Cutting device for automobile part machining

By designing a cutting device for processing automobile parts, using quantitative cutting units and collaborative support units, combined with induction energy transmission components and automatic conveying components, the problem of low cutting efficiency of rod-shaped components in the prior art is solved, and efficient and continuous quantitative cutting is achieved.

CN120190414AInactive Publication Date: 2025-06-24NINGBO POLYTECHNIC +1
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Patent Information

Application Number
CN202510619547.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-06-24
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

In the prior art, the cutting of rod-shaped parts mainly relies on manual operations, resulting in low cutting efficiency and high working strength, and the inability to achieve continuous work.

Method used

A cutting device for processing automobile parts is designed, including a quantitative cutting unit and a collaborative support unit. By driving the automatic conveying component, it realizes synchronous support, conveying and quantitative cutting of multiple rod-shaped components.

Benefits of technology

Continuous cutting of rod-shaped components is achieved, cutting efficiency and processing quality is improved, and quantitative cutting of multiple components can be completed without manual intervention.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of automobile part machining, in particular to a cutting device for automobile part machining. The quantitative cutting unit is connected with the supporting base; the cooperative supporting units are arranged on the two sides of the quantitative cutting unit in a central symmetry mode, connected with the supporting base and used for being matched with the supporting base to achieve synchronous supporting and conveying of the multiple rod-shaped parts and being matched with the quantitative cutting unit to complete synchronous quantitative cutting of the multiple fixed rod-shaped parts; wherein the cooperative supporting unit comprises a synchronous supporting assembly, an automatic conveying assembly and an induction energy transmission assembly, by arranging the cooperative supporting unit and the cooperative quantitative cutting unit, continuous machining of double-station switching can be conducted, quantitative cutting of a plurality of rod-shaped parts can be completed at a time during cutting, manual cutting is not needed, and the working efficiency is improved. And the cutting efficiency and the machining quality are greatly improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of automotive part processing, and specifically to a cutting device for automotive part processing. Background Art

[0002] During the production process of automobiles, numerous automotive parts are required. Automotive parts are the individual units that make up the whole vehicle and a kind of product serving the vehicle, and they are the foundation for the development of the automotive industry. During the production process of automotive parts, cutting is a very important step in automotive part manufacturing, which is used to process raw materials or semi-finished products into the required shapes and sizes. The cutting equipment for automotive part processing is a commonly used equipment in automotive production and processing.

[0003] Automobiles need to use various parts during the production process. Bar-shaped parts usually need to be cut to a fixed length during the processing. Currently, for the cutting operation of bar-shaped parts, it is usually carried out manually. Not only can it not work continuously, but this manual operation method has a large working intensity and low cutting efficiency. Therefore, in view of the above current situation, there is an urgent need to develop a cutting device for automotive part processing to overcome the deficiencies in current practical applications. Summary of the Invention

[0004] The purpose of the present invention is to provide a cutting device for automotive part processing to solve the problems raised in the above background art.

[0005] To achieve the above purpose, the present invention provides the following technical solutions:

[0006] A cutting device for processing automotive parts, comprising: a support base; a quantitative cutting unit, which is connected to the support base and is used to cooperate with the support base to alternately complete continuous cutting of rod-shaped parts at each station; a cooperative support unit, which is symmetrically arranged on both sides of the quantitative cutting unit and is connected to the support base, and is used to cooperate with the support base to realize synchronous support and conveying of multiple rod-shaped parts, and cooperate with the quantitative cutting unit to complete synchronous quantitative cutting of multiple fixed rod-shaped parts; wherein, the cooperative support unit includes: a synchronous support assembly, an automatic conveying assembly and an induction energy transmission assembly, the synchronous support assembly is symmetrically arranged on both sides of the quantitative cutting unit and is fixedly connected to the support base, and is used to cooperate with the support base to complete synchronous support and limit of multiple rod-shaped parts to be processed, the synchronous support assembly is connected to the induction energy transmission assembly arranged inside the support base, the induction energy transmission assembly is connected to the automatic conveying assembly arranged inside the synchronous support assembly, the induction energy transmission assembly is arranged opposite to the quantitative cutting unit, and is used to cooperate with the lifted quantitative cutting unit to drive the automatic conveying assembly to realize automatic conveying of the rod-shaped parts located on the synchronous support assembly, and cooperate with the quantitative cutting unit to realize quantitative conveying, so as to complete quantitative cutting of the rod-shaped parts.

[0007] As a further solution of the present invention: the synchronous support assembly includes: a limit tooling, a placement groove, a support rod and a receiving roller, the limit tooling is symmetrically arranged at the tops of both ends of the support base and is fixedly connected to the support base, several placement grooves for the rod-shaped parts to pass through are arranged on the limit tooling, the several placement grooves are horizontally equidistantly distributed, support rods are symmetrically arranged inside the placement grooves, the support rods are rotatably connected to the limit tooling, and receiving rollers are fixedly connected to the outside, and are used to cooperate with the limit tooling to complete the limit support of the rod-shaped parts and cooperate with the automatic conveying assembly to complete the conveying of the rod-shaped parts.

[0008] As a further solution of the present invention: the automatic conveying assembly includes: a connecting tube, a co-control frame, a sliding frame, a prismatic column, a conveying frame, a control motor, a support rod and a conveying wheel. The conveying frame is arranged at the top of the inner side of the placement groove, and a control motor is fixedly connected to the outer side of the conveying frame. Support rods rotatably connected to the conveying frame are arranged on both sides of the control motor. The support rods on both sides are connected to the output end of the control motor through a belt member. Conveying wheels are fixedly connected to the outer sides of the two support rods, which are used to cooperate with the lifting and lowering of the conveying frame to complete the limiting and Conveying, a prismatic column slidably connected to the limiting fixture is fixedly connected to the outer side of the top of the conveying frame, the prismatic column is fixedly connected to the auxiliary control frame arranged on the inner side of the limiting fixture, a number of springs are fixedly connected between the auxiliary control frame and the inner wall of the limiting fixture, the auxiliary control frame is fixedly connected to the sliding frame slidably connected to the inner side of the limiting fixture, a connecting pipe is fixedly connected to the shell wall of the bottom end of the limiting fixture, a pressure reaction piece fixedly connected to the sliding frame is slidably connected to the inner side of the connecting pipe, and the connecting pipe is also connected to the inductive energy transmission component, so as to cooperate with the inductive energy transmission component to realize the lifting and lowering of the conveying frame.

