Wheel tool frame
By designing a multi-layered structure and drive components for the wheel tooling fixture, the problem of low space utilization in existing wheel tooling fixtures is solved, achieving more efficient space utilization and ease of operation, while reducing manufacturing costs and operator fatigue.
Patent Information
- Application Number
- CN202422829760.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-20
- Publication Date
- 2025-11-21
- Estimated Expiration
- 2034-11-20
AI Technical Summary
The existing wheel tooling racks have low space utilization, resulting in resource waste and increased manufacturing costs.
Design a multi-layer wheel tooling frame, including at least two layers of positioning components. The positioning components are rotatably connected to the bracket. The wheel tool is driven to move by a driving component, reducing bending operations. Limiting parts and fitting grooves are provided to fix and protect the wheel tool.
The space utilization of the wheel tooling rack is improved, manufacturing costs are reduced, and operator fatigue is reduced through multi-layer structure and drive component design, avoiding collisions and damage to the wheel tooling during handling.
Smart Images

Figure CN223573149U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to the field of wheel, especially relates to a wheel tooling frame, which can be applied to the production of leather. BACKGROUND
[0002] Leather is widely used in many fields such as automobile and home decoration as a surface decoration material. Common leathers include real leather, polyvinyl chloride artificial leather (PVC artificial leather), thermoplastic polyolefin elastomer artificial leather (TPO artificial leather), polyurethane artificial leather (PU artificial leather) and the like. Real leather is gradually replaced by artificial leather due to its high price and environmental unfriendliness.
[0003] In the production process of artificial leather, wheels are needed to store and transfer artificial leather, and the wheels usually need to be supported and limited by a wheel tooling frame. The traditional wheel tooling frame is provided with only one layer of positioning members for placing wheels. Such a single structure design makes the space utilization rate of the wheel tooling frame low. In actual use scenarios, a large amount of space resources is idle and wasted, and the storage potential of the tooling frame cannot be fully utilized.
[0004] Therefore, it is desirable to provide a novel technical scheme to solve the above technical problems. CONTENT OF THE UTILITY MODEL
[0005] The utility model aims at solving the problem of low space utilization rate of the existing wheel tooling frame. The utility model provides a wheel tooling frame which can place multiple layers of wheels, improves the space utilization rate of the wheel tooling frame, and saves the manufacturing cost of the wheel tooling frame.
[0006] To solve the above technical problems, the embodiment of the utility model discloses a wheel tooling frame, which comprises:
[0007] Two positioning parts are spaced apart and correspondingly arranged along a first direction. Each positioning part comprises one or more positioning member groups. The multiple positioning member groups are spaced apart along a second direction. Along a third direction, each positioning member group comprises at least two layers of positioning members spaced apart. The positioning members in one positioning part and the positioning members in the corresponding other positioning part at the same layer are used to fix wheels from the outside. The second direction is perpendicular to the first direction, and the third direction is perpendicular to the first direction.
[0008] A first support is arranged between two adjacent positioning member groups along the third direction. The positioning members above the first support are rotationally connected with the first support.
[0009] With the technical scheme, if the wheel tool rack includes two layers of positioning members, two layers of wheels can be placed. When the upper layer of wheels is finished being carried and the lower layer of wheels needs to be carried, the upper layer of positioning members can be rotated, for example, by 90 degrees. This ensures that when the operator lifts the lower layer of wheels along the third direction, there is no obstruction in the third direction, so that the operator can more smoothly complete the carrying work of the wheels, and the problems of collision and obstruction caused by the upper layer of positioning members are avoided.
[0010] In addition, since the wheel tool rack in the embodiment of the application includes at least two layers of positioning members, at least two layers of wheels can be placed accordingly. Compared with the prior art in which only one layer of positioning members is provided, the space utilization of the wheel tool rack is effectively improved.
[0011] Suppose that the wheel tool rack in the prior art including one layer of positioning members can place four wheels, then the wheel tool rack in the embodiment of the application can place eight, twelve or even more wheels due to its multi-layer structure. This means that in the actual storage process, if three wheel tool racks in the prior art including one layer of positioning members are needed to meet the placement requirements of the wheels, now only one wheel tool rack in the embodiment of the application is needed. Therefore, the wheel tool rack in the embodiment of the application not only effectively improves the space utilization of the wheel tool rack, but also saves the manufacturing cost of the wheel tool rack.
