Device for measuring tire ground state
10371603 ยท 2019-08-06
Assignee
Inventors
Cpc classification
B60C2019/004
PERFORMING OPERATIONS; TRANSPORTING
B60C25/00
PERFORMING OPERATIONS; TRANSPORTING
B60C19/00
PERFORMING OPERATIONS; TRANSPORTING
G01L5/00
PHYSICS
International classification
G01L5/00
PHYSICS
B60C19/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A device for measuring a tire ground state includes a traveling surface, a tire drive unit grounding a tire on the traveling surface and rolls the tire, a measuring sheet mounted to a partial area of the traveling surface for measuring the tire ground state, a protection sheet covering the measuring sheet, and a backward and forward tensile force application mechanism applying a tensile force along a tire forward traveling direction to the protection sheet. A space conducting the protection sheet to a portion below the traveling surface is formed in at least one of a delay side and an advance side of the measuring sheet in the tire forward traveling direction on the traveling surface, and the backward and forward tensile force application mechanism is structured such as to pull at least one end of the protection sheet in the tire forward traveling direction from below the traveling surface.
Claims
1. A device for measuring a tire ground state comprising: a traveling surface; a tire drive unit which grounds a tire on the traveling surface and rolls the tire; a measuring sheet which is mounted to a partial area of the traveling surface and is provided for measuring the tire ground state; a protection sheet which covers the measuring sheet; and a backward and forward tensile force application mechanism which applies a tensile force along a tire forward traveling direction to the protection sheet, wherein a space conducting the protection sheet to a portion below the traveling surface is formed in at least one of a delay side and an advance side of the measuring sheet in the tire forward traveling direction on the traveling surface, and the backward and forward tensile force application mechanism is structured such as to pull at least one end of the protection sheet in the tire forward traveling direction from the below of the traveling surface, and wherein an upper opening of the space is partly closed by an upper lid which is arranged so as to be flush with the traveling surface.
2. The device for measuring the tire ground state according to claim 1, wherein an opening edge facing the measuring sheet in opening edges of the upper opening is rounded.
3. The device for measuring the tire ground state according to claim 1, wherein one end of an elastic sheet is connected to at least one end of the protection sheet in the tire forward traveling direction, and the backward and forward tensile force application mechanism applies the tensile force to the protection sheet by pulling the other end of the elastic sheet.
4. The device for measuring the tire ground state according to claim 1, further comprising a width direction tensile force application mechanism which applies to the protection sheet tensile force along a width direction which is orthogonal to the tire forward traveling direction.
5. The device for measuring the tire ground state according to claim 4, wherein a space conducting the protection sheet to a portion below the traveling surface is formed in both sides of the measuring sheet in the width direction on the traveling surface, and the width direction tensile force application mechanism is structured such as to pull both ends of the protection sheet in the width direction from the below of the traveling surface.
6. The device for measuring the tire ground state according to claim 4, wherein the protection sheet is formed into a crisscross shape in a plan view.
7. The device for measuring the tire ground state according to claim 1, wherein the traveling surface has a measuring area and a traveling area, the measuring sheet is buried in the traveling surface in the measuring area, thereby making an upper surface of the measuring sheet approximately flush with the traveling surface in the traveling area.
8. The device for measuring the tire ground state according to claim 1, wherein the space is connected to the traveling surface in the measuring area to which the measuring sheet is mounted, by a smooth curved surface.
9. The device for measuring the tire ground state according to claim 1, wherein the space is formed as a groove which extends to be orthogonal to the tire forward traveling direction.
10. The device for measuring the tire ground state according to claim 1, wherein the protection sheet is made of polycarbonate.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
First Embodiment
(11) A description will be given below of a device for measuring a tire ground state according to a first embodiment of the present invention with reference to the accompanying drawings.
(12) As shown in
(13) As shown in
(14) As shown in
(15) As shown in
(16) The protection sheet 4 is provided for protecting the measuring sheet 3, and has a certain degree of strength. As a material of the protection sheet 4, for example, polycarbonate is listed up, however, the material is not limited to this. A thickness thereof is preferably equal to or less than 0.5 mm.
(17) The protection sheet 4 is formed into a crisscross shape in a plan view as shown in
(18) A space 6 conducting the protection sheet 4 to a portion below the traveling surface 1 is formed in both sides of the measuring sheet 3 in the tire forward traveling direction MD on the traveling surface 1. The space 6 is formed as a groove which extends to be orthogonal to the tire forward traveling direction MD.
(19) A backward and forward tensile force application mechanism 5 applies a tensile force along the tire forward traveling direction MD to the protection sheet 4 by pulling both ends of the protection sheet 4 in the tire forward traveling direction MD from the below of the traveling surface 1. A method of applying the tensile force may be structured, as shown in
(20) An opening edge 6a facing the measuring sheet 3 in the upper opening of the space 6 is rounded as shown in
(21) The upper opening of the space 6 is partly closed by an upper lid 9 which is arranged so as to be flush with the traveling surface 1. As a result, it is possible to make a road surface state of the traveling surface 1 uniform. The upper lid 9 is fixed to an opening edge 6b which faces an opening edge 6a of the upper opening. The upper lid 9 is fixed to a concave portion which is formed in the opening edge 6b by a screw or the like (not shown). Further, a small gap is provided between the upper lid 9 and the protection sheet 4, and the upper lid 9 does not inhibit movement of the protection sheet 4.
