mid-surface, Fig. 1d an enlarged section along the line Id-Id of the Fig. 1a, Fig. 2a is a plan view of a circumferential section of a central profile rib of a tread of a commercial vehicle tire with a second embodiment of the invention, Fig. 2b an oblique view of a visualization of an incision (drawing body of the incision) and Fig. 2c an enlarged top view of a visualized incision mid-surface.

[0023] Vehicle tires designed according to the invention are tires for motor vehicles, in particular for multi-track motor vehicles, and preferably commercial vehicle tires, particularly preferably commercial vehicle tires of radial design for rims with a rim diameter of 17.5, 19.5 or 22.5 inches.

[0024] Fig. 1a and Fig. 2a each show a plan view of a circumferential section of a circumferentially encircling, central profile rib 1 ( Fig. 1a), Fig. 1' ( Fig. 2a) of a tread of a commercial vehicle tire. The circumferential direction of the commercial vehicle tire is indicated by a double arrow U. The central tread rib 1, 1' is laterally delimited by a circumferential groove 2, which is radially tapered to the respective intended tread depth T P (indicated in Fig. 1d), whereby the profile depth T Pfor commercial vehicle tires is usually 9.0 mm to 26.0 mm. If circumferential grooves 2 of different depths are provided, the tread depth T P the depth of the deeper circumferential groove 2.

[0025] In the central profile rib 1, 1', a number of incisions 3 (profile rib 1), 3' (profile rib 1') are formed distributed over the circumference of the profile rib 1, 1', with a single incision 3, 3' being provided in the circumferential section shown. Within the profile rib 1, 1', immediately consecutive incisions 3, 3' have distances in the circumferential direction determined as the smallest possible distances of preferably 20.0 mm to 50.0 mm.

[0026] The notch 3, 3' is, viewed in plan view, rotationally symmetrical with respect to a radial axis A (appears in Fig. 1a and Fig. 2a as a point), wherein the incision 3, 3' is mapped onto itself by a rotation of 180°. The incision 3, 3' traverses the central profile rib 1, 1', therefore opens into the circumferential grooves 2, extends, viewed in plan view, overall straight and in the exemplary embodiments in the axial direction, has two incision edges 4 (incision 3), 4' (incision 3') located on the tread periphery and is composed of two straight and aligned edge sections 5 (incision 3), 5' (incision 3') and a main section 6, 6' running in a wave shape.

[0027] According to Fig. 1b and Fig. 2b is the incision 3 ( Fig. 1b), Fig. 3' ( Fig. 2b) is limited by a channel-shaped, straight incision base 7, 7' in the embodiment and two incision walls 8, 8' extending from the incision edges 5, 5' (cf. Fig. 1d for incision 3). How Fig. 1a and Fig. 2a, the incision 3, 3' has an incision center line M located on the tread periphery, following the incision course in plan view, and spaced at the same distance from the incision edges 4, 4' L and a central cutting surface M extending therefrom and spaced at the same distance from the cutting walls 8, 8' F ( Fig. 1d: incision 3).

[0028] The incision 3, 3' has a distance determined as the smallest possible distance between the incision walls 8, 8', i.e. perpendicular to the incision center surface M F ( Fig. 1d) measured width b E ( Fig. 1a, Fig. 2a, Fig. 1d) from 0.40 mm to 1.60 mm, in particular up to 1.20 mm, preferably up to 0.80 mm, a cut-off line M L relative length c projected in the axial direction E ( Fig. 1a, Fig. 2a) and in radial direction a maximum depth t E (Depth at the deepest point, Fig. 1d: Cut 3) from 70% to 100% of the profile depth T P ( Fig. 1d), where the maximum depth t E in particular, at most the profile depth T reduced by 0.5 mm P and where - as Fig. 1b and Fig. 2b show - the incision 3, 3' in the embodiments over the entire length c E ( Fig. 1a, Fig. 2a) to the maximum depth t E is executed.

