Grinding machine filters and grinding machine cooling water circulation systems for tool processing
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-09
- Publication Date
- 2026-08-11
AI Technical Summary
本发明提供了一种用于刀具加工的磨床过滤器及磨床冷却水循环系统,解决了过滤效率低下的问题
[0019]1.通过倾斜的传输带,使混合有金属冷却液从而进料管进入,从出料导管上的出料嘴将液体从而倾斜的传输带向下流动,通过液体向下流动,传输带向上转动,通过柔性磁体带将液体的金属颗粒吸引起来,从而通过传输带带动金属颗粒向上移动,从而将金属颗粒与液体分离,同时通过与传输带相互垂直的挤压装置二,对金属颗粒进行挤压,将金属颗粒内的液体挤出,使液体更好分离,通过刮板一将传输带上的金属颗粒挂下,从而更好的将冷却液内的金属颗粒进行初步分离,更好的进行分离。
Smart Images

Figure CN119017265B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of machining technology, specifically relating to a grinding machine filter and a grinding machine cooling water circulation system for tool machining. Background Technology
[0002] In machining processes, the use of cutting tools is indispensable. However, prolonged use of these tools leads to wear, which affects the machining accuracy of parts. To ensure that the produced parts meet accuracy requirements, the cutting tools need to be ground. With the rapid development of high-speed grinding and heavy-duty grinding technologies to improve machining accuracy, in addition to selecting appropriate grinding parameters, it is also essential to improve the circulation quality of the coolant. Due to the fine particles of impurities, the high viscosity of the medium, and the low separation efficiency and unsatisfactory results, the coolant circulation efficiency is low, leading to incomplete filtration and leaving metal particles remaining in the liquid, thus affecting grinding. Summary of the Invention
[0003] To address the problems mentioned in the background section, this invention provides a grinding machine filter and a grinding machine cooling water circulation system for tool processing, solving the problem of low filtration efficiency.
[0004] To achieve the above objectives, the present invention provides the following technical solution: a grinding machine cooling water circulation system, comprising:
[0005] The processor processes the received information;
[0006] The startup control module is used to control the startup and operation of the equipment;
[0007] The extrusion sensing module is used to observe the extrusion of the filter by the extrusion rollers;
[0008] The monitoring module is used to monitor the falling of filter residue, ensuring that the filter residue falls into the placement device, and at the same time monitors the placement status inside the placement device.
[0009] The alarm module is used to display reminders of available space within the device and to constantly alert the user to the pressing status of the extrusion rollers.
[0010] Preferably, the monitoring module employs at least two of the following technologies: radar, lidar, infrared sensor, or image recognition technology, to achieve accurate monitoring of coolant and metal particles.
[0011] Preferably, the extrusion sensing module uses a pressure sensor to control the extrusion force of the extrusion rollers on the filter residue, so that the overall extrusion force of the extrusion rollers is the same.
[0012] A grinding machine filter for tool processing includes a housing. The top and side surfaces of the housing are respectively connected by hinges to a first door, a second door, and a third door. A support leg is fixedly connected to the bottom of the side surface of the housing. The first door and the second door correspond to each other. A stop block is fixedly connected below the opposite side of the first door and the second door on the inner side of the housing. A feed pipe is fixedly connected through one side of the top surface of the housing, and a discharge pipe is fixedly connected through one side of the bottom surface of the housing. The inner wall of the discharge pipe is tangent to the inner wall of the bottom of the housing.
[0013] Preferably, a motor is fixedly mounted on the back of the housing, and the output end of the motor is connected to a rotating shaft. A magnet is disposed inside the housing on the surface of the rotating shaft, and a fixed cylinder is fixedly connected to the surface of the magnet. An inclined guide plate is fixedly connected inside the housing, one side of which is arc-shaped and contacts the fixed cylinder. A pressing device is disposed above the fixed cylinder inside the housing, perpendicular to the fixed cylinder. The rotating shaft penetrates the housing, and a gear is fixedly mounted on the other end of the rotating shaft. A second rotating shaft is connected through the rotating shaft above the first rotating shaft inside the housing. A gear two is mounted on one end surface of the rotating shaft two. The gear one and gear two are connected to each other by a gear belt. A wheel is connected to the surface of the rotating shaft two. A transmission belt is provided on the surface of the wheel. A flexible magnetic belt is provided inside the transmission belt. The transmission belt is inclined downward. A support plate is fixedly connected to the inner side of the transmission belt inside the housing. An extrusion device two is provided above the inclined transmission belt. The extrusion device two is perpendicular to the transmission belt. A discharge conduit is fixedly connected to one end of the feed pipe. The discharge nozzle on the discharge conduit corresponds to the upper surface of the transmission belt. The inclined transmission belt is located above the inclined guide plate.
