Anti-collision part turnover vehicle
By designing guide components and anti-slip components, the problem of parts collision in the turnover vehicle was solved, achieving stable transfer of parts and efficient collision prevention, thereby improving the quality and transfer efficiency of parts.
Patent Information
- Application Number
- CN202520678087.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-11
- Publication Date
- 2026-03-06
- Estimated Expiration
- 2035-04-11
AI Technical Summary
During the movement of existing turnover carts, adjacent parts are prone to collision due to shaking, which leads to reduced dimensional accuracy and deformation of the parts, affecting the quality of the parts.
The design employs a guide assembly and an anti-slip assembly. The guide assembly includes an inclined mounting rod and a stop, while the anti-slip assembly includes a rotating guide rod, a clamping component, and a pushing component. The guide and anti-slip mechanisms prevent parts from colliding.
It effectively prevents parts from colliding with each other during the transfer process, improves the stability and dimensional accuracy of parts, and enhances the efficiency and safety of parts transfer.
Smart Images

Figure CN223972578U_ABST
Abstract
Description
Technical Field
[0001] This application relates to the field of turnover vehicle technology, and more particularly to turnover vehicles for anti-collision parts. Background Technology
[0002] After the parts are processed, they need to be transferred to the next production line using a transfer cart in order to assemble multiple parts into a whole.
[0003] Existing turnover carts reduce collisions between adjacent parts by widening the spacing between them. However, when the turnover cart is moved and shakes, adjacent parts can still collide due to the movement, leading to reduced dimensional accuracy and even deformation, thus affecting the quality of the parts. Utility Model Content
[0004] To address the aforementioned technical problems and achieve at least one advantage of this application, this application provides a collision avoidance parts turnover cart, wherein the collision avoidance parts turnover cart comprises:
[0005] At least one guide assembly includes a pair of mounting rods, a material-bearing member, and a stop member. The pair of mounting rods are disposed opposite each other, and the extending directions of the pair of mounting rods are inclined downward at a predetermined angle perpendicular to the direction of gravity. The material-bearing member is disposed between the pair of mounting rods and forms an inclined material-bearing channel for receiving at least one item to be transferred. The stop member is mounted on the mounting rods, is located between the pair of mounting rods, and is disposed at the lower end of the pair of mounting rods in the direction of gravity.
[0006] Multiple pairs of anti-slip components are provided, each including a rotating guide rod, a guide rod pivot member, a pair of clamping members, and a pair of pushing members. Each pair of guide rod pivot members is evenly distributed on a pair of mounting rods along the extension direction of the mounting rod in a relative manner. Each pair of rotating guide rods is rotatably disposed on a pair of guide rod pivot members. The high end and low end of the rotating guide rod along the gravity direction are defined as the clamping end and the pushing end, respectively. A pair of clamping members are respectively disposed at the clamping end of a pair of rotating guide rods, and a pair of pushing members are respectively disposed at the pushing end of a pair of rotating guide rods. When the rotating guide rod is parallel to the mounting rod, the distance between the pair of clamping members and the distance between the pair of pushing members are both less than the width dimension of the workpiece to be transferred perpendicular to the extension direction of the material receiving channel. The pushing ends of the pair of rotating guide rods near the low end of the mounting rod in the gravity direction are close to the stop member.
[0007] According to one embodiment of this application, the material-bearing component includes a plurality of material-bearing rolling elements and a plurality of material-bearing rolling shafts corresponding to the material-bearing rolling elements. The material-bearing rolling elements are rotatably penetrated by the material-bearing rolling shafts. The plurality of material-bearing rolling elements are evenly distributed between a pair of mounting rods along the extension direction of the mounting rods, and form the material-bearing channel above the plurality of material-bearing rolling elements as a whole. The extension direction of the plurality of material-bearing rolling elements is perpendicular to the extension direction of the mounting rods. The two ends of the material-bearing rolling shafts respectively pass through the mounting rods.
