Full-automatic cleaning production line for pipe fitting machining
The fully automated cleaning production line design solves the problems of air accumulation and surface damage during pipe cleaning, achieving thorough cleaning and rapid drying of pipes and ensuring cleaning quality.
Patent Information
- Application Number
- CN202511195044.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-26
- Publication Date
- 2025-11-25
AI Technical Summary
Existing ultrasonic cleaning devices are ineffective at removing dirt from the curved areas of pipes and lack specific adjustments for the individual characteristics of pipes, which can easily cause damage to the pipe surface and incomplete cleaning.
A fully automated cleaning production line was designed, which includes an ultrasonic cleaning device, a cleaning adjustment mechanism, and a drying mechanism. Through rotation, position adjustment, and air drying, it ensures that the curved pipe can effectively expel air during the cleaning process, avoid collisions, and achieve all-round cleaning.
It achieves effective cleaning of bends, ensuring that dirt in the bending area of the bend is completely removed, avoiding surface damage, and can be adjusted and dried quickly according to the characteristics of the bend.
Smart Images

Figure CN121004147A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of pipe cleaning technology, and more specifically, to a fully automated cleaning production line for pipe processing. Background Technology
[0002] In the field of pipe fittings processing, bends are a common type of pipe fitting widely used in various fluid transportation systems, and their cleanliness directly affects the performance and reliability of the entire system. Therefore, effective cleaning of bends is a crucial step in the pipe fittings processing.
[0003] Currently, ultrasonic cleaning technology is widely used in the field of pipe cleaning due to its efficient and thorough cleaning capabilities. Ultrasonic cleaning devices generate high-frequency ultrasonic waves, creating countless tiny bubbles in the cleaning fluid. These bubbles grow and burst under the influence of the sound field, generating a powerful impact that effectively removes dirt and impurities from the surface of pipe fittings.
[0004] However, in existing technologies, there is a significant technical challenge when using ultrasonic cleaning devices to clean curved pipes. Due to the unique curved structure of curved pipes, air easily accumulates in the curved areas under conventional cleaning placement methods. Air is a poor medium for sound wave conduction; ultrasonic waves attenuate rapidly when propagating in air, failing to effectively act on the curved areas of the pipe. This makes it difficult to effectively remove dirt from these areas, thus affecting the overall cleaning effect of the curved pipe.
[0005] Furthermore, existing cleaning methods typically lack specific adjustment mechanisms tailored to the individual characteristics of bends. Different specifications of bends vary in their bending angle and length; using uniform cleaning parameters and methods cannot guarantee that each bend will achieve the desired cleanliness. Moreover, during the cleaning process, bends may collide with the cleaning tank walls due to improper rotation or movement, causing surface damage and further affecting cleaning quality and the performance of the pipe fittings. Summary of the Invention
[0006] In view of the shortcomings of the existing technology, the purpose of this invention is to provide a fully automated cleaning production line for pipe fitting processing that can effectively clean bent pipes.
[0007] To achieve the above objectives, the present invention provides the following technical solution: The fully automatic cleaning production line includes a pair of housings and an ultrasonic cleaning device mounted on the housings. It also includes a cleaning adjustment mechanism and a drying mechanism. The cleaning adjustment mechanism is located inside the ultrasonic cleaning device and includes a first mounting part, a first rotating part, and a first abutting part. Multiple first mounting parts are respectively mounted on the ultrasonic cleaning device, and both pairs of first mounting parts are located beside the housings. Multiple first rotating parts are respectively rotatably mounted beside the housings, and each first rotating part has a cylindrical structure. Multiple first abutting parts are respectively located beside the first rotating parts, and each of the multiple first abutting parts has a triangular groove on its end face, with the end face of the triangular groove having a chamfered structure. All multiple first abutting parts are used to clamp the bent pipe to be cleaned. The drying mechanism is located on the top of the housings.
[0008] By adopting the above technical solution, the problem that the curved pipe is difficult to be effectively cleaned by the ultrasonic cleaning device due to the accumulation of air in the bending area in the existing technology is solved. It achieves the effect of adjusting the rotation angle according to the bending angle and length of the curved pipe, effectively expelling the internal air and avoiding collision with the tank wall, thereby ensuring that the curved pipe is effectively cleaned.