[0009] As a further solution of the present invention: the automatic conveying assembly also includes: a clamping seat, an orienting plate and a limiting guide wheel. The clamping seat is symmetrically arranged on both sides of the conveying frame, and is slidably connected to the orienting plate fixedly connected to the conveying frame. A spring is fixedly connected between the orienting plate and the clamping seat, and a limiting guide wheel is rotatably connected on the shell wall of the clamping seat close to the receiving roller.

[0010] As a further solution of the present invention: the inductive energy transmission component includes: an inductive conduit, a transmission box, a transmission control tube, a guide column, an L-shaped control frame, a push control rod, a pressure relief tube and a balance branch pipe. The transmission box is symmetrically arranged on the inner side of the support base, fixedly connected to the support base, and connected to the connecting pipe. The outer sides of the opposite ends of the transmission boxes on both sides are provided with inductive conduits fixedly connected to the support base. The inductive conduits on both sides are centrally symmetrically arranged. An inductive gas piece is slidingly connected to the inner side of the inductive conduit. A push control rod is rotatably connected to the inductive gas piece. The other end of the push control rod is rotatably connected to the L-shaped control frame. The L-shaped control frame is slidably connected to the guide column fixedly connected to the outer side of the transmission box. Transmission control tubes fixedly connected to the transmission box are arranged on both sides of the guide column. An energy regulating part fixedly connected to the L-shaped control frame is slidingly connected to the inner side of the transmission control tube. A pressure relief tube and a balance branch pipe are also fixedly connected to the tube wall of the inductive conduit. A pressure relief valve is fixedly connected to the inner side of the pressure relief tube, and an electromagnetic valve is fixedly connected to the inner side of the balance branch pipe.

[0011] As a further solution of the present invention: the quantitative cutting unit includes: a support frame, a mounting seat, a switching motor, a driving column, an automatic cutting assembly, and a quantitative limiting assembly. The mounting seat is arranged between the two-sided limiting toolings and is fixedly connected to the support base. The outer side of the top of the mounting seat is rotatably connected with a support frame, the support frame is fixedly connected to the driving column passing through the mounting seat, the other end of the driving column is fixedly connected to the output end of the switching motor, the switching motor is fixedly connected to the inner bottom of the support base, the support frame is fixedly connected with an automatic cutting assembly connected to the driving column, and a quantitative limiting assembly connected to the support frame is arranged outside the automatic cutting assembly.

[0012] As a further solution of the present invention: the automatic cutting assembly includes: a lifting frame, a connecting frame, a transverse movement control member, a T-shaped rail, a sliding seat, a cutting machine, a pressure supply piston, a fixing rod, and a telescopic controller. The lifting frame is arranged inside the support frame and is connected to the telescopic controller fixedly connected to the inside of the driving column. The outer side of the lifting frame is fixedly connected with a connecting frame. The inside of the connecting frame is slidably connected with a sliding seat. The sliding seat is connected to the connecting frame through a transverse movement control member and is slidably connected to the T-shaped rail fixedly connected to the outside of the connecting frame. The sliding seat is fixedly connected with a cutting machine for synchronously cutting a plurality of rod-shaped parts at one time in cooperation with the movement of the sliding seat. The outer side of the lifting frame is fixedly connected with a fixing rod, and the outer side of the other end of the fixing rod is fixedly connected with a pressure supply piston, and the pressure supply piston is arranged opposite to the induction energy transmission assembly.

[0013] As a further solution of the present invention: the quantitative limiting assembly includes: a quantitative baffle, a limiting column, a control frame, a connecting frame, and a top pull rod. The quantitative baffle is arranged outside the support frame. Connecting frames are symmetrically arranged on the outer side of the quantitative baffle. The connecting frames are slidably connected to the inner wall of the support frame. A control frame slidably connected to the support frame is arranged outside the connecting frames. The control frame is slidably connected to the limiting column fixedly connected to the inside of the support frame. The control frame is connected to the support frame through a lifting control member. A top pull rod is arranged between the control frame and the connecting frame. One end of the top pull rod is rotatably connected to the control frame, and the other end is rotatably connected to the connecting frame.

[0014] As a further solution of the present invention: it further includes a detachable material collection unit, which is detachably connected to the mounting base and is used to cooperate with the quantitative cutting unit to complete the automatic recycling of the cut rod-shaped parts; wherein, the detachable material collection unit includes a collection box, a locking tube, a lifting piston, an arc-shaped clamping block, a connection cavity and a synchronous locking component. The connection cavities are symmetrically arranged inside the top shell wall of the mounting base. A locking tube connected to the connection cavity is fixedly connected to the shell wall of the mounting base. A lifting piston is slidably connected inside the locking tube. A spring is fixedly connected between the lifting piston and the mounting base. The other end of the lifting piston is fixedly connected to the arc-shaped clamping block. The collection box is slidably connected to the support base, and a clamping groove for clamping the arc-shaped clamping block is arranged on the top shell wall. A synchronous locking component connected to the driving column is further arranged inside the mounting base, which is used to cooperate with the rotation of the driving column to lock the collection box by the arc-shaped clamping block.

[0015] As a further solution of the present invention: the synchronous locking component includes a clamping tube, a piston part, a sliding rod, a push plate and a cam. The clamping tubes are symmetrically arranged inside the mounting base, fixedly connected to the mounting base and connected to the connection cavity on the same side. A piston part is slidably connected inside the clamping tube. A sliding rod is slidably connected inside the piston part. A spring is fixedly connected between the sliding rod and the piston part. A push plate is fixedly connected to the outer side of the other end of the sliding rod. A cam fixedly connected to the driving column is arranged between the two push plates, which is used to cooperate with the rotation of the driving column to drive the arc-shaped clamping block on the processing side to lock the collection box.

[0016] Compared with the prior art, the beneficial effects of the present invention are:

[0017] When the device is running, multiple rod-shaped components are synchronously placed on one side of the synchronous support assembly. When the quantitative cutting unit moves towards the side close to the rod-shaped components, it can drive the induction energy transmission assembly, and use the induction energy transmission assembly to drive the automatic conveying assembly to be connected to the top shell wall of the rod-shaped components. The automatic conveying assembly, in cooperation with the synchronous support assembly, can stably support and convey the rod-shaped components. The other end of the conveyed rod-shaped components abuts against the quantitative cutting unit, synchronously positioning the rod-shaped components to be cut on this side. Subsequently, the quantitative cutting unit synchronously cuts the multiple conveyed rod-shaped components. After cutting is completed, the automatic conveying assembly continues to convey the rod-shaped components, and the quantitative cutting unit cuts the rod-shaped components again, thus realizing continuous cutting. When cutting is performed on this side, the synchronous support assembly on the other side places a new batch of rod-shaped components. As the rod-shaped components on this side are completely cut, the quantitative cutting unit rotates to complete the switching of the working station, and continues to process the newly placed rod-shaped components on the other side, thereby completing the continuous cutting of the rod-shaped components. Through the setting of the collaborative support unit and in cooperation with the quantitative cutting unit, this application can perform continuous processing with double-station switching, can also quantitatively cut multiple rod-shaped components at one time during cutting, and does not require manual cutting, greatly improving the cutting efficiency and processing quality. Description of the Drawings

[0018] Figure 1 It is a schematic structural diagram of a cutting device for processing automotive parts.