[0008] According to one embodiment of this application, the guide assembly further includes a pair of rotating stops, which are respectively mounted on a pair of mounting rods. The pair of rotating stops are located on opposite sides of the pair of rotating guide rods, and the pair of rotating stops are respectively spaced at a predetermined distance from the pair of rotating guide rods.
[0009] According to one embodiment of this application, the guide rod pivot member includes a guide rod bearing insert. The guide rod bearing inserts of each pair of guide rod pivot members are respectively disposed on a pair of mounting rods in a relative manner, and each pair of guide rod bearing inserts are evenly distributed along the extension direction of the mounting rod. The rotating guide rod has a through hole for passing through the guide rod bearing insert.
[0010] According to one embodiment of this application, the guide rod support insert forms an insertion groove, the guide rod support insert is opened along the axial direction to form the insertion groove, the guide rod pivot member further includes an insert, the insert is inserted into the insertion groove, and the insert is threaded to the inner wall of the insertion groove, the end of the insert away from the mounting rod extends radially to form a pressure rod portion.
[0011] According to one embodiment of this application, the guide rod support has a support seat, the end of the guide rod support near the mounting rod extends radially to form the support seat, the support seat is opposite to the pressure rod portion, and the support seat is located between the rotating guide rod and the mounting rod.
[0012] According to one embodiment of this application, the clamping member includes a clamping roller, which is rotatably disposed at the clamping end of the rotating guide rod.
[0013] According to one embodiment of this application, the clamping member further includes a clamping elastic element, which is sleeved on the outer periphery of the clamping roller.
[0014] According to one embodiment of this application, the pushing member includes a pushing roller, which is rotatably disposed at the pushing end of the rotating guide rod.
[0015] According to one embodiment of this application, the pushing member further includes a pushing elastic element, which is sleeved on the outer periphery of the pushing roller. Attached Figure Description
[0016] Figure 1 A perspective view of a preferred embodiment of this application is shown.
[0017] Figure 2 It shows Figure 1 A magnified view of point A in the middle.
[0018] Figure 3 A perspective view of the guide assembly, the anti-slip assembly, and the transfer element described in a preferred embodiment of this application is shown.
[0019] Figure 4 A perspective view of the anti-slip component according to a preferred embodiment of this application is shown.
[0020] Figure 5 It shows Figure 4 A schematic cross-sectional view.
[0021] Figure 6 It shows Figure 5 A magnified view of point B in the middle.
[0022] Figure 7 A perspective view of the material-bearing component according to a preferred embodiment of this application is shown. Detailed Implementation
[0023] The following description is intended to disclose this application and enable those skilled in the art to implement it. The preferred embodiments described below are merely examples, and other obvious variations will occur to those skilled in the art. The basic principles of this application defined in the following description can be applied to other embodiments, modifications, improvements, equivalents, and other technical solutions that do not depart from the spirit and scope of this application.
[0024] Those skilled in the art should understand that, in the disclosure of this application, the terms "longitudinal," "lateral," "upper," "lower," "front," "rear," "left," "right," "vertical," "horizontal," "top," "bottom," "inner," and "outer," etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, the above terms should not be construed as limitations on this application.
[0025] It is understood that the term "a" should be understood as "at least one" or "one or more", that is, in one embodiment, the number of an element can be one, while in another embodiment, the number of the element can be multiple, and the term "a" should not be understood as a limitation on the number.
[0026] refer to Figures 1 to 7 A preferred embodiment of the anti-collision parts turnover cart according to this application will be described in detail below, wherein the anti-collision parts turnover cart includes at least one guide assembly 10 and multiple pairs of anti-slip assemblies 20.