[0009] The cleaning adjustment mechanism also includes a first moving part and a first displacement part; the first moving part is slidably disposed in the middle of the ultrasonic cleaning device, and the top of the first moving part is fixedly connected to the first mounting part. When the first moving part moves, it can drive the first mounting part to move synchronously; the first displacement part is slidably disposed on the top of the housing, and the bottom of the first displacement part is fixedly connected to the first moving part. When the first displacement part moves, it can drive the first moving part to move synchronously.
[0010] The cleaning adjustment mechanism also includes a second mounting part and a second moving part; there are multiple second mounting parts, which are respectively disposed on the top of the first moving part, and the positions of the second mounting parts correspond to the positions of the first mounting parts; there are multiple second moving parts, which are respectively slidably disposed on the side of the second mounting part, and the multiple second moving parts are all located above the second mounting part, and the multiple second moving parts correspond to the positions of the first mounting part.
[0011] The cleaning adjustment mechanism also includes a first telescopic cylinder, a conveying rod, and a hydraulic cylinder; there are multiple first telescopic cylinders, which are respectively arranged on the side of the second mounting part, and all of the multiple first telescopic cylinders are located above the machine housing; there are multiple conveying rods, which are respectively arranged at the output end of the first telescopic cylinder, and all of the multiple conveying rods are connected to the output end of the multiple first telescopic cylinders, and the end face of the multiple conveying rods is connected to the second moving part. When the first telescopic cylinder is started, it can drive the second moving part to move in the direction of the first rotating part through the conveying rod; the hydraulic cylinder is arranged on the side of the machine housing, and the output end of the hydraulic cylinder is fixedly connected to the first displacement part.
[0012] The cleaning adjustment mechanism also includes a second rotating part and a second abutting part; there are multiple second rotating parts, which are rotatably arranged on the side of the second moving part, and the positions of the multiple second rotating parts correspond to the positions of the first rotating part; there are multiple second abutting parts, which are arranged on the side of the second rotating part, and the end faces of the multiple second abutting parts are provided with triangular grooves, and the end faces of the triangular grooves are all chamfered.
[0013] The cleaning adjustment mechanism also includes a rotary driver, a first rotating part, a second rotating block, and a third rotating part; the rotary driver is disposed beside the first mounting part and is located above the housing; the first rotating part is rotatably disposed beside the first mounting part and is located above the first moving part, and the end face of the first rotating part is connected to the first rotating part; the second rotating block is rotatably disposed beside the first mounting part and is located beside the first rotating part; the third rotating part is rotatably disposed beside the first mounting part and is located beside the second rotating block.
[0014] The cleaning and adjusting mechanism also includes a first transmission belt and a second transmission belt; the first transmission belt has multiple first transmission belts and is respectively disposed on the side of the first mounting part, and the first transmission belt is respectively connected to the output end of the rotary driver and the outside of the rotating part; the second transmission belt is disposed on the side of the first mounting part, and the second transmission belt is respectively rotatably disposed on the outside of the first rotating part and the second rotating block.
[0015] The drying mechanism includes a positioning mounting plate, a turbine fan, and an air blowing pipe; the positioning mounting plate is located on the side of the housing and above the housing; the turbine fan is mounted on top of the positioning mounting plate and is located on one side of the housing; the air blowing pipe is located on the side of the turbine fan and above the ultrasonic cleaning device.
[0016] The drying mechanism also includes connecting drying pipes; there are multiple connecting drying pipes respectively located at the bottom of the blower pipe, and the multiple connecting drying pipes are all located above the ultrasonic cleaning device, and the multiple connecting drying pipes are all located above the first contact part and the second contact part.
[0017] The drying mechanism also includes a connecting frame and a connecting fixing part; the connecting frame is located on the top of the machine casing and above the connecting drying pipe; the connecting fixing part has a pair and is respectively located at the bottom of the connecting frame, and both of the connecting fixing parts are connected to the outside of the connecting drying pipe.
[0018] By adopting the above technical solution, when the cleaned bent tube remains below the connecting drying pipe, the rotary driver needs to adjust the positions of the first and second abutment parts to align the end face of the bent tube with the exhaust port of the connecting drying pipe. Then, when air is discharged through the connecting drying pipe, the inside of the bent tube can be quickly dried.
