Automatic cleaning equipment for screw tap surface machining and using method of automatic cleaning equipment
By using the clamping and rotating components of the automated cleaning equipment, the surface of the tap can be cleaned without dead angles, solving the problems of production interruption and complex inventory management caused by frequent tooling changes, and improving production efficiency.
Patent Information
- Application Number
- CN202511593926.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-03
- Publication Date
- 2025-12-12
AI Technical Summary
In existing technologies, the tap cleaning process requires frequent tooling changes, leading to production interruptions and complex inventory management, which in particular affects production efficiency in small-batch production.
An automated cleaning device was designed, which uses a clamping component and a rotating component. The rotation of the tap is achieved through the cooperation of the magnetic block and the gear ring. Combined with the cleaning medium coverage of the nozzle, it can achieve cleaning without dead angles and is suitable for taps of different sizes.
It achieves automated cleaning of tap surfaces without dead angles, reduces tooling changeover time, improves production efficiency, and simplifies inventory management.
Smart Images

Figure CN121103754A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of tap surface processing technology, specifically to an automated cleaning device for tap surface processing and its usage method. Background Technology
[0002] A tap is a cutting tool used to machine internal threads in materials such as metal and plastic. It is typically a fluted cylinder. The main function of a tap is to machine internal threads, enabling holes that were not originally threaded to connect. If metal chips generated during machining adhere to the tap's grooves or cutting edge, it can cause burrs and dimensional deviations in the machined threads, affecting the tightness of the connection. Residual chips mixed with cutting fluid can form corrosive substances on the tap's surface, accelerating wear and rust, and reducing its lifespan. Therefore, it is necessary to clean the outer surface of the tap.
[0003] During production, different sizes of taps are needed to meet various processing requirements. This necessitates the use of matching fixtures to secure the taps to the workbench before cleaning. Due to the variety of tap sizes, each size requires a separately designed and manufactured fixture, resulting in a complex and diverse inventory of fixtures. Firstly, storing different fixtures in separate areas occupies more storage space, and their dimensions must be clearly labeled to avoid confusion. Secondly, each time a different size tap is switched for cleaning, the machine must be stopped, the current fixture removed, and a new fixture of the corresponding size found. After installation, the fixture's positioning reference must be adjusted, such as calibrating the clamping position and ensuring the tap is perpendicular to the workbench. This entire changeover process interrupts the cleaning operation. Especially in scenarios involving multiple batches and small quantities of tap cleaning, frequent fixture switching consumes a significant amount of time, disrupts the continuous flow of the production line, and may even affect the subsequent tap requisition schedule, indirectly slowing down the overall production progress. Summary of the Invention
[0004] The purpose of this invention is to provide an automated cleaning device for tap surface processing and its usage method, so as to solve the problems mentioned in the background art.
[0005] The technical solution adopted by this application to solve its technical problem is: an automated cleaning device for tap surface processing, comprising: an operating cabinet, a cabinet door hinged to the operating cabinet, a cleaning component disposed inside the operating cabinet, and further comprising: A clamping assembly is installed inside an operating cabinet. The clamping assembly includes a fixed frame arranged in a circumferential array inside the operating cabinet. Fixed shafts are symmetrically fixed on each fixed frame. Rotating rods are rotatably connected to the outer surface of each fixed shaft. The clamping assembly is used to quickly fix taps of different sizes. A rotating assembly is disposed on a clamping assembly. The rotating assembly includes a magnetic block corresponding to the clamping assembly. A gear ring is fixedly connected to the outer surface of the magnetic block, and an internal gear ring is meshed with the outer surface of the gear ring. The rotating assembly is used for the tap to rotate synchronously while revolving around the center of the world.
[0006] Preferably, the cleaning component includes a fixed base fixedly installed on the inner wall of the control cabinet, the fixed base is provided with a plurality of connecting pipes, each of which is equipped with a nozzle, and the side of the fixed base away from the inner wall of the control cabinet is arc-shaped.