[0019] Figure 2 It is a cross-sectional view of the collaborative support unit in a cutting device for processing automotive parts.

[0020] Figure 3 It is a schematic structural diagram of the support base in a cutting device for processing automotive parts.

[0021] Figure 4 It is a schematic structural diagram of the synchronous support assembly in a cutting device for processing automotive parts.

[0022] Figure 5 It is a cross-sectional view of the synchronous support assembly in a cutting device for processing automotive parts.

[0023] Figure 6 It is a schematic structural diagram of the automatic conveying assembly in a cutting device for processing automotive parts.

[0024] Figure 7 It is a schematic structural diagram of the limit guide wheel in a cutting device for processing automotive parts.

[0025] Figure 8 It is a schematic structural diagram of the induction energy transmission assembly in a cutting device for processing automotive parts.

[0026] Figure 9It is a cross-sectional view of the inductive energy transmission component in the cutting device used for processing automobile parts.

[0027] Figure 10 This is a schematic diagram of the structure of a quantitative cutting unit in a cutting device for processing automobile parts.

[0028] Figure 11 This is a cross-sectional view of a quantitative cutting unit in a cutting device for processing automobile parts.

[0029] Figure 12 This is a schematic diagram of the structure of a detachable material receiving unit in a cutting device for processing automobile parts.

[0030] Figure 13 for Figure 12 Schematic diagram of the enlarged structure at point A in the middle.

[0031] In the figure: 1. Support base; 2. Quantitative cutting unit; 3. Disassembly and assembly material receiving unit; 4. Cooperative support unit; 5. Synchronous support assembly; 6. Automatic conveying assembly; 7. Inductive energy transmission assembly; 8. Limiting tooling; 9. Placement slot; 10. Inductive guide tube; 11. Support rod; 12. Undertaking roller; 13. Connecting pipe; 14. Cooperative control frame; 15. Sliding frame; 16. Pressure reaction part; 17. Prismatic column; 18. Conveying frame; 19. Control motor; 20. Support rod; 21. Conveying wheel; 22. Belt member; 23. Clamping seat; 24. Orienting plate; 25. Limiting guide wheel; 26. Transmission box; 27. Transmission control tube; 28. Energy regulating part; 29. ​​Guide column; 30. L-shaped control frame; 31. Push control rod; 3 2. Inductive gas parts; 33. Limit plate; 34. Pressure relief pipe; 35. Balance branch pipe; 36. Support frame; 37. Mounting seat; 38. Lifting frame; 39. Connecting frame; 40. Transverse movement control part; 41. T-rail; 42. Slide seat; 43. Cutting machine; 44. Dosing baffle; 45. Pressure supply piston; 46. Fixed rod; 47. Limit column; 48. Control frame; 49. Connecting frame; 50. Pull rod; 51. Switching motor; 52. Drive column; 53. Telescopic controller; 54. Collecting box; 55. Locking tube; 56. Lifting piston; 57. Arc block; 58. Connecting chamber; 59. Supporting tube; 60. Piston part; 61. Slide rod; 62. Push plate; 63. Lifting control part; 64. Cam. DETAILED DESCRIPTION

[0032] The technical solution of the present application is further described in detail below in conjunction with specific implementation methods.

[0033] The embodiments of the present application are described in detail below, and examples of the embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals throughout represent the same or similar elements or elements having the same or similar functions. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present application, and cannot be understood as limiting the present application.

[0034] Please refer to Figure 1 and Figure 2 In an embodiment of the present invention, a cutting device for machining automotive parts includes: a support base 1; a quantitative cutting unit 2 connected to the support base 1 for alternately cooperating with the support base 1 to continuously cut rod-shaped parts at each station; a cooperative support unit 4 symmetrically arranged on both sides of the quantitative cutting unit 2 and connected to the support base 1 for cooperating with the support base 1 to synchronously support and convey a plurality of rod-shaped parts, and cooperating with the quantitative cutting unit 2 to complete synchronous quantitative cutting of a plurality of fixed rod-shaped parts; wherein, the cooperative support unit 4 includes: a synchronous support assembly 5, an automatic conveying assembly 6 and an induction energy transmission assembly 7. The synchronous support assembly 5 is symmetrically arranged on both sides of the quantitative cutting unit 2 and fixedly connected to the support base 1 for cooperating with the support base 1 to complete synchronous support and limitation of a plurality of rod-shaped parts to be machined. The synchronous support assembly 5 is connected to the induction energy transmission assembly 7 arranged inside the support base 1. The induction energy transmission assembly 7 is connected to the automatic conveying assembly 6 arranged inside the synchronous support assembly 5. The induction energy transmission assembly 7 is arranged opposite to the quantitative cutting unit 2 for cooperating with the lifted quantitative cutting unit 2 to drive the automatic conveying assembly 6 to automatically convey the rod-shaped parts located on the synchronous support assembly 5, and cooperating with the quantitative cutting unit 2 to achieve quantitative conveying and complete quantitative cutting of the rod-shaped parts.

[0035] In this embodiment, when the device is running, a plurality of rod-shaped parts are synchronously placed on one side of the synchronous support assembly 5. When the quantitative cutting unit 2 moves towards the side close to the rod-shaped parts, it can drive the induction energy transmission assembly 7, and use the induction energy transmission assembly 7 to drive the automatic conveying assembly 6 to be connected to the top shell wall of the rod-shaped parts. The automatic conveying assembly 6 and the synchronous support assembly 5 can stably support and convey the rod-shaped parts. The other end of the conveyed rod-shaped parts abuts against the quantitative cutting unit 2 to synchronously position the rod-shaped parts to be cut on this side. Subsequently, the quantitative cutting unit 2 synchronously cuts a plurality of conveyed rod-shaped parts. After cutting is completed, the automatic conveying assembly 6 continues to convey the rod-shaped parts, and the quantitative cutting unit 2 cuts the rod-shaped parts again, thereby realizing continuous cutting. When cutting is performed on this side, a new batch of rod-shaped parts is placed on the synchronous support assembly 5 on the other side. As the rod-shaped parts on this side are completely cut, the quantitative cutting unit 2 rotates to complete the switching of the station and continue to process the newly placed rod-shaped parts on the other side, thereby completing continuous cutting of the rod-shaped parts. By setting the cooperative support unit 4 and cooperating with the quantitative cutting unit 2, the present application can perform continuous processing with double-station switching, and can also complete quantitative cutting of a plurality of rod-shaped parts at one time during cutting, and does not require manual cutting, greatly improving the cutting efficiency and processing quality.

