TIRE LOAD APPLICATION DEVICE AND TIRE INSPECTION DEVICE
20190339178 ยท 2019-11-07
Assignee
Inventors
Cpc classification
B29D2030/0066
PERFORMING OPERATIONS; TRANSPORTING
B29D30/0061
PERFORMING OPERATIONS; TRANSPORTING
International classification
B29D30/00
PERFORMING OPERATIONS; TRANSPORTING
Abstract
A tire load application device includes a support base having a support surface against which part of a tread surface of a tire abuts, a support member configured to support an inner circumferential side of the tire and protrude toward both end sides in a tire axial center direction, and a longitudinal load application mechanism configured to apply a load to both end portions of the support member and press the tire toward the support surface.
Claims
1. A tire load application device, comprising: a support base having a support surface against which part of a tread surface of a tire abuts; a support member configured to support an inner circumferential side of the tire and protrude toward both end sides in a tire axial center direction; and a longitudinal load application mechanism configured to apply a load to both end portions of the support member and press the tire toward the support surface.
2. The tire load application device according to claim 1, wherein the longitudinal load application mechanism is configured with a pair of longitudinal load application members that allow a tensile force to act on both end portions of the supporting member toward the supporting surface.
3. The tire load application device according to claim 2, wherein the longitudinal load application member is configured with a shaft member whose length is adjustable.
4. The tire load application device according to claim 1, further comprising a bearing portion rotatably supporting both end portions of the support member, wherein the load application mechanism is configured with a pair of pressing members that press the tire toward the support surface via the bearing portion.
5. The tire load application device according to claim 1, further comprising a lateral load application member that applies a load toward an axial center direction to the support member.
6. The tire load application device according to claim 2, further comprising a lateral load application member that applies a load toward an axial center direction to the support member.
7. The tire load application device according to claim 3, further comprising a lateral load application member that applies a load toward an axial center direction to the support member.
8. The tire load application device according to claim 4, further comprising a lateral load application member that applies a load toward an axial center direction to the support member.
9. A tire inspection device, comprising: the tire load application device according to claim 1; X-ray irradiating means for irradiating the tire with an X-ray from a tire axial center direction; and X-ray detecting means for detecting an X-ray emitted from the X-ray irradiating means and passing through the tire, wherein the support surface is rotatable about a rotation axis parallel to a tire axial center.
10. A tire inspection device, comprising: the tire load application device according to claim 2; X-ray irradiating means for irradiating the tire with an X-ray from a tire axial center direction; and X-ray detecting means for detecting an X-ray emitted from the X-ray irradiating means and passing through the tire, wherein the support surface is rotatable about a rotation axis parallel to a tire axial center.
11. A tire inspection device, comprising: the tire load application device according to claim 3; X-ray irradiating means for irradiating the tire with an X-ray from a tire axial center direction; and X-ray detecting means for detecting an X-ray emitted from the X-ray irradiating means and passing through the tire, wherein the support surface is rotatable about a rotation axis parallel to a tire axial center.
12. A tire inspection device, comprising: the tire load application device according to claim 4; X-ray irradiating means for irradiating the tire with an X-ray from a tire axial center direction; and X-ray detecting means for detecting an X-ray emitted from the X-ray irradiating means and passing through the tire, wherein the support surface is rotatable about a rotation axis parallel to a tire axial center.
13. A tire inspection device, comprising: the tire load application device according to claim 5; X-ray irradiating means for irradiating the tire with an X-ray from a tire axial center direction; and X-ray detecting means for detecting an X-ray emitted from the X-ray irradiating means and passing through the tire, wherein the support surface is rotatable about a rotation axis parallel to a tire axial center.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The foregoing and the other features of the present invention will become apparent from the following description and drawings of an illustrative embodiment of the invention in which:
[0020]
[0021]
[0022]
[0023]
[0024]
DETAILED DESCRIPTION OF EMBODIMENTS
[0025] Hereinafter, embodiments according to the present invention will be described with reference to the accompanying drawings. It should be noted that description below is merely exemplary in nature and is not intended to limit the invention, its application, or its use. Further, the drawings are schematic, and ratios of dimensions do not necessarily agree with actual ones.
[0026]
[0027] The support base 5 includes a base 9, a load cell 10, and a support plate 11.