[0019] In summary, this application includes at least one of the following beneficial technical effects: By incorporating a cleaning adjustment mechanism, this addresses the issue of debris re-adhering to the surface of the bent pipe during cleaning due to contact between the bent pipe and the bottom of the ultrasonic cleaning device, thus affecting the cleaning effect. The vertical position of the bent pipe is adjusted to ensure it remains centered within the ultrasonic cleaning device, preventing both contact with the bottom and the top of the pipe extending beyond its outer edge. First, the hydraulic cylinder is activated, causing the first displacement unit to move upwards or downwards. This movement synchronously moves the first mounting unit, the second mounting unit, and the second moving unit, thereby achieving vertical position adjustment of the bent pipe.
[0020] By incorporating a rotary driver, a first rotating part, a second rotating block, and a third rotating part, the system aims to adjust the rotational tilt of the bent pipe to be cleaned and address the problem of water stagnating in the bend after cleaning. First, the rotary driver is activated. The pipe moves until it moves outside the ultrasonic cleaning device and then stops. The rotary driver then activates again, driving multiple clamped bends to rotate at an angle. This allows for further adjustment of the cleaned bend, enabling the drainage of any residual water and preventing waste liquid accumulation.
[0021] By incorporating a drying mechanism, the problem of dirt buildup inside the bend due to the difficulty in timely and effective drying of the bent portion after cleaning is addressed. After the bend has been cleaned, raised, and the furnace is stopped below the air duct, the turbine fan starts and exhausts air through the air duct. The end face of the bend is aligned with the exhaust port of the connecting drying pipe. This allows for rapid drying of the bend's interior as air is exhausted through the drying pipe. Attached Figure Description
[0022] Figure 1 This is a first-view perspective three-dimensional structural diagram of a fully automated cleaning production line for pipe fitting processing according to the present invention; Figure 2 This is a three-dimensional structural diagram of the drying mechanism of a fully automated cleaning production line for pipe fitting processing according to the present invention; Figure 3 This is a three-dimensional structural diagram of a turbine wind system for a fully automated cleaning production line for pipe fitting processing according to the present invention. Figure 4 This is a three-dimensional structural diagram of a cleaning adjustment mechanism in a fully automated cleaning production line for pipe fitting processing according to the present invention. Figure 5 This is a perspective structural diagram of the first and second mounting sections of a fully automated cleaning production line for pipe fitting processing according to the present invention. Figure 6 This is a three-dimensional structural diagram of the connection and fixing part of a fully automated cleaning production line for pipe fitting processing according to the present invention; Figure 7 for Figure 5 Enlarged structural diagram at point C; Figure 8 for Figure 2 Enlarged structural diagram at point B; Figure 9 This is a side view of a fully automated cleaning production line for pipe fitting processing according to the present invention. Figure 10 for Figure 1 Enlarged structural diagram at point A in the middle; Explanation of reference numerals in the attached drawings: 1. Housing; 2. Ultrasonic cleaning device; 3. Cleaning adjustment mechanism; 31. First mounting part; 32. First rotating part; 33. First abutting part; 34. First moving part; 35. First displacement part; 36. Second mounting part; 37. Second moving part; 38. First telescopic cylinder; 39. Conveying rod; 391. Hydraulic cylinder; 392. Second rotating part; 393. Second abutting part; 394. Rotary driver; 395. First rotating part; 396. Second rotating block; 397. Third rotating part; 398. First transmission belt; 399. Second transmission belt; 4. Drying mechanism; 41. Positioning mounting plate; 42. Turbine fan; 43. Air blowing pipe; 44. Connecting drying pipe; 45. Connecting frame; 46. Connecting fixing part. Detailed Implementation
[0023] It should be noted that, unless otherwise specified, the embodiments and features described in this application can be combined with each other. The present invention will now be described in detail with reference to the accompanying drawings and embodiments.
[0024] It should be noted that, unless otherwise specified, all technical and scientific terms used in this application have the same meaning as commonly understood by one of ordinary skill in the art to which this application pertains.
[0025] Please see Figure 1-10 The present invention provides the following technical solutions: Example 1 addresses a significant drawback in existing technologies where workers place bent pipes in ultrasonic cleaning devices 2 for cleaning. Because of the curved area of the pipe, air easily accumulates in this area under conventional placement. Air cannot effectively conduct ultrasonic waves, making it difficult for the ultrasonic waves to reach this area, thus hindering effective cleaning.