[0036] In one embodiment of the present invention, please refer to Figure 2 , Figure 3 , Figure 4 and Figure 5 , the synchronous support assembly 5 includes: a limit tooling 8, a placement groove 9, a support rod 11 and a receiving roller 12. The limit tooling 8 is symmetrically arranged at the top of both ends of the support base 1 and is fixedly connected to the support base 1. A plurality of placement grooves 9 for allowing rod-shaped parts to pass through are provided on the limit tooling 8. The plurality of placement grooves 9 are horizontally equidistantly distributed. Support rods 11 are symmetrically arranged inside the placement groove 9. The support rods 11 are rotatably connected to the limit tooling 8, and a receiving roller 12 is fixedly connected to the outside, which is used to cooperate with the limit tooling 8 to complete the limit support of the rod-shaped parts and cooperate with the automatic conveying assembly 6 to complete the conveying of the rod-shaped parts.

[0037] In this embodiment, a plurality of groups of support rods 11 are symmetrically arranged inside the placement groove 9. The support rods 11 are inclined, so that the receiving roller 12 located outside the support rods 11 can stably contact the outer walls on both sides of the bottom end, thereby completing the stable support of the rod-shaped parts, completing the limit of the rod-shaped parts, and also cooperating with the automatic conveying assembly 6 to complete the locking of the rod-shaped parts, so that the rod-shaped parts during cutting can be kept stable, thereby ensuring the reliability and effectiveness of cutting. By setting the synchronous support assembly 5, stable support can be provided for multiple rod-shaped parts at the same time, the limit of the rod-shaped parts can be completed, and the conveying and locking of the rod-shaped parts can be completed in cooperation with the automatic conveying assembly 6, ensuring the stability of the rod-shaped parts during cutting.

[0038] In one embodiment of the present invention, please refer to Figure 5 and Figure 6, the automatic conveying assembly 6 includes: a connecting pipe 13, a cooperative control frame 14, a sliding frame 15, a rhombic column 17, a conveying frame 18, a control motor 19, a support rod 20, and a conveying wheel 21. The conveying frame 18 is arranged at the inner top of the placement groove 9. A control motor 19 is fixedly connected to the outer side of the conveying frame 18. Support rods 20 rotatably connected to the conveying frame 18 are arranged on both sides of the control motor 19. A belt member 22 is connected between the two support rods 20 and the output end of the control motor 19. Conveying wheels 21 are fixedly connected to the outer sides of the two support rods 20, which are used to cooperate with the lifting of the conveying frame 18 to complete the limiting and conveying of the rod-shaped parts located on the receiving roller 12. A rhombic column 17 slidably connected to the limiting tooling 8 is fixedly connected to the outer side of the top end of the conveying frame 18. The rhombic column 17 is fixedly connected to the cooperative control frame 14 arranged inside the limiting tooling 8. A plurality of springs are fixedly connected between the cooperative control frame 14 and the inner wall of the limiting tooling 8. The cooperative control frame 14 is fixedly connected to a sliding frame 15 slidably arranged inside the limiting tooling 8. A connecting pipe 13 is fixedly connected to the bottom shell wall of the limiting tooling 8. A pressure reaction member 16 fixedly connected to the sliding frame 15 is slidably connected inside the connecting pipe 13. The connecting pipe 13 is also connected to the induction energy transmission assembly 7, which is used to cooperate with the induction energy transmission assembly 7 to realize the lifting of the conveying frame 18.

[0039] In this embodiment, the conveying frame 18 is directly above the middle of the two receiving rollers 12. The belt member 22 is composed of a belt pulley and a belt. Belt pulleys are fixedly connected to the output end of the control motor 19 and the outer sides of the support rods 20, and the belt pulleys are connected by a belt. The pressure reaction member 16 includes a first piston slidably connected inside the connecting pipe 13 and a first push rod fixedly connected to the first piston. The other end of the first push rod is fixedly connected to the sliding frame 15. The induction energy transmission assembly 7 can cooperate with the quantitative cutting unit 2 to move the first piston inside the connecting pipe 13. The first piston drives the sliding frame 15 to move downward through the first push rod. The sliding frame 15 drives the conveying frame 18 to move towards the side close to the receiving roller 12 in cooperation with the cooperative control frame 14 and the rhombic column 17. The conveying wheel 21 cooperates with the receiving roller 12 to complete the clamping and locking of the rod-shaped parts. The control motor 19 drives the two support rods 20 to rotate synchronously through the belt pulley and the belt. The support rod 20 drives the conveying wheel 21 to rotate. The conveying wheel 21 cooperates with the receiving roller 12 to complete the conveying of the rod-shaped parts and cooperate with the quantitative cutting unit 2 to complete the quantitative conveying of the rod-shaped parts. By setting the automatic conveying assembly 6, it can cooperate with the induction energy transmission assembly 7 to complete the stable clamping of the rod-shaped parts located on the receiving roller 12 and can complete the automatic conveying of the rod-shaped parts, greatly improving the processing efficiency of the equipment for the rod-shaped parts.

[0040] In one embodiment of the present invention, please refer to Figure 6 and Figure 7, the automatic conveying assembly 6 further includes: a clamping seat 23, an orientation plate 24, and a limiting guide wheel 25. The clamping seats 23 are symmetrically arranged on both sides of the conveying frame 18 and are slidably connected to the orientation plate 24 fixedly connected to the conveying frame 18. A spring is fixedly connected between the orientation plate 24 and the clamping seat 23. A limiting guide wheel 25 is rotatably connected to the shell wall of the clamping seat 23 on the side close to the receiving roller 12.

