Efficient processing equipment for sawing automobile parts
Patent Information
- Application Number
- CN202522241429.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-23
- Publication Date
- 2026-09-18
- Estimated Expiration
- 2035-10-23
AI Technical Summary
[0003]目前,传统汽车部件锯切设备存在诸多技术短板,在进行锯切时,碎屑与切削液分离回收效果差,多数设备缺乏分级过滤结构,切削液中残留的细小碎屑无法有效去除,直接循环使用会加剧刀具磨损,同时未回收的切削液易造成资源浪费和环境污染;同时,锯切过程中产生的金属碎屑与切削液混合物易在加工平台表面堆积,依赖人工清理,排屑效率低下,清理内部截留的大尺寸碎屑时需打开防护罩进行清理,操作耗时较长,降低了生产效率
[0012] 1. By setting up a separation hopper and a filtration structure, the filter screen on the inner wall of the separation hopper achieves initial interception of large-sized debris. Then, the mixture is evenly dispersed to the surface of the filter element through the rotatable guide tube in the filtration structure, realizing the fine separation of metal debris and cutting fluid. This effectively removes fine debris from the cutting fluid, ensures the purity of the recovered cutting fluid, extends the tool life, realizes the recycling and reuse of cutting fluid, and reduces resource waste and environmental pollutant emissions.
Smart Images

Figure CN224764431U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of automotive parts processing equipment technology, and in particular to a high-efficiency sawing processing equipment for automotive parts. Background Technology
[0002] As the automotive industry rapidly develops towards higher precision, lighter weight, and higher efficiency, the requirements for machining accuracy and production efficiency of automotive components (such as engine blocks, transmission housings, and chassis structural parts) are becoming increasingly stringent. Sawing, as a key pre-processing step in automotive component manufacturing, directly affects the machining quality of subsequent milling and grinding processes, making the performance of its machining equipment crucial to the overall production flow.
[0003] Currently, traditional automotive parts sawing equipment has many technical shortcomings. During sawing, the separation and recovery of chips and cutting fluid is poor. Most equipment lacks a graded filtration structure, and the fine chips remaining in the cutting fluid cannot be effectively removed. Direct recycling will aggravate tool wear, and the unrecovered cutting fluid will easily cause resource waste and environmental pollution. At the same time, the metal chips and cutting fluid mixture generated during sawing are prone to accumulate on the surface of the processing platform, relying on manual cleaning, resulting in low chip removal efficiency. Cleaning large chips trapped inside requires opening the protective cover, which is time-consuming and reduces production efficiency. Utility Model Content
[0004] To solve the above-mentioned technical problems, this utility model provides a high-efficiency sawing and processing equipment for automotive parts.
[0005] This utility model provides a high-efficiency sawing and processing equipment for automotive parts, comprising: a processing platform, a mounting plate, a pushing structure, a separation hopper, and a filtering structure. The processing platform has a chip removal groove on its upper surface, and a mounting plate is fixedly connected to its lower surface. The mounting plate has a mounting groove on its lower surface, and sliding grooves are formed on both sides of the mounting groove. A cavity is formed inside the mounting plate, and two through holes are formed on the inner wall of the cavity. These two through holes communicate with the sliding grooves on both sides of the mounting groove on the lower surface of the mounting plate. A pushing structure is provided inside the cavity of the mounting plate. The pushing structure includes a transmission rod, a first transmission bevel gear, a first driven bevel gear, and a lead screw. The transmission rod is rotatably disposed inside the cavity of the mounting plate. Two first transmission bevel gears are fixedly connected to the outer surface of the transmission rod. One side of each of the two first transmission bevel gears meshes with a first driven bevel gear, and one end of each of the two first driven bevel gears is fixedly fixed. A lead screw is fixedly connected to two first driven bevel gears. One end of the lead screw is rotatably connected to two through holes on the inner wall of the cavity of the mounting plate. The ends of the lead screws away from the first driven bevel gears extend to the inner grooves on both sides of the mounting groove on the lower surface of the mounting plate. A separation bucket is slidably installed inside the mounting groove on the lower surface of the mounting plate. The separation bucket is located below the chip discharge groove on the upper surface of the processing platform. Sliding blocks are fixedly connected to both sides of the separation bucket. The sliding blocks on both sides of the separation bucket are slidably installed inside the inner grooves on both sides of the mounting groove on the lower surface of the mounting plate. A filter structure is provided at the lower end of the separation bucket. The filter structure includes a filter tank, a sealing cover, a guide tube, and a filter element. A sealing cover is threaded to the upper end of the filter tank. A fixing hole is opened on the upper surface of the sealing cover. The fixing hole on the upper surface of the sealing cover is fixedly connected to the lower outer surface of the separation bucket. A guide tube is rotatably installed inside the filter tank. A filter element is sleeved on the outer surface of the guide tube.