[0029] How Fig. 1a and Fig. 2a, the main section 6, 6' has a wave center line W located on the tread periphery, which is straight in plan view and runs centrally through the edge sections 5, 5' L , whereby the notch 3, 3', relative to the shaft center line W L , in the axial direction. The incision center line M Land the shaft centerline W L coincide in the area of ​​the edge sections 5, 5' and intersect at intersection points S, S'. The already mentioned axis A runs through one of the intersection points S ( Fig. 1a: Notch 3), S' ( Fig. 2a: incision 3').

[0030] The main section 6, 6' extends, viewed in plan view, over at least 50%, preferably over at least 60%, particularly preferably over 70% to 95%, of the length c E of the notch 3, 3' and further in a wave shape and is composed - viewed from above and starting from the axis A - of two central sectors 6a, 6a' adjoining each other along the axis A, two lateral sectors 6b, 6b' and two edge sectors 6c, 6c'. The subdivision into the sectors 6a, 6b, 6c or 6a', 6b', 6c' occurs at the respective intersection points S (notch 3), S' (notch 3') and perpendicular to the wave center line WL , so that each sector 6a, 6b, 6c, 6a', 6b', 6c' on one side of the shaft center line W L and over half a wavelength λ / 2 and at the wave center line W L ends. The wavelength λ can decrease or increase in a consistent manner starting from the edge sectors 6c, 6c' towards the central sectors 6a, 6a', with the longest wavelengths λ being at most 150%, preferably at most 130%, of the shortest wavelengths λ. Alternatively, the sizes of the wavelengths λ of the sectors 6a, 6b, 6c, 6a', 6b', 6c' within the notch 3, 3' can be consistent.

[0031] Fig. 1c and Fig. 2c each show a schematic plan view, in which from the incision 3, 3' ( Fig. 1c: Incision 3, Fig. 2c: Incision 3') only the incision center line M L and the shaft centerline W L Each central sector 6a, 6a' has an amplitude A a , Aa ', each lateral sector 6b, 6b' has an amplitude A b , A b ' and each peripheral sector 6c, 6c' has an amplitude A c , A c ', where the amplitudes A a , A b , A c , A a ', A b ', A c ' on the incision center line M L and the shaft centerline W L are related.

[0032] The following is based on reference to Fig. 1c further explains the execution of incision 3.

[0033] The amplitude A c of each marginal sector 6c is 1.0 mm to 2.5 mm. The amplitude A a each central sector 6a is 25% to 75%, in particular 35% to 65%, preferably 45% to 55%, of the amplitude A c . The amplitude A b each lateral sector 6b corresponds to the amplitude A cIn the embodiment shown, each central sector 6a runs - relative to the incision center line M L - in the form of a circular arc with a radius r a and sectors 6b, 6c run in the range of amplitudes A b , A c in sections in the form of a circular arc with a radius r b (Sector 6b), r c (sector 6c), where the radii r b , r c match and are each smaller than the radius r a , so that the radius r a , r b , r c with smaller amplitude A a , A b , A c is larger. Furthermore, at the mutual connection of the edge-side sectors 6c to the respective edge section 5 - related to the incision center line M L - a transition radius r is formed. The sizes of the radii r a , r b , r c, r and the sizes of the corresponding arc lengths are chosen such that the cutting center line M L is free of kinks. Furthermore, the design of the incision 6 is preferably such that two tangents t, which are applied to the circular arc belonging to a sector 6a, 6b, 6c and run through the two ends of the respective circular arc, have an intersection point S I all on the same side of the shaft centerline W L lying intersection points S t on a plane parallel to the shaft centerline W L auxiliary line H L lay.

[0034] The following is based on reference to Fig. 2c further explains the execution of the incision 3'.

