A high-efficiency solid-liquid separation equipment part processing equipment
By combining a shaft angle equalization positioning mechanism and a magnetic compensation balance alignment mechanism with a drooping gravity self-adjusting component and a vertical positioning mechanism, the problem of low efficiency in welding shafts of disc vacuum filters is solved, realizing automated shaft positioning and welding, and improving production efficiency.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-30
- Publication Date
- 2026-03-03
AI Technical Summary
During the production and processing of disc vacuum filters, welding the mounting shaft requires two people to lift the mounting shaft and align it with the connection port on the main shaft, resulting in low production efficiency.
The system employs a shaft angle evenly distributed positioning mechanism and a magnetic compensation balance alignment mechanism. The filter fan interface is clamped by an alignment rod for angle positioning and fixation. Combined with a drooping gravity self-adjusting component and a vertical positioning mechanism, automatic alignment and welding of the shaft are achieved.
It enables automatic positioning and welding of the spindle, improves production efficiency, reduces manual intervention, and enhances the automation level of processing equipment.
Smart Images

Figure CN116571941B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of machining technology, specifically referring to a high-efficiency solid-liquid separation equipment component processing equipment. Background Technology
[0002] A disc vacuum filter is a solid-liquid separation device that uses vacuum as the filtration power to separate slurry into solid and liquid components. This machine employs advanced technologies such as a filter disc guide frame, variable speed stirring, back-blowing unloading, and automatic centralized lubrication, making it a high-performance and reliable dewatering device. However, the production and processing of the main shaft of the disc vacuum filter is quite cumbersome. Multiple auxiliary shafts need to be welded together to the connection points on the main shaft, and the central angles between the filter fan interfaces on the auxiliary shafts must be consistent. Otherwise, installation failure will occur due to the angle congestion between the filter fan interfaces. Currently, at least two people are required to lift the auxiliary shafts and align them with the connection points on the main shaft for welding, resulting in low production efficiency. Summary of the Invention
[0003] In view of the above situation and to overcome the defects of the prior art, the present invention provides a convenient, efficient, and automatically positioned high-efficiency solid-liquid separation equipment component processing device. Through the shaft angle evenly distributed positioning mechanism, the filter fan interface is clamped by the alignment rod, which can position the angle of the shaft on the one hand and fix the shaft on the other hand. Through the pendant gravity self-adjusting component, the shaft has a filter fan interface and there is a weight difference. The shaft rolls on the roller with the filter fan interface facing down, thereby performing preliminary angle positioning of the shaft.
[0004] The technical solution adopted by this invention is as follows: This invention provides a high-efficiency solid-liquid separation equipment component processing equipment, including a processing body, a vertical positioning mechanism, a shaft angle evenly distributed positioning mechanism, and a magnetic compensation balance alignment mechanism. The shaft angle evenly distributed positioning mechanism is disposed on the processing body, the magnetic compensation balance alignment mechanism is disposed on the processing body, and the vertical positioning mechanism is disposed inside the processing body. The shaft angle evenly distributed positioning mechanism includes a drooping gravity self-adjusting component, a symmetrical center aggregation component, and a limiting rotation component. The drooping gravity self-adjusting component is disposed on the processing body, the symmetrical center aggregation component is disposed on the drooping gravity self-adjusting component, and the limiting rotation component is disposed on the processing body.
[0005] Furthermore, the processing body includes a first mounting base, a second mounting base, a support block, a first fixing plate, a second fixing plate, a rotating wheel, a main shaft, a first connection port, a second connection port, a matching shaft, a filter fan interface, and a connecting shaft. The first mounting base is located at the lower end of one side of the processing body. One end of the connecting shaft is located on one side of the first mounting base, and one side of the second mounting base is located at the other end of the connecting shaft. The first fixing plate is located on one side of the first mounting base, and the second fixing plate is located on one side of the second mounting base. The support block is located on the first mounting base, and the rotating wheel is located on the support block. The main shaft is detachably and rotatably mounted on the rotating wheel. The first connection port is located on one side of the main shaft, and the second connection port is located on the other side of the main shaft. The matching shaft is detachably mounted on the main shaft, and the filter fan interface is located on the matching shaft.