[0007] Preferably, the fixing frame is provided with a groove, and fixing blocks are symmetrically fixed in the groove. Sliding rods are slidably connected between the fixing blocks, and triangular blocks are symmetrically arranged on the sliding rods.
[0008] Preferably, a through rod is slidably disposed on the fixed frame, one end of the through rod is fixedly connected to the sliding rod, and the other end extends through the fixed frame. An elastic element is sleeved on the through rod, and the elastic element is located between the sliding rod and the fixed frame.
[0009] Preferably, a connecting shaft is fixedly provided at both ends of the rotating rod, and a roller is rotatably connected to each connecting shaft, with one of the rollers fitting against the inclined surface of the triangular block.
[0010] Preferably, a connecting shaft two is fixedly provided at the end of the sliding rod away from the through rod, and a roller two is rotatably provided on the connecting shaft two. A workpiece is provided between the roller two and the roller one on the side away from the triangular block, and the bottom of the workpiece is magnetically attracted to the magnetic block.
[0011] Preferably, a drive shaft is rotatably mounted on the control cabinet, an external drive is connected to the drive shaft, a rotating disk is fixedly mounted on the outer surface of the drive shaft, and a fixed frame is fixedly mounted above the rotating disk.
[0012] Preferably, a fixing ring is fixedly provided on the operating cabinet, the inner diameter of the fixing ring is larger than the diameter of the rotating disk, and the fixing ring is fixedly connected to the outer surface of the inner gear ring.
[0013] Preferably, a method of using an automated cleaning device for tap surface machining, applied to any of the above-described automated cleaning devices for tap surface machining, is characterized by comprising the following steps: S1: Open the cabinet door of the control cabinet, then rotate the rotary table to place the tap on the clamping assembly, and adapt to taps of different diameters through the adaptive adjustment of roller one and roller two; S2: Then press the tap vertically to ensure that the bottom of the tap is magnetically attracted to the magnetic block, and then turn on the power of the device; S3: After the power is turned on, the drive shaft starts to rotate. The tap revolves through the rotating disk on the outer surface of the drive shaft, and the tap rotates by meshing the internal gear ring with the gear ring on the outer surface of the magnetic block. The cleaning component automatically cleans the outer surface of the tap.
[0014] S4: After processing is completed, open the cabinet door, take out the tap, and the clamping components will automatically reset to prepare for the next cleaning work.
[0015] The beneficial effects of this invention are: This invention provides an automated cleaning device and method for tap surface processing. By activating an external drive shaft, the drive shaft drives a rotating disk to rotate synchronously, achieving workpiece revolution. Simultaneously, the gear ring on the outer surface of the magnetic block is rotated by the internal gear ring, thus achieving workpiece rotation. Once the cleaning process is initiated, all areas of the tap surface are covered by the cleaning medium sprayed from the nozzle, achieving thorough cleaning. The device also precisely aligns the tap to be cleaned with a set of clamping components. When the tap is placed between roller one and roller two, the tap's squeezing force pushes roller one along the inclined surface of the triangular block, thereby moving the sliding rod outwards from the fixed frame, compressing the elastic element on the through rod. Simultaneously, the rotating rod rotates around the fixed axis to adjust the angle, ultimately causing roller one and roller two to automatically expand or shrink the distance according to the tap diameter, forming initial clamping of the tap. No manual adjustment of the clamp size is required, and it can adapt to the clamping needs of workpieces of different sizes. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of the present invention; Figure 2 This is a schematic diagram of the internal structure of the control cabinet of the present invention; Figure 3 For the present invention Figure 2 Enlarged structural diagram at point A; Figure 4 This is a schematic diagram of the overall structure of the clamping assembly and cleaning component of the present invention; Figure 5 This is a schematic diagram of the longitudinal cross-sectional structure of the clamping component of the present invention; Figure 6 For the present invention Figure 5 Enlarged structural diagram at point B; Figure 7 This is a schematic diagram of the overall structure of the clamping assembly of the present invention; Figure 8 This is a cross-sectional structural diagram of the clamping component of the present invention.