[0006] Preferably, a multi-axis CNC sawing machine is installed on the upper surface of the processing platform, and an automotive part workpiece is clamped and fixed on the upper surface of the processing platform. The automotive part workpiece is located below the multi-axis CNC sawing machine. An automatic opening and closing protective cover is installed on the upper surface of the processing platform, and the automatic opening and closing protective cover covers the outer surface of the multi-axis CNC sawing machine and the automotive part workpiece.
[0007] Preferably, a partition is fixedly connected to the inner wall of the cavity of the mounting plate, and a through hole is opened on the side surface of the partition. A transmission rod is rotatably connected to the inside of the through hole on the side surface of the partition. A first servo motor is provided at one end of the transmission rod. The first servo motor is fixedly connected to the bottom of the cavity of the mounting plate. The power output end of the first servo motor is fixedly connected to one end of the transmission rod, and the other end of the transmission rod is rotatably connected to the inner wall of the cavity of the mounting plate.
[0008] Preferably, the lower end of the filter canister has a cavity, the bottom of the filter canister has a through hole, the bottom through hole of the filter canister is connected to the cavity at the lower end of the filter canister, and the bottom of the filter canister has a guide groove.
[0009] Preferably, the upper end of the guide tube has an inlet / outlet hole, the outer surface of the guide tube has a dispersion hole, the lower end of the guide tube is fixedly connected to a rotating rod, the rotating rod is rotatably connected to the inside of the bottom through hole of the filter tank, the lower end of the rotating rod extends to the inside of the lower cavity of the filter tank, the lower end of the rotating rod is fixedly connected to a second driven bevel gear, a second transmission bevel gear meshes below the second driven bevel gear, a second servo motor is provided at one end of the second transmission bevel gear, the power output end of the second servo motor is fixedly connected to one end of the second transmission bevel gear, and the second servo motor is fixedly connected to the inner wall of the lower cavity of the filter tank.
[0010] Preferably, a filter screen is fixedly connected to the inner wall of the separation bucket, the lower end of the separation bucket extends to the inlet and outlet hole at the upper end of the guide pipe, and threaded holes are opened at one end of the sliding blocks on both sides of the separation bucket. The lead screws at one end of the two first driven bevel gears are respectively threaded to the threaded holes at one end of the sliding blocks on both sides of the separation bucket, and the ends of the lead screws at one end of the two first driven bevel gears away from the first driven bevel gears are respectively rotatably connected to the inner walls of the sliding grooves on both sides of the mounting groove on the lower surface of the mounting plate.
[0011] Compared with related technologies, the high-efficiency sawing equipment for automotive parts provided by this utility model has the following advantages:
[0012] 1. By setting up a separation hopper and a filtration structure, the filter screen on the inner wall of the separation hopper achieves initial interception of large-sized debris. Then, the mixture is evenly dispersed to the surface of the filter element through the rotatable guide tube in the filtration structure, realizing the fine separation of metal debris and cutting fluid. This effectively removes fine debris from the cutting fluid, ensures the purity of the recovered cutting fluid, extends the tool life, realizes the recycling and reuse of cutting fluid, and reduces resource waste and environmental pollutant emissions.