[0006] Furthermore, the drooping gravity self-adjusting assembly includes a slide groove, a slider, a telescopic cylinder, a support member, a support groove, and a roller. The slide groove is located inside the connecting shaft, the slider is slidably located inside the slide groove, the telescopic cylinder is located on the slider, the support member is located at the output end of the telescopic cylinder, the support groove is located inside the support member, and the roller is rotatably located inside the support member.
[0007] Furthermore, the symmetrical central aggregation assembly includes an alignment cavity, a motor, a gear, a gear, a lead screw, a lead screw, a sleeve, a sleeve, an alignment rod, and an alignment rod. The alignment cavity is located on one side of the support member. The motor is located on the bottom wall of the alignment cavity. The gear is located at the output end of the motor. One end of the lead screw is rotatably located on one side of the inner wall of the alignment cavity. The gear is located at the other end of the lead screw. One end of the lead screw is rotatably located on the other side of the inner wall of the alignment cavity. The other end of the lead screw is located on the gear. The threads of the lead screw and the lead screw are opposite. The sleeve is fitted onto the lead screw and is threaded to the lead screw. The sleeve is fitted onto the lead screw and is threaded to the lead screw. The sleeve is fitted onto the lead screw and is threaded to the lead screw. The alignment rod is located on the sleeve and the alignment rod is located on the sleeve.
[0008] Furthermore, the limiting rotation assembly includes a second motor, a second cylinder, and a bearing. The second motor is located on the side wall of the first fixed plate, and the output end of the second motor is detachably located on one side of the main shaft. The second cylinder is located on one side of the second fixed plate, and the bearing is located at the output end of the second cylinder.
[0009] Furthermore, the magnetically compensated balancing and aligning mechanism includes a movable alignment component and a fixed alignment component. The movable alignment component is detachably mounted on the spindle, and the fixed alignment component is mounted on the machining body.
[0010] Furthermore, the movable alignment component includes a port movement force-bearing component one and a port movement force-bearing component two. The port movement force-bearing component one is detachably disposed at one end of the mounting shaft, and the port movement force-bearing component two is detachably disposed at the other end of the mounting shaft.
[0011] Furthermore, the first port movement force-bearing component includes a strong magnet, a port assembly, an equidistant limiting rod, a second sliding groove, and a second slider. The port assembly is detachably mounted on one end of the shaft, the strong magnet is mounted on one end of the port assembly, the second sliding groove is mounted on the port assembly, the second slider is slidably mounted within the second sliding groove, and the equidistant limiting rod is mounted on the other end of the second slider. The second port movement force-bearing component has the same structure as the first port movement force-bearing component.
[0012] Furthermore, the fixed alignment assembly includes a port fixing force-bearing component one and a port fixing force-bearing component two. The port fixing force-bearing component one is disposed on the mounting base one, and the port fixing force-bearing component two is disposed on the mounting base two. The port fixing force-bearing component one includes a magnetic fixing rod one and a strong magnet two. The magnetic fixing rod one is disposed on the mounting base one, and the strong magnet two is disposed on one side of the magnetic fixing rod one. The port fixing force-bearing component two and the port fixing force-bearing component one have the same structure.
[0013] Furthermore, the vertical positioning mechanism includes a positioning cavity, a telescopic component, a spring, a rotating cavity, a rotating ball, a pressure sensor, and a central processing unit. The positioning cavity is located at the upper end of the magnetic fixing rod, one end of the spring is located at the bottom end of the positioning cavity, the lower end of the telescopic component is located at the upper end of the spring, the pressure sensor is located at the bottom end of the positioning cavity, the rotating cavity is located at the upper end of the telescopic component, the rotating ball is rotatably located within the rotating cavity, the central processing unit is located within the magnetic fixing rod, the pressure sensor is electrically connected to the central processing unit, and the central processing unit is electrically connected to the second motor. The right side of the second strong magnet and the left side of the first strong magnet have the same magnetism.
[0014] The beneficial effects achieved by the present invention using the above structure are as follows: The present invention provides a high-efficiency solid-liquid separation equipment component processing device, achieving the following beneficial effects:
[0015] (1) In order to solve the problem that at least two people are needed to lift the spindle and align it with the connection port on the main shaft for welding, which results in low production efficiency, the present invention uses a magnetic compensation type balance alignment mechanism. The distance between strong magnet 2 and strong magnet 1 is the same as the distance between the magnet on port moving force component 2 and the magnet on port fixing force component 2, and the repulsive force is the same. During the upward movement of the spindle, the center will be self-adjusted, so that the spindle can be aligned with connection port 1 and connection port 2.