[0028] The base 9 is formed of a plate-like body having a rectangular shape in plan view. Extending portions 12 extend from four corners of the base 9 in the horizontal direction (vertical direction in
[0029] Fixed blocks 16a and 16b are fixed to both end sides on an upper surface of the base 9. A lower end portion of the longitudinal load application member 7A described later is fixed to the fixed block 16a on one side and a lower end portion of the longitudinal load application member 7B is fixed to the fixed block 16b on the other side. Further, on one end side on an upper surface of the base 9, auxiliary blocks 16c and 16d are fixed to both sides of the fixed block 16b. Lower end portions of connecting rods 19 of the lateral load application member 8 are connected to the auxiliary blocks 16c and 16d.
[0030] A load cell 10 is fixed between the base 9 and the support plate 11. The load cell 10 expands an amount of deformation caused by a load acting on the support plate 11, converts it into an electric signal with a strain gauge (not shown), and outputs it to a control device 17. The control device 17 calculates the load acting on the support plate 11 based on the input electric signal from the strain gauge.
[0031] The support plate 11 is made from a material excellent in permeability, such as wood, acrylic, or the like, that is, a material in which a transmitted X-ray is hardly attenuated. The upper surface of the support plate 11 serves as the support surface 4 against which a portion of the tread portion 3 of the tire 2 abuts. An inclination angle of the support plate 11 with respect to a horizontal plane can be adjusted by the height adjusting member 13 provided on the base 9. Here, a tread surface of the tire 2 to be placed is inclined with respect to the horizontal plane in the tire width direction.
[0032] The support member 6 is a cylindrical body made from a metal material, such as stainless steel. Both end portions of the support member 6 are connected to and supported by the fixed blocks 16a and 16b of the support base 5 by the longitudinal load application members 7A and 7B which will be described later. The tire 2 is attached to the support member 6. The tire 2 is fixed to a wheel 18 with a first attachment portion 25 described later interposed between them in a state in which the support member 6 is inserted through a center hole of the attached wheel 18. As a result, a load can be applied to the tire 2 toward the support surface 4 of the support plate 11 via the support member 6 by the longitudinal load application members 7A and 7B.
[0033] The longitudinal load application members 7A and 7B constituting the longitudinal load applying mechanism connect both end sides of the support member 6 and the support base 5 in such a manner that a length between them is adjustable. The longitudinal load application members 7A and 7B are disposed in both end portions in a longitudinal direction of the support plate 11. With reference also to
[0034] The lateral load application member 8 includes an inclined shaft portion 27 connected between a first attachment portion 25 fixed to the outer periphery of the support member 6 and a second attachment portion 26 fixed to the auxiliary blocks 16c and 16d. As shown in
[0035] The tire load application device 1 is used as described below.
[0036] The tire 2 is attached from one end side of the support member 6 in a state where the longitudinal load application member 7A is removed from the support member 6. That is, the support member 6 is inserted into a center hole of the wheel 18 attached to the tire 2, so that the wheel 18 attached to the tire 2 is attached to the first attachment portion fixed to the support member 6. Further, the longitudinal load application member 7A is attached to the support member 6. At this time, an internal pressure of the tire 2 is set as a normal internal pressure. Here, the normal internal pressure means an internal pressure defined by standards on which a tire relies on, that is, a maximum air pressure in the JATMA standard, a maximum value stated in TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES in the TRA standard, and INFLATION PRESSURE in the ETRTO standard. Note that the internal pressure of the tire 2 is not limited to the normal internal pressure, and may be appropriately changed according to a purpose.
[0037] Next, the screwing positions of the nuts 24 of the longitudinal load application members 7A and 7B are changed, and a tensile force is applied to the tire 2 via the support member 6 to press the tire 2 against the support surface 4 of the support plate 11. The pressing force is measured by a detection signal from the load cell 10. When a measured value reaches a desired value, tightening of the nut 24 is stopped. Here, the pressing is performed until the measured value reaches a normal load. Further, the normal load means a load defined by standards on which the tire 2 relies on, that is, maximum loading capability in the JATMA standard, a maximum value stated in TIRE LOAD LIMITS AT VARIOUS COLD INFLATION PRESSURES in the TRA standard, and LOAD CAPACITY in the ETRTO standard. Note that although the tightening stopping timing of the nut 24 is set to be a time when the measured value reaches the normal load, the present invention is not limited to the normal load, and may be appropriately changed in accordance with a purpose.