[0013] 1. With a push structure, the chip removal groove on the processing platform can directly and quickly guide the metal chips and cutting fluid mixture generated by sawing to the separation bucket below. Through the coordinated operation of the first servo motor driving the transmission rod, bevel gear set and lead screw, the separation bucket can be moved smoothly along the slide to the outside of the processing platform. The large-sized chips inside can be cleaned without disassembling any parts. After cleaning, the separation bucket can be quickly reset by reversing the motor. The operation time is short and the production efficiency is effectively improved. Attached Figure Description
[0014] Figure 1 A schematic diagram of a preferred embodiment of the high-efficiency sawing and processing equipment for automotive parts provided by this utility model;
[0015] Figure 2 This is an exploded structural diagram of the present invention;
[0016] Figure 3 This is a schematic diagram of the internal structure of the mounting plate cavity and the sliding groove of this utility model;
[0017] Figure 4 This is an exploded structural diagram of the filter tank of this utility model, including the interior of the filter tank cavity, the sealing cover, and the separation bucket.
[0018] Figure 5 This is an exploded structural diagram of the filter tank interior, the guide pipe, and the filter element of this utility model.
[0019] Figure 6 For the present utility model Figure 3 Enlarged structural diagram at point A;
[0020] Figure 7 For the present utility model Figure 4 A magnified structural diagram at point B in the middle.
[0021] Labels in the diagram: 1. Processing platform; 2. Mounting plate; 3. Pushing structure; 4. Separation hopper; 5. Filtering structure; 6. Transmission rod; 7. First transmission bevel gear; 8. First driven bevel gear; 9. Lead screw; 10. Filter tank; 11. Sealing cover; 12. Guide pipe; 13. Filter element; 14. Multi-axis CNC sawing machine; 15. Automotive parts; 16. Automatic opening and closing protective cover; 17. Partition plate; 18. First servo motor; 19. Rotating rod; 20. Second driven bevel gear; 21. Second transmission bevel gear; 22. Second servo motor; 23. Filter screen; 24. Sliding block. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please refer to the following: Figure 1 , Figure 2 , Figure 3 , Figure 4 , Figure 5 , Figure 6 and Figure 7The system includes: a processing platform 1, a mounting plate 2, a pushing structure 3, a separating hopper 4, and a filtering structure 5. The upper surface of the processing platform 1 has a chip removal groove for quickly discharging metal chips generated during sawing. The lower surface of the processing platform 1 is fixedly connected to the mounting plate 2, which has a mounting groove on its lower surface. Sliding grooves are formed on both sides of the mounting groove on the lower surface of the mounting plate 2. The mounting plate 2 has a cavity inside, and two through holes are formed on the inner wall of the cavity. These through holes communicate with the sliding grooves on both sides of the mounting groove on the lower surface of the mounting plate 2. These through holes provide a through-channel for the lead screw 9, allowing it to extend into the sliding groove and threadedly connect with the sliding block 24 of the separating hopper 4. An internal pushing structure 3 is provided, with a cavity to accommodate it and prevent it from being exposed to debris. The pushing structure 3 includes a transmission rod 6, a first transmission bevel gear 7, a first driven bevel gear 8, and a lead screw 9. The transmission rod 6 is rotatably mounted inside the cavity of the mounting plate 2. Two first transmission bevel gears 7 are fixedly connected to the outer surface of the transmission rod 6. When the transmission rod 6 rotates, it drives the two first transmission bevel gears 7 to rotate. The first driven bevel gear 8 is meshed on one side of each of the two first transmission bevel gears 7. When the first transmission bevel gear 7 rotates, it meshes and drives the first driven bevel gear 8 to rotate. A lead screw 9 is fixedly connected to one end of each of the two first driven bevel gears 8. When the first driven bevel gear 8 rotates, it drives the lead screw 9 to rotate. The lead screw 9 at one end of each of the two first driven bevel gears 8 is rotatably connected to... Inside the two through holes on the inner wall of the cavity of the mounting plate 2, the lead screw 9 can rotate within the two through holes. One end of the lead screw 9 away from the first driven bevel gear 8 extends to the inner grooves on both sides of the mounting groove on the lower surface of the mounting plate 2. A separating bucket 4 is slidably installed inside the mounting