[0014] Preferably, a scraper one and a scraper two are fixedly connected inside the housing. One end of scraper one is tangent to the surface of the conveyor belt, and one end of scraper two is tangent to the surface of the fixed cylinder. Scraper one and scraper two are inclined relative to each other, with scraper one located above scraper two. A guide tube is fixedly connected to the lower end of scraper one, and a discharge guide plate is fixedly connected to the lower end of scraper two. The end of the guide tube is located above scraper two. A protective guide plate is fixedly connected to the bottom of scraper one. The protective guide plate is located below the inclined conveyor belt and above the extrusion device one, and prevents... The end of the guide plate is located on the inclined guide plate, and the end of the inclined guide plate is fixedly connected to the liquid outlet guide plate. The inner side of the liquid outlet guide plate is provided with a sliding groove, and a sliding block is slidably connected inside the sliding groove. A filter plate is provided inside the sliding block. Baffle 1 and Baffle 2 are fixedly connected below the scraper 2. Baffle 1 is located below the side of the fixed cylinder and is fixedly connected to the upper side of the liquid outlet guide plate. Baffle 2 is located on the side of Baffle 1. A fixed mounting plate is fixedly connected to one end of the side of the sliding block. The fixed mounting plate is fixedly installed to the surface of the housing by bolts.
[0015] Preferably, a fixing sleeve is fixedly connected inside the inclined bottom of the housing, a rotating shaft three is movably connected inside the fixing sleeve, a baffle is fixedly connected to the surface of the rotating shaft three, a placement frame is fixedly connected to the top of the rotating shaft three, a filter bag is placed inside the placement frame, a bevel gear one is installed on the bottom surface of the rotating shaft three, a motor two is fixedly installed on the inner side of the support leg, a bevel gear two is connected to one end of the output shaft of the motor two, the bevel gear one and the bevel gear two mesh with each other, the placement frame and the filter bag are located below the discharge guide plate, and the placement frame and the filter bag are located on the side of the baffle two.
[0016] Preferably, the extrusion device includes a fixed block, a movable shaft, and a fixed groove. The two ends of the movable shaft are slidably connected to the fixed groove. The fixed block is fixedly connected to the housing. A pressure roller is movably connected to the surface of the movable shaft. The two ends of the movable shaft are fixedly connected to the movable block. A fixed rod is fixedly connected to the top surface of the movable block. The fixed rod passes through the fixed block. A spring is provided on the surface of the fixed rod between the fixed block and the movable block. The pressure roller and the fixed cylinder correspond to each other.
[0017] Preferably, the extrusion device two includes a fixed block two, a movable shaft two, and a fixed groove two. The two ends of the movable shaft two are slidably connected to the fixed groove two. The fixed block two is fixedly connected to the housing. A pressure roller two is movably connected to the surface of the movable shaft two. The two ends of the movable shaft two are fixedly connected to the movable block two. A fixed rod two is fixedly connected to the top surface of the movable block two. The fixed rod two passes through the fixed block two. A spring two is provided on the surface of the fixed rod two between the fixed block two and the movable block two. The pressure roller two corresponds to the conveyor belt.
[0018] Compared with the prior art, the beneficial effects of the present invention are:
[0019] 1. A metal-cooled liquid mixed with a flexible magnetic belt enters through the feed pipe and flows downwards through the discharge nozzle on the discharge pipe. As the liquid flows downwards, the conveyor belt rotates upwards, attracting metal particles from the liquid via a flexible magnetic belt. The conveyor belt then moves the metal particles upwards, separating them from the liquid. Simultaneously, a second extrusion device perpendicular to the conveyor belt extrudes the liquid from the metal particles, further improving the separation. Finally, a scraper removes the metal particles from the conveyor belt, further enhancing the initial and final separation of the metal particles in the coolant.