[0016] (2) In order to further improve practicality and scalability, the present invention proposes a shaft angle evenly divided positioning mechanism, which uses an alignment rod to clamp the filter fan interface, which can position the shaft angle on the one hand and fix the shaft on the other.
[0017] (3) By using the pendant gravity self-adjusting component, the filter fan interface on the shaft is used, and there is a weight difference in the whole. The shaft rolls on the roller with the filter fan interface facing down, thereby performing preliminary angle positioning of the shaft.
[0018] (4) The vertical positioning mechanism can be used to position the angles of the first and second connection ports on the main shaft.
[0019] (5) Pull the equidistant limit rod, and the slider two moves in the slide groove two. The equidistant limit rod moves downward, which facilitates welding at one end of the matching shaft and the interface of the main shaft. Attached Figure Description
[0020] Figure 1 This is a front view of a component processing device for a high-efficiency solid-liquid separation equipment proposed in this invention;
[0021] Figure 2 This is a schematic diagram of the installation status of the component processing equipment for a high-efficiency solid-liquid separation device proposed in this invention;
[0022] Figure 3 This is the front view of the vertical positioning mechanism;
[0023] Figure 4 This is a front sectional view of the vertical positioning mechanism;
[0024] Figure 5 A schematic diagram of the positioning state of the vertical positioning mechanism;
[0025] Figure 6 This is the main view of the pendant gravity self-adjusting component;
[0026] Figure 7 This is a schematic diagram of the state of the pendant gravity self-adjusting component.
[0027] Figure 8 This is a schematic diagram of a symmetrical central aggregation component structure;
[0028] Figure 9 A front view of the port moving force-bearing component;
[0029] Figure 10 This is a top sectional view of the port moving force-bearing component.
[0030] The components include: 1. Processing body; 2. Shaft angle evenly distributed positioning mechanism; 3. Magnetic compensation balance alignment mechanism; 4. Vertical positioning mechanism; 5. Mounting base one; 6. Mounting base two; 7. Support block; 8. Fixing plate one; 9. Fixing plate two; 10. Rotating wheel; 11. Main shaft; 12. Connection port one; 13. Connection port two; 14. Matching shaft; 15. Filter fan interface; 16. Connecting shaft; 17. Drooping gravity self-adjusting assembly; 18. Symmetrical center convergence assembly; 19. Limiting rotation assembly; 20. Slide groove one; 21. Slider one; 22. Telescopic cylinder one; 23. Support component; 24. Support groove; 25. Roller; 26. Alignment cavity; 27. Motor one; 28. Gear one; 29. Gear two; 30. 31. Lead screw 1, 32. Sleeve 1, 33. Sleeve 2, 34. Alignment rod 1, 35. Alignment rod 2, 36. Motor 2, 37. Cylinder 2, 38. Bearing, 39. Movable alignment assembly, 40. Fixed alignment assembly, 41. Port moving force-bearing assembly 1, 42. Port moving force-bearing assembly 2, 43. Port fixed force-bearing assembly 1, 44. Port fixed force-bearing assembly 2, 45. Strong magnet 1, 46. Port kit, 47. Equal distance limit rod, 48. Slide groove 2, 49. Slider 2, 50. Magnetic fixing rod 1, 51. Strong magnet 2, 52. Positioning cavity, 53. Telescopic component, 54. Spring, 55. Rotating cavity, 56. Rotating ball, 57. Pressure sensor, 58. Central processing unit.
[0031] The accompanying drawings are provided to further illustrate the invention and form part of the specification. They are used together with the embodiments of the invention to explain the invention and do not constitute a limitation thereof. Detailed Implementation
[0032] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without creative effort are within the scope of protection of the present invention.
[0033] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0034] like Figures 1-10As shown, this invention proposes a high-efficiency solid-liquid separation equipment component processing device, including a processing body 1, a vertical positioning mechanism 4, a shaft angle evenly distributed positioning mechanism 2, and a magnetic compensation balance alignment mechanism 3. The shaft angle evenly distributed positioning mechanism 2 is disposed on the processing body 1, the magnetic compensation balance alignment mechanism 3 is disposed on the processing body 1, and the vertical positioning mechanism 4 is disposed inside the processing body 1. The shaft angle evenly distributed positioning mechanism 2 includes a drooping gravity self-adjusting component 17, a symmetrical center aggregation component 18, and a limiting rotation component 19. The drooping gravity self-adjusting component 17 is disposed on the processing body 1, the symmetrical center aggregation component 18 is disposed on the drooping gravity self-adjusting component 17, and the limiting rotation component 19 is disposed on the processing body 1.
