Pneumatic vehicle tire
11007824 · 2021-05-18
Assignee
Inventors
Cpc classification
B60C2011/0362
PERFORMING OPERATIONS; TRANSPORTING
B60C11/0309
PERFORMING OPERATIONS; TRANSPORTING
B60C2011/1361
PERFORMING OPERATIONS; TRANSPORTING
B60C2011/0369
PERFORMING OPERATIONS; TRANSPORTING
B60C11/1353
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A pneumatic vehicle tire with a tread comprising circumferential grooves (2) and at least one profile rib (1), which runs around in the circumferential direction and formed in which there are grooves (4) which at a groove flank (5) of a circumferential groove (2) that delimits the profile rib (1) open into it, wherein the groove flanks (5) of the circumferential groove (2) run at an angle (β) of 12° to 17° to the radial direction, thereby widening the circumferential groove (2) in the direction of the periphery of the tread. The grooves (4) run at an angle (α) of 45°±20° to the axial direction, end within the profile rib (1), have a maximum depth (t.sub.2) of 3.5 mm and open in each case into a local indentation (7), which is formed at the groove flank (5), reaches up to the periphery of the tread, is concavely rounded along the groove flank (5) and has a bottom (7a) that runs in particular parallel to the periphery of the tread and is at a distance (c), determined in the radial direction, of 0.5 mm to 2.0 mm from the deepest point of the groove (6) of the circumferential groove (2).
Claims
1. A pneumatic vehicle tire with a tread comprising circumferential grooves and at least one profile rib which runs around in a circumferential direction, and formed in the at least one profile rib are grooves which at a groove flank of a circumferential groove delimits the profile rib, wherein groove flanks of the circumferential groove run at an angle (β) of 12° to 17° relative a radial direction, thereby widening the circumferential groove in the direction of a periphery of the tread; wherein the grooves run at an angle (α) of 45°±20° relative an axial direction and end within the profile rib; wherein the grooves have a maximum depth (t.sub.2) of 3.5 mm and open in each case into an indentation which is formed at the groove flank and reaches up to the periphery of the tread; wherein the indentation is concavely rounded along the groove flank, has a bottom that runs parallel to the periphery of the tread, and is at a distance (c), determined in the radial direction, of from 0.5 mm to 2.0 mm from the deepest point of a groove base of the circumferential groove; and, wherein the concavely rounded boundary wall of the indentation, running between the bottom and the periphery of the tread, is inclined at an angle (γ) of from 2° to 5° with respect to the radial direction.
2. The pneumatic vehicle tire as claimed in claim 1, wherein the indentation and the bottom of the indentation have a shape of a D in a plan view of the tread.
3. The pneumatic vehicle tire as claimed in claim 1, wherein the indentation and the bottom of the indentation have a shape of a circular segment in a plan view of the tread, and wherein the shape is at most a semicircle.
4. The pneumatic vehicle tire as claimed in claim 1, wherein the grooves open into those regions of indentations which are furthest toward the inside of a groove flank.
5. The pneumatic vehicle tire as claimed in claim 1, wherein at the periphery of the tread, a point of the indentation which is situated in the axial direction furthest toward an inside of the groove flank is at the level of a peripheral edge of the groove flank.
6. The pneumatic vehicle tire as claimed in claim 1, wherein a point of the indentation which is situated in the axial direction furthest toward an inside of the profile rib is situated up to 2.0 mm inside the profile rib relative to the position of a peripheral edge of the groove flank outside the indentation.
7. The pneumatic vehicle tire as claimed in claim 1, wherein the grooves have a U-shaped or V-shaped cross section.
8. The pneumatic vehicle tire as claimed in claim 1, wherein the grooves have a depth (t.sub.1) of at least 1.5 mm.
9. The pneumatic vehicle tire as claimed in claim 1, wherein the grooves have a maximum width (b.sub.2) of 2.0 mm to 5.0 mm at the periphery of the tread.
10. The pneumatic vehicle tire as claimed in claim 1, wherein the grooves have a width and a depth which increase continuously, starting at their ends in the profile rib and in the direction of their regions of entry into the indentations.
11. The pneumatic vehicle tire as claimed in claim 1, wherein the ends of the grooves, which are situated in the profile rib, are adjoined in each case by a sipe.
12. The pneumatic vehicle tire as claimed in claim 1, wherein the profile rib is a profile rib running on a shoulder side of the pneumatic tire.
