A kind of aviation rotary class part electroplating processing device and method
Through the design of the drive components and gear system, comprehensive cleaning and coating of aerospace rotating parts has been achieved, solving the problem of low efficiency in existing devices and achieving a comprehensive coating effect without blind spots.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- XIAN KANGCHENG MACHINE EQUIP
- Filing Date
- 2023-04-03
- Publication Date
- 2026-04-24
AI Technical Summary
Existing electroplating equipment for aerospace rotating parts is inefficient in the cleaning and plating process, especially for parts with holes where contact blind spots cannot be plated, requiring secondary processing.
The system employs two drive components, along with gears, screws, and crankshafts. Through gear meshing and the forward and reverse rotation of the screw, the cleaning component reciprocates and the air pump reciprocates. Combined with the movement of the electric slide rail, the workpiece to be plated is mounted on the support assembly, and compressed air is ejected from the jet nozzle to propel the electroplating solution, achieving a comprehensive plating effect.
It improves electroplating efficiency, avoids contact blind spots, and achieves full coating of the parts to be plated without the need for secondary processing.
Smart Images

Figure CN116288615B_ABST
Abstract
Description
Technical Field
[0001] This invention belongs to the field of electroplating technology, and particularly relates to an electroplating processing device and method for aerospace rotating parts. Background Technology
[0002] Electroplating is the process of depositing a thin layer of another metal or alloy onto the surface of certain metals using the principle of electrolysis. It is a process that uses electrolysis to attach a metal film to the surface of metal or other material parts, thereby preventing metal oxidation, improving wear resistance, conductivity, reflectivity, corrosion resistance, and enhancing aesthetics.
[0003] However, existing electroplating equipment for aerospace rotating parts requires manual cleaning of the parts' surfaces before electroplating. Furthermore, since aerospace rotating parts are stationary, their contact with the surrounding plating solution is limited. Moreover, regardless of the positioning method—hanging, clamping, or supporting—there are contact blind spots for parts with holes. These contact points are covered and cannot be plated, requiring a secondary plating layer, which reduces electroplating efficiency. Therefore, we propose an electroplating device and method for aerospace rotating parts. Summary of the Invention
[0004] The purpose of this invention is to provide an electroplating apparatus and method for aerospace rotating parts, aiming to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution:
[0006] An electroplating processing device for aerospace rotating parts includes a housing, within which an electroplating tank is fixedly connected, and further includes:
[0007] The second driving component has a screw at its output end, a cleaning component is threaded onto the screw, a dust suction cover is provided on one side of the cleaning component, and a gear is fixedly connected to the end of the screw.
[0008] An electric slide rail and a sliding seat that cooperates with it are provided. The electric slide rail is fixedly installed inside the housing. A drive component, an air pump and an air tank are fixedly connected inside the sliding seat. A crankshaft is rotatably connected inside the sliding seat. A rotating shaft is movably connected to the output end of the drive component. The rotating shaft is movably connected to the crankshaft. A gear is fixedly connected to the rotating shaft. A clamp is provided at the end of the rotating shaft. A connecting component is rotatably connected to the end of the crankshaft. The end of the connecting component is rotatably connected to the push rod of the air pump. The air pump is connected to the air tank through a connecting pipe.
[0009] A support assembly is fixedly connected inside the electroplating tank. The support assembly has symmetrically arranged air jet holes, which are connected to the air storage tank through a ventilation assembly.
[0010] The first drive component drives the first gear to move, causing the first gear to mesh with the second gear. The second drive component drives the screw to rotate in both directions, which in turn drives the second gear to rotate. The second gear drives the shaft to rotate through the first gear, which in turn drives the crankshaft and the workpiece to be plated to rotate in both directions. The screw cleans the workpiece by driving the cleaning component to move up and down. The crankshaft drives the air pump to pump air by driving the connecting component to move back and forth. The air pump inflates the air tank through the connecting pipe. The electric slide rail drives the sliding seat to move. The first drive component drives the shaft to descend, placing the workpiece to be plated on the support assembly. The compressed air in the air tank enters the ventilation assembly. The compressed air in the ventilation assembly is ejected through the jet nozzle, causing the electroplating solution to flow and pushing the workpiece to be plated upward. The workpiece to be plated achieves a full coating effect by moving upward.
[0011] Furthermore, the ventilation assembly includes a gas collecting pipe, which is fixedly installed inside the electroplating tank. The gas inlet of the gas collecting pipe is fixedly connected to the gas outlet of the gas outlet pipe, and the gas inlet of the gas outlet pipe is fixedly connected to the gas outlet of the gas storage tank. Symmetrically arranged fixed pipes are fixedly connected to the gas collecting pipe.
[0012] Furthermore, the support assembly includes a support base, on which a fixing member is fixedly connected. Symmetrically arranged air jet holes are provided inside the support base, and the air jet holes are connected to the fixing pipe.
[0013] Furthermore, a one-way valve is provided inside the fixed tube.
[0014] Furthermore, the output end of the drive component is fixedly connected to a connecting seat, the connecting seat has an installation groove, the installation groove is rotatably connected to a rotating head, and the rotating head is fixedly connected to a rotating shaft.
[0015] Furthermore, a sliding key is fixedly connected to the rotating shaft, and a keyway is provided inside the crankshaft, with the keyway slidably connected to the sliding key.
[0016] Furthermore, the output end of the second drive component is provided with a second belt pulley transmission structure, and the output end of the second belt pulley transmission structure is provided with a first belt pulley transmission structure. Both the first and second belt pulley transmission structures are rotatably mounted on a fixed frame, which is fixedly mounted on the outer shell. The output end of the first belt pulley transmission structure is provided with a stirring shaft, which is rotatably mounted in the electroplating tank. Several stirring components are fixedly connected to the stirring shaft, and the stirring components are evenly distributed.
[0017] A method for processing aerospace rotating parts using an electroplating processing apparatus includes the following steps:
[0018] Step S1: Start the electric slide rail and drive component one. The electric slide rail drives the sliding seat to move in the horizontal direction, and drive component one drives gear one to move in the vertical direction, so that gear one and gear two mesh and connect.
[0019] Step S2: Add the electroplating solution into the electroplating tank through the inlet. Start the second drive unit. The second drive unit drives the first belt drive structure to rotate through the second belt drive structure. The first belt drive structure drives the stirring shaft to rotate. The stirring shaft drives the stirring component to rotate. The stirring component stirs the electroplating solution. At the same time, the second drive unit drives the second belt drive