[0041] In this embodiment, two orientation plates 24 are arranged on the frame walls on both sides of the conveying frame 18. The outer side of the bottom end of the orientation plate 24 is slidably connected with a clamping seat 23. A limiting guide wheel 25 is rotatably connected to the shell wall of the bottom end of the clamping seat 23. After the rod-shaped component is placed on the receiving roller 12, the spring arranged between the clamping seat 23 and the orientation plate 24 can drive the limiting guide wheel 25 to be connected to the top side wall of the rod-shaped component. The limiting guide wheels 25 on both sides can complete the preliminary limitation of the rod-shaped component at the initial stage of placement, ensuring the stability of the rod-shaped component after placement and facilitating the subsequent fixation of the rod-shaped component by the equipment.

[0042] In an embodiment of the present invention, please refer to Figure 1 , Figure 8 and Figure 9 , the induction energy transmission assembly 7 includes: an induction conduit 10, a transmission box 26, a transmission control tube 27, a guiding column 29, an L-shaped control frame 30, a pushing control rod 31, a pressure relief tube 34, and a balance branch tube 35. The transmission boxes 26 are symmetrically arranged inside the support base 1 and are fixedly connected to the support base 1 and are connected to the connecting pipe 13. On the outer side of the opposite ends of the two transmission boxes 26, induction conduits 10 fixedly connected to the support base 1 are arranged. The two induction conduits 10 are arranged in central symmetry. An induction air member 32 is slidably connected inside the induction conduit 10. A pushing control rod 31 is rotatably connected to the induction air member 32. The other end of the pushing control rod 31 is rotatably connected to the L-shaped control frame 30. The L-shaped control frame 30 is slidably connected to the guiding column 29 fixedly connected to the outside of the transmission box 26. Energy adjustment members 28 fixedly connected to the L-shaped control frame 30 are slidably connected inside the transmission control tubes 27 arranged on both sides of the guiding column 29. A pressure relief tube 34 and a balance branch tube 35 are also fixedly connected to the pipe wall of the induction conduit 10. A pressure relief valve is fixedly connected inside the pressure relief tube 34, and an electromagnetic valve is fixedly connected inside the balance branch tube 35.

[0043] In this embodiment, the energy adjustment member 28 includes a second piston slidably connected to the inside of the transmission and control pipe 27 and a second push rod fixedly connected to the second piston. The other end of the second push rod is fixedly connected to the L-shaped control frame 30. The induction air member 32 includes a third piston slidably connected to the inside of the induction conduit 10 and a third push rod fixedly connected to the third piston. A limiting groove is provided on the rod wall of the third push rod, and a limiting plate 33 is slidably connected to the inside of the limiting groove. The limiting plate 33 is fixedly connected to the inside of the induction conduit 10. One end of the induction conduit 10 located outside the support base 1 is disposed opposite to the quantitative cutting unit 2 to be operated. When the quantitative cutting unit 2 operates, the air pressure inside the induction conduit 10 can be changed to realize the movement of the third piston inside the induction conduit 10. The third piston drives the L-shaped control frame 30 to move along the guide post 29 through the third push rod and the push control rod 31. The L-shaped control frame 30 drives the second piston to move inside the transmission and control pipe 27 through the second push rod, and cooperates with the transmission box 26 to realize the lifting of the first piston inside the connecting pipe 13. Additionally, after the conveying wheel 21 completes the clamping of the rod-shaped part, as the quantitative cutting unit 2 continues to operate, the excess air inside the induction conduit 10 is discharged from the inside of the pressure relief pipe 34 to ensure the effectiveness of the clamping of the rod-shaped part by the conveying wheel 21. When the quantitative cutting unit 2 resets, the solenoid valve inside the balance branch pipe 35 is opened, and relying on the spring provided between the cooperative control frame 14 and the limiting tooling 8, the reset of the third piston is realized. Subsequently, the solenoid valve inside the balance branch pipe 35 is closed. By setting the induction energy transmission assembly 7, it can cooperate with the rotation of the quantitative cutting unit 2 to stably drive the automatic conveying assembly 6 on the processing side, complete the stable clamping and automatic conveying of the rod-shaped part on the processing side, and thus realize the automatic continuous cutting of the rod-shaped part, greatly improving the cutting efficiency.

[0044] In one embodiment of the present invention, please refer to Figure 1 , Figure 2 , Figure 10 and Figure 11 , the quantitative cutting unit 2 includes: a support frame 36, a mounting seat 37, a switching motor 51, a driving column 52, an automatic cutting assembly, and a quantitative limiting assembly. The mounting seat 37 is disposed between the two limiting toolings 8 and is fixedly connected to the support base 1. The outer side of the top end of the mounting seat 37 is rotatably connected with a support frame 36. The support frame 36 is fixedly connected to the driving column 52 passing through the mounting seat 37. The other end of the driving column 52 is fixedly connected to the output end of the switching motor 51. The switching motor 51 is fixedly connected to the inner bottom of the support base 1. An automatic cutting assembly connected to the driving column 52 is fixedly connected to the support frame 36, and a quantitative limiting assembly connected to the support frame 36 is disposed outside the automatic cutting assembly.

[0045] In this embodiment, the switching motor 51 controls the driving column 52 to rotate. The driving column 52 can drive the support frame 36 to rotate. The support frame 36 can drive the automatic cutting assembly and the quantitative limiting assembly to rotate synchronously, realizing the switching of the processing station. The automatic cutting assembly can cooperate with the support frame 36 to automatically cut the fixed rod-shaped parts. The quantitative limiting assembly can position the conveyed rod-shaped parts before cutting, thereby completing the quantitative cutting of the rod-shaped parts. By setting the quantitative cutting unit 2, not only can the continuous automatic cutting of multiple rod-shaped parts be completed, but also the quantitative cutting of multiple rod-shaped parts can be completed simultaneously, greatly improving the applicability and cutting efficiency of the equipment.

[0046] In one embodiment of the present invention, please refer to Figure 10 and Figure 11 , the automatic cutting assembly includes: a lifting frame 38, a connecting frame 39, a transverse movement control member 40, a T-shaped rail 41, a sliding seat 42, a cutting machine 43, a pressure supply piston 45, a fixing rod 46, and a telescopic controller 53. The lifting frame 38 is arranged inside the support frame 36 and is connected to the telescopic controller 53 fixedly connected inside the driving column 52. A connecting frame 39 is fixedly connected to the outside of the lifting frame 38. A sliding seat 42 is slidably connected inside the connecting frame 39. The sliding seat 42 is connected to the connecting frame 39 through the transverse movement control member 40 and is slidably connected to the T-shaped rail 41 fixedly connected to the outside of the connecting frame 39. A cutting machine 43 is fixedly connected to the sliding seat 42 for synchronously cutting multiple rod-shaped parts at one time in cooperation with the movement of the sliding seat 42. A fixing rod 46 is fixedly connected to the outside of the lifting frame 38. A pressure supply piston 45 is fixedly connected to the outside of the other end of the fixing rod 46. The pressure supply piston 45 is arranged opposite to the induction energy transmission assembly 7.