[0020] 2. The rotation of the fixed cylinder and the magnet lifts the metal particles, while the extrusion device 1, which is perpendicular to the fixed cylinder, extrudes the liquid inside the metal particles, allowing for better separation of the liquid. The scraper 2 hangs the metal particles off the fixed cylinder, thus performing a preliminary separation of the metal particles in the filtered coolant, and further improving the separation.
[0021] 3. The coolant is filtered again through the internal filter plate to remove particles. The filter plate is slidably connected to the slider plate through the groove in the outlet guide plate, which allows the filter plate to be replaced, thus improving the filtration efficiency. Bolts are used for easy installation, disassembly and replacement.
[0022] 4. The second motor drives the second bevel gear to rotate, causing the filter bag to rotate. This causes the metal particles inside the filter bag to rotate, resulting in centrifugal force, which throws out the coolant from the metal particles, thus filtering them again for better separation.
[0023] 5. The coolant flowing out through the liquid outlet guide plate and the coolant filtered through the filter bag flow to the bottom of the shell for better collection of the filtered coolant. At the same time, the inner wall of the discharge pipe is tangent to the inner wall of the bottom of the shell, so that the discharge pipe can discharge more effectively and can be reused more easily. Attached Figure Description
[0024] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used in conjunction with embodiments of the invention to explain the invention and do not constitute a limitation thereof. In the drawings:
[0025] Figure 1 This is a system diagram of the present invention;
[0026] Figure 2This is a complete structural diagram of the present invention;
[0027] Figure 3 This is a side view structural diagram of the present invention;
[0028] Figure 4 This is a bottom view structural diagram of the present invention;
[0029] Figure 5 This is a cross-sectional view of the present invention;
[0030] Figure 6 This is a first internal structure diagram of the present invention;
[0031] Figure 7 This is a second internal structure diagram of the present invention;
[0032] Figure 8 This is the third internal structure diagram of the present invention;
[0033] Figure 9 For the present invention Figure 8 Enlarged structural diagram at point A in the middle;
[0034] Figure 10 For the present invention Figure 8 Enlarged structural diagram at point B in the middle.
[0035] The components include: 1. Shell; 2. Support leg; 3. Door 1; 4. Door 2; 5. Door 3; 6. Feed pipe; 7. Fixed mounting plate; 8. Fixed rod 2; 9. Fixed rod 1; 10. Rotating shaft 1; 11. Gear 1; 12. Gear belt; 13. Rotating shaft 2; 14. Gear 2; 15. Motor 1; 16. Discharge pipe; 17. Motor 2; 18. Bevel gear 2; 19. Rotating shaft 3; 20. Bevel gear 1; 21. Movable shaft 2; 22. Pressure roller 2; 23. Protective guide plate; 24. Support plate; 25. Rotary wheel; 26. Flexible magnetic belt; 27. Conveyor belt; 28. Scraper 1 29. Conduit; 30. Pressure roller 1; 31. Magnet; 32. Scraper 2; 33. Discharge guide plate; 34. Baffle 1; 35. Baffle 2; 36. Placement frame; 37. Filter bag; 38. Discharge conduit; 39. Movable shaft 1; 40. Fixed cylinder; 41. Inclined guide plate; 42. Liquid discharge guide plate; 43. Slide groove; 44. Filter plate; 45. Sliding plate; 46. Baffle plate; 47. Fixed sleeve; 48. Movable block 2; 49. Fixed groove 2; 50. Spring 2; 51. Fixed block 2; 52. Fixed groove 1; 53. Movable block 1; 54. Spring 1; 55. Fixed block 1. Detailed Implementation
[0036] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0037] Please see Figure 1-10 The present invention provides the following technical solution: a grinding machine filter and a grinding machine cooling water circulation system for tool processing.