[0026] To address the problem in the prior art where air accumulates in the bend area of the pipe, making it difficult for the ultrasonic cleaning device 2 to effectively clean it, the worker first places the bend to be cleaned beside the first abutment part 33. Then, the first rotating part 32 rotates, adjusting the rotation angle of the bend held by the first abutment part 33. It is important to note that when placing the vertically positioned bend beside the first abutment part 33, the worker must position it according to the initial orientation of the bend, ensuring that the curved surface of the bend is angled upwards at 15 to 20 degrees to the vertical direction, leaving a path for air venting. The clamping surface of the first abutment part 33 is a triangular groove with a chamfered structure, preventing obstruction of the bend's orientation. The first rotating part 32 can drive the bend to be cleaned to rotate. During rotation, the bend gradually turns downwards, eventually making the rotating bend face an angle, allowing internal air to escape from the top opening. The rotation angle also prevents the bend from colliding with the tank wall. This allows workers to adjust the rotation according to the bending angle and length of the bend.
[0027] See Figure 4 and Figure 5 The cleaning adjustment mechanism 3 also includes a first moving part 34 and a first displacement part 35; the first moving part 34 is slidably disposed in the middle of the ultrasonic cleaning device 2, and the top of the first moving part 34 is fixedly connected to the first mounting part 31. When the first moving part 34 moves, it can drive the first mounting part 31 to move synchronously; the first displacement part 35 is slidably disposed on the top of the housing 1, and the bottom of the first displacement part 35 is fixedly connected to the first moving part 34. When the first displacement part 35 moves, it can drive the first moving part 34 to move synchronously.
[0028] In this embodiment, the top of the first moving part 34 is connected to the plurality of first mounting parts 31 by fasteners. When the first moving part 34 slides vertically upward inside the ultrasonic cleaning device 2, it can drive the plurality of first mounting parts 31, the first rotating part 32, and the first abutting part 33 to move upward synchronously. In addition, in this embodiment, the first displacement part 35 is welded to the first moving part 34, and the first displacement part 35 can move upward vertically along the ultrasonic cleaning device 2. When the first displacement part 35 moves upward, it can drive the first moving part 34, the first mounting part 31, the first rotating part 32, and the first abutting part 33 to move synchronously, thereby realizing the position adjustment of the bent pipe after clamping and cleaning by raising or lowering it.
[0029] See Figure 4 and Figure 5 The cleaning adjustment mechanism 3 also includes a second mounting part 36 and a second moving part 37; the second mounting part 36 has multiple parts and is respectively disposed on the top of the first moving part 34, and the position of the second mounting part 36 corresponds to the position of the first mounting part 31; the second moving part 37 has multiple parts and is respectively slidably disposed on the side of the second mounting part 36, and the multiple second moving parts 37 are all located above the second mounting part 36, and the multiple second moving parts 37 correspond to the position of the first mounting part 31.
[0030] Each of the multiple second moving parts 37 has a circular structure, and each of the multiple second moving parts 37 can move along the second mounting part 36 with a clearance fit in a direction close to the first abutment part 33. This allows for adjustment of the position of the second moving parts 37.
[0031] Example 2: To address the problem that during the cleaning of bent pipes, the waste debris that falls off during the cleaning process re-adheres to the surface of the bent pipe due to the contact between the bent pipe and the bottom of the ultrasonic cleaning device 2, thus affecting the cleaning effect of the bent pipe.
[0032] See Figure 10 The cleaning adjustment mechanism 3 also includes a first telescopic cylinder 38, a conveying rod 39, and a hydraulic cylinder 391. Multiple first telescopic cylinders 38 are respectively disposed beside the second mounting portion 36, and all of the first telescopic cylinders 38 are located above the housing 1. Multiple conveying rods 39 are respectively disposed at the output ends of the first telescopic cylinders 38, and all of the conveying rods 39 are connected to the output ends of the multiple first telescopic cylinders 38. The end faces of the multiple conveying rods 39 are all connected to the second moving portion 37. When the first telescopic cylinder 38 is activated, the second moving portion 37 can be driven to move towards the direction of the first rotating portion 32 via the conveying rods 39. The hydraulic cylinder 391 is disposed beside the housing 1, and the output end of the hydraulic cylinder 391 is fixedly connected to the first displacement portion 35.