groove on the lower surface of the mounting plate 2. The mounting groove provides installation space for the separating bucket 4, ensuring stable sliding of the separating bucket 4. The mounting plate 2 is used to support and fix components such as the separating bucket 4 and the pushing structure 3. The pushing structure 3 is used to drive the separating bucket 4 to move along the direction of the groove, realizing the position adjustment of the separating bucket 4 and pushing it to the outside of the processing platform 1, facilitating subsequent chip removal from the separating bucket 4. The separating bucket 4 is located below the chip discharge groove on the upper surface of the processing platform 1. Sliding blocks 24 are fixedly connected to both sides of the separating hopper 4. The sliding blocks 24 on both sides of the separating hopper 4 are slidably disposed inside the sliding grooves on both sides of the mounting groove on the lower surface of the mounting plate 2. The sliding grooves provide sliding guidance for the sliding blocks 24 on both sides of the separating hopper 4, ensuring that the separating hopper 4 moves smoothly in a fixed direction under the drive of the pushing structure 3. A filter structure 5 is provided at the lower end of the separating hopper 4. The filter structure 5 is used to finely filter and separate the debris conveyed by the separating hopper 4, realize the separation and recycling of metal debris and cutting fluid, and improve resource utilization. The filter structure 5 includes a filter tank 10, a sealing cover 11, a guide pipe 12, and a filter element 13. The upper end of the filter tank 10 is threadedly connected to the sealing cover 11. The sealing cover 11 is used to seal the upper opening of the filter tank 10 to prevent cutting fluid from splashing during the filtration process.When it is necessary to clean the guide pipe 12 inside the filter tank 10 or replace the filter element 13, the filter tank 10 can be unscrewed from the sealing cover 11. The sealing cover 11 has a fixing hole on its upper surface, which is fixedly connected to the lower outer surface of the separation hopper 4. The fixing hole is used to fix the sealing cover 11 to the lower end of the separation hopper 4, ensuring that the debris and cutting fluid transported by the separation hopper 4 can flow steadily into the filter tank 10. The guide pipe 12 is rotatably installed inside the filter tank 10, and the filter element 13 is sleeved on the outer surface of the guide pipe 12. The guide pipe 12 is used to receive the mixture falling from the separation hopper 4. By rotating, the mixture is evenly dispersed onto the surface of the filter element 13, avoiding local clogging of the filter element. The filter element 13 is used to separate the metal debris and cutting fluid in the mixture, trapping the debris while allowing the cutting fluid to permeate through, achieving the purification and recovery of the cutting fluid.
[0024] In the specific implementation process, a multi-axis CNC sawing machine 14 is installed on the upper surface of the processing platform 1. The multi-axis CNC sawing machine 14 is an existing technology product, and its specific working method and principle will not be described in detail here. As a core processing component, the multi-axis CNC sawing machine 14 can realize multi-directional, high-precision sawing actions to meet the complex sawing processing requirements of automotive parts. An automotive part workpiece 15 is clamped and fixed on the upper surface of the processing platform 1. The processing platform 1 is equipped with a fixture for clamping and fixing the automotive part workpiece 15, which is also existing technology and will not be described in detail here. The automotive part workpiece 15 is located below the multi-axis CNC sawing machine 14. Workpiece 15 is the object to be sawed. By clamping and fixing, the position of the workpiece is ensured to be stable during the processing, so as to avoid displacement during sawing and thus avoid processing errors. An automatic opening and closing protective cover 16 is installed on the upper surface of the processing platform 1. The automatic opening and closing protective cover 16 covers the outer surface of the multi-axis CNC sawing machine 14 and the automotive part workpiece 15. The automatic opening and closing protective cover 16 is used to cover the sawing area, which plays a safety protection role, prevents debris from flying and injuring people during sawing, and reduces the pollution of the processing area by external dust and other impurities. The automatic opening and closing protective cover 16 is an existing technology product, and its specific working method and principle will not be described in detail here.