[0035] The amplitude A a ' of each central sector 6a' is 1.0 mm to 2.5 mm. The amplitude A c' of each edge sector 6c' is 25% to 75%, in particular 35% to 65%, preferably 45% to 55%, of the amplitude A a '. The amplitude A b ' of each lateral sector 6b' is smaller than the amplitude A a ' and greater than the amplitude A c '. Preferably, the difference in millimeters between the amplitude A b ' and the amplitude A a ' of the difference in millimeters between the amplitude A b ' and the amplitude A c ' by a maximum of 0.10 mm. These two differences preferably coincide. In the illustrated embodiment, the sectors 6a', 6b', 6c' extend - relative to the incision center line M L - in sections in the range of amplitudes A a ', A b ', A c ' each in the form of a circular arc with a radius r a ', r b ', r c ', where the radius r a ', rb ', r c ' at smaller amplitude A a ', A b ', A c ' is larger. Furthermore, at the mutual connection of the edge-side sectors 6c' to the respective edge section 5' - related to the incision center line M L - a transition radius r' is formed. The sizes of the radii r a ', r b ', r c ', r' and the sizes of the corresponding arc lengths are chosen such that the cutting center line M L is free of kinks. Furthermore, the design of the incision 6' is preferably such that two tangents t, which are applied to the circular arc belonging to a sector 6a', 6b', 6c' and run through the two ends of the respective circular arc, have an intersection point S t all on the same side of the shaft centerline W L lying intersection points S t on a plane parallel to the shaft centerline W Lauxiliary line H L lay.

[0036] According to Fig. 1b and Fig. 2b, the incision 3, 3' - and therefore the main section 6, 6' and the edge sections 5, 5' - in the area between the incision edges 4, 4' and the incision base 7, 7' is composed in the radial direction of a radially outer section 9, 9', a corrugated section 10, 10' extending in a wave shape in the radial direction over its entire extent, and a radially inner section 11, 11'. The wave shape of the corrugated section 10, 10' in the radial direction is superimposed in the main section 6 by its wave shape in plan view.

[0037] How Fig.1d shows for the incision 3, the section 10, 10' has a wavelength λ* and extends over more than one wavelength λ*, wherein the associated amplitude A* within the section 10, 10' is constant or can vary. The radially inner section 11, 11' runs, viewed in cross section - due to the wave shape of the main section 6, 6' in plan view and the straight course of the edge sections 5, 5' in plan view - inclined to the radial direction in the region of the main section 6, 6' and / or curved at least in sections and straight in the region of the edge sections 5, 5'. The radially inner section 11, 11' ensures in the region of the main section 6, 6' a "return" of the wave shape of the main section 6, 6' in plan view to the straight incision base 7, 7'.Furthermore, the radially inner section 11, 11' ensures a "return" of the wave shape of the section 10, 10' in the radial direction to the straight incision base 7, 7'.

[0038] The invention is not limited to the described embodiments.

[0039] The sipes 3, 3' can also be provided in shoulder-side tread ribs. The tread ribs can be structured with transverse grooves in tread blocks. The edge sections 5, 5' are optional, so that each sipe 3, 3' can be formed exclusively from the main section 6, 6'. The channel-shaped design of the sipe base 7, 7' is also optional, so that the sipe base 7, 7', viewed in cross-section, can, for example, run straight and parallel to the tread periphery.

[0040] The notches 3, 3' can, viewed in plan view, be arranged relative to the shaft center line W Lcurved (arched, circular) or straight and end on one or both sides within the respective profile rib. In the case of shoulder-side profile ribs, traversing cuts 3, 3' are understood to be those which traverse the shoulder-side profile ribs at least within the ground contact area. The ground contact area corresponds to the statically determined footprint (determined with a tire mounted on a standard rim, loaded at 70% of the maximum load capacity, internal pressure 85% of the standard pressure, according to ETRTO standards). The cuts 3, 3' run, viewed in plan view, at an angle of 0° to 50° to the axial direction, in particular from 5° to 45°, particularly preferably from 20° to 40°, whereby the angle for cuts 3, 3' with a straight shaft center line W L on the shaft centerline W L and for incisions 3, 3' with curved (arched, circular) shaft center line W Lon one of the ends of the shaft center line M L connecting straight line. Furthermore, the incisions 3, 3' preferably run parallel to one another at least in groups and in particular at least within the profile rib. List of reference symbols 1.1' middle profile rib 2 circumferential grooves 3, 3' notch 4, 4' cutting edge 5.5' edge section 6, 6' main section 6a, 6a' central sector 6b, 6b' lateral sector 6c, 6c' marginal sector 7, 7' cutting base 8, 8' cutting wall 9, 9' radial outer section 10, 10' section 11, 11' radial inner section A axis A a , A b , A c amplitude A a ', A b ', A c ' Amplitude A* Amplitude b E Width cE length H L auxiliary line M F Incision center area M L Incision centerline r a , r b , r c radius r a ', r b ', r c ' Radius r, r' transition radius S, S' intersection point S t Intersection t tangent t E maximum depth T P Tread depth U Double arrow (circumferential direction) W L shaft centerline λ, λ* wavelength QUOTES CONTAINED IN THE DESCRIPTION