[0047] In this embodiment, the transverse movement control member 40 includes a transverse movement motor and a transverse movement control rod. The transverse movement motor is fixedly connected to the outside of the connecting frame 39. The transverse movement control rod is fixedly connected to the output end of the transverse movement motor. The transverse movement control rod is threadedly connected to the sliding seat 42. Additionally, the telescopic controller 53 is an electric push rod. One end of the electric push rod is fixedly connected to the driving column 52, and the other end is fixedly connected to the lifting frame 38. The telescopic controller 53 drives the lifting frame 38 to move downward. The lifting frame 38 drives the pressure supply piston 45 to move downward synchronously through the fixing rod 46. The pressure supply piston 45 enters the inside of the induction conduit 10 on the same side. Among them, the inner diameter of the induction conduit 10 is equal to the outer diameter of the pressure supply piston 45. With the movement of the pressure supply piston 45, the driving of the conveying frame 18 is completed. When the conveying wheel 21 cooperates with the receiving roller 12 to fix the rod-shaped parts, the lifting frame 38 continues to move downward, so that the cutting machine 43 contacts the rod-shaped parts. The transverse movement motor drives the sliding seat 42 to move along the T-shaped rail 41 through the transverse movement control rod, thereby completing the quantitative cutting of multiple rod-shaped parts at one time.

[0048] In one embodiment of the present invention, please refer to Figure 10 and Figure 11 , the quantitative limit component includes: a quantitative baffle 44, a limit post 47, a control frame 48, a connecting frame 49 and a top pull rod 50. The quantitative baffle 44 is arranged outside the support frame 36. Connecting frames 49 are symmetrically arranged on the outside of the quantitative baffle 44. The connecting frames 49 are slidably connected to the inner wall of the support frame 36. A control frame 48 slidably connected to the support frame 36 is arranged on the outside of the connecting frames 49. The control frame 48 is slidably connected to a limit post 47 fixedly connected to the inside of the support frame 36. The control frame 48 and the support frame 36 are connected by a lifting control member 63. A top pull rod 50 is arranged between the control frame 48 and the connecting frame 49. One end of the top pull rod 50 is rotatably connected to the control frame 48, and the other end is rotatably connected to the connecting frame 49.

[0049] In this embodiment, the lifting control member 63 includes a lifting motor and a lifting control rod. The lifting motor is fixedly connected to the outside of the top of the support frame 36. The lifting control rod is fixedly connected to the output end of the lifting motor. During processing, the quantitative baffle 44 is located between the support frame 36 and the limit tooling 8. The lifting motor drives the control frame 48 to lift along the limit post 47 through the lifting control rod. The control frame 48 drives the connecting frame 49 to move horizontally through the top pull rod 50. Among them, a positioning groove is arranged on the wall of the connecting frame 49. A positioning block fixedly connected to the support frame 36 is slidably connected to the inside of the positioning groove. The connecting frame 49 drives the quantitative baffle 44 to move synchronously, and the distance between the quantitative baffle 44 and the limit tooling 8 is adjusted, so as to complete the quantitative cutting of the rod-shaped parts.

[0050] In one embodiment of the present invention, please refer to Figure 2 , Figure 12 and Figure 13 , and further includes: a detachable material collection unit 3. The detachable material collection unit 3 is detachably connected to the mounting seat 37 and is used to cooperate with the quantitative cutting unit 2 to complete the automatic recovery of the cut rod-shaped parts; wherein, the detachable material collection unit 3 includes: a collection box 54, a locking tube 55, a lifting piston 56, an arc-shaped clamping block 57, a connecting cavity 58 and a synchronous locking component. The connecting cavities 58 are symmetrically arranged inside the top shell wall of the mounting seat 37. A locking tube 55 connected to the connecting cavity 58 is fixedly connected to the shell wall of the mounting seat 37. A lifting piston 56 is slidably connected to the inside of the locking tube 55. A spring is fixedly connected between the lifting piston 56 and the mounting seat 37. The other end of the lifting piston 56 is fixedly connected to the arc-shaped clamping block 57. The collection box 54 is slidably connected to the support base 1, and a clamping groove engaged with the arc-shaped clamping block 57 is arranged on the top shell wall. A synchronous locking component connected to the driving column 52 is also arranged inside the mounting seat 37 and is used to cooperate with the rotation of the driving column 52 to realize the locking of the collection box 54 by the arc-shaped clamping block 57.

[0051] In this embodiment, mounting grooves for mounting the collection box 54 are provided on both end shell walls of the mounting base 37 close to the two-sided limiting tooling 8. Before processing, the collection box 54 is placed between the mounting base 37 and the support base 1. The spring disposed between the locking tube 55 and the lifting piston 56 drives the arc-shaped clamping block 57 to insert into the inner side of the card slot, completing the preliminary positioning of the collection box 54. When the driving column 52 drives the cutting machine 43 to rotate above the collection box 54, it can drive the synchronous locking assembly. The synchronous locking assembly can further extrude the lifting piston 56, enabling the arc-shaped clamping block 57 to further fix the collection box 54, ensuring the stability of the collection box 54 after installation.

[0052] In one embodiment of the present invention, please refer to Figure 12 and Figure 13 , the synchronous locking assembly includes: a clamping tube 59, a piston member 60, a sliding rod 61, a push plate 62, and a cam 64. The clamping tubes 59 are symmetrically arranged inside the mounting base 37, fixedly connected to the mounting base 37, and connected to the same-side connection cavity 58. A piston member 60 is slidably connected inside the clamping tube 59. A sliding rod 61 is slidably connected inside the piston member 60. A spring is fixedly connected between the sliding rod 61 and the piston member 60. The other end of the sliding rod 61 is fixedly connected with a push plate 62. A cam 64 fixedly connected to the driving column 52 is arranged between the two push plates 62, which is used to cooperate with the rotation of the driving column 52 to drive the arc-shaped clamping block 57 on the processing side, realizing the locking of the collection box 54.