(22) Further, there is provided a width direction tensile force application mechanism 7 applying the tensile force to the protection sheet 4 in a width direction WD which is orthogonal to the tire forward traveling direction MD. The width direction tensile force application mechanism 7 is structured in the same manner as the backward and forward tensile force application mechanism 5. More specifically, a space 8 conducting the protection sheet 4 to a portion below the traveling surface 1 is formed in both sides of the measuring sheet 3 in the width direction WD on the traveling surface 1, and the width direction tensile force application mechanism 7 is structured such as to pull both ends of the protection sheet 4 in the width direction WD from the below of the traveling surface 1.
Second Embodiment, Third Embodiment, Fourth Embodiment, Fifth Embodiment and Other Modified Examples
(23) The shape of the protection sheet 4 is not limited to the crisscross shape in a plan view (refer to
(24) Further, the width direction tensile force application mechanism 7 may be structured such as to pull along a horizontal direction in the same manner as the conventional one. Further, the width direction tensile force application mechanism may not be provided such as a second embodiment shown in
(25) Further, the width direction tensile force application mechanism 7 may be formed into a space which is formed into a square shape in a plan view as a whole such as a third embodiment shown in
(26) In the first embodiment (
(27) Further, in the embodiments mentioned above, the tensile force is directly applied to the protection sheet 4. However, one end of an elastic sheet 41 is connected to at least one end of the protection sheet 4 in the tire forward traveling direction MD, and the backward and forward tensile force application mechanism 5 may apply the tensile force to the protection sheet 4 by pulling the other end of the elastic sheet 41. Further, the elastic sheet 41 may be arranged so as to surround the protection sheet 4 by connecting one end of the elastic sheet 41 to each of both ends of the protection sheet 4 in the tire forward traveling direction MD and both ends thereof in the width direction WD, the protection sheet 4 being formed into a rectangular shape in a plan view, such as a fifth embodiment shown in
(28) As mentioned above, the device for measuring the tire ground state according to the present embodiment includes:
(29) the traveling surface 1;
(30) the tire drive unit 2 which grounds the tire T on the traveling surface 1 and rolls the tire T;
(31) the measuring sheet 3 which is mounted to the partial area Ar1 of the traveling surface 1 and is provided for measuring the ground state of the tire T;
(32) the protection sheet 4 which covers the measuring sheet 3; and
(33) the backward and forward tensile force application mechanism 5 which applies the tensile force along the tire forward traveling direction MD to the protection sheet 4,
(34) the space 6 conducting the protection sheet 4 to the portion below the traveling surface 1 is formed in at least one of the delay side and the advance side of the measuring sheet 3 in the tire forward traveling direction MD on the traveling surface 1, and the backward and forward tensile force application mechanism 5 is structured such as to pull at least one end of the protection sheet 4 in the tire forward traveling direction MD from the below of the traveling surface 1, and
(35) the upper opening of the space 6 is partly closed by the upper lid 9 which is arranged so as to be flush with the traveling surface 1.
(36) According to the structure, the backward and forward tensile force application mechanism 5 does not interfere with the traveling of the tire T at any of the tire drive starting time and the tire braking time, the protection sheet 4 can be set to the necessarily minimum length and it is possible to downsize the device.
(37) In the present embodiment, the opening edge 6a facing the measuring sheet 3 in the opening edge of the upper opening in the space 6 is rounded.
(38) According to the structure, the tensile force can be smoothly applied to the protection sheet 4 when pulling at least one end of the protection sheet 4 in the tire forward traveling direction MD from the below.
(39) In the present embodiment, one end of the elastic sheet 41 is connected to at least one end of the protection sheet 4 in the tire forward traveling direction MD, and the backward and forward tensile force application mechanism 5 applies the tensile force to the protection sheet 4 by pulling the other end of the elastic sheet 41.
(40) According to the structure, since the portion coming into contact with the opening edge 6a of the space 6 can be formed into the elastic sheet 41, it is possible to prevent the protection sheet 4 from being strained and broken.
(41) The present embodiment is provided with the width direction tensile force application mechanism 7 which applies the tensile force to the protection sheet 4 in the width direction WD which is orthogonal to the tire forward traveling direction MD.
(42) According to the structure, since the tensile force is applied to the protection sheet 4 in the width direction WD, the measuring sheet 3 can be protected by the protection sheet 4 even in the case that the tire T is braked or started driving while being turned.
(43) In the present embodiment, the space 8 conducting the protection sheet 4 to the portion which is below the traveling surface 1 is formed in both sides of the measuring sheet 3 in the width direction WD on the traveling surface 1, and the width direction tensile force application mechanism 7 is structured such as to pull both ends of the protection sheet 4 in the width direction WD from the below of the traveling surface 1.
(44) According to the structure, since the width direction tensile force application mechanism 7 applying the tensile force to the protection sheet 4 in the width direction WD is arranged below the traveling surface 1, it is possible to downsize the device.
(45) The description is given above of the embodiments according to the present invention with reference to the accompanying drawings, however, it should be thought that the specific structures are not limited to these embodiments. The scope of the present invention is defined not only by the description of the above embodiments but also by claims, and further includes all the changes and modifications within the meaning and range which are equivalent to claims.
(46) The structure employed in each of the embodiments mentioned above can be employed in the other optional embodiments. The specific structure of each of the portions is not limited to the embodiments mentioned above, but can be variously modified within the range which does not deviate from the scope of the present invention.