[0033] The vertical position of the clamped bent pipe to be cleaned needs to be adjusted so that it is always in the middle of the ultrasonic cleaning device 2, avoiding contact with the bottom of the ultrasonic cleaning device 2 and preventing the top of the bent pipe from extending beyond the outer side of the ultrasonic cleaning device 2. First, the hydraulic cylinder 391 is activated. When the hydraulic cylinder 391 is activated, it can drive the first displacement part 35 to move up or down. When the first displacement part 35 moves, it can drive the first mounting part 31, the second mounting part 36, and the second moving part 37 to move up and down synchronously, thereby realizing the vertical position adjustment of the clamped bent pipe to be cleaned. The first telescopic cylinder 38 is activated. When the first telescopic cylinder 38 is activated, it can drive the conveying rod 39 and the connected second moving part 37 to move upward of the ultrasonic cleaning device 2. When the second moving part 37 moves, it can move towards the first mounting part 31.
[0034] See Figures 5-8 The cleaning adjustment mechanism 3 also includes a second rotating part 392 and a second abutting part 393; the second rotating part 392 has multiple parts and is rotatably disposed on the side of the second moving part 37, and the positions of the multiple second rotating parts 392 are all corresponding to the positions of the first rotating part 32; the second abutting part 393 has multiple parts and is disposed on the side of the second rotating part 392, and the end face of the multiple second abutting parts 393 is provided with a triangular groove, and the end face of the triangular groove is a chamfered structure.
[0035] The bent pipe to be cleaned is clamped by the second abutment part 393 and the first abutment part 33 respectively. In addition, when the first telescopic cylinder 38 is activated in this embodiment, it can drive the conveying rod 39, the second moving part 37, the second rotating part 392 and the second abutment part 393 to move in a direction closer to the first abutment part 33, thereby achieving clamping and fixing of the outside of the bent pipe to be cleaned. It should be noted that the second rotating part 392 is rotatably connected to the second mounting part 36 through a bearing, which will not affect the rotation of the clamped bent pipe.
[0036] Example 3: In order to achieve the rotational tilt adjustment of the bend to be cleaned and to solve the problem that water is stuck in the bend and difficult to drain after cleaning.
[0037] See Figures 5-8The cleaning adjustment mechanism 3 further includes a rotary driver 394, a first rotating part 395, a second rotating block 396, and a third rotating part 397. The rotary driver 394 is disposed beside the first mounting part 31 and is located above the housing 1. The first rotating part 395 is rotatably disposed beside the first mounting part 31 and is located above the first moving part 34. The end face of the first rotating part 395 is connected to the first rotating part 32. The second rotating block 396 is rotatably disposed beside the first mounting part 31 and is located beside the first rotating part 395. The third rotating part 397 is rotatably disposed beside the first mounting part 31 and is located beside the second rotating block 396.
[0038] First, the rotary driver 394 is activated, driving the first rotating part 395, the second rotating block 396, and the third rotating part 397 to rotate. After the bend to be cleaned contacts the ultrasonic cleaning device 2 and the first moving part 34, the first mounting part 31, and the second mounting part 36 rise, the cleaned bend is synchronously raised until it reaches the outside of the bend. Then, the rotary driver 394 is activated again, driving the multiple clamped bends to rotate at an angle. This allows for further adjustment of the cleaned bend, enabling the drainage of residual water inside and preventing waste liquid accumulation.
[0039] See Figure 5 The cleaning adjustment mechanism 3 also includes a first transmission belt 398 and a second transmission belt 399; the first transmission belt 398 has multiple belts and is respectively disposed on the side of the first mounting part 31, and the first transmission belt 398 is respectively connected to the output end of the rotary driver 394 and the outside of the rotating part; the second transmission belt 399 is disposed on the side of the first mounting part 31, and the second transmission belt 399 is respectively rotatably disposed on the outside of the first rotating part 395 and the second rotating block 396.
[0040] It should be noted that the first drive belt 398 is connected to the output end of the rotary driver 394 and the first rotating part 395, respectively. It should also be noted that there are multiple second drive belts 399, one of which is connected to the second rotating block 396 and the third rotating part 397. Thus, when the rotary driver 394 is started, the first drive belt 398 and the second drive belt 399 can drive multiple first rotating parts 32 and first abutment parts 33 to rotate synchronously. In this embodiment, the bent pipe to be cleaned is clamped and fixed by the first abutment part 33 and the second abutment part 393, which allows the second rotating block 396 to rotate beside the second mounting part 36 when the bent pipe to be cleaned rotates.
[0041] Example 4: To address the problem that after cleaning the bend, it is difficult to perform timely and effective drying of the bend, which leads to the formation of dirt inside the bend.
