Pneumatic Vehicle Tire
20180339559 ยท 2018-11-29
Assignee
Inventors
Cpc classification
B60C9/005
PERFORMING OPERATIONS; TRANSPORTING
B60C19/08
PERFORMING OPERATIONS; TRANSPORTING
B60C9/0064
PERFORMING OPERATIONS; TRANSPORTING
International classification
Abstract
A pneumatic vehicle tyre of radial type of construction, having a tread (1), having a carcass inlay (3), having electrically non-conductive sidewalls (7) and having at least one electrically conductive component (8) or element in a bead region, which component or element, in the case of a tyre mounted on a wheel rim, comes into contact with said wheel rim, wherein either the tread (1) is electrically conductive or, in the tread region, at least one electrically conductive component (10) is provided which is overlapped on the outside by the sidewalls (7) and which is connected in electrically conductive fashion to the tread outer surface, and wherein filaments provided with an electrically conductive coating are incorporated at least in a sidewall region, the coating of which filaments forms electrically conductive passages between the tread (1) or the component (10) and the at least one electrically conductive component (8) or element in the bead region.
Claims
1.-14. (canceled)
15. A pneumatic vehicle tire of a radial design comprising a tread, a carcass insert, electrically nonconductive sidewalls and at least one electrically conductive component or element in a bead region which comes into contact with a wheel rim when the pneumatic vehicle tire is mounted thereon, wherein either the tread is electrically conductive or at least one second electrically conductive component overlapped on the outside by the sidewalls has been provided in the tread region and is in electrically conductive connection with an outer surface of the tread, wherein filaments provided with an electrically conductive coating have been introduced at least in one sidewall region, the coating of which forms electrically conductive passages between the tread or the at least one second electrically conductive component and the at least one electrically conductive component or element in the bead region; wherein the filaments have been set on the inside of the sidewall and the at least one electrically conductive component or element in the bead region in such a way that the electrically conductive coating of the filaments forms vulcanized electrically conductive passages both in a region of an interface between the sidewall and the at least one electrically conductive component or element in the bead region, and in a region of an interface between the sidewall and the tread or the at least one second component in electrically conductive connection to the outer surface of the tread; and, wherein the electrically conductive passages run at an angle to the radial direction of up to 60?.
16. The pneumatic vehicle tire as claimed in claim 15, wherein the electrically conductive passages originate from the electrically conductive coating of filaments which have each been set upright continuously over the inside of the sidewall and in contact with the at least one electrically conductive component or element in the bead region.
17. The pneumatic vehicle tire as claimed in claim 15, wherein the electrically conductive passages originate from the coating of filaments which have been set on the carcass insert at a radially outer end section of the sidewall, at a radially inner end section of the sidewall and in contact with the at least one electrically conductive component or element in the bead region, and in the region between the radially outer end section of the sidewall and the radially inner end section of the sidewall.
18. The pneumatic vehicle tire as claimed in claim 15, wherein the electrically conductive component in the bead region is a rubber component having a flange profile.
19. The pneumatic vehicle tire as claimed in claim 15, wherein the electrically conductive passages run at mutual distances of from 5 cm to 15 cm.
20. The pneumatic vehicle tire as claimed in claim 15, wherein the electrically conductive passages originate from the coating of filaments of a weave.
21. The pneumatic vehicle tire as claimed in claim 15, wherein the electrically conductive passages originate from the coating of filaments that have been set randomly with mutual contact.
22. The pneumatic vehicle tire as claimed in claim 15, wherein the tread comprises a tread cap and a tread base, wherein the at least one second electrically conductive component in electrically conductive connection with the outer surface of the tread is the tread base of the tread which is in contact with at least one carbon center beam that penetrates the tread cap.
23. The pneumatic vehicle tire as claimed in claim 15, wherein the electrically conductive coating of the filaments comprises electrically conductive particles.
24. The pneumatic vehicle tire as claimed in claim 15, wherein the filaments comprise electrically nonconductive carrier filaments.