[0012] According to another specific embodiment of the application, the positioning member includes a groove, the shape of the groove is matched with the shape of the shaft end of the wheel from the outside world, and the groove is used to place the shaft end of the wheel from the outside world.
[0013] According to another specific embodiment of the application, the positioning member includes a limiting part, which is arranged on both sides of the groove along the first direction, and is used to fix the shaft end of the wheel from the outside world.
[0014] With the technical scheme, along the first direction, the limiting part is arranged on both sides of the groove, that is, when the shaft end of the wheel is placed on the positioning member, the limiting part is located on both sides of the shaft end. If the wheel tool rack is slightly shaken, shaken or has some small mistakes in the operation process, the wheel will inevitably be affected and shaken. The limiting part effectively limits the shaking amplitude of the wheel in the first direction, so that the wheel can remain relatively stationary on the wheel tool rack even if it is disturbed by the outside world, thereby avoiding the collision and scratching of the wheel with the surrounding parts due to excessive shaking.
[0015] According to another specific embodiment of the present application, along the second direction, the distance between two adjacent positioning members is a first distance, and the first distance is greater than the diameter of the wheel device.
[0016] By setting the first distance to be greater than the diameter of the wheel device, collision and scratching between two adjacent wheel devices during the carrying and storing process in the second direction can be avoided, and damage to the wheel device can be prevented.
[0017] According to another specific embodiment of the present application, along the second direction, the positioning member comprises a first end and a second end arranged at intervals, the first end is rotatably connected to the first support, and the second end can rotate around the first end in the third direction as an axis.
[0018] By setting the first distance to be greater than the diameter of the wheel device, collision and scratching between two adjacent wheel devices during the carrying and storing process in the second direction can be avoided, and damage to the wheel device can be prevented.
[0019] According to another specific embodiment of the present application, the positioning member comprises a bolt and an insert, the first end comprises a first through hole, the second end comprises a second through hole, along the second direction, the first support comprises a third through hole and a fourth through hole arranged at intervals, the bolt passes through the first through hole, the third through hole and the first support in sequence, the insert comprises a force receiving portion and an insertion portion, the insertion portion can pass through the second through hole, the fourth through hole and the first support in sequence, and the force receiving portion is used for an operator to pull out the insertion portion through the force receiving portion.
[0020] According to another specific embodiment of the present application, the insert is a bolt.
[0021] According to another specific embodiment of the present application, the wheel device tooling rack comprises a second support, along the third direction, the first support, the lowermost positioning member and the second support are arranged in sequence, and the length of the second support is greater than the radius of the wheel device.
[0022] The wheel device at the lowermost layer of the wheel device tooling frame can be kept a distance from the ground, preventing the wheel device at the lowermost layer from being scratched by the ground and causing damage to the wheel device.
[0023] According to another specific embodiment of the present application, the wheel device tooling frame comprises a driving member, and the driving member is arranged between two adjacent positioning members in the first direction, and is used to drive the wheel device in the third direction to move away from the corresponding positioning member.
[0024] With the above technical solution, since the wheel device usually has a large weight, when the operator needs to carry out the wheel device at the lowermost layer, it is inevitable to bend down to carry. With the increase of the number of wheel devices carried, the frequency of bending down of the operator also increases. Such frequent bending action increases the fatigue of the operator.
[0025] Therefore, the present application drives the wheel device in the third direction to move upward to move away from the corresponding positioning member, for example, the wheel device can be driven to a position level with the hands of the operator. In this way, when the operator carries the wheel device, it is no longer necessary to bend down as before. This design reduces the burden of the operator and makes the carrying work easy and efficient. Similarly, if the wheel device needs to be placed at the positioning member at the lowermost layer, the driving member can be moved upward to a position level with the hands of the operator in advance. Then, the operator places the wheel device on the driving member, and the driving member drives the wheel device to move downward in the third direction until the shaft end of the wheel device is placed on the positioning member at the lowermost layer, thereby completing the entire placement process. This design improves the operation process of wheel device carrying and placement, and reduces the fatigue of the operator. BRIEF DESCRIPTION OF DRAWINGS
[0026] Figure 1 A front view of the wheel device tooling frame of the first embodiment of the present application is shown.
[0027] Figure 2A A top view of the wheel device tooling frame of the first embodiment of the present application is shown.
[0028] Figure 2B A top view of the wheel device tooling frame and the wheel device connected of the first embodiment of the present application is shown.