[0027] Specifically, the guide assembly 10 includes a pair of mounting rods 11, a material-bearing member 12, and a stop member 13. The pair of mounting rods 11 are arranged opposite each other, and the extending directions of the pair of mounting rods 11 are inclined downward at a predetermined angle perpendicular to the direction of gravity. The material-bearing member 12 is disposed between the pair of mounting rods 11, and the material-bearing member 12 forms an inclined material-bearing channel 1201 for receiving at least one piece 91 to be transferred. The stop member 13 is mounted on the mounting rods 11, the stop member 13 is located between the pair of mounting rods 11, and the stop member 13 is disposed at the lower end of the pair of mounting rods 11 in the direction of gravity.
[0028] The anti-slip assembly 20 includes a rotating guide rod 21, a guide rod pivot member 22, a pair of clamping members 23, and a pair of pushing members 24. Each pair of guide rod pivot members 22 is evenly distributed on a pair of mounting rods 11 in a relative manner along the extension direction of the mounting rods 11. Each pair of rotating guide rods 21 is rotatably disposed on a pair of guide rod pivot members 22. The higher end and lower end of the rotating guide rod 21 along the direction of gravity are defined as a clamping end 211 and a pushing end 212, respectively. A pair of clamping members 23 are respectively disposed at the clamping ends 211 of a pair of rotating guide rods 21, and a pair of pushing members 24 are respectively disposed at the pushing ends 212 of a pair of rotating guide rods 21. When the rotating guide rod 21 is parallel to the mounting rod 11, the distance between the pair of clamping members 23 and the distance between the pair of pushing members 24 are both less than the width dimension of the piece to be transferred 91 perpendicular to the extension direction of the material receiving channel 1201. The pushing end 212 of the pair of rotating guide rods 21 near the lower end of the mounting rod 11 in the direction of gravity is close to the stop member 13.
[0029] As an example, see attached Figure 3As shown, when the component to be transferred 91 is placed in the material receiving channel 1201, due to the inclination of the material receiving channel 1201, the component to be transferred 91 will slide down under the action of gravity. During the process of the component to be transferred 91 sliding down, the component to be transferred 91 will first touch and push the pair of clamping members 23 located at the high end of the mounting rod 11 in the direction of gravity. After being pushed by the component to be transferred 91, the pair of clamping members 23 will respectively drive the rotating guide rod 21 to rotate around the guide rod rotating shaft member 22 as the axis, so that the pair of clamping members 23 move in opposite directions, thereby increasing the distance between the pair of clamping members 23, so that the component to be transferred 91 can pass smoothly between the pair of clamping members 23 and continue to slide down.
[0030] When the object to be transferred 91 slides between a pair of pushing members 24 located at the high end of the mounting rod 11 in the direction of gravity, the object to be transferred 91 will push the pair of pushing members 24, so that the pair of pushing members 24 will be pushed by the object to be transferred 91 to drive the rotating guide rod 21 to rotate around the guide rod pivot member 22 as the axis, and cause the pair of pushing members 24 to move in opposite directions, thereby increasing the distance between the pair of pushing members 24, so that the object to be transferred 91 can pass smoothly between the pair of pushing members 24 and continue to slide down.
[0031] After the transfer piece 91 slides to the point where it is between a pair of pushing members 24 at the pushing end 212 of a pair of rotating guide rods 21 near the lower end of the mounting rod 11 in the direction of gravity, the transfer piece 91 cannot continue to slide due to the obstruction of the stop member 13. At this time, the pair of pushing members 24 are pushed by the transfer piece 91 and drive the rotating guide rods 21 to rotate around the guide rod pivot member 22. At the same time, the pair of pushing members 24 will remain attached to the surface of the transfer piece 91, and at the same time, reduce the distance between a pair of clamping members 23 at the clamping end 211 of the pair of rotating guide rods 21 near the lower end of the mounting rod 11 in the direction of gravity. Thus, the pair of clamping members 23 here stop the next transfer piece 91 that slides down along the material receiving channel 1201, preventing collisions between adjacent transfer pieces 91.