[0038] For details, please refer to Figure 1 Grinding machine cooling water circulation system, including
[0039] The processor processes the received information;
[0040] The startup control module is used to control the startup and operation of the equipment;
[0041] The extrusion sensing module is used to observe the extrusion of the filter by the extrusion rollers;
[0042] The monitoring module is used to monitor the falling of filter residue, ensuring that the filter residue falls into the placement device, and at the same time monitors the placement status inside the placement device.
[0043] The alarm module is used to display reminders of available space within the device and to constantly alert the user to the pressing status of the extrusion rollers.
[0044] The monitoring module employs at least two of the following technologies: radar, lidar, infrared sensors, or image recognition technology, to achieve precise monitoring of coolant and metal particles.
[0045] Better and more precise monitoring of coolant and metal particles ensures that metal particles fall accurately into the device.
[0046] The extrusion sensing module uses a pressure sensor to control the extrusion rollers' extrusion force on the filter residue, ensuring that the overall extrusion force of the extrusion rollers is the same.
[0047] To better observe the force applied by the extrusion device and to better enable the extrusion device to perform the extrusion.
[0048] Please refer to Figure 2 , Figure 3 , Figure 4A grinding machine filter for tool processing includes a housing 1. The top and side surfaces of the housing 1 are respectively connected by hinges to a first door 3, a second door 4, and a third door 5. A support leg 2 is fixedly connected to the bottom side surface of the housing 1. The first door 3 and the second door 4 correspond to each other. A stop block is fixedly connected below the opposite position of the first door 3 and the second door 4 on the inner side of the housing 1. A feed pipe 6 is fixedly connected through one side of the top surface of the housing 1. A discharge pipe 16 is fixedly connected through one side of the bottom surface of the housing 1. The inner wall of the discharge pipe 16 is tangent to the inner wall of the bottom of the housing 1.
[0049] The scraper is cleaned better through the first door 3, the second door 4, and the third door 5. The coolant flowing out through the liquid outlet guide plate 42 and the coolant filtered by the filter bag 37 flow to the bottom of the shell 1 for better collection of the filtered coolant. At the same time, the inner wall of the discharge pipe 16 is tangent to the inner wall of the bottom of the shell 1, so that the discharge pipe 16 can be discharged better and reused better.
[0050] Please refer to Figure 5 , Figure 6 , Figure 7 , Figure 8 A motor 15 is fixedly mounted on the back of the housing 1. The output end of the motor 15 is connected to a rotating shaft 10. A magnet 31 is disposed inside the housing 1 on the surface of the rotating shaft 10. A fixed cylinder 40 is fixedly connected to the surface of the magnet 31. An inclined guide plate 41 is fixedly connected inside the housing 1. One side of the inclined guide plate 41 is arc-shaped and contacts the fixed cylinder 40. A pressing device 1 is disposed above the fixed cylinder 40 inside the housing 1. The pressing device 1 is perpendicular to the fixed cylinder 40. The rotating shaft 10 passes through the housing 1. A gear 11 is fixedly mounted on the surface of the other end of the rotating shaft 10. A rotating shaft 2 13 passes through the housing 1 above the rotating shaft 10. Gear 14 is mounted on one end of shaft 13. Gear 11 and gear 14 are meshed together by gear belt 12. A wheel 25 is connected to the surface of shaft 13. A conveyor belt 27 is provided on the surface of wheel 25. A flexible magnet belt 26 is provided inside the conveyor belt 27. The conveyor belt 27 is inclined downward. A support plate 24 is fixedly connected to the inner side of the conveyor belt 27 inside the housing 1. An extrusion device 2 is provided above the inclined conveyor belt 27. The extrusion device 2 is perpendicular to the conveyor belt 27. A discharge conduit 38 is fixedly connected to one end of the feed pipe 6. The discharge nozzle on the discharge conduit 38 corresponds to the upper surface of the conveyor belt 27. The inclined conveyor belt 27 is located above the inclined guide plate 41.