[0029] Figure 3 A left view of the wheel device tooling frame and the wheel device connected of the first embodiment of the present application is shown.
[0030] Figure 4 A schematic view of the positioning member of the first embodiment of the present application is shown.
[0031] Figure 5 Fig. 2 is a left view of the two-wheeled vehicle tooling jig of the embodiment of the present application.
[0032] Reference numerals
[0033] Positioning part 10;
[0034] Positioning part group 11;
[0035] Positioning part 111;
[0036] Groove 1111;
[0037] Limiting part 1112;
[0038] First end 1113; first through hole 11131;
[0039] Second end 1114; second through hole 11141;
[0040] Bolt 1115;
[0041] Insert part 1116; force receiving part 11161; insertion part 11162;
[0042] First support 20;
[0043] Second support 30;
[0044] Driving part 40;
[0045] Wheel 100; shaft end 110. DETAILED DESCRIPTION
[0046] The above description can easily understand other advantages and effects of the present application by the skilled in the art from the content disclosed in the present specification. Although the description of the present application will be introduced in combination with the preferred embodiments, it does not mean that the features of the present application are limited to the embodiments. On the contrary, the purpose of introducing the present application in combination with the embodiments is to cover other options or modifications which can be extended based on the claims of the present application. In order to provide a deep understanding of the present application, many specific details will be included in the following description. The present application can also be implemented without using these details. In addition, in order to avoid confusion or obscure the focus of the present application, some specific details will be omitted in the description. It should be noted that the embodiments in the present application and the features in the embodiments can be combined with each other without conflict.
[0047] It should be noted that in the present specification, similar reference numbers and letters represent similar items in the following drawings, so once an item is defined in one drawing, it does not need to be further defined and explained in the subsequent drawings.
[0048] In the description of the present embodiment, it should be noted that the terms "upper", "lower", "inner", "bottom" and the like indicate the orientation or positional relationship based on the orientation or positional relationship shown in the drawings, or the orientation or positional relationship commonly used when the utility model product is used, and are only for the convenience of describing the utility model and simplifying the description, and therefore cannot be understood as indicating or implying that the devices or elements referred to must have a particular orientation, be constructed and operated in a particular orientation, and therefore cannot be understood as limiting the utility model.
[0049] The terms "first", "second", and the like are only used for differentiation in description and cannot be understood as indicating or implying relative importance.
[0050] In the description of the present embodiment, it should also be noted that, unless otherwise explicitly specified and limited, the terms "provided", "connected", "connected" should be broadly understood, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected; it can be mechanically connected, or it can be electrically connected; it can be directly connected, or it can be indirectly connected through an intermediate medium, or it can be connected inside two elements. For those skilled in the art, the specific meaning of the above terms in the present embodiment can be understood according to the specific circumstances.
[0051] In order to make the purpose, technical scheme and advantages of the utility model clearer, the embodiments of the utility model will be further described in detail below with reference to the drawings.
[0052] Embodiment one
[0053] Reference Figures 1 to 3 The present embodiment provides a wheel tool rack, which comprises two positioning parts 10 and a first support 20. The two positioning parts 10 are spaced apart and correspondingly arranged along a first direction X. Each positioning part 10 comprises four positioning piece groups 11, which are spaced apart along a second direction Y perpendicular to the first direction X. Along a third direction Z, each positioning piece group 11 comprises two layers of positioning pieces 111 spaced apart. The positioning pieces 111 in one of the positioning parts 10 and the positioning pieces 111 in the corresponding other positioning part 10 at the same layer are used to fix the wheel tool 100 from the outside, i.e., the two corresponding positioning pieces 111 fix the two ends of the wheel tool 100 respectively, and the third direction Z is perpendicular to the first direction X.
[0054] Along the third direction Z, the first support 20 is arranged between the two adjacent positioning piece groups 11, and the first support 20 is a cuboid. Along the third direction Z, the positioning pieces 111 in the lower layer are fixedly connected with the first support 20, and the positioning pieces 111 in the upper layer are rotatably connected with the first support 20.