[0025] A partition 17 is fixedly connected to the inner wall of the cavity of the mounting plate 2. A through hole is opened on the side surface of the partition 17. The transmission rod 6 is rotatably connected to the inside of the through hole on the side surface of the partition 17. The partition 17 is used to support the rotation of the transmission rod 6, ensuring that the transmission rod 6 rotates stably in the cavity, and at the same time, it separates the internal space of the cavity. A first servo motor 18 is provided at one end of the transmission rod 6. The first servo motor 18 is fixedly connected to the bottom of the cavity of the mounting plate 2. The first servo motor 18 is electrically connected to an external power supply and an external control switch. The first servo motor 18 is controlled by the external control switch. The power output end of the first servo motor 18 is fixedly connected to one end of the transmission rod 6, and the other end of the transmission rod 6 is rotatably connected to the inner wall of the cavity of the mounting plate 2. When the first servo motor 18 is started, the power output end of the first servo motor 18 rotates and drives the transmission rod 6 to rotate.
[0026] The filter tank 10 has a cavity at its lower end and a through hole at its bottom. The through hole at the bottom of the filter tank 10 is connected to the cavity at its lower end. A guide groove is provided at the bottom of the filter tank 10 to guide the filtered pure cutting fluid out of the filter tank 10 for easy collection and recycling.
[0027] The guide pipe 12 has an inlet / outlet hole at its upper end, which receives the portion of the mixture extending from the separation bucket 4 into the guide pipe 12, ensuring that the mixture can smoothly enter the guide pipe 12. The outer surface of the guide pipe 12 has dispersion holes, which evenly disperse the mixture within the guide pipe 12 onto the surface of the filter element 13, improving the uniformity of filtration. A rotating rod 19 is fixedly connected to the lower end of the guide pipe 12. When the rotating rod 19 rotates, it drives the guide pipe 12 to rotate synchronously. The rotating rod 19 is rotatably connected to the bottom through hole inside the filter tank 10. The rotating rod 19 and the bottom through hole inside the filter tank 10 are sealed by a shaft seal, preventing leakage without affecting the rotation of the rotating rod 19. The lower end of the rotating rod 19 extends into the lower cavity of the filter tank 10. A second driven bevel gear 20 is fixedly connected to the lower end of the rod 19. When the second driven bevel gear 20 rotates, it drives the rotating rod 19 to rotate. A second transmission bevel gear 21 meshes below the second driven bevel gear 20. When the second transmission bevel gear 21 rotates, it drives the second driven bevel gear 20 to rotate. A second servo motor 22 is provided at one end of the second transmission bevel gear 21. The power output end of the second servo motor 22 is fixedly connected to one end of the second transmission bevel gear 21. The second servo motor 22 is fixedly connected to the inner wall of the lower cavity of the filter tank 10. The second servo motor 22 is electrically connected to an external power supply and an external control switch. The second servo motor 22 is controlled and started by the external control switch. When the power output end of the second servo motor 22 rotates, it drives the second transmission bevel gear 21 to rotate.
[0028] The inner wall of the separation hopper 4 is fixedly connected to a filter screen 23. The filter screen 23 is used to perform preliminary filtration on the mixture falling into the separation hopper 4, intercepting larger metal debris and reducing the processing pressure of the subsequent filtration structure 5. The lower end of the separation hopper 4 extends into the inlet and outlet hole at the upper end of the guide pipe 12 to ensure that the mixture that has undergone preliminary filtration in the separation hopper 4 can flow into the guide pipe 12 completely to avoid leakage. One end of each sliding block 24 on both sides of the separation hopper 4 is provided with a threaded hole. One end of each of the first driven bevel gears 8 is threadedly connected to the threaded hole at one end of each sliding block 24 on both sides of the separation hopper 4. The threaded hole is used to connect with the threaded rod 9, so that the rotation of the threaded rod 9 can be converted into the linear movement of the sliding block 24, realizing the translational adjustment of the separation hopper 4. The ends of the two first driven bevel gears 8 are rotatably connected to the inner walls of the sliding grooves on both sides of the mounting groove on the lower surface of the mounting plate 2.