[0017] The meanings of the markings in the diagram are as follows: 1. Control cabinet; 2. Cabinet door; 3. Cleaning component; 4. Fixing base; 5. Connecting pipe; 6. Nozzle; 7. Fixing frame; 8. Groove; 9. Fixing block; 10. Sliding rod; 11. Triangular block; 12. Through rod; 13. Elastic component; 14. Fixing shaft; 15. Rotating rod; 16. Connecting shaft one; 17. Roller one; 18. Connecting shaft two; 19. Roller two; 20. Workpiece; 21. Drive shaft; 22. Rotary disk; 23. Fixing ring; 24. Internal gear ring; 25. Magnetic block; 26. Gear ring. Detailed Implementation
[0018] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. This application will now be described in detail with reference to the accompanying drawings and embodiments.
[0019] To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present application, and not all embodiments. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of the present application.
[0020] Please refer to Figures 1 to 5 An automated cleaning device for tap surface processing includes: an operating cabinet 1, which serves as the basic support frame of the device, used to integrate and fix the cleaning component 3, as well as transmission, control, and other components that may be added later; it also forms a closed cleaning space to prevent media spillage during the cleaning process. A cabinet door 2 is hinged to the operating cabinet 1, allowing the interior space of the operating cabinet 1 to be opened and closed, facilitating the operator to insert and remove the tap to be cleaned, while simultaneously closing the cabinet during the cleaning process. The operating cabinet 1 contains the cleaning component 3, which includes a fixed base 4 fixedly mounted on the inner wall of the operating cabinet 1. Several connecting pipes 5 are mounted on the fixed base 4, and nozzles 6 are installed on each connecting pipe 5. The side of the fixed base 4 away from the inner wall of the operating cabinet 1 is curved.
[0021] In the above embodiments, the fixing seat 4 ensures that the positions of the connecting pipe 5 and the nozzle 6 do not shift, avoiding inaccurate cleaning positions due to component shaking; the arc-shaped design allows the nozzle 6 to fit more closely to the tap surface, reducing cleaning dead angles, and compared to the flat fixing seat 4, it allows the cleaning range to cover the circumference of the tap more evenly. The connecting pipe 5 serves as a delivery channel for the cleaning medium, guiding the externally supplied cleaning medium to each nozzle 6. It can achieve precise distribution of the cleaning medium, ensuring that each nozzle 6 receives a stable supply of medium, avoiding insufficient cleaning capacity of some nozzles 6 due to poor medium delivery, and ensuring that all nozzles 6 work synchronously and effectively. The nozzle 6 transforms the cleaning medium delivered by the connecting pipe 5 into a jet form with a certain impact force, directly acting on the tap surface to wash away or peel off impurities such as oil and iron filings.
[0022] Please refer to Figures 2 to 8 An automated cleaning device for tap surface processing further includes: a clamping assembly, which is disposed inside an operating cabinet 1. The clamping assembly includes a fixed frame 7 arranged in a circumferential array inside the operating cabinet 1. Fixed shafts 14 are symmetrically fixed on each fixed frame 7. Rotating rods 15 are rotatably connected to the outer surface of the fixed shafts 14. The clamping assembly is used to quickly fix taps of different sizes. The fixed frame 7 is provided with a groove 8. Fixed blocks 9 are symmetrically fixed in the groove 8. Sliding rods 10 are slidably connected between the fixed blocks 9. Triangular blocks 11 are symmetrically arranged on the sliding rods 10.