[0000] This list of documents submitted by the applicant was generated automatically and is included solely for the convenience of the reader. This list is not part of the German patent or utility model application. The DPMA assumes no liability for any errors or omissions. Cited patent literature

[0000] DE 10 2005 058 365 A1

[0002] EP 1 529 662 A1

[0003]

Claims

[1] Vehicle tyres, in particular commercial vehicle tyres, with a tread having at least one profile rib (1, 1') with incisions (3, 3') extending in plan view to the axial direction at an angle of 0° to 50° and having a width (b E ) from 0.40 mm to 1.60 mm and a maximum depth (t E ) from 70% to 100% of the tread depth (T P ), wherein each cut (3, 3'), viewed in plan view, is corrugated over at least one main section (6, 6'), wherein the main section (6, 6') has a corrugation center line (W L ) and the notch (3, 3') in the main section (6, 6') is each over half a wavelength (λ / 2) and on one of the sides of the wave center line (W L ) extending sectors (6a, 6b, 6c, 6a', 6b', 6c') each having an amplitude (A a , A b , A c , A a ', A b ', A c'), wherein the sectors (6a, 6b, 6c, 6a', 6b', 6c') include two edge sectors (6c, 6c'), with an odd number of sectors (6a, 6b, 6c, 6a', 6b', 6c') a single central sector (6a, 6a'), with an even number of sectors (6a, 6b, 6c, 6a', 6b', 6c') two central sectors (6a, 6a'), and between each edge sector (6c, 6c') and the respective central sector (6a, 6a') there is a single lateral sector (6b, 6b') or a matching number of lateral sectors (6b, 6b'), wherein successive sectors (6a, 6b, 6c, 6a', 6b', 6c') are provided, in which the amplitude (A a , A b , A c , A a ', A b ', A c ') changes gradually from sector (6a, 6b, 6c, 6a', 6b', 6c') to sector (6a, 6b, 6c, 6a', 6b', 6c'), characterized by that the amplitude (A c , A c') of the two peripheral sectors (6c, 6c') and, starting from the peripheral sectors (6c, 6c'), decreases or increases in a corresponding manner in the direction of the central sector or the central sectors (6a, 6a'). [2] Vehicle tyre according to claim 1, characterized by that lateral sectors (6b) are provided, the amplitude (A b ) with the amplitude (A a , A c ) of one of the immediately adjacent sectors (6a, 6c). [3] Vehicle tyre according to claim 1 or 2, characterized by that between each edge sector (6c, 6c') and the respective central sector (6a, 6a') a corresponding number of lateral sectors (6b, 6b') is provided, wherein the amplitudes (A b ') of all lateral sectors (6b'). [4] Vehicle tires according to claim 1, wherein a single lateral sector (6b, 6b') is provided between each edge sector (6c, 6c') and the respective central sector (6a, 6a') or according to claim 3, characterized by that between the amplitude (A b ') of the lateral sectors (6b') and the amplitude (A a ') of the central sector or sectors (6a') a first difference expressed in millimetres and between the amplitude (A b ') of the lateral sectors (6b') and the amplitude (A c ') of the edge-side sectors (6c, 6c') there is a second difference specified in millimeters, wherein the first difference deviates from the second difference by at most 0.10 mm and preferably the first difference corresponds to the second difference. [5] Vehicle tyre according to claim 1, characterized by that the decrease or increase of the amplitude (A a ', A b ', A c') is continued step by step over the lateral sector (6b') or all lateral sectors (6b'). [6] Vehicle tyre according to one of claims 1 to 5, characterized by that the sectors (6a, 6b, 6c, 6a', 6b', 6c') - viewed in plan view and relative to the