[0055] With the technical scheme, the wheel tool rack includes two layers of positioning members 111, that is, two layers of wheels 100 can be placed. When the upper layer of wheels 100 is completed and the lower layer of wheels 100 needs to be carried, the upper layer of positioning members 111 can be rotated, for example, the rotation angle a is 90°. As shown in FIG. 2, the positioning member 111 before rotation is in the position of the dashed line state, and is used to fix the wheel 100. When the operator removes the upper layer of wheels 100, the operator subsequently rotates the corresponding two positioning members 111 to the position of the solid line state along the direction of the arrow. Thus, when the operator lifts the lower layer of wheels 100 along the third direction Z, there is no obstruction in the third direction Z, so that the operator can more smoothly complete the carrying work of the wheel 100, and the problems of collision and obstruction caused by the upper layer of positioning members 111 are avoided. Figure 2B
[0056] In addition, since the wheel tool rack in the embodiment of the present application includes at least two layers of positioning member groups 11, at least two layers of wheels 100 can be placed accordingly. Compared with the prior art in which only one layer of positioning members 111 is provided, the space utilization of the wheel tool rack is effectively improved.
[0057] Suppose that the wheel tool rack in the prior art including one layer of positioning members 111 can place four wheels 100, then the wheel tool rack in the embodiment of the present application can place eight, twelve or even more wheels 100 due to its multi-layer structure. This means that in the actual storage process, if three wheel tool racks with only one layer of positioning members 111 were previously required to meet the placement requirements of the wheels 100, now only one wheel tool rack in the embodiment of the present application can be used. Therefore, the wheel tool rack in the embodiment of the present application not only effectively improves the space utilization of the wheel tool rack, but also saves the manufacturing cost of the wheel tool rack.
[0058] It should be noted that the number of positioning member groups 11 included in each positioning part 10 is not specifically limited in the embodiment of the present application, for example, in other possible embodiments, each positioning part 10 can include two, three or four positioning member groups 11. The number of layers of positioning members 111 included in each positioning member group 11 is not specifically limited in the embodiment of the present application, for example, in other possible embodiments, each positioning member group 11 can include two, three or four layers of positioning members 111. The shape of the first support 20 is not specifically limited in the embodiment of the present application, for example, in other possible embodiments, the shape of the first support 20 can include a cylinder, a cube, etc. The rotation angle a of the positioning member 111 is not specifically limited in the embodiment of the present application, for example, in other possible embodiments, the rotation angle a of the positioning member 111 can be 96°, 113°, 120°, etc.
[0059] In some possible implementation manners, referring to Figures 1 to 3 The positioning member 111 comprises a groove 1111, which is semicircular, and the shape of the groove 1111 is matched with the shape of the shaft end 110 of the wheel 100 in the external environment, and the groove 1111 is used for placing the shaft end 110 of the wheel 100 in the external environment.
[0060] It should be noted that the shape of the groove 1111 is not specifically limited in the embodiments of the present application. For example, in other possible implementation manners, if the shaft end 110 is square, then the shape of the groove 1111 is rectangular, and the shape of the groove 1111 is determined by the shape of the shaft end 110.
[0061] In some possible implementation manners, referring to Figure 3 and Figure 4 Each positioning member 111 comprises two limiting portions 1112, which are semicircular, and the limiting portions 1112 are arranged on both sides of the groove 1111 along the first direction X, and the limiting portions 1112 are used for fixing the shaft end 110 of the wheel 100 in the external environment.
[0062] By using the above technical solution, the limiting portions 1112 are arranged on both sides of the groove 1111 along the first direction X, that is, when the shaft end 110 of the wheel 100 is placed on the positioning member 111, the limiting portions 1112 are also located on both sides of the shaft end 110. If the wheel tool holder is slightly shaken, shaken or some small mistakes occur in the operation process, the wheel 100 will inevitably be affected and shaken. The limiting portions 1112 effectively limit the shaking amplitude of the wheel 100 in the first direction X, so as to ensure that the wheel 100 can remain relatively stationary on the wheel tool holder even if it is disturbed by the external environment, thereby avoiding the wheel 100 from colliding with or scratching the surrounding components due to excessive shaking.
[0063] It should be noted that the shape of the limiting portion 1112 is not specifically limited in the embodiments of the present application. For example, in other possible implementation manners, if the shaft end 110 is square, then the shape of the limiting portion 1112 is rectangular, and the shape of the limiting portion 1112 is determined by the shape of the shaft end 110. The number of the limiting portion 1112 is not specifically limited in the embodiments of the present application. For example, in other possible implementation manners, the number of the limiting portion 1112 can be three, four, etc.