[0032] In this process, the latter piece 91 to be transferred slides down along the material receiving channel 1201 and presses against the surface of the pair of clamping members 23. The gravity of the piece 91 to be transferred is then transmitted to the pair of pushing members 24 through the pair of clamping members 23 and the pair of rotating guide rods 21. This clamps the piece 91 to be transferred between the pair of pushing members 24 near the lower end of the mounting rod 11 in the direction of gravity, thereby improving the stability of the piece 91 to be transferred when it is in the material receiving channel 1201.
[0033] Furthermore, when the transfer piece 91 between the pair of pushing members 24 located near the lower end of the mounting rod 11 in the direction of gravity is removed, the latter transfer piece 91 will push the pair of clamping members 23 apart under the action of gravity. The latter transfer piece 91 will abut against the stop member 13 and stop sliding. At the same time, the transfer pieces 91 behind the latter transfer piece 91 will still be stopped by the pair of clamping members 23 to avoid collision with each other. By sliding down in sequence, it can prevent adjacent transfer pieces 91 in the material receiving channel 1201 from colliding with each other.
[0034] It is worth mentioning that, compared to methods of removing the transferable parts 91 from above or from the side of the material receiving channel 1201, this solution allows multiple transferable parts 91 to automatically slide to a unified position on the material receiving channel 1201. Therefore, when multiple guide components 10 are stacked and placed side-by-side, there is no need to worry about the stacked and side-by-side guide components 10 obstructing each other and causing inconvenience in removing the transferable parts 91, thus improving the efficiency of transferring the transferable parts 91. Furthermore, since workers can remove multiple transferable parts 91 from the material receiving channel 1201 from a unified position, the efficiency of removing the transferable parts 91 is improved, eliminating the need for workers to walk back and forth to retrieve them.
[0035] Preferably, the material-bearing component 12 includes a plurality of material-bearing rollers 121 and a plurality of material-bearing roller shafts 122 corresponding to the material-bearing rollers 121. The material-bearing rollers 121 are rotatably penetrated by the material-bearing roller shafts 122. The plurality of material-bearing rollers 121 are evenly distributed between a pair of mounting rods 11 along the extension direction of the mounting rods 11, and form the material-bearing channel 1201 above the plurality of material-bearing rollers 121 as a whole. The extension direction of the plurality of material-bearing rollers 121 is perpendicular to the extension direction of the mounting rods 11. The two ends of the material-bearing roller shafts 122 are respectively disposed to pass through a pair of mounting rods 11.
[0036] More preferably, the material-bearing rolling element 121 can slide along the extending direction of the material-bearing rolling shaft 122.
[0037] It is understood that when the transferable part 91 slides down the material receiving channel 1201, and the transferable part 91 first touches one of the pushing members 24, the transferable part 91 will be pushed by one of the pushing members 24 and deflected towards the other pushing member 24. Since the material receiving roller 121 can slide along the extension direction of the material receiving roller shaft 122, the transferable part 91 will drive the material receiving roller 121 to slide along the extension direction of the material receiving roller shaft 122 to prevent the transferable part 91 from being scratched by the material receiving roller 121 due to relative displacement between the transferable part 91 and the material receiving roller 121.
[0038] Preferably, the material-bearing rolling element 121 is implemented as a roller.
[0039] Preferably, the stop member 13 has a receiving groove 1301. The receiving groove 1301 is used to receive part of the transfer member 91 to improve the stability of the transfer member 91 when it is stopped by the stop member 13.
[0040] Preferably, the guide assembly 10 further includes a pair of deflecting members 14. The pair of deflecting members 14 are respectively mounted on the pair of mounting rods 11. The pair of deflecting members 14 are respectively located on opposite sides of the pair of rotating guide rods 21, and the pair of deflecting members 14 are respectively at a predetermined distance from the pair of rotating guide rods 21.
[0041] It is worth mentioning that, due to the obstruction of the pair of the rotating members 14, when the pair of clamping members 23 or the pair of pushing members 24 respectively drive the rotating guide rod 21 to rotate around the axis of the guide rod rotating shaft member 22, the rotating guide rod 21 is placed horizontally in the material receiving channel 1201, thereby preventing the rotating guide rod 21 from obstructing the sliding of the piece to be transferred 91 in the material receiving channel 1201.