[0053] In this embodiment, the piston member 60 includes a fourth piston slidably connected inside the clamping tube 59 and a fourth push rod fixedly connected to the fourth piston. The other end of the fourth push rod is slidably connected to the sliding rod 61. A spring is fixedly connected between the sliding rod 61 and the fourth push rod. The other end of the sliding rod 61 is fixedly connected to the push plate 62. When the driving column 52 drives the cam 64 to rotate, the cam 64 can push the push plate 62. The push plate 62 first cooperates with the sliding rod 61 and the fourth push rod to move the fourth piston, and then drives the air inside the clamping tube 59 to enter the inner side of the connection cavity 58, thereby realizing the full combination of the arc-shaped clamping block 57 and the card slot. As the cam 64 continues to rotate, by squeezing the spring between the sliding rod 61 and the fourth push rod, the arc-shaped clamping block 57 can be further extruded, further improving the reliability of the clamping.

[0054] In the cutting device for processing automobile parts, multiple rod-shaped parts are synchronously placed in each placement groove 9 on a limiting tool 8 on one side and are located between the receiving rollers 12 on both sides. The spring arranged between the clamping seat 23 and the directional plate 24 can drive the limiting guide wheel 25 to be connected to the top side wall of the rod-shaped parts. The limiting guide wheels 25 on both sides can complete the preliminary limiting of the rod-shaped parts at the initial stage of placement. Before processing, the collection box 54 is placed between the mounting seat 37 and the supporting base 1, and the spring-driven arc-shaped card block 57 arranged between the locking tube 55 and the lifting piston 56 is inserted into the inner side of the card slot to complete the preliminary positioning of the collection box 54. The driving column 52 drives the cutting machine 43 to rotate above the collection box 54. When the cam 64 is rotated, the arc block 57 can be further squeezed by squeezing the spring between the slide bar 61 and the fourth push rod, thereby further improving the clamping reliability. The telescopic controller 53 drives the lifting frame 38 to move downward, and the lifting frame 38 drives the pressure supply piston 45 to move downward synchronously through the fixing rod 46. The pressure supply piston 45 enters the inner side of the sensing conduit 10 on the same side, thereby realizing the air pressure inside the sensing conduit 10. The third piston is changed to move inside the induction tube 10. The third piston drives the L-shaped control frame 30 to move along the guide column 29 through the third push rod and the push control rod 31. The L-shaped control frame 30 drives the second piston to move inside the transmission tube 27 through the second push rod, and cooperates with the transmission box 26 to realize the lifting and lowering of the first piston inside the connecting tube 13. When the conveying wheel 21 completes the clamping of the rod-shaped parts, as the lifting frame 38 continues to move downward, the excess air inside the induction tube 10 is discharged from the inside of the pressure relief pipe 34 to ensure the effectiveness of the conveying wheel 21 clamping the rod-shaped parts. The control motor 19 drives the support rods 20 on both sides to rotate synchronously through the pulley and the belt. The movable conveying wheel 21 rotates, and the conveying wheel 21 cooperates with the receiving roller 12 to complete the conveying of the rod-shaped parts. The lifting motor drives the control frame 48 to lift and lower along the limit column 47 through the lifting control rod. The control frame 48 drives the connecting frame 49 to move horizontally through the top pull rod 50. The connecting frame 49 drives the quantitative baffle 44 to move synchronously, and adjusts the distance between the quantitative baffle 44 and the limit tooling 8. One end of the conveyed rod-shaped parts abuts against the quantitative baffle 44, and the lifting frame 38 continues to move downward, so that the cutting machine 43 contacts with the rod-shaped parts. The transverse motor drives the slide 42 to move along the T-rail 41 through the transverse control rod, thereby completing the quantitative cutting of multiple rod-shaped parts at one time.

[0055] The above are only the preferred embodiments of the present invention. It should be noted that for those skilled in the art, without departing from the concept of the present invention, several modifications and improvements can be made, which should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicability of the patent.

Claims

1. A cutting device for automobile parts processing, characterized in that: include: Support base; A quantitative cutting unit, which is connected to the support base and is used to cooperate with the support base to alternately complete the continuous cutting of the rod-shaped parts at each station; A collaborative support unit, which is centrally symmetrically arranged on both sides of the quantitative cutting unit and connected to the support base, and is used to cooperate with the support base to achieve synchronous support and transportation of multiple rod-shaped parts, and cooperate with the quantitative cutting unit to complete synchronous quantitative cutting of multiple fixed rod-shaped parts; Among them, the collaborative support unit includes: a synchronous support component, an automatic conveying component and an inductive energy transmission component. The synchronous support component is symmetrically arranged on both sides of the quantitative cutting unit and is fixedly connected to the support base. It is used to cooperate with the support base to complete the synchronous support and limiting of multiple rod-shaped parts to be processed. The synchronous support component is connected to the inductive energy transmission component arranged on the inner side of the support base, and the inductive energy transmission component is connected to the automatic conveying component arranged on the inner side of the synchronous support component. The inductive energy transmission component is arranged relative to the quantitative cutting unit, and is used to cooperate with the quantitative cutting unit after lifting to drive the automatic conveying component to realize automatic conveying of the rod-shaped parts on the synchronous support component, and cooperate with the quantitative cutting unit to realize quantitative conveying, and complete quantitative cutting of the rod-shaped parts.

2. The cutting device for automobile parts processing according to claim 1, characterized in that: The synchronous support assembly includes: a limiting tool, a placement groove, a supporting rod and a receiving roller. The limiting tool is symmetrically arranged on the top of both ends of the support base and is fixedly connected to the support base. The limiting tool is provided with a plurality of placement grooves for rod-shaped parts to pass through, and the plurality of placement grooves are distributed equidistantly laterally. Support rods are symmetrically arranged on the inner side of the placement grooves. The support rods are rotatably connected to the limiting tool, and receiving rollers are fixedly connected on the outer side to cooperate with the limiting tool to complete the limiting support of the rod-shaped parts, and cooperate with the automatic conveying assembly to complete the conveying of the rod-shaped parts.

3. The cutting device for automobile parts processing according to claim 2, characterized in that: The automatic conveying assembly comprises: a connecting pipe, an auxiliary control frame, a sliding frame, a prismatic column, a conveying frame, a control motor, a support rod and a conveying wheel. The conveying frame is arranged at the top of the inner side of the placement groove, and the control motor is fixedly connected to the outer side of the conveying frame. Support rods rotatably connected to the conveying frame are arranged on both sides of the control motor. The support rods on both sides are connected to the output end of the control motor through a belt member. Conveying wheels are fixedly connected to the outer sides of the two support rods, which are used to cooperate with the lifting and lowering of the conveying frame to complete the limiting and conveying of the rod-shaped parts on the receiving roller. A prismatic column slidably connected to the limiting tooling is fixedly connected to the outer side of the top of the conveying frame. The prismatic column is fixedly connected to the auxiliary control frame arranged on the inner side of the limiting tooling. A plurality of springs are fixedly connected between the auxiliary control frame and the inner wall of the limiting tooling. The auxiliary control frame is fixedly connected to the sliding frame slidably connected to the inner side of the limiting tooling. A connecting pipe is fixedly connected to the shell wall of the bottom end of the limiting tooling. A pressure reaction piece fixedly connected to the sliding frame is slidably connected to the inner side of the connecting pipe. The connecting pipe is also connected to the inductive energy transmission assembly to cooperate with the inductive energy transmission assembly to realize the lifting and lowering of the conveying frame.