[0035] The processing body 1 includes a mounting base 1 5, a mounting base 2 6, a support block 7, a fixing plate 1 8, a fixing plate 2 9, a rotating wheel 10, a main shaft 11, a connecting port 1 12, a connecting port 2 13, a mounting shaft 14, a filter fan interface 15, and a connecting shaft 16. The mounting base 1 5 is located at the lower end of one side of the processing body 1. One end of the connecting shaft 16 is located on one side of the mounting base 1 5, and one side of the mounting base 2 6 is located on the other end of the connecting shaft 16. The fixing plate 1 8 is located on one side of the mounting base 1 5, and the fixing plate 2 9 is located on one side of the mounting base 2 6. The support block 7 is located on the mounting base 1 5, and the rotating wheel 10 is located on the support block 7. The main shaft 11 is detachably and rotatably mounted on the rotating wheel 10. The connecting port 1 12 is located on one side of the main shaft 11, and the connecting port 2 13 is located on the other side of the main shaft 11. The mounting shaft 14 is detachably mounted on the main shaft 11, and the filter fan interface 15 is located on the mounting shaft 14.
[0036] The magnetic compensation type balance alignment mechanism 3 includes a movable alignment component 39 and a fixed alignment component 40. The movable alignment component 39 is detachably mounted on the shaft 14, and the fixed alignment component 40 is mounted on the processing body 1.
[0037] The movable alignment component 39 includes a port moving force-bearing component 41 and a port moving force-bearing component 42. The port moving force-bearing component 41 is detachably disposed at one end of the mounting shaft 14, and the port moving force-bearing component 42 is detachably disposed at the other end of the mounting shaft 14.
[0038] The port movement force-bearing component 41 includes a strong magnet 45, a port assembly 46, an equidistant limiting rod 47, a second sliding groove 48, and a second slider 49. The port assembly 46 is detachably mounted on one end of the shaft 14, the strong magnet 45 is mounted on one end of the port assembly 46, the second sliding groove 48 is mounted on the port assembly 46, the second slider 49 is slidably mounted in the second sliding groove 48, and the equidistant limiting rod 47 is mounted on the other end of the second slider 49. The port movement force-bearing component 42 has the same structure as the port movement force-bearing component 41.
[0039] The fixed alignment assembly 40 includes a port fixing force-bearing assembly 43 and a port fixing force-bearing assembly 44. The port fixing force-bearing assembly 43 is mounted on the mounting base 5, and the port fixing force-bearing assembly 44 is mounted on the mounting base 6. The port fixing force-bearing assembly 43 includes a magnetic fixing rod 50 and a strong magnet 51. The magnetic fixing rod 50 is mounted on the mounting base 5, and the strong magnet 51 is located on one side of the magnetic fixing rod 50. The port fixing force-bearing assembly 44 and the port fixing force-bearing assembly 43 have the same structure.
[0040] The vertical positioning mechanism 4 includes a positioning cavity 52, a telescopic member 53, a spring 54, a rotating cavity 55, a rotating ball 56, a pressure sensor 57, and a central processing unit 58. The positioning cavity 52 is located at the upper end of the magnetic fixing rod 50. One end of the spring 54 is located at the bottom end of the positioning cavity 52. The lower end of the telescopic member 53 is located at the upper end of the spring 54. The pressure sensor 57 is located at the bottom end of the positioning cavity 52. The rotating cavity 55 is located at the upper end of the telescopic member 53. The rotating ball 56 is rotatably located inside the rotating cavity 55. The central processing unit 58 is located inside the magnetic fixing rod 50. The pressure sensor 57 is electrically connected to the central processing unit 58, and the central processing unit 58 is electrically connected to the motor 36. The right side of the strong magnet 51 and the left side of the strong magnet 45 have the same magnetism.