[0042] Preferably, the guide rod pivot member 22 includes a guide rod support plug 221. The guide rod support plugs 221 of each pair of guide rod pivot members 22 are respectively disposed on a pair of mounting rods 11 in a relative manner, and each pair of guide rod support plugs 221 are evenly distributed along the extending direction of the mounting rod 11. The rotating guide rod 21 has a through hole for passing through the guide rod support plug 221, so that after the guide rod support plug 221 passes through the through hole, the rotating guide rod 21 can rotate about the guide rod support plug 221 as an axis.
[0043] Preferably, the perforation is located near the clamping end 211, such that the distance from the clamping end 211 to the guide rod support 221 is less than the distance from the pushing end 212 to the guide rod support 221. This makes it easier for the transfer member 91, which is first placed into the receiving channel 1201 and stopped by the stop member 13, to push the pushing member 24. Simultaneously, according to the lever principle, the clamping force applied by the transfer member 91, which is subsequently placed into the receiving channel 1201, to the transfer member 91 that was first placed into the receiving channel 1201 via a pair of clamping members 23, a pair of transmission guide rods 21, and a pair of pushing members 24 is smaller than that applied to the transfer member 91 that was first placed into the receiving channel 1201 and stopped by the stop member 13. This makes it easier to remove the transfer member 91 that was first placed into the receiving channel 1201 and stopped by the stop member 13.
[0044] Similarly, the transfer piece 91, which is first placed into the material receiving channel 1201 and stopped by the stop member 13, exerts a greater force on the pair of clamping members 23 through the pair of pushing members 24 and the pair of transmission guide rods 21, thereby preventing the transfer piece 91, which is placed later into the material receiving channel 1201, from pushing the pair of clamping members 23 apart and sliding down to collide with the transfer piece 91 that was placed earlier into the material receiving channel 1201.
[0045] The transfer piece 91, which is first placed into the material receiving channel 1201 and stopped by the stop member 13, will be easily pushed by the pushing member 24. The transfer piece 91, which is first placed into the material receiving channel 1201 and stopped by a pair of clamping members 23, will be easily pushed.
[0046] Understandable,
[0047] Preferably, the guide rod support 221 forms an insertion groove, and the guide rod support 221 is opened along the axial direction to form the insertion groove. The guide rod pivot member 22 further includes an insert 222. The insert 222 is inserted into the insertion groove, and the insert 222 is threaded to the inner wall of the insertion groove. The end of the insert 222 away from the mounting rod 11 extends radially to form a pressure rod portion 2221, so as to restrict the sliding of the rotating guide rod 21 along the extension direction of the guide rod support 221 by the pressure rod portion 2221, and prevent the guide rod support 221 from disengaging from the through hole of the rotating guide rod 21.
[0048] More preferably, the guide rod support 221 has a support seat 2211. The guide rod support 221 extends radially near the end of the mounting rod 11 to form the support seat 2211. The support seat 2211 is opposite to the pressure rod portion 2221 and is located between the rotating guide rod 21 and the mounting rod 11, so as to limit the sliding displacement distance of the rotating guide rod 21 along the extension direction of the guide rod support 221 by the support seat 2211 and the pressure rod portion 2221. At the same time, when the rotating guide rod 21 rotates about the guide rod support 221 as an axis, the support seat 2211 between the rotating guide rod 21 and the mounting rod 11 prevents friction from occurring between the rotating guide rod 21 and the mounting rod 11 due to mutual contact.
[0049] As an example, the insert 222 is implemented to include a bolt.
[0050] Preferably, at least one bearing is provided between the guide rod support 221 and the inner wall of the perforation of the rotating guide rod 21 to reduce the friction between the guide rod support 221 and the inner wall of the perforation.