4. The cutting device for automobile parts processing according to claim 3, characterized in that: The automatic conveying assembly also includes: a clamping seat, an orienting plate and a limiting guide wheel. The clamping seat is symmetrically arranged on both sides of the conveying frame and is slidably connected to the orienting plate fixedly connected to the conveying frame. A spring is fixedly connected between the orienting plate and the clamping seat. The limiting guide wheel is rotatably connected on the shell wall of the clamping seat close to the receiving roller.

5. The cutting device for automobile parts processing according to claim 4, characterized in that: The inductive energy transmission component includes: an inductive conduit, a transmission box, a transmission control tube, a guide column, an L-shaped control frame, a push control rod, a pressure relief tube and a balance branch pipe. The transmission box is symmetrically arranged on the inner side of the support base, fixedly connected to the support base, and connected to the connecting pipe. The outer sides of the opposite ends of the transmission boxes on both sides are provided with inductive conduits fixedly connected to the support base. The inductive conduits on both sides are centrally symmetrically arranged. An inductive gas piece is slidingly connected to the inner side of the inductive conduit. A push control rod is rotatably connected to the inductive gas piece. The other end of the push control rod is rotatably connected to the L-shaped control frame. The L-shaped control frame is slidably connected to the guide column fixedly connected to the outer side of the transmission box. Transmission control tubes fixedly connected to the transmission box are arranged on both sides of the guide column. An energy regulating piece fixedly connected to the L-shaped control frame is slidingly connected to the inner side of the transmission control tube. A pressure relief tube and a balance branch pipe are also fixedly connected to the pipe wall of the inductive conduit. A pressure relief valve is fixedly connected to the inner side of the pressure relief tube, and an electromagnetic valve is fixedly connected to the inner side of the balance branch pipe.

6. The cutting device for automobile parts processing according to claim 1, characterized in that: The quantitative cutting unit includes: a support frame, a mounting seat, a switching motor, a driving column, an automatic cutting component and a quantitative limit component. The mounting seat is arranged between the limit tooling on both sides and is fixedly connected to the support base. A support frame is rotatably connected to the outer side of the top end of the mounting seat. The support frame is fixedly connected to the driving column that passes through the mounting seat. The other end of the driving column is fixedly connected to the output end of the switching motor. The switching motor is fixedly connected to the bottom inner side of the support base. An automatic cutting component connected to the driving column is fixedly connected to the support frame. A quantitative limit component connected to the support frame is arranged on the outer side of the automatic cutting component.

7. The cutting device for automobile parts processing according to claim 6, characterized in that: The automatic cutting assembly includes: a lifting frame, a connecting frame, a transverse movement control member, a T-rail, a slide, a cutting machine, a pressure supply piston, a fixed rod and a telescopic controller. The lifting frame is arranged on the inner side of the support frame and is connected to the telescopic controller fixedly connected to the inner side of the driving column. A connecting frame is fixedly connected to the outer side of the lifting frame, and a slide is slidably connected to the inner side of the connecting frame. The slide is connected to the connecting frame through a transverse movement control member and is slidably connected to the T-rail fixedly connected to the outer side of the connecting frame. A cutting machine is fixedly connected to the slide for cooperating with the movement of the slide to complete the synchronous cutting of multiple rod-shaped parts at one time. A fixing rod is fixedly connected to the outer side of the lifting frame, and a pressure supply piston is fixedly connected to the outer side of the other end of the fixing rod. The pressure supply piston is arranged relative to the inductive energy transmission assembly.

8. The cutting device for automobile parts processing according to claim 7, characterized in that: The quantitative limit assembly includes: a quantitative baffle, a limit column, a control frame, a connecting frame and a top pull rod. The quantitative baffle is arranged on the outside of the support frame, and a connecting frame is symmetrically arranged on the outside of the quantitative baffle. The connecting frame is slidably connected to the inner wall of the support frame, and a control frame slidably connected to the support frame is arranged on the outside of the connecting frame. The control frame is slidably connected to the limit column fixedly connected to the inner side of the support frame. The control frame is connected to the support frame through a lifting control member. A top pull rod is arranged between the control frame and the connecting frame. One end of the top pull rod is rotatably connected to the control frame, and the other end is rotatably connected to the connecting frame.

9. The cutting device for automobile parts processing according to claim 6, characterized in that: Also includes: A detachable material receiving unit, which is detachably connected to the mounting seat and is used to cooperate with the quantitative cutting unit to complete the automatic recovery of the cut rod-shaped parts; wherein, the detachable material receiving unit comprises: a collection box, a locking tube, a lifting piston, an arc-shaped block, a connecting chamber and a synchronous locking assembly, wherein the connecting chamber is symmetrically arranged on the inner side of the top shell wall of the mounting seat, a locking tube connected to the connecting chamber is fixedly connected to the shell wall of the mounting seat, a lifting piston is slidably connected to the inner side of the locking tube, a spring is fixedly connected between the lifting piston and the mounting seat, the other end of the lifting piston is fixedly connected to the arc-shaped block, the collection box is slidably connected to the support base, a slot engaged with the arc-shaped block is arranged on the top shell wall, and a synchronous locking assembly connected to the driving column is also arranged on the inner side of the mounting seat, which is used to cooperate with the rotation of the driving column to realize the locking of the collection box by the arc-shaped block.

10. The cutting device for automobile parts processing according to claim 9, characterized in that: The synchronous locking assembly includes: a supporting tube, a piston member, a sliding rod, a push plate and a cam. The supporting tube is symmetrically arranged on the inner side of the mounting seat, fixedly connected to the mounting seat, and connected to the connecting cavity on the same side. A piston member is slidingly connected to the inner side of the supporting tube, a sliding rod is slidingly connected to the inner side of the piston member, a spring is fixedly connected between the sliding rod and the piston member, a push plate is fixedly connected to the outer side of the other end of the sliding rod, and a cam fixedly connected to the driving column is arranged between the push plates on both sides, which is used to cooperate with the rotation of the driving column to complete the driving of the arc-shaped block on the processing side, thereby realizing the locking of the collection box.