[0041] The drooping gravity self-adjusting assembly 17 includes a slide groove 20, a slider 21, a telescopic cylinder 22, a support member 23, a support groove 24, and a roller 25. The slide groove 20 is located inside the connecting shaft 16, the slider 21 is slidably located inside the slide groove 20, the telescopic cylinder 22 is located on the slider 21, the support member 23 is located at the output end of the telescopic cylinder 22, the support groove 24 is located inside the support member 23, and the roller 25 is rotatably located inside the support member 23.
[0042] The symmetrical central aggregation assembly 18 includes an alignment cavity 26, a motor 27, a gear 28, a gear 29, a lead screw 30, a lead screw 31, a sleeve 32, a sleeve 33, an alignment rod 34, and an alignment rod 35. The alignment cavity 26 is located on one side of the support member 23. The motor 27 is located on the bottom wall of the alignment cavity 26. The gear 28 is located at the output end of the motor 27. One end of the lead screw 30 is rotatably located on one side of the inner wall of the alignment cavity 26. The gear 29 is located on the lead screw 31. At the other end of 30, one end of lead screw 2 31 is rotatably located on the other side of the inner wall of the alignment cavity 26, and the other end of lead screw 2 31 is located on gear 2 29. Lead screw 1 30 and lead screw 2 31 have opposite threads. Sleeve 1 32 is sleeved on lead screw 1 30 and threadedly connected to lead screw 1 30. Sleeve 2 33 is sleeved on lead screw 2 31 and threadedly connected to lead screw 2 31. Alignment rod 1 34 is located on sleeve 1 32, and alignment rod 2 35 is located on sleeve 2 33.
[0043] The limiting rotation assembly 19 includes a second motor 36, a second cylinder 37, and a bearing 38. The second motor 36 is located on the side wall of the first fixed plate 8, and the output end of the second motor 36 is detachably located on one side of the main shaft 11. The second cylinder 37 is located on one side of the second fixed plate 9, and the bearing 38 is located at the output end of the second cylinder 37.
[0044] In practical use, the mounting shaft 14 is first placed in the support groove 24. Since the mounting shaft 14 has a filter fan interface 15, it rolls on the roller 25 with the filter fan interface 15 facing downwards, thus initially positioning the mounting shaft 14 at an angle. The output end of motor 1 27 rotates, driving gear 1 28 to rotate. Gear 1 28 rotates, driving gear 2 29 to rotate. Gear 2 29 rotates, driving lead screw 1 30 and lead screw 2 31 to rotate. Lead screw 1 30 rotates, driving sleeve 1 32 to move towards the center. Sleeve 1 32 moving towards the center drives alignment rod 1 34 to move towards the center. Lead screw 2 31 rotates, driving sleeve 2 33 to move towards the center. Sleeve 2 33 moving towards the center drives alignment rod 2 35 to move towards the center. The movement of the motor 36 clamps the filter fan interface 15, which can both position the angle of the mounting shaft 14 and fix it. The output end of the second motor 36 rotates, driving the main shaft 11 to rotate. The rotation of the main shaft 11 drives the first connection port 12 and the second connection port 13 to rotate. When the mounting shaft 14 rotates to the rotating ball 56, the rotating ball 56 is rotated downwards. The downward movement of the rotating ball 56 drives the telescopic member 53 to move downwards. When the telescopic member 53 moves downwards and presses against the pressure sensor 57, the mounting shaft 14 is at the top of the rotating ball 56. After the pressure sensor 57 receives the pressure, it transmits an electrical signal to the central processing unit 58. After receiving the signal, the central processing unit 58 controls the second motor 36 to rotate. 36. Power is cut off, i.e., the angle positioning of connector 12 and connector 23 is completed. Port moving force-bearing component 1 41 is installed on one end of the shaft 14, and port moving force-bearing component 2 42 is installed on the other end of the shaft 14. The equidistant limiting rod 47 hooks onto the port of the shaft 14. The strong magnet 1 45 is used to attract and fix the shaft 14. The output end of the telescopic cylinder 1 22 moves, driving the shaft 14 upward. During the upward movement of the shaft 14, the strong magnet 2 51 generates a repulsive force against the strong magnet 1 45. The magnet on the port fixing force-bearing component 2 44 generates a repulsive force against the magnet on the port moving force-bearing component 2 42. The distance between the strong magnet 2 51 and the strong magnet 1 45 is equal to the port. The magnets on the movable force-bearing component 42 and the magnets on the port fixed force-bearing component 44 are at the same distance and have the same repulsive force. During the upward movement of the shaft 14, it will self-adjust its center, so that the shaft 14 can be aligned with the first connection port 12 and the second connection port 13. Pulling the equidistant limiting rod 47, the second slider 49 moves in the second slide groove 48, and the equidistant limiting rod 47 moves downward, thereby welding one end of the shaft 14 to the interface of the main shaft 11 and the other end of the shaft 14 to the interface of the second connection port 13. The other installation process of the shaft 14 is the same as the installation process of the shaft 14. The above is the overall working process of the present invention. This step can be repeated for the next use.