[0051] Please refer to Figure 5 , Figure 6 , Figure 7 , Figure 8Inside the housing 1, scraper 28 and scraper 32 are fixedly connected. One end of scraper 28 is tangent to the surface of the conveyor belt 27, and one end of scraper 32 is tangent to the surface of the fixed cylinder 40. Scraper 28 and scraper 32 are inclined relative to each other, with scraper 28 located above scraper 32. A guide tube 29 is fixedly connected to the lower end of scraper 28, and a discharge guide plate 33 is fixedly connected to the lower end of scraper 32. The end of the guide tube 29 is located above scraper 32. A protective guide plate 23 is fixedly connected to the bottom of scraper 28. The protective guide plate 23 is located below the inclined conveyor belt 27 and above the extrusion device 1, and provides protection against... The end of the guide plate 23 is located on the inclined guide plate 41. The end of the inclined guide plate 41 is fixedly connected to the liquid outlet guide plate 42. The inner side of the liquid outlet guide plate 42 is provided with a sliding groove 43. The sliding groove 43 is slidably connected to the sliding block 45. The sliding block 45 is provided with a filter plate 44. The scraper 2 32 is fixedly connected to the lower side of the baffle 1 34 and the baffle 2 35. The baffle 1 34 is located below the side of the fixed cylinder 40 and is fixedly connected to the upper side of the liquid outlet guide plate 42. The baffle 2 35 is located on the side of the baffle 1 34. The side of the sliding block 45 is fixedly connected to a fixed mounting plate 7. The fixed mounting plate 7 is fixedly installed to the surface of the housing 1 by bolts.
[0052] The coolant is filtered again by the internal filter plate 44, removing particles from the coolant. Simultaneously, the filter plate 44 is slidably connected to the sliding block 45 via the groove 43 in the liquid outlet guide plate 42, allowing for replacement and improved filtration efficiency. The fixed mounting plate 7 on the sliding block 45 is bolted to the housing 1 for easy installation, disassembly, and replacement. The protective guide plate 23 is located below the inclined conveyor belt 27 and above the first extrusion device, with its end resting on the inclined guide plate 41. This allows the protective guide plate 23 to better catch the liquid dripping from the conveyor belt 27, causing the liquid to fall onto the inclined guide plate 41, thus facilitating better extrusion filtration after passing through the fixed cylinder 40 and the first extrusion device.
[0053] Please refer to Figure 5 , Figure 6 , Figure 7 , Figure 8A fixed sleeve 47 is fixedly connected inside the inclined bottom of the housing 1. A rotating shaft 19 is movably connected inside the fixed sleeve 47. A baffle 46 is fixedly connected to the surface of the rotating shaft 19. A placement frame 36 is fixedly connected to the top of the rotating shaft 19. A filter bag 37 is placed inside the placement frame 36. A bevel gear 20 is installed on the bottom surface of the rotating shaft 19. A motor 17 is fixedly installed on the inner side of the support leg 2. A bevel gear 18 is connected to one end of the output shaft of the motor 17. The bevel gear 20 and the bevel gear 18 mesh with each other. The placement frame 36 and the filter bag 37 are located below the discharge guide plate 33 and on the side of the baffle plate 35.
[0054] Once the critical point is reached in the storage space of the filter bag 37 in the placement frame 36, personnel open the box door 3 and tie the port of the filter bag 37. Then, the motor 17 drives the bevel gear 18 to rotate. The bevel gear 20 meshes with the bevel gear 18, causing the bevel gear 20 to drive the rotating shaft 19 to rotate, which in turn rotates the placement frame 36, thereby rotating the filter bag 37. This causes the metal particles inside the filter bag 37 to rotate, resulting in centrifugal force and the expulsion of coolant from the metal particles, thus achieving a second filtration and better separation. At the same time, the baffle 46 on the rotating shaft 19 is slidably connected to the fixed sleeve 47, which further facilitates the rotation of the rotating shaft 19.
[0055] Please refer to Figure 8 , Figure 9 The extrusion device includes a fixed block 55, a movable shaft 39, and a fixed groove 52. The two ends of the movable shaft 39 are slidably connected to the fixed groove 52. The fixed block 55 is fixedly connected to the housing 1. A pressure roller 30 is movably connected to the surface of the movable shaft 39. The two ends of the movable shaft 39 are fixedly connected to the movable block 53. A fixed rod 9 is fixedly connected to the top surface of the movable block 53. The fixed rod 9 passes through the fixed block 55. A spring 54 is provided on the surface of the fixed rod 9 between the fixed block 55 and the movable block 53. The pressure roller 30 and the fixed cylinder 40 correspond to each other.