[0023] Furthermore, a through rod 12 is slidably mounted on the fixed frame 7. One end of the through rod 12 is fixedly connected to the sliding rod 10, and the other end extends through the fixed frame 7. An elastic element 13 is sleeved on the through rod 12, and the elastic element 13 is located between the sliding rod 10 and the fixed frame 7. Both ends of the rotating rod 15 are fixedly mounted with connecting shafts 16, and rollers 17 are rotatably connected to each connecting shaft 16. One of the rollers 17 is attached to the inclined surface of the triangular block 11. A connecting shaft 28 is fixedly mounted on the end of the sliding rod 10 away from the through rod 12. A roller 29 is rotatably mounted on the connecting shaft 28. A workpiece 20 is positioned between the roller 29 and the roller 17 on the side away from the triangular block 11. The bottom of the workpiece 20 is magnetically attracted to the magnetic block 25.
[0024] In the above embodiment, the operator aligns the tap to be cleaned between roller 17 and roller 29 within the fixed frame 7 and gently presses the tap towards the center. The tap simultaneously contacts roller 17 on both sides and roller 29 below, generating a force that pushes roller 17 aside and presses roller 29 downward. After being pressed, roller 17 slides downward along the inclined surface of triangular block 11, pushing triangular block 11 to move sliding rod 10 away from fixed block 9. When sliding rod 10 moves, it simultaneously pulls through rod 12, compressing elastic element 13 on through rod 12. At this time, elastic element 13 stores elastic potential energy. When the return spring is compressed, it generates a reverse elastic force, which is transmitted to the triangular block 11 through the sliding rod 10. This causes the triangular block 11 to press against the roller 17 in the opposite direction, allowing the roller 17 to continuously apply clamping force to the tap. At the same time, the bottom of the tap is completely in contact with the magnetic block 25. The attraction of the magnetic block 25 will pull the tap downward, forming a double fixation of elastic clamping and magnetic positioning, preventing axial or radial wobbling of the tap during cleaning. The rotating rod 15 rotates around the fixed shaft 14. As the roller 17 slides, it drives the rotating rod 15 to adjust its angle around the fixed shaft 14. The larger the diameter of the tap, the farther the roller 17 pushes the triangular block 11, and the larger the rotation angle of the rotating rod 15. The distance between the roller 17 and the roller 2 19 will automatically increase with the diameter of the tap until both roller 17 and roller 2 19 are tightly in contact with the surface of the tap.
[0025] Please refer to Figures 1 to 3 as well as Figures 5 to 6 An automated cleaning device for tap surface machining further includes: a rotating assembly mounted on a clamping assembly, the rotating assembly including a magnetic block 25 corresponding to the clamping assembly, a gear ring 26 fixedly connected to the outer surface of the magnetic block 25, and an internal gear ring 24 meshing with the outer surface of the gear ring 26; the rotating assembly is used for synchronous rotation of the tap while it revolves around the central axis. A drive shaft 21 is rotatably mounted on the operating cabinet 1, externally driven, and a rotating disk 22 is fixedly mounted on the outer surface of the drive shaft 21; a fixing frame 7 is fixedly mounted above the rotating disk 22. A fixing ring 23 is fixedly mounted on the operating cabinet 1, the inner diameter of the fixing ring 23 being larger than the diameter of the rotating disk 22, and the fixing ring 23 is fixedly connected to the outer surface of the internal gear ring 24.
[0026] In the above embodiment, by starting the external drive of the drive shaft 21, the drive shaft 21 drives the rotating disk 22 to rotate synchronously, thereby realizing the revolution of the workpiece 20. While the workpiece 20 is revolving, the gear ring 26 on the outer surface of the magnetic block 25 is driven to rotate by the internal gear ring 24, thereby realizing the rotation of the workpiece 20. When the cleaning component 3 is started, all positions on the surface of the tap can be covered by the cleaning medium sprayed from the nozzle 6, achieving cleaning without dead angles.