[0042] See Figures 1-9 The drying mechanism 4 includes a positioning mounting plate 41, a turbine fan 42, and an air blowing pipe 43. The positioning mounting plate 41 is located on the side of the housing 1 and above the housing 1. The turbine fan 42 is mounted on top of the positioning mounting plate 41 and is located on one side of the housing 1. The air blowing pipe 43 is located on the side of the turbine fan 42 and above the ultrasonic cleaning device 2.
[0043] After the bend in the tube is cleaned and raised, and the furnace is stopped at a position below the blast pipe 43, the turbine fan 42 starts and discharges air through the blast pipe 43.
[0044] See Figures 2-4 The drying mechanism 4 also includes connecting drying pipes 44; there are multiple connecting drying pipes 44 respectively disposed at the bottom of the blower pipe 43, and the multiple connecting drying pipes 44 are all located above the ultrasonic cleaning device 2, and the multiple connecting drying pipes 44 are all located above the first contact part 33 and the second contact part 393.
[0045] When the ascending bend stops below the air blower 43 and the turbine fan 42 is activated, air can be discharged through the connecting drying pipe 44. In this embodiment, when the cleaned bend stops below the connecting drying pipe 44, the rotary driver 394 needs to adjust the positions of the first abutment part 33 and the second abutment part 393 by rotation, so that the end face of the bend can be aligned with the exhaust port of the connecting drying pipe 44. Then, when air is discharged through the connecting drying pipe 44, the inside of the bend can be quickly dried.
[0046] See Figures 2-4 The drying mechanism 4 also includes a connecting frame 45 and a connecting fixing part 46; the connecting frame 45 is disposed on the top of the housing 1 and is located above the connecting drying pipe 44; the connecting fixing part 46 has a pair and is disposed on the bottom of the connecting frame 45 respectively, and both of the connecting fixing parts 46 are connected to the outside of the connecting drying pipe 44.
[0047] In this embodiment, the blower pipe 43 is installed on the top of the connecting bracket 45 by the connecting fixing part 46, which can ensure that the blower pipe 43 will not vibrate when air passes through.
[0048] Obviously, the embodiments described above are merely some, not all, embodiments of the present invention. All other embodiments obtained by those skilled in the art based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention.
Claims
1. A fully automated cleaning production line for pipe fitting processing, comprising a pair of housings (1) and an ultrasonic cleaning device (2) disposed on the pair of housings (1), characterized in that: The fully automatic cleaning production line also includes a cleaning adjustment mechanism (3) and a drying mechanism (4); The cleaning adjustment mechanism (3) is located inside the ultrasonic cleaning device (2). The cleaning adjustment mechanism (3) includes a first mounting part (31), a first rotating part (32) and a first contacting part (33). The first mounting part (31) has multiple parts and is respectively disposed on the ultrasonic cleaning device (2), and a pair of first mounting parts (31) are located on the side of the housing (1); The first rotating part (32) has multiple parts and is rotatably disposed on the side of the housing (1), and the first rotating part (32) is a cylindrical structure; The first abutting part (33) has multiple parts and is respectively disposed on the side of the first rotating part (32). The end faces of the multiple first abutting parts (33) are provided with triangular grooves, and the end faces of the triangular grooves are all chamfered. The multiple first abutting parts (33) are used to clamp the bent pipe to be cleaned. The drying mechanism (4) is located on the top of the casing (1).
2. The fully automated cleaning production line for pipe fitting processing according to claim 1, characterized in that: The cleaning adjustment mechanism (3) also includes a first moving part (34) and a first displacement part (35); the first moving part (34) is slidably disposed in the middle of the ultrasonic cleaning device (2), and the top of the first moving part (34) is fixedly connected to the first mounting part (31). When the first moving part (34) moves, it can drive the first mounting part (31) to move synchronously; the first displacement part (35) is slidably disposed on the top of the housing (1), and the bottom of the first displacement part (35) is fixedly connected to the first moving part (34). When the first displacement part (35) moves, it can drive the first moving part (34) to move synchronously.
3. The fully automated cleaning production line for pipe fitting processing according to claim 2, characterized in that: The cleaning adjustment mechanism (3) also includes a second mounting part (36) and a second moving part (37); the second mounting part (36) has multiple parts and is respectively disposed on the top of the first moving part (34), and the position of the second mounting part (36) corresponds to the position of the first mounting part (31); the second moving part (37) has multiple parts and is respectively slidably disposed on the side of the second mounting part (36), and the multiple second moving parts (37) are all located above the second mounting part (36), and the multiple second moving parts (37) correspond to the position of the first mounting part (31).