25. A pneumatic vehicle tire of a radial design comprising a tread, a carcass insert, electrically nonconductive sidewalls and at least one electrically conductive component or element in a bead region which comes into contact with a wheel rim when the pneumatic vehicle tire is mounted thereon, wherein either the tread is electrically conductive or at least one second electrically conductive component overlapped on the outside by the sidewalls has been provided in the tread region and is in electrically conductive connection with an outer surface of the tread, wherein filaments provided with an electrically conductive coating have been introduced at least in one sidewall region, the coating of which forms electrically conductive passages between the tread or the at least one second electrically conductive component and the at least one electrically conductive component or element in the bead region; wherein the filaments have been set on the inside of the sidewall and the at least one electrically conductive component or element in the bead region in such a way that the electrically conductive coating of the filaments forms vulcanized electrically conductive passages both in a region of an interface between the sidewall and the at least one electrically conductive component or element in the bead region, and in a region of an interface between the sidewall and the tread or the at least one second component in electrically conductive connection to the outer surface of the tread; and, wherein the electrically conductive coating of the filaments comprises an elastomeric material.
26. The pneumatic vehicle tire as claimed in claim 25, wherein the coating is an adhesion promoter, preferably an RFL dip.
27. The pneumatic vehicle tire as claimed in claim 25, wherein the electrically conductive passages run at least essentially in radial direction.
28. The pneumatic vehicle tire as claimed in claim 25, wherein the electrically conductive passages originate from the electrically conductive coating of filaments which have each been set upright continuously over the inside of the sidewall and in contact with the at least one electrically conductive component or element in the bead region.
29. The pneumatic vehicle tire as claimed in claim 25, wherein the electrically conductive passages originate from the coating of filaments which have been set on the carcass insert at a radially outer end section of the sidewall, at a radially inner end section of the sidewall and in contact with the at least one electrically conductive component or element in the bead region, and in the region between the radially outer end section of the sidewall and the radially inner end section of the sidewall.
30. The pneumatic vehicle tire as claimed in claim 25, wherein the electrically conductive component in the bead region is a rubber component having a flange profile.
31. The pneumatic vehicle tire as claimed in claim 25, wherein the electrically conductive passages run at mutual distances of from 5 cm to 15 cm.
32. The pneumatic vehicle tire as claimed in claim 25, wherein the electrically conductive passages originate from the coating of filaments of a weave.
33. The pneumatic vehicle tire as claimed in claim 25, wherein the electrically conductive passages originate from the coating of filaments that have been set randomly with mutual contact.
34. The pneumatic vehicle tire as claimed in claim 25, wherein the tread comprises a tread cap and a tread base, wherein the at least one second electrically conductive component in electrically conductive connection with the outer surface of the tread is the tread base of the tread which is in contact with at least one carbon center beam that penetrates the tread cap.
Description
[0017] Further features, advantages and details of the invention are now described in more detail on the basis of the drawing, which schematically shows exemplary embodiments of the invention. The figures show:
[0018]
[0019]
[0020] Motor vehicle tires executed in accordance with the invention may be tires for trucks, vans, light trucks or utility vehicles.
[0021]
[0022] The tread 1, in the variant embodiment shown, has a two-layer construction in radial direction and is composed of a tread cap 9 containing the profiling and a tread base 10 that runs radially within the tread cap 9, wherein the tread base 10 extends in axial direction across the entire width of the tread cap 9.
[0023] The tread base 10 has been manufactured from at least one rubber mixture comprising such a proportion of carbon black as filler that it is electrically conductive and therefore consists of an electrically conductive rubber material having an electrical resistance of<1?10.sup.8 ohms. The tread cap 9 has been produced from at least one rubber mixture containing silica (finely divided silica) as filler and accordingly consists of an electrically nonconductive rubber material.
[0024] An electrically conductive connection is assured between the tread base 10 and the outer surface of the tread, it being preferable, as in the working example shown, for an electrically conductive rubber strip 11 running in circumferential direction, called a carbon center beam, to be present within the tread cap 9, which extends essentially in radial direction and up to the outer surface of the tread and may have been manufactured from the rubber mixture of the tread base 10.
[0025] The radial belt package 2 within the tread 1 has two belt plies having electrically nonconductive belt rubberization, for example containing silica as filler. Any belt bandage present, which is preferably executed conventionally, likewise has electrically nonconductive rubberization.