[0027] A method of using an automated cleaning device for tap surface machining, applied to any of the aforementioned automated cleaning devices for tap surface machining, characterized by comprising the following steps: S1: Open the cabinet door 2 of the control cabinet 1, then rotate the rotary disk 22, place the tap on the clamping assembly, and adapt to taps of different diameters through the adaptive adjustment of roller 17 and roller 29. S2: Then press the tap vertically to ensure that the bottom of the tap is magnetically attracted to the magnetic block 25, and then turn on the power of the device; S3: After the power is turned on, the drive shaft 21 starts to rotate. The tap revolves through the rotating disk 22 on the outer surface of the drive shaft 21. The tap rotates by meshing with the gear ring 26 on the outer surface of the magnetic block 25 through the internal gear ring 24. The cleaning component 3 automatically cleans the outer surface of the tap.
[0028] S4: After processing is completed, open cabinet door 2, take out the tap, and the clamping assembly will automatically reset to prepare for the next cleaning operation.
[0029] The rotary table 22 is essentially a multi-station support carrier within the equipment. Its manually rotatable design allows the operator to precisely align the tap to be cleaned with a specific set of clamping components after the cabinet door 2 is opened. When the tap is placed between roller 17 and roller 29, the tap's squeezing force pushes roller 17 on both sides to slide along the inclined surface of the triangular block 11, thereby driving the sliding rod 10 to move outward from the fixed frame 7, compressing the elastic element 13 on the through rod 12. At the same time, the rotating rod 15 rotates around the fixed axis 14 to adjust the angle, ultimately causing roller 17 and roller 29 to automatically expand or shrink the distance according to the tap diameter, forming an initial clamping of the tap without the need for manual adjustment of the clamp size. At this time, the elastic element 13 of the clamping component generates a reverse elastic force due to compression, which is transmitted to roller 17 through the sliding rod 10 and the triangular block 11, causing roller 17 to continuously press against the tap surface. Combined with magnetic positioning, this forms a dual stable structure of radial clamping and axial fixation. After power is turned on, the internal PLC controller, drive components, and cleaning component 3 supply system enter the standby state. When the drive shaft 21 rotates, it synchronously drives the rotating disk 22 on its outer surface to rotate. Both the clamping assembly and the tap are fixed to the rotating disk 22. Therefore, the tap will move in a circular motion around the center of the drive shaft 21, allowing the tap surface to pass through the coverage area of the cleaning component 3 sequentially, preventing any areas from being missed during cleaning. The vertical pressing action of the tap is to ensure that the bottom of the tap completely adheres to the magnetic block 25. The magnetic attraction of the magnetic block 25 is used to axially position the tap, preventing it from shifting vertically during subsequent rotation. The gear ring 26 on the outer surface of the magnetic block 25 meshes with the internal gear ring 24 fixed inside the control cabinet 1. When the rotating disk 22 drives the magnetic block 25 to revolve, the meshing action of the gear ring 26 and the internal gear ring 24 forces the magnetic block 25 to rotate. Since the tap is magnetically fixed to the magnetic block 25, it will rotate synchronously with the magnetic block 25. The coordinated motion of revolution and rotation allows every part of the tap surface to be evenly cleaned by the cleaning medium sprayed from the nozzle 6, achieving automated cleaning without dead angles. At the same time as the drive shaft 21 starts, the PLC controller will simultaneously trigger the supply system of the cleaning component 3. The high-pressure cleaning fluid is delivered to each nozzle 6 through the connecting pipe 5, forming a directional spray that directly acts on the rotating tap surface to remove impurities such as oil and iron filings. After cleaning, the equipment automatically stops the rotation of the drive shaft 21 and the supply of cleaning fluid. When the operator removes the tap, the squeezing force of the tap on the roller 17 disappears, the elastic element 13 on the through rod 12 returns to its natural state, pushes the sliding rod 10 to move inward to the fixed frame 7, drives the triangular block 11 to reset, and then makes the rotating rod 15 and the roller 17 return to their initial positions, that is, the minimum spacing state. There is no need to manually adjust the clamping components, and it is ready for the next feeding.