[0029] The working principle of this utility model is as follows: Before processing, the operator first clamps and fixes the automotive part workpiece 15 using a pre-installed fixture on the processing platform 1, so that the automotive part workpiece 15 is located below the multi-axis CNC sawing machine 14. Then, the automatic opening and closing protective cover 16 closes, covering the multi-axis CNC sawing machine 14 and the automotive part workpiece 15 to achieve safety protection and dust prevention. The multi-axis CNC sawing machine 14 is started to saw the automotive part workpiece 15. The metal chips and cutting fluid mixture generated by sawing fall into the chip discharge groove of the processing platform 1 and are quickly discharged to the separation hopper 4 below. The filter screen 23 on the inner wall of the separation hopper 4 initially filters the mixture and intercepts larger chips. The mixture after initial filtration flows through the lower end of the separation hopper 4 into the guide pipe 12, which extends to the inlet and outlet hole at the upper end of the guide pipe 12. Then, the second servo motor 22 is started. The power output end of the second servo motor 22 drives the second transmission bevel gear 21 to rotate. The second transmission bevel gear 21 meshes and drives the second driven gear. The bevel gear 20 rotates, and the second driven bevel gear 20 drives the fixed rotating rod 19 to rotate. The rotating rod 19 synchronously drives the guide tube 12 to rotate. The mixture in the guide tube 12 is evenly dispersed to the surface of the filter element 13 through the dispersion holes on the outer surface. The filter element 13 finely separates the debris and cutting fluid. The purified cutting fluid is discharged along the bottom guide groove in the filter tank 10 for easy recycling. When it is necessary to clean the large debris in the separation bucket 4, the first servo motor 18 is started. The power output end of the first servo motor 18 drives the transmission rod 6 to rotate. The first transmission bevel gear 7 on the transmission rod 6 meshes and drives the first driven bevel gear 8 to rotate. The first driven bevel gear 8 drives the lead screw 9 to rotate in the through hole and the slide groove of the cavity of the mounting plate 2. The lead screw 9 is threadedly engaged with the threaded holes of the sliding blocks 24 on both sides of the separation bucket 4. The sliding blocks 24 drive the separation bucket 4 to move to the outside of the processing platform 1 along the slide groove. After cleaning is completed, the first servo motor 18 is started and the power output end of the first servo motor 18 is reversed, thereby resetting the separation bucket 4.
[0030] The circuits and controls involved in this utility model are all existing technologies, and will not be described in detail here.
[0031] The above description is merely an embodiment of this utility model and does not limit the patent scope of this utility model. Any equivalent structural or procedural transformations made based on the content of this utility model specification and drawings, or direct or indirect applications in other related technical fields, are similarly included within the patent protection scope of this utility model.
Claims
1. A high-efficiency sawing and processing equipment for automotive parts, comprising a processing platform (1), a mounting plate (2), a pushing structure (3), a separating hopper (4), and a filtering structure (5), characterized in that, The upper surface of the processing platform (1) is provided with a chip removal groove, and the lower surface of the processing platform (1) is fixedly connected with a mounting plate (2). The lower surface of the mounting plate (2) is provided with a mounting groove, and the inner walls on both sides of the mounting groove on the lower surface of the mounting plate (2) are provided with sliding grooves. The interior of the mounting plate (2) is provided with a cavity, and the inner wall of the cavity of the mounting plate (2) is provided with two through holes. The two through holes on the inner wall of the cavity of the mounting plate (2) are respectively connected to the sliding grooves on both sides of the mounting groove on the lower surface of the mounting plate (2). A pushing structure (3) is provided inside the cavity of the mounting plate (2). 3) Includes a transmission rod (6), a first transmission bevel gear (7), a first driven bevel gear (8), and a lead screw (9). The transmission rod (6) is rotatably disposed inside the cavity of the mounting plate (2). Two first transmission bevel gears (7) are fixedly connected to the outer surface of the transmission rod (6). One side of each of the two first transmission bevel gears (7) is meshed with a first driven bevel gear (8). One end of each of the two first driven bevel gears (8) is fixedly connected to a lead screw (9). The lead screws (9) at one end of each of the two first driven bevel gears (8) are rotatably connected to the cavity of the mounting plate (2). Inside the two through holes in the wall, the screw (9) at one end of the first driven bevel gear (8) extends away from the first driven bevel gear (8) and extends to the inner wall grooves on both sides of the mounting groove on the lower surface of the mounting plate (2). A separation bucket (4) is slidably installed inside the mounting groove on the lower surface of the mounting plate (2). The separation bucket (4) is located below the chip removal groove on the upper surface of the processing platform (1). Sliding blocks (24) are fixedly connected to both sides of the separation bucket (4). The sliding blocks (24) on both sides of the separation bucket (4) are slidably installed on the inner wall grooves on both sides of the mounting groove on the lower surface of the mounting plate (2). Inside the tank, a filter structure (5) is provided at the lower end of the separation bucket (4). The filter structure (5) includes a filter tank (10), a sealing cover (11), a guide pipe (12), and a filter element (13). The upper end of the filter tank (10) is threaded with a sealing cover (11). A fixing hole is provided on the upper surface of the sealing cover (11). The fixing hole on the upper surface of the sealing cover (11) is fixedly connected to the lower outer surface of the separation bucket (4). The guide pipe (12) is rotatably arranged inside the filter tank (10). The filter element (13) is sleeved on the outer surface of the guide pipe (12).