[0056] A nut is threaded onto the surface of the fixing rod 9. By rotating the nut, the fixing rod 9 is moved, which in turn moves the pressure roller 30, allowing the pressure roller 30 to better contact the fixing cylinder 40. This allows the pressure roller 30 to better squeeze the metal particles, thereby better separating the liquid and allowing for better adjustment of the squeezing pressure of the pressure roller 30.
[0057] Please refer to Figure 8 , Figure 10The extrusion device 2 includes a fixed block 2 51, a movable shaft 2 21, and a fixed groove 2 49. The two ends of the movable shaft 2 21 are slidably connected to the fixed groove 2 49. The fixed block 2 51 is fixedly connected to the housing 1. The surface of the movable shaft 2 21 is movably connected to a pressure roller 2 22. The two ends of the movable shaft 2 21 are fixedly connected to a movable block 2 48. The top surface of the movable block 2 48 is fixedly connected to a fixed rod 2 8. The fixed rod 2 8 passes through the fixed block 2 51. A spring 2 50 is provided on the surface of the fixed rod 2 8 between the fixed block 2 51 and the movable block 2 48. The pressure roller 2 22 corresponds to the conveyor belt 27.
[0058] A nut is threaded onto the surface of the fixed rod 28. By rotating the nut, the fixed rod 28 is moved, which in turn moves the pressure roller 22, allowing the pressure roller 22 to better contact the conveyor belt 27. This allows the pressure roller 22 to better squeeze the metal particles, thereby better separating the liquid and allowing for better adjustment of the squeezing pressure of the pressure roller 22.
[0059] Working principle and usage process of this invention:
[0060] During operation, motor 15 drives shaft 10 to rotate, which in turn rotates the fixed cylinder 40, causing gear 11 to rotate. Gear 11 and gear 2 14 are meshed together via gear belt 12. When gear 11 rotates, gear belt 12 drives gear 2 14 to rotate, which in turn rotates shaft 2 13. Shaft 2 13 then drives wheel 25 and conveyor belt 27 to rotate. The inclined conveyor belt 27, with its discharge nozzle on discharge duct 38 corresponding to the upper surface of the conveyor belt 27, allows the metal coolant mixture to enter through inlet pipe 6. The liquid flows downwards through the discharge nozzle on discharge duct 38 and upwards through the inclined conveyor belt 27. The conveyor belt 27 rotates, and the flexible magnet 26 inside attracts the liquid metal particles, causing them to move upwards along the conveyor belt 27, thus separating the metal particles from the liquid. Simultaneously, a second extrusion device perpendicular to the conveyor belt 27 squeezes the metal particles, expelling the liquid within them, further improving liquid separation. Meanwhile, one end of a scraper 28 is tangential to the surface of the conveyor belt 27, allowing the scraper 28 to hang the metal particles from the conveyor belt 27, causing them to fall onto a second scraper 32 via a guide tube 29. This further improves the initial separation of metal particles in the coolant, allowing them to flow down the inclined conveyor belt 27. On the inclined guide plate 41, the arc-shaped inclined guide plate 41 comes into contact with the fixed cylinder 40, so that the coolant comes into contact with the fixed cylinder 40 again. At the same time, the magnet 31 inside the fixed cylinder 40 attracts the metal particles remaining in the liquid again. The rotation of the fixed cylinder 40 and the magnet 31 lifts the metal particles. At the same time, the extrusion device 1, which is perpendicular to the fixed cylinder 40, extrudes the liquid from the metal particles, making the liquid separate better again. Meanwhile, one end of the scraper 2 32 is tangential to the surface of the fixed cylinder 40, so the scraper 2 32 hangs the metal particles on the fixed cylinder 40 and causes the metal particles to fall down along the scraper 2 32 through the discharge guide plate 33 into the filter bag 37 in the placement frame 36. The filtered coolant undergoes a second preliminary separation of metal particles for better separation. The filtered coolant is then drawn out by the fixed cylinder 40 and flows into the outlet guide plate 42. There, it is filtered again by the internal filter plate 44, removing particles. Simultaneously, the outlet guide plate 42 is slidably connected to the sliding block 45 via a groove 43, allowing for easy replacement of the filter plate 44 and further improving filtration efficiency. The sliding block 45 is fixed to the housing 1 by bolts via a mounting plate 7, facilitating easy installation, disassembly, and replacement. Once the storage space within the filter bag 37 in the placement frame 36 reaches its critical point, the personnel open the door 3 and tighten the ends of the filter bag 37.Then, motor 217 drives bevel gear 218 to rotate. Bevel gear 120 meshes with bevel gear 218, causing bevel gear 20 to drive shaft 319 to rotate. This, in turn, rotates the placement frame 36, which in turn rotates the filter bag 37. This causes the metal particles inside the filter bag 37 to rotate, resulting in centrifugal force that ejects the coolant from the metal particles, thus achieving a second filtration and better separation. The coolant flowing out through the outlet guide plate 42 and the coolant filtered by the filter bag 37 flow to the bottom of the housing 1 for better collection. Simultaneously, the inner wall of the outlet pipe 16 is tangent to the inner wall of the bottom of the housing 1, allowing for better discharge and reuse.