[0064] In some possible implementation manners, referring to Figures 1 to 3, along the second direction Y, the distance between two adjacent positioning members 111 is a first interval L1, the first interval L1 is greater than the diameter D of the wheel device 100 outside. Along the third direction Z, the distance between two adjacent positioning members 111 is a second interval L2, the second interval L2 is greater than the diameter D of the wheel device 100 outside.
[0065] With the above technical scheme, by setting the first interval L1 greater than the diameter D of the wheel device 100, it is avoided that the adjacent two wheel devices 100 collide and scratch during the carrying and storing process in the second direction Y, causing damage to the wheel device 100. By setting the second interval L2 greater than the diameter D of the wheel device 100, it is avoided that the adjacent two wheel devices 100 collide and scratch during the carrying and storing process in the third direction Z, causing damage to the wheel device 100.
[0066] In some possible implementation manners, referring to FIGS. 2 to Figure 4 , along the second direction Y, the positioning member 111 includes a first end 1113 and a second end 1114 arranged at intervals. The first end 1113 is rotationally connected with the first support 20, and the second end 1114 is rotationally movable about the first end 1113 with the third direction Z as an axis.
[0067] With the above technical scheme, the wheel device tooling rack includes two layers of positioning members 111, that is, two layers of wheel devices 100 can be placed. When the wheel devices 100 on the upper layer are completed carrying, and the wheel devices 100 on the lower layer need to be carried, the second end 1114 of the positioning member 111 on the upper layer can be rotated about the first end 1113 with the third direction Z as an axis, for example, 90°. When the operator lifts the wheel devices 100 on the lower layer along the third direction Z, there is no any obstruction in the third direction Z, so that the operator can more smoothly complete the carrying work of the wheel devices 100, and the problems of collision and obstruction caused by the existence of the upper positioning member 111 are avoided.
[0068] In some possible implementation manners, referring to FIGS. 2 to Figure 5 The positioning member 111 includes a bolt 1115 and an insert 1116, and the insert 1116 is a bolt. The first end 1113 includes a first through hole 11131, the second end 1114 includes a second through hole 11141, and along the second direction Y, the first support 20 includes a third through hole (not shown in the figure) and a fourth through hole (not shown in the figure) arranged at intervals.
[0069] The bolt 1115 passes through the first through hole 11131 and the third through hole in sequence and is connected with the first support 20. The insert 1116 comprises a force receiving part 11161 and an insertion part 11162. The force receiving part 11161 is a circular ring, and the insertion part 11162 can pass through the second through hole 11141 and the fourth through hole in sequence and be connected with the first support 20. The force receiving part 11161 is used for an operator outside to pull out the insertion part through the force receiving part 11161.
[0070] It should be noted that the type of the insert 1116 is not specifically limited in the embodiments of the present application. For example, in other possible implementation manners, the insert 1116 can be a bolt, a wedge or the like. The shape of the force receiving part 11161 is not specifically limited in the embodiments of the present application. For example, in other possible implementation manners, the shape of the force receiving part 11161 can be rectangular, triangular or the like.
[0071] In some possible implementation manners, referring to Figure 3 , the wheel tool rack comprises a second support 30, and the second support 30 is a cuboid. Along the third direction Z, the first support 20, the lowermost positioning piece 111 and the second support 30 are sequentially arranged, and the length of the second support 30 is greater than the radius of the wheel tool 100 outside.
[0072] By using the above technical solution, the wheel tool 100 located at the lowermost position of the wheel tool rack can be kept a distance from the ground, thereby preventing the wheel tool 100 at the lowermost position from scratching the ground and being damaged.
[0073] It should be noted that the shape of the second support 30 is not specifically limited in the embodiments of the present application. For example, in other possible implementation manners, the shape of the second support 30 can comprise a cylinder, a square or the like.
[0074] Embodiment Two
[0075] In some possible implementation manners, referring to Figure 5 , the wheel tool rack comprises a driving piece 40', and the driving piece 40' is a hydraulic cylinder. Along the first direction X, the driving piece 40' is arranged between two adjacent positioning pieces 111', and the driving piece 40' is used to drive the wheel tool 100' outside to move along the third direction Z, so as to be separated from the corresponding positioning piece 111'.
[0076] By using the above technical solution, since the wheel tool 100' usually has a large weight, when an operator needs to carry out the wheel tool 100' at the lowermost layer, it is inevitable to bend down to carry. With the increase of the number of the wheel tools 100' carried, the frequency of the operator bending down is also rising. Such frequent bending action increases the fatigue of the operator.