2. The high-efficiency sawing equipment for automotive parts according to claim 1, characterized in that, The upper surface of the processing platform (1) is equipped with a multi-axis CNC sawing machine (14), and the upper surface of the processing platform (1) clamps and fixes an automotive part workpiece (15). The automotive part workpiece (15) is located below the multi-axis CNC sawing machine (14). The upper surface of the processing platform (1) is equipped with an automatic opening and closing protective cover (16), which covers the outer surface of the multi-axis CNC sawing machine (14) and the automotive part workpiece (15).
3. The high-efficiency sawing equipment for automotive parts according to claim 1, characterized in that, A partition (17) is fixedly connected to the inner wall of the cavity of the mounting plate (2). A through hole is opened on the side surface of the partition (17). The transmission rod (6) is rotatably connected to the inside of the through hole on the side surface of the partition (17). A first servo motor (18) is provided at one end of the transmission rod (6). The first servo motor (18) is fixedly connected to the bottom of the cavity of the mounting plate (2). The power output end of the first servo motor (18) is fixedly connected to one end of the transmission rod (6). The other end of the transmission rod (6) is rotatably connected to the inner wall of the cavity of the mounting plate (2).
4. The high-efficiency sawing equipment for automotive parts according to claim 1, characterized in that, The filter tank (10) has a cavity at its lower end and a through hole at the bottom. The through hole at the bottom of the filter tank (10) is connected to the cavity at the lower end of the filter tank (10). A guide groove is provided at the bottom of the filter tank (10).
5. The high-efficiency sawing equipment for automotive parts according to claim 1, characterized in that, The upper end of the guide pipe (12) is provided with an inlet and outlet hole, and the outer surface of the guide pipe (12) is provided with a dispersion hole. The lower end of the guide pipe (12) is fixedly connected to a rotating rod (19). The rotating rod (19) is rotatably connected to the bottom through hole of the filter tank (10). The lower end of the rotating rod (19) extends to the lower cavity of the filter tank (10). The lower end of the rotating rod (19) is fixedly connected to a second driven bevel gear (20). The second driven bevel gear (20) is meshed with a second transmission bevel gear (21) below the second driven bevel gear (20). A second servo motor (22) is provided at one end of the second transmission bevel gear (21). The power output end of the second servo motor (22) is fixedly connected to one end of the second transmission bevel gear (21). The second servo motor (22) is fixedly connected to the inner wall of the lower cavity of the filter tank (10).
6. The high-efficiency sawing equipment for automotive parts according to claim 1, characterized in that, The inner wall of the separation bucket (4) is fixedly connected to a filter screen (23). The lower end of the separation bucket (4) extends into the inlet and outlet hole at the upper end of the guide pipe (12). One end of each sliding block (24) on both sides of the separation bucket (4) is provided with a threaded hole. The screws (9) at one end of each of the two first driven bevel gears (8) are respectively threaded into the threaded holes at one end of each of the sliding blocks (24) on both sides of the separation bucket (4). The ends of the screws (9) at one end of each of the two first driven bevel gears (8) away from the first driven bevel gears (8) are respectively rotatably connected to the inner walls of the sliding grooves on both sides of the mounting groove on the lower surface of the mounting plate (2).