[0061] Finally, it should be noted that the above descriptions are merely preferred embodiments of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A grinding machine filter for tool processing, using a grinding machine cooling water circulation system, characterized in that: The grinding machine cooling water circulation system includes: The processor processes the received information; The startup control module is used to control the startup and operation of the equipment; The extrusion sensing module is used to observe the extrusion of the filter by the extrusion rollers; The monitoring module is used to monitor the falling of filter residue, ensuring that the filter residue falls into the placement device, and at the same time monitors the placement status inside the placement device. The alarm module is used to display reminders of available space within the device and to constantly alert the user to the pressing status of the extrusion rollers. The monitoring module employs at least two of the following technologies: radar, lidar, infrared sensors, or image recognition technology, to achieve precise monitoring of coolant and metal particles. The extrusion sensing module uses a pressure sensor to control the extrusion force of the extrusion rollers on the filter residue, so that the overall extrusion force of the extrusion rollers is the same. The grinding machine filter includes a housing (1). The top and side surfaces of the housing (1) are respectively connected by hinges to a first door (3), a second door (4), and a third door (5). A support leg (2) is fixedly connected to the bottom of the side surface of the housing (1). The first door (3) and the second door (4) correspond to each other. A stop block is fixedly connected below the opposite position of the first door (3) and the second door (4) on the inner side of the housing (1). A feed pipe (6) is fixedly connected through one side of the top surface of the housing (1). A discharge pipe (16) is fixedly connected through one side of the bottom surface of the housing (1). The inner wall of the discharge pipe (16) is tangent to the inner wall of the bottom of the housing (1). A motor (15) is fixedly mounted on the back of the housing (1). The output end of the motor (15) is connected to a rotating shaft (10). A magnet (31) is provided inside the housing (1) on the surface of the rotating shaft (10). A fixed cylinder (40) is fixedly connected to the surface of the magnet (31). An inclined guide plate (41) is fixedly connected inside the housing (1). One side of the inclined guide plate (41) is set in an arc shape, and the arc-shaped inclined guide plate (41) is in contact with the fixed cylinder (40). An extrusion device is provided above the fixed cylinder (40) inside the housing (1). The extrusion device is perpendicular to the fixed cylinder (40). The rotating shaft (10) penetrates the housing (1). A gear (11) is fixedly mounted on the other end of the rotating shaft (10). A rotating shaft (13) is connected through the rotating shaft (10) inside the housing (1). Gear 2 (14) is mounted on one end surface of shaft 2 (13). Gear 1 (11) and gear 2 (14) are meshed together by gear belt (12). A rotating wheel (25) is connected to the surface of shaft 2 (13). A transmission belt (27) is provided on the surface of the rotating wheel (25). A flexible magnetic belt (26) is provided inside the transmission belt (27). The transmission belt (27) is inclined downward. A support plate (24) is fixedly connected to the inner side of the transmission belt (27) inside the housing (1). An extrusion device 2 is provided above the inclined transmission belt (27). The extrusion device 2 is perpendicular to the transmission belt (27). A discharge conduit (38) is fixedly connected to one end of the feed pipe (6). The discharge nozzle on the discharge conduit (38) corresponds to the upper surface of the transmission belt (27). The inclined transmission belt (27) is located above the inclined guide plate (41).