cutting center line (M L ) - at least in sections and in the range of amplitudes (A a , A b , A c , A a ', A b ', A c ') in the form of circular arcs each with a radius (r a , r b , r c , r a ', r b ', r c '), where the radius (r a , r b , r c , r a ', r b ', r c ') is greater, the smaller the amplitude (A a , A b , A c , A a ', A b ', A c ') is. [7] Vehicle tyre according to claim 6, characterized bythat two tangents (t) which are applied to the circular arc belonging to a sector (6a, 6b, 6c, 6a', 6b', 6c') and pass through the two ends of the respective circular arc, have an intersection point (S t ), with all on the same side of the shaft center line (W L ) lying intersection points (S t ) on a plane parallel to the shaft center line (W L ) auxiliary line (H L ) lay. [8] Vehicle tyre according to one of claims 1 to 7, characterized by that the amplitude (A c , A a ') of the sector or sectors (6c, 6a') with the largest amplitude (A c , A a ') is 1.0 mm to 2.5 mm. [9] Vehicle tyre according to one of claims 1 to 8, characterized by that the amplitude (A a , A c ') of the sector or sectors (6a, 6c') with the smallest amplitude (A a , A c') 25% to 75%, in particular 35% to 65%, preferably 45% to 55%, of the amplitude (A c , A a ') of the sector or sectors (6c, 6a') with the largest amplitude (A c , A a ') amounts. [10] Vehicle tyre according to one of claims 1 to 9, characterized by that the incisions (3, 3') cross the profile rib (1, 1'). [11] Vehicle tyre according to one of claims 1 to 10, characterized by that the incisions (3, 3'), viewed in plan view, are each rotationally symmetrical with respect to an axis (A) running in the radial direction, wherein the incisions (3, 3') are imaged onto themselves by a rotation of 180°. [12] Vehicle tyre according to one of claims 1 to 11, characterized bythat the incisions (3, 3'), viewed in plan view, are each composed of two edge sections (5, 5') running in alignment with one another and the main section (6, 6'), which runs between the edge sections (3, 3'), wherein the main section (6, 6') extends over at least 50%, preferably over at least 60%, particularly preferably over 70% to 95%, which extends onto the incision center line (M L ) projected in the axial direction (C E ) of the incision (3, 3'). [13] Vehicle tyre according to one of claims 1 to 12, characterized by , - that the wavelengths (λ) of the sectors (6a, 6b, 6c, 6a', 6b', 6c') within the notch (3, 3') coincide or - that the wavelengths (λ) of the sectors (6a, 6b, 6c, 6a', 6b', 6c') within the notch (3, 3') decrease or increase from the edge sectors (6c, 6c') in a consistent manner in the direction of the central sector or sectors (6a, 6a'), the longest wavelength(s) preferably being at most 150%, preferably at most 130%, of the smallest wavelength(s). [14] Vehicle tyre according to one of claims 1 to 13, characterized by that between each edge sector (6c, 6c') and the respective central sector (6a, 6a') there are two to five lateral sectors (6b, 6b'). [15] Vehicle tyre according to one of claims 1 to 14, characterized bythat the incision (3, 3') between the incision edges (5, 5') and the incision base (7, 7'), viewed in cross-section, is composed in the radial direction of a radially outer section (9, 9'), a corrugated section (10, 10') extending in a wave shape over its entire extent in the radial direction, and a radially inner section (11, 11'), wherein the corrugated section (10, 10') preferably extends over more than one wavelength (λ*).

Citation Information

Patent Citations

  • tread pattern

    DE102005058365A1

  • Vehicle tyre

    EP1529662A1