[0051] Preferably, the clamping member 23 includes a clamping roller 231. The clamping roller 231 is rotatably disposed at the clamping end 211 of the rotating guide rod 21, so that the rotation of the clamping roller 231 reduces the friction between the clamping roller 231 and the workpiece 91 to be transferred, thereby reducing the scratches formed on the surface of the workpiece 91 due to the contact between the clamping roller 231 and the workpiece 91 to be transferred.
[0052] Preferably, the clamping roller 231 is implemented to include a bearing.
[0053] Preferably, the clamping member 23 further includes a clamping elastic element 232. The clamping elastic element 232 is sleeved on the outer periphery of the clamping roller 231.
[0054] It is worth mentioning that, compared to the method where the workpiece 91 to be transferred directly contacts the clamping roller 231, the clamping elastic member 232 is sleeved on the outer periphery of the clamping roller 231 to block the clamping roller 231 from the workpiece 91 to be transferred, and the clamping elastic member 232 forms a buffer, thereby preventing the clamping roller 231 from scratching the surface of the workpiece 91 to be transferred.
[0055] Preferably, the clamping elastic element 232 is made of polyurethane.
[0056] Preferably, the pushing member 24 includes a pushing roller 241. The pushing roller 241 is rotatably disposed at the pushing end 212 of the rotating guide rod 21, so that the rotation of the pushing roller 241 reduces the friction between the pushing roller 241 and the workpiece 91 to be transferred, thereby reducing the scratches formed on the surface of the workpiece 91 caused by the pushing roller 241 contacting the workpiece 91.
[0057] Preferably, the drive roller 241 is implemented to include a bearing.
[0058] Preferably, the pushing member 24 further includes a pushing elastic element 242. The pushing elastic element 242 is sleeved on the outer periphery of the pushing roller 241.
[0059] It is worth mentioning that, compared to the method where the object to be transferred 91 directly contacts the push roller 241, the push elastic member 242 is sleeved on the outer periphery of the push roller 241 to block the push roller 241 from the object to be transferred 91, and the push elastic member 242 forms a buffer to prevent the push roller 241 from scratching the surface of the object to be transferred 91.
[0060] Preferably, the actuating elastic element 242 is made of polyurethane.
[0061] As an example, when the transfer piece 91 with different width dimensions perpendicular to the extending direction of the material receiving channel 1201 is placed in the material receiving channel 1201, different actual usage requirements can be met by replacing the clamping elastic member 232 and the pushing elastic member 242 with different thicknesses.
[0062] Preferably, the anti-collision parts transfer cart further includes a device frame 30 and a plurality of steering components 40. At least one of the guide components 10 is disposed on the device frame 30. The plurality of steering components 40 are disposed on the device frame 30 to facilitate the transfer of the device frame 30.
[0063] Preferably, the steering element 40 is implemented to include a swivel wheel.
[0064] Preferably, the device frame 30 includes a frame body 31 and a base plate shelf 32. At least one of the guide components 10 is disposed on the frame body 31, and the base plate shelf 32 is welded to the bottom of the frame body 31, forming a storage space 3201. A plurality of the steering components 40 are disposed on the base plate shelf 32 of the device frame 30. The storage space 3201 is used to place tools, so that when the device frame 30 is moved, the worker can place the tools that need to be carried in the storage space 3201, thereby reducing the worker's personal load.
[0065] Those skilled in the art should understand that the embodiments of this application described above and shown in the accompanying drawings are merely examples and do not limit the scope of this application. The advantages of this application have been fully and effectively implemented. The functional and structural principles of this application have been demonstrated and explained in the embodiments, and any variations or modifications can be made to the implementation of this application without departing from the stated principles.