[0045] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0046] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
[0047] The present invention and its embodiments have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present invention; the actual structure is not limited thereto. In conclusion, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the spirit of the invention, such designs should fall within the protection scope of the present invention.
Claims
1. A high-efficiency solid-liquid separation equipment component processing equipment, comprising a processing main body (1) and a vertical positioning mechanism (4), characterized in that; The high-efficiency solid-liquid separation equipment part processing equipment further comprises an equal-division type shaft matching angle positioning mechanism (2) and a magnetic force compensation type balance alignment mechanism (3), the equal-division type shaft matching angle positioning mechanism (2) is arranged on the processing main body (1), the magnetic force compensation type balance alignment mechanism (3) is arranged on the processing main body (1), and the vertical positioning mechanism (4) is arranged in the processing main body (1); the equal-division type shaft matching angle positioning mechanism (2) comprises a gravity self-adjusting assembly (17) of a drooping type, a symmetric type center aggregation assembly (18) and a limiting type rotating assembly (19), the gravity self-adjusting assembly (17) of the drooping type is arranged on the processing main body (1), the symmetric type center aggregation assembly (18) is arranged on the gravity self-adjusting assembly (17) of the drooping type, and the limiting type rotating assembly (19) is arranged on the processing main body (1); the processing main body (1) comprises a mounting base one (5), a mounting base two (6), a supporting block (7), a fixed plate one (8), a fixed plate two (9), a rotating wheel (10), a main shaft (11), a connecting port one (12), a connecting port two (13), a shaft (14), a filter fan interface (15) and a connecting shaft (16), one side of the lower end of the processing main body (1) is provided with the mounting base one (5), one end of the connecting shaft (16) is arranged on one side of the mounting base one (5), one side of the mounting base two (6) is arranged on the other end of the connecting shaft (16), the fixed plate one (8) is arranged on one side of the mounting base one (5), the fixed plate two (9) is arranged on one side of the mounting base two (6), the supporting block (7) is arranged on the mounting base one (5), the rotating wheel (10) is arranged on the supporting block (7), the main shaft (11) is detachably arranged on the rotating wheel (10), the connecting port one (12) is arranged on one side of the main shaft (11), the connecting port two (13) is arranged on the other side of the main shaft (11), the shaft (14) is detachably arranged on the main shaft (11), and the filter fan interface (15) is arranged on the shaft (14); the gravity self-adjusting assembly (17) of the drooping type comprises a sliding groove one (20), a sliding block one (21), a telescopic cylinder one (22), a supporting piece (23), a supporting groove (24) and a roller (25), the sliding groove one (20) is arranged in the connecting shaft (16), the sliding block one (21) is slidingly arranged in the sliding groove one (20), the telescopic cylinder one (22) is arranged on the sliding block one (21), the supporting piece (23) is arranged on the output end of the telescopic cylinder one (22), the supporting groove (24) is arranged in the supporting piece (23), and the roller (25) is rollingly arranged in the supporting piece (23).The symmetrical center polymerization assembly (18) includes alignment cavity (26), motor one (27), gear one (28), gear two (29), lead screw one (30), lead screw two (31), sleeve one (32), sleeve two (33), alignment rod one (34) and alignment rod two (35), the alignment cavity (26) is located in the side of support (23), the motor one (27) is located on the bottom wall of alignment cavity (26), the gear one (28) is located on the output end of motor one (27), one end of the lead screw one (30) is rotatably arranged on the inner wall of alignment cavity (26) one side, the gear two (29) is arranged on the other end of lead screw one (30), one end of the lead screw two (31) is rotatably arranged on the inner wall of alignment cavity (26) the other side, the other end of the lead screw two (31) is arranged on the gear two (29), the lead screw one (30) and the lead screw two (31) are opposite in thread, the sleeve one (32) is sleeved and arranged on the lead screw one (30), the sleeve one (32) and the lead screw one (30) are threadedly connected, the sleeve two (33) is sleeved and arranged on the lead screw two (31), the sleeve two (33) and the lead screw two (31) are threadedly connected, the alignment rod one (34) is arranged on the sleeve one (32), the alignment rod two (35) is arranged on the sleeve two (33);The limiting type rotating assembly (19) includes motor two (36), air cylinder two (37) and bearing (38), the motor two (36) is arranged on the side wall of fixed plate one (8), the output end of the motor two (36) is detachably arranged on one side of the main shaft (11), the air cylinder two (37) is arranged on one side of the fixed plate two (9), the bearing (38) is arranged on the output end of the air cylinder two (37).