2. A grinding machine filter for tool processing according to claim 1, characterized in that: Inside the housing (1), scraper one (28) and scraper two (32) are fixedly connected. One end of scraper one (28) is tangent to the surface of the conveyor belt (27), and one end of scraper two (32) is tangent to the surface of the fixed cylinder (40). Scraper one (28) and scraper two (32) are inclined to each other. Scraper one (28) is located above scraper two (32). A guide tube (29) is fixedly connected below the end of scraper one (28), and a discharge guide plate (33) is fixedly connected below the end of scraper two (32). The end of the guide tube (29) is located above scraper two (32). A protective guide plate (23) is fixedly connected to the bottom of scraper one (28). The protective guide plate (23) is located below the inclined conveyor belt (27) and above the extrusion device one. (23) is located on the inclined guide plate (41). The end of the inclined guide plate (41) is fixedly connected to the liquid outlet guide plate (42). The inner side of the liquid outlet guide plate (42) is provided with a sliding groove (43). The sliding groove (43) is slidably connected to the inside of the sliding plate (43). The inside of the sliding plate (45) is provided with a filter plate (44). The scraper (2) is fixedly connected to the bottom of the scraper (32) with a baffle (34) and a baffle (2) (35). The baffle (34) is located below the side of the fixed cylinder (40) and is fixedly connected to the upper side of the liquid outlet guide plate (42). The baffle (2) (35) is located on the side of the baffle (34). The side of the sliding plate (45) is fixedly connected to a fixed mounting plate (7). The fixed mounting plate (7) is fixedly installed to the surface of the housing (1) by bolts.
3. A grinding machine filter for tool processing according to claim 2, characterized in that: A fixed sleeve (47) is fixedly connected inside the inclined bottom of the housing (1). A rotating shaft three (19) is movably connected inside the fixed sleeve (47). A baffle (46) is fixedly connected to the surface of the rotating shaft three (19). A placement frame (36) is fixedly connected to the top of the rotating shaft three (19). A filter bag (37) is placed inside the placement frame (36). A bevel gear one (20) is installed on the bottom surface of the rotating shaft three (19). A motor two (17) is fixedly installed on the inner side of the support leg (2). A bevel gear two (18) is connected to one end of the output shaft of the motor two (17). The bevel gear one (20) and the bevel gear two (18) mesh with each other. The placement frame (36) and the filter bag (37) are located below the discharge guide plate (33). The placement frame (36) and the filter bag (37) are located on the side of the baffle two (35).
4. A grinding machine filter for tool processing according to claim 3, characterized in that: The extrusion device includes a fixed block (55), a movable shaft (39), and a fixed groove (52). The two ends of the movable shaft (39) are slidably connected to the fixed groove (52). The fixed block (55) is fixedly connected to the housing (1). A pressure roller (30) is movably connected to the surface of the movable shaft (39). The two ends of the movable shaft (39) are fixedly connected to the movable block (53). A fixed rod (9) is fixedly connected to the top surface of the movable block (53). The fixed rod (9) passes through the fixed block (55). A spring (54) is provided on the surface of the fixed rod (9) between the fixed block (55) and the movable block (53). The pressure roller (30) corresponds to the fixed cylinder (40).
5. A grinding machine filter for tool processing according to claim 4, characterized in that: The second extrusion device includes a second fixed block (51), a second movable shaft (21), and a second fixed groove (49). The two ends of the second movable shaft (21) are slidably connected to the second fixed groove (49). The second fixed block (51) is fixedly connected to the housing (1). The second pressure roller (22) is movably connected to the surface of the second movable shaft (21). The two ends of the second movable shaft (21) are fixedly connected to the second movable block (48). The top surface of the second movable block (48) is fixedly connected to the second fixed rod (8). The second fixed rod (8) passes through the second fixed block (51). The surface of the second fixed rod (8) between the second fixed block (51) and the second movable block (48) is provided with the second spring (50). The second pressure roller (22) corresponds to the conveyor belt (27).
Citation Information
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