[0038] Further, when a lateral load is applied to the tire 2, a tensile force is applied by operating the lateral load application member 8. In this case, among tensile forces acting on the tire 2 via the support member 6 by the longitudinal shaft portion 22 and the inclined shaft portion 27, a total value of components in a vertical direction toward the support surface 4 is a load that presses the tire 2 against the support surface 4, and a total value of components in the horizontal direction orthogonal to the support surface 4 is a lateral load acting on the tire 2.
[0039] According to the tire load application device 1, an advantageous effect described below can be obtained.
[0040] (1) A force for pressing the tire 2 against the support surface 4 of the support plate 11 can be adjusted merely by changing the screwing position of the nut 24 threadedly engaged with the longitudinal shaft portion 22 of longitudinal load application members 7 and the screwing position of the nut 29 threadedly engaged with the inclined shaft portion 27 of the lateral load application member 8.
[0041] (2) Since a tensile force is applied toward the support plate 11 on both end sides of the support member 6 and by the two connecting rods 19, a tensile strength required for each of the connecting rods 19 can be restricted. That is, a wire diameter of each of the connecting rods 19 can be reduced.
[0042] (3) Adjustment of the tensile force acting on the support member 6 can be performed simply by changing the screwing position of the nut 24 with respect to the longitudinal shaft portion 22 and the screwing position of the nut 29 with respect to the inclined shaft portion 27, and a simple and inexpensive configuration can be employed.
[0043] The tire load application device 1 having the above configuration can be used for a tire inspection device. As an inspection device for a tire, for example, as shown in
[0044] The X-ray CT device includes an X-ray irradiation section 30 which is an example of X-ray irradiating means of the present invention for irradiating the tire 2 attached to the tire load application device 1 with an X-ray, and an X-ray detection section 31 which is an example of X-ray detecting means of the present invention for detecting an X-ray that has passed through the tire 2.
[0045] The X-ray irradiation section 30 is disposed on a side of one of the longitudinal load application members 7 so that the tire 2 can be irradiated with X-rays from a tire axial center direction. Further, the X-ray detection section 31 is disposed on a side of the other one of the longitudinal load application members 7 on a side opposite to the X-ray irradiation section 30 with the tire load application device 1 interposed between them. The longitudinal load application member 7 is mainly configured with the connecting rod 19 having a narrow wire diameter, and hardly attenuates an X-ray emitted from the X-ray irradiation section 30. Therefore, an internal structure of the tire 2, for example, the wire of the belt can be appropriately detected.
[0046] Here, the support plate 11 is disposed so that the support surface 4 is horizontal, but it may also be inclined. For example, as shown in
[0047] By irradiating the tire 2 inclined in this way with X-rays from the side, an image of the internal structure of part of the tread portion 3 in the tire width direction can be obtained. Therefore, there is no such a thing that an image becomes unclear due to a long distance of an attenuating portion, such as a wire, through which an X-ray passes, as in a case where the entire tread portion 3 is irradiated with X-rays from the side. In this case, members around X-ray irradiation regions, such as the load cell 10, are preferably also made from a material having excellent permeability, imaging can be performed even if the load cell 10 is positioned in a region through which an X-ray passes along with inclination of the tire 2.
[0048] It should be noted that the present invention is not limited to the configuration described in the above embodiment, and various modifications are possible.
[0049] In the above embodiment, the tire 2 is pulled by the longitudinal shaft portion 22 to the support base 5 via the support member 6. However, the tire 2 may be pulled by a member, such as a wire, which is relatively easy to deform in a direction other than the pulling direction.
[0050] In the above embodiment, as the longitudinal load applying mechanism, the tire 2 is pulled by a pair of the longitudinal load application members 7 via the support member 6 to the support base 5. However, the mechanism may be configured to press the tire 2. Specifically, as shown in
[0051] Since the support member 6 is pressed against the support surface 4 from the opposite side as described above, even the longitudinal load application member 7 as in the above embodiment does not exist around the tread portion 3 of the tire 2 pressed against the support surface 4. Therefore, a radiated X-ray is not attenuated in portions other than a tire portion, and imaging of the tread portion 3 can be performed more clearly.
[0052] In the above embodiment, the tire 2 is configured to be pressed against the support base 5 disposed on a lower side. However, the pressing direction is not limited to the vertically downward direction, and may be freely set, such as a horizontal direction, an obliquely downward direction, and the like.