2. The high-efficiency solid-liquid separation equipment component machining equipment according to claim 1, characterized in that: The magnetic force compensation type balance alignment mechanism (3) comprises a movable alignment assembly (39) and a fixed alignment assembly (40), the movable alignment assembly (39) is detachably arranged on the shaft (14), and the fixed alignment assembly (40) is arranged on the machining main body (1).
3. The high-efficiency solid-liquid separation equipment component machining equipment according to claim 2, characterized in that: The movable alignment assembly (39) comprises a port moving force receiving assembly one (41) and a port moving force receiving assembly two (42), the port moving force receiving assembly one (41) is detachably arranged at one end of the shaft (14), and the port moving force receiving assembly two (42) is detachably arranged at the other end of the shaft (14).
4. The high-efficiency solid-liquid separation equipment component machining equipment according to claim 3, characterized in that: The port moving force receiving assembly one (41) comprises a strong magnet one (45), a port sleeve (46), an equidistance limiting rod (47), a sliding groove two (48) and a sliding block two (49), the port sleeve (46) is detachably arranged at one end of the shaft (14), the strong magnet one (45) is arranged at one end of the port sleeve (46), the sliding groove two (48) is arranged on the port sleeve (46), the sliding block two (49) is slidingly arranged in the sliding groove two (48), and the equidistance limiting rod (47) is arranged at the other end of the sliding block two (49); the port moving force receiving assembly two (42) is same in structure with the port moving force receiving assembly one (41).
5. The high-efficiency solid-liquid separation equipment component machining equipment according to claim 4, characterized in that: The fixed alignment assembly (40) comprises a port fixed force receiving assembly one (43) and a port fixed force receiving assembly two (44), the port fixed force receiving assembly one (43) is arranged on the mounting base one (5), and the port fixed force receiving assembly two (44) is arranged on the mounting base two (6); the port fixed force receiving assembly one (43) comprises a magnetic force fixing rod one (50) and a strong magnet two (51), the magnetic force fixing rod one (50) is arranged on the mounting base one (5), and the strong magnet two (51) is arranged on one side of the magnetic force fixing rod one (50); the port fixed force receiving assembly two (44) is same in structure with the port fixed force receiving assembly one (43).
6. The high-efficiency solid-liquid separation device component machining device according to claim 5, characterized in that: The vertical positioning mechanism (4) comprises a positioning cavity (52), a telescopic piece (53), a spring (54), a rotating cavity (55), a rotating ball (56), a pressure sensor (57) and a central processing unit (58), the positioning cavity (52) is arranged at an upper end in the magnetic force fixing rod one (50), one end of the spring (54) is arranged at an inner bottom end of the positioning cavity (52), a lower end of the telescopic piece (53) is arranged at an upper end of the spring (54), the pressure sensor (57) is arranged at the inner bottom end of the positioning cavity (52), the rotating cavity (55) is arranged at an inner upper end of the telescopic piece (53), the rotating ball (56) is rotationally arranged in the rotating cavity (55), the central processing unit (58) is arranged in the magnetic force fixing rod one (50), the pressure sensor (57) is electrically connected with the central processing unit (58), and the central processing unit (58) is electrically connected with the motor two (36); the right side of the strong magnet two (51) and the left side of the strong magnet one (45) are same in magnetism.
Citation Information
Patent Citations
Direct drive type motor or generator capable of steplessly converting torque and regulating speed
CN102769344A
Gravity compensation type electric sunshade support welding device
CN114227072A