Description
(1) Further features, advantages and details of the invention will now be described in more detail on the basis of the drawing, which illustrates an exemplary embodiment. In the drawing,
(2)
(3)
(4)
(5) Pneumatic vehicle tires designed in accordance with the invention are, in particular, pneumatic vehicle tires of the radial type for passenger cars, vans and light trucks.
(6)
(7) In the example illustrated, transverse grooves 3 are formed in the profile rib 1, and these end on the inside of the tread, within the profile rib 1, at a distance of, in particular, 3.0 mm to 7.0 mm before the circumferential groove 2, and run at an angle ≤45° to the axial direction and otherwise, in a known manner, beyond the ground contact surface of the tread. In the circumferential direction, one transverse groove 3 alternates in each case with one groove 4, which opens into the circumferential groove 2 and which ends within the profile rib 1 at a distance a from the circumferential groove 2 that corresponds to 25% to 50% of the width b.sub.1 of the profile rib 1. In the case of circumferential grooves 2 which deviate from the straight shape, having a zigzag shape for example, b.sub.1 is the maximum width of the profile rib 1. The grooves 4 run at an angle α of 45°+/−20° relative to the axial direction and have an inclination relative to the axial direction which coincides with that of the transverse grooves 3. The grooves 4 run substantially parallel to one another, that is to say that the angles α within a tread may differ from one another by up to 10°. Over its extent, each groove 4 has a depth which, starting with its closed end, increases continuously in the direction of the region of entry into the circumferential groove 2, wherein the groove 4 has, at its end region in the profile rib 1, a depth t.sub.1 of at least 1.5 mm, and, in its region of entry into the circumferential groove 2, a depth t.sub.2 which is at most 3.5 mm and, in particular, 10% to 20% greater than the depth t.sub.1. The cross section of the groove 4 is V-shaped or U-shaped, and, starting at its end in the profile rib 1, its width b.sub.2 increases in the direction of the region of entry into the circumferential groove 2 and is 2.5 mm to 5.0 mm in the region of entry.
(8) As the sectional illustration in
(9) The grooves 4 open into the circumferential groove 2 at local indentations 7 of the one groove flank 5. Each indentation 7 has a shape similar to a D in a plan view of the tread, with a bottom 7a similar to a D in plan view and a boundary wall 7b which runs along the groove flank 5, is rounded overall and, as
(10) The bottom 7a of each indentation 7 runs parallel to the periphery of the tread, is at a somewhat raised level relative to the groove base 6 and is at a radial distance c of 0.5 mm to 2.0 mm to the deepest point of the groove base 6. The straight edge of the bottom 7a extends parallel to the peripheral edge of the circumferential groove at the periphery of the tread and has a length L of 3.0 mm to 7.0 mm. At the periphery of the tread, the indentation 7 ends at the peripheral edge 5a of the groove flank 5 or projects by up to 2.0 mm into the profile rib 1.
(11) In plan view, it is also possible for the indentations 7 to have some other rounded shape, e.g. the shape of a circular segment, at most that of a semicircle.
(12) The grooves 4 can be chamfered in a known manner along at least one edge, preferably along both edges at the periphery of the tread. In the profile rib 1, the grooves 4 can each be directly adjoined by a narrow sipe (not illustrated) with a width of about 0.4 mm to 1.0 mm, which preferably runs substantially parallel to the transverse grooves 3 and runs beyond the ground contact surface and the tread edge 1.
(13) The edge region of the indentation 7 at the periphery of the tread can be rounded with a small radius or provided with a chamfer.
(14) The indentations 7 on the groove flank 5 of the circumferential groove 2 shorten the outflow path for water, and therefore treads according to the invention have improved water drainage, wherein the round shape of the indentations 7 assists the drainage effect. By virtue of the shallow depth of the grooves 4, the profile rib 1 on the shoulder side remains largely “continuous”, as a result of which the noise emissions of the tire in terms of tire/road noise in the 1000 Hz range are low. The extent of the grooves 4 relative to the axial direction at an angle of 45°+/−20° likewise contributes to a reduction in noise emissions to the outside.
LIST OF REFERENCE SIGNS
(15) 1 . . . Profile rib 2 . . . Circumferential channel 3 . . . Transverse groove 4 . . . Groove 5 . . . Groove flank 6 . . . Groove base 7 . . . Indentation 7a . . . Bottom 7b . . . Bounding wall α, β, γ . . . Angles a, c . . . Distance b.sub.1, b.sub.2 . . . Width l . . . Line L . . . L Length P.sub.T . . . Profile depth t.sub.2 . . . Depth