[0030] Based on all the above embodiments, the working principle of the present invention is as follows: Place the tap workpiece 20 to be processed in the storage frame, and then align each of the tap workpiece 20 to be cleaned between roller 17 and roller 29 in the fixed frame 7 and gently press the tap towards the center. The tap will simultaneously contact roller 17 on both sides and roller 29 below, generating a force that pushes roller 17 aside and presses roller 29 downward. After being pressed, roller 17 slides downward along the inclined surface of triangular block 11, pushing triangular block 11 to drive sliding rod 10 to move away from fixed block 9. When sliding rod 10 moves, it will simultaneously pull through rod 12, compressing the elastic element 13 on through rod 12. At this time, elastic element 13 stores elastic potential energy. When the return spring is compressed, it generates a reverse elastic force, which is transmitted to the triangular block 11 through the sliding rod 10. This causes the triangular block 11 to press against the roller 17 in the opposite direction, allowing the roller 17 to continuously apply clamping force to the tap. At the same time, the bottom of the tap is completely in contact with the magnetic block 25. The attraction of the magnetic block 25 will pull the tap downward, forming a double fixation of elastic clamping and magnetic positioning, preventing axial or radial wobbling of the tap during cleaning. The rotating rod 15 rotates around the fixed shaft 14. As the roller 17 slides, it drives the rotating rod 15 to adjust its angle around the fixed shaft 14. The larger the diameter of the tap, the farther the roller 17 pushes the triangular block 11, and the larger the rotation angle of the rotating rod 15. The distance between the roller 17 and the roller 2 19 will automatically increase with the diameter of the tap until both roller 17 and roller 2 19 are tightly in contact with the surface of the tap. Then, the equipment power is turned on, and the drive shaft 21 starts to rotate. At the same time, the drive shaft 21 drives the rotating disk 22 to rotate synchronously, realizing the revolution of the workpiece 20. While the workpiece 20 is revolving, the gear ring 26 on the outer surface of the magnetic block 25 is driven to rotate by the internal gear ring 24, thereby realizing the rotation of the workpiece 20. When the cleaning component 3 is started, all positions on the surface of the tap can be covered by the cleaning medium sprayed from the nozzle 6, achieving cleaning without dead angles.
[0031] In summary, the present invention provides an automated cleaning device and its method for tap surface processing. By activating the external drive of the drive shaft, the drive shaft drives the rotating disk to rotate synchronously, realizing the revolution of the workpiece. While the workpiece revolves, the gear ring on the outer surface of the magnetic block is driven to rotate by the internal gear ring, thereby realizing the rotation of the workpiece. When the cleaning device is activated, all positions on the tap surface are covered by the cleaning medium sprayed from the nozzle, achieving cleaning without dead angles. The device also allows for precise alignment of the tap to be cleaned with a set of clamping components. When the tap is placed between roller one and roller two, the squeezing force of the tap pushes roller one on both sides to slide along the inclined surface of the triangular block, thereby driving the sliding rod to move outward of the fixed frame, compressing the elastic element on the through rod. At the same time, the rotating rod rotates around the fixed axis to adjust the angle, ultimately causing roller one and roller two to automatically expand or shrink the gap according to the tap diameter, forming a preliminary clamping of the tap. There is no need to manually adjust the size of the clamp, and it can adapt to the clamping requirements of workpieces of different sizes.
[0032] Those skilled in the art should understand that the discussion of any of the above embodiments is merely exemplary. Under the framework of this invention, the technical features of the above embodiments or different embodiments can also be combined, the steps can be implemented in any order, and there are many other variations of the different aspects of the invention as described above, which are not provided in detail for the sake of brevity.
[0033] This invention is intended to cover all such substitutions, modifications, and variations that fall within the broad scope of the appended claims. Therefore, any omissions, modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of this invention should be included within the scope of protection of this invention.