[0026] The carcass insert 3 runs radially within the belt package 2 and along the sidewalls 7 into the bead regions, where it is wound around the respective bead core 5, forming a carcass turnup. The rubberization of the carcass insert 3 is also electrically nonconductive.
[0027] The sidewalls 7 each extend from the tread 1 as far as the respective flange profile 8. The radially outer end section of each sidewall 7 overlaps and forms contact from the outside with the tread base 10 and the tread cap 9. The radially inner end section of each sidewall 7 overlaps the flange profile 8 on the outside. Each sidewall 7 has been manufactured from an electrically nonconductive rubber mixture containing, for example, an appropriate proportion of silica as filler. The flange profiles 8 consist of electrically conductive rubber material. In the embodiment shown and described in more detail, therefore, by way of example, the flange profiles 8 are those electrically conductive components or elements in the bead regions which come into contact with the wheel rim when the tire is mounted thereon. It is also possible for other elements, components or installed components that can establish an electrically conductive connection of the sidewalls to the wheel rim to be provided in the bead regions and to be used for this purpose in the context of the invention.
[0028] Pneumatic vehicle tires executed according to the invention therefore have a number of components that are electrically nonconductive and preferably contain silica in the rubber material. As is known per se, this measure is advantageous for the rolling resistance of the tire and for the cutting and cracking resistance of the respective tire component. In order to assure dissipation of electrostatic charges from the electrically conductive elements, components or installed components that are in contact with the metallic wheel rim in the bead regions to the electrically conductive tread base 10, electrically conductive passages are provided at least in one of the sidewall regions in tires according to the invention.
[0029]
[0030] The electrically conductive filaments 12a to 12i, in a preferred embodiment, consist of a carrier filament composed of an electrically nonconductive material and having an outer coating or sheath of an electrically conductive material. The carrier filaments may consist, for example, of rayon, polyester, polyamide or aramid and may be a monofilament, a yarn or a cord consisting of multiple yarns. The electrically conductive coating is based, for example, on a suspension containing latex or another elastomer, and including electrically conductive particles, for instance carbon black particles or graphite powder, which assures the electrical conductivity of the coating. This coating can be produced by using, for example, a conventional adhesion promoter containing carbon black particles, which is liquid to such an extent that the carrier filament consisting of textile material can be coated by means of a dipping operation. It is possible by way of example to use an RFL dip (resorcinol-formaldehyde latex dip) incorporating carbon black particles, in particular N 339 particles or N 121 particles. The proportion of electrically conductive particles in the suspension is, for example, 10% by weight to 70% by weight, especially 30% by weight to 50% by weight. The electrically conductive coating of the carrier filaments may also consist exclusively of electrically conductive particles, for example carbon black particles, graphite powder or carbon nanotubes.
[0031] The inside of the sidewall/flange profile shown in
[0032] The inside of the sidewall/flange profile shown in
[0033] The sidewall/flange profile shown in
[0034] The inside of the sidewall/flange profile shown in
[0035] The inside of the sidewall/flange profile shown in
[0036] In further variant embodiments, weave pieces cut to appropriate size from such a weave are used.
[0037] In a further variant embodiment, relatively short electrically conductive filaments are set randomly, i.e. by chance and without orientation, and with mutual contact sites.
[0038] Rather than the electrically conductive tread base 10, it is also possible to provide another kind of electrically conductive connection between the sidewall 7 and the rubber strip 11.
LIST OF REFERENCE NUMERALS
[0039] 1 . . . Tread
[0040] 2 . . . Belt package
[0041] 3 . . . Carcass insert
[0042] 4 . . . Inner layer
[0043] 5 . . . Bead core
[0044] 6 . . . Core profile
[0045] 7 . . . Sidewall
[0046] 7 . . . Sidewall profile
[0047] 8 . . . Flange profile
[0048] 8 . . . Unvulcanized flange profile
[0049] 9 . . . Tread cap
[0050] 10 . . . Tread base
[0051] 11 . . . Rubber strip
[0052] 12a to 12i . . . Filaments
[0053] 13, 14 . . . Weave