[0077] Therefore, the application scheme is provided with the driving member 40' for driving the wheel device 100' to move along the third direction Z, such as when the operator needs to carry out the wheel device 100' on the lowermost layer, the driving member 40' can drive the wheel device 100' to move upward along the third direction Z to be separated from the corresponding positioning member 111'. For example, the wheel device 100' can be driven to the position of the hands of the operator. In this way, when the operator carries the wheel device 100', it is no longer necessary to bend over as before. This design reduces the burden of the operator and makes the carrying work easy and efficient. Similarly, if it is necessary to place the wheel device 100' on the positioning member 111' on the lowermost layer, the driving member 40' can be moved upward to the position of the hands of the operator in advance. Then, the operator places the wheel device 100' on the driving member 40', and the driving member 40' drives the wheel device 100' to move downward along the third direction Z until the shaft end 110' of the wheel device 100' is placed on the positioning member 111' on the lowermost layer, thereby completing the entire placement process. This design improves the operation process of carrying and placing the wheel device 100' and reduces the fatigue of the operator.
[0078] It should be noted that the specific structure of the driving member 40' is not specifically limited in the embodiments of the application, for example, in other possible embodiments, the driving member 40' can be a spring, a motor, etc.
[0079] Although the application has been illustrated and described with reference to certain preferred embodiments thereof, it should be understood by those skilled in the art that the above content is a further detailed description of the application in combination with specific embodiments, and cannot be considered as limiting the specific implementation of the application to these descriptions. Those skilled in the art can make various changes in form and details, including making a number of simple deductions or substitutions, without departing from the spirit and scope of the application.
Claims
1. A wheel tooling fixture, characterized by, The wheel tool jig frame comprises: two positioning parts, which are spaced apart and correspondingly arranged along a first direction, each of the positioning parts comprises one or more positioning member groups, the positioning member groups are spaced apart along a second direction, along a third direction, each of the positioning member groups comprises at least two layers of positioning members which are spaced apart, wherein the positioning members in one of the positioning parts and the positioning members in the corresponding other positioning part at the same layer are used to fix the wheel tool in the external environment, the second direction is perpendicular to the first direction, and the third direction is perpendicular to the first direction; a first support is arranged between two adjacent positioning member groups along the third direction, and the positioning members above the first support are rotationally connected with the first support.
2. The wheel tool holder of claim 1, wherein, The positioning member comprises a groove, the shape of the groove is matched with the shape of the shaft end of the wheel tool in the external environment, and the groove is used to place the shaft end of the wheel tool in the external environment.
3. The wheel tool holder of claim 2 wherein, The positioning member comprises a limiting part, which is arranged on both sides of the groove along the first direction, and the limiting part is used to fix the shaft end of the wheel tool in the external environment.
4. The wheel tool holder of claim 1 wherein, The distance between two adjacent positioning members along the second direction is a first interval, which is greater than the diameter of the wheel tool in the external environment, and the distance between two adjacent positioning members along the third direction is a second interval, which is greater than the diameter of the wheel tool in the external environment.
5. The wheel tool holder of claim 1 wherein, The positioning member comprises a first end and a second end which are spaced apart along the second direction, the first end is rotationally connected with the first support, and the second end can rotate around the first end as the third direction as the axis.
6. The wheel tool holder of claim 5 wherein, The positioning member comprises a bolt and an insert, the first end comprises a first through hole, the second end comprises a second through hole, the first support comprises a third through hole and a fourth through hole which are spaced apart along the second direction, the bolt is sequentially connected with the first support through the first through hole and the third through hole, the insert comprises a force receiving part and an insertion part, the insertion part can be sequentially connected with the first support through the second through hole and the fourth through hole, and the force receiving part is used for an operator in the external environment to pull out the insertion part through the force receiving part.
7. The wheel tool holder of claim 6 wherein, The insert is a bolt.
8. The wheel tool holder of claim 1 wherein, The wheel tool jig frame comprises a second support, the first support, the lowest positioning member and the second support are sequentially arranged along the third direction, and the length of the second support is greater than the radius of the wheel tool in the external environment.
9. The wheel tool holder of claim 1 wherein, The wheel tool jig frame comprises a driving member, the driving member is arranged between two adjacent positioning members along the first direction, and the driving member is used to drive the wheel tool in the external environment to move along the third direction to be separated from the corresponding positioning member.