Claims
1. An automated cleaning device for tap surface machining, comprising: An operating cabinet (1), with a door (2) hinged to it, and a cleaning component (3) installed inside the operating cabinet (1), is characterized in that it further includes: The clamping assembly is set inside the operating cabinet (1). The clamping assembly includes a fixed frame (7) arranged in a circumferential array inside the operating cabinet (1). Fixed shafts (14) are symmetrically arranged on the fixed frame (7). A rotating rod (15) is rotatably connected to the outer surface of the fixed shaft (14). The clamping assembly is used to quickly fix taps of different sizes. A rotating assembly is disposed on a clamping assembly. The rotating assembly includes a magnetic block (25) corresponding to the clamping assembly. A gear ring (26) is fixedly connected to the outer surface of the magnetic block (25). An internal gear ring (24) is meshed with the outer surface of the gear ring (26).
2. The automated cleaning equipment for tap surface processing according to claim 1, characterized in that, The cleaning component (3) includes a fixed seat (4) fixedly installed on the inner wall of the operating cabinet (1). Several connecting pipes (5) are provided on the fixed seat (4). Each connecting pipe (5) is equipped with a nozzle (6). The side of the fixed seat (4) away from the inner wall of the operating cabinet (1) is arc-shaped.
3. The automated cleaning equipment for tap surface processing according to claim 1, characterized in that, The fixed frame (7) is provided with a groove (8), and fixed blocks (9) are symmetrically arranged in the groove (8). A sliding rod (10) is slidably connected between the fixed blocks (9), and a triangular block (11) is symmetrically arranged on the sliding rod (10).
4. The automated cleaning equipment for tap surface processing according to claim 3, characterized in that, A through rod (12) is slidably provided on the fixed frame (7). One end of the through rod (12) is fixedly connected to the sliding rod (10), and the other end extends through the fixed frame (7). An elastic element (13) is sleeved on the through rod (12). The elastic element (13) is located between the sliding rod (10) and the fixed frame (7).
5. The automated cleaning equipment for tap surface machining according to claim 1, characterized in that, Both ends of the rotating rod (15) are fixedly provided with connecting shafts (16), and rollers (17) are rotatably connected to each connecting shaft (16), one of which is attached to the inclined surface of the triangular block (11).
6. The automated cleaning equipment for tap surface processing according to claim 4, characterized in that, The sliding rod (10) is fixedly provided with a connecting shaft two (18) at one end away from the through rod (12). A roller two (19) is rotatably provided on the connecting shaft two (18). A workpiece (20) is provided between the roller two (19) and the roller one (17) on the side away from the triangular block (11). The bottom of the workpiece (20) is magnetically attracted to the magnetic block (25).
7. The automated cleaning equipment for tap surface machining according to claim 1, characterized in that, The operating cabinet (1) is rotatably equipped with a drive shaft (21), which is connected to an external drive. A rotating disk (22) is fixedly installed on the outer surface of the drive shaft (21), and the fixed frame (7) is fixedly installed above the rotating disk (22).
8. The automated cleaning equipment for tap surface machining according to claim 7, characterized in that, A fixing ring (23) is fixedly installed on the operating cabinet (1). The inner diameter of the fixing ring (23) is larger than the diameter of the rotating disk (22). The fixing ring (23) is fixedly connected to the outer surface of the internal gear ring (24).
9. A method of using an automated cleaning device for tap surface machining, applied to the automated cleaning device for tap surface machining as described in any one of claims 1-8, characterized in that, Includes the following steps: S1: Open the cabinet door (2) of the operating cabinet (1), then rotate the rotary disk (22) and place the tap on the clamping assembly. Adapt the taps of different diameters by the adaptive adjustment of roller one (17) and roller two (19). S2: Then press the tap vertically to ensure that the bottom of the tap is magnetically attracted to the magnetic block (25), and then turn on the power of the device; S3: After the power is turned on, the drive shaft (21) starts to rotate. The tap revolves through the rotating disk (22) on the outer surface of the drive shaft (21). The tap rotates by meshing with the gear ring (26) on the outer surface of the magnetic block (25) through the internal gear ring (24). The cleaning component (3) automatically cleans the outer surface of the tap. S4: After processing is completed, open the cabinet door (2), take out the tap, and the clamping assembly will automatically reset to prepare for the next cleaning work.