4. The fully automated cleaning production line for pipe fitting processing according to claim 3, characterized in that: The cleaning adjustment mechanism (3) also includes a first telescopic cylinder (38), a conveying rod (39), and a hydraulic cylinder (391); the first telescopic cylinder (38) has multiple units and is respectively disposed on the side of the second mounting part (36), and the multiple first telescopic cylinders (38) are all located above the housing (1); the conveying rod (39) has multiple units and is respectively disposed on the output end of the first telescopic cylinder (38), and the multiple conveying rods (39) are all connected to the output end of the multiple first telescopic cylinders (38), and the end face of the multiple conveying rods (39) is connected to the second moving part (37). When the first telescopic cylinder (38) is started, the second moving part (37) can be driven to move in the direction of the first rotating part (32) through the conveying rod (39); the hydraulic cylinder (391) is disposed on the side of the housing (1), and the output end of the hydraulic cylinder (391) is fixedly connected to the first displacement part (35).
5. A fully automated cleaning production line for pipe fitting processing according to claim 4, characterized in that: The cleaning adjustment mechanism (3) also includes a second rotating part (392) and a second abutting part (393); the second rotating part (392) has multiple parts and is rotatably disposed on the side of the second moving part (37), and the positions of the multiple second rotating parts (392) correspond to the positions of the first rotating part (32); the second abutting part (393) has multiple parts and is disposed on the side of the second rotating part (392), and the end faces of the multiple second abutting parts (393) are provided with triangular grooves, and the end faces of the triangular grooves are all chamfered.
6. The fully automated cleaning production line for pipe fitting processing according to claim 5, characterized in that: The cleaning adjustment mechanism (3) also includes a rotary driver (394), a first rotating part (395), a second rotating block (396), and a third rotating part (397); the rotary driver (394) is disposed on the side of the first mounting part (31) and is located above the housing (1); the first rotating part (395) is rotatably disposed on the side of the first mounting part (31) and is located above the first moving part (34), and the end face of the first rotating part (395) is connected to the first rotating part (32); the second rotating block (396) is rotatably disposed on the side of the first mounting part (31) and is located on the side of the first rotating part (395); the third rotating part (397) is rotatably disposed on the side of the first mounting part (31) and is located on the side of the second rotating block (396).
7. A fully automated cleaning production line for pipe fitting processing according to claim 6, characterized in that: The cleaning adjustment mechanism (3) also includes a first transmission belt (398) and a second transmission belt (399); the first transmission belt (398) has multiple belts and is respectively disposed on the side of the first mounting part (31), and the first transmission belt (398) is respectively connected to the output end of the rotary driver (394) and the outside of the rotating part; the second transmission belt (399) is disposed on the side of the first mounting part (31), and the second transmission belt (399) is respectively rotatably disposed on the outside of the first rotating part (395) and the second rotating block (396).
8. The fully automated cleaning production line for pipe fitting processing according to claim 1, characterized in that: The drying mechanism (4) includes a positioning mounting plate (41), a turbine fan (42), and a blower pipe (43); the positioning mounting plate (41) is located on the side of the housing (1) and above the housing (1); the turbine fan (42) is mounted on the top of the positioning mounting plate (41) and is located on one side of the housing (1); the blower pipe (43) is located on the side of the turbine fan (42) and above the ultrasonic cleaning device (2).
9. A fully automated cleaning production line for pipe fitting processing according to claim 8, characterized in that: The drying mechanism (4) also includes connecting drying pipes (44); there are multiple connecting drying pipes (44) respectively located at the bottom of the blower pipe (43), and the multiple connecting drying pipes (44) are all located above the ultrasonic cleaning device (2), and the multiple connecting drying pipes (44) are all located above the first contact part (33) and the second contact part (393).
10. A fully automated cleaning production line for pipe fitting processing according to claim 8, characterized in that: The drying mechanism (4) also includes a connecting frame (45) and a connecting fixing part (46); the connecting frame (45) is located on the top of the housing (1) and above the connecting drying pipe (44); the connecting fixing part (46) has a pair and is respectively located at the bottom of the connecting frame (45), and both of the connecting fixing parts (46) are connected to the outside of the connecting drying pipe (44).