Claims
1. Anti-collision parts turnover vehicle, characterized in that, The anti-collision component turnover vehicle comprises: At least one guide assembly, the guide assembly comprises a pair of installation rods, a material receiving member and a stopper, the pair of installation rods are oppositely arranged, and the extension directions of the pair of installation rods are inclined downward by a predetermined angle in a manner perpendicular to the direction of gravity, the material receiving member is arranged between the pair of installation rods, and the material receiving member forms an inclined material receiving channel for receiving at least one component to be transferred, the stopper is installed on the installation rods, the stopper is located between the pair of installation rods, and the stopper is arranged at the low end of the pair of installation rods in the direction of gravity; A plurality of pairs of anti-sliding assemblies, the anti-sliding assembly comprises a rotating guide rod, a guide rod rotating shaft member, a pair of clamping members and a pair of pushing members, each pair of guide rod rotating shaft members is uniformly arranged on the pair of installation rods in the extension direction of the installation rods in an opposite manner, and each pair of rotating guide rods is rotatably arranged on the pair of guide rod rotating shaft members, the high end and the low end of the rotating guide rod in the direction of gravity are defined as the clamping end and the pushing end respectively, a pair of clamping members are arranged at the clamping end of the pair of rotating guide rods respectively, and a pair of pushing members are arranged at the pushing end of the pair of rotating guide rods respectively, when the rotating guide rod is parallel to the installation rod, the distance between the pair of clamping members and the distance between the pair of pushing members are both smaller than the width dimension of the component to be transferred perpendicular to the extension direction of the material receiving channel, and the pushing end of the pair of rotating guide rods near the low end of the installation rod in the direction of gravity is close to the stopper.
2. The anti-collision part transfer cart of claim 1, wherein, The material receiving member comprises a plurality of material receiving rolling members and a plurality of material receiving rolling shafts corresponding to the material receiving rolling members, the material receiving rolling members are rotatably penetrated by the material receiving rolling shafts, a plurality of the material receiving rolling members are uniformly arranged between the pair of installation rods in the extension direction of the installation rods, and the material receiving channel is formed above the plurality of material receiving rolling members as a whole, the extension direction of the plurality of material receiving rolling members is perpendicular to the extension direction of the installation rods, and both ends of the material receiving rolling shafts penetrate into the installation rods.
3. The anti-collision part pallet of claim 2, wherein, The guide assembly further comprises a pair of blocking members, the pair of blocking members are respectively installed on the pair of installation rods, the pair of blocking members are respectively located at the two sides opposite to the pair of rotating guide rods, and the pair of blocking members are respectively at a predetermined distance from the pair of rotating guide rods.
4. The anti-collision part pallet of claim 3, wherein, The guide rod rotating shaft member comprises a guide rod socket, the guide rod socket of each pair of guide rod rotating shaft members is arranged on the pair of installation rods in an opposite manner, and each pair of guide rod sockets is uniformly arranged in the extension direction of the installation rods, and the rotating guide rod has a through hole for penetrating the guide rod socket.
5. The anti-collision part pallet of claim 4, wherein, The guide rod socket forms an insertion slot, the guide rod socket is opened in the axial direction to form the insertion slot, the guide rod rotating shaft member further comprises an insertion piece, the insertion piece is inserted into the insertion slot, and the insertion piece is threadedly connected to the inner wall of the insertion slot, and the end of the insertion piece away from the installation rod extends in the radial direction to form a pressing rod part.
6. The anti-collision part pallet of claim 5, wherein, The guide rod socket member has a rod receiving seat which is radially extended near the end of the mounting rod to form the rod receiving seat, the rod receiving seat is opposite to the pressing rod part, and the rod receiving seat is located between the rotating guide rod and the mounting rod.
7. The anti-collision part pallet of claim 6, wherein, The material clamping member includes a material clamping roller which is rotatably arranged at the material clamping end of the rotating guide rod.
8. The anti-collision part pallet of claim 7, wherein, The material clamping member further includes a material clamping elastic member which is sleeved on the outer periphery of the material clamping roller.
9. The anti-collision part pallet of claim 8, wherein, The pushing member includes a pushing roller which is rotatably arranged at the pushing end of the rotating guide rod.
10. The anti-collision part pallet of claim 9, wherein, The pushing member further includes a pushing elastic member which is sleeved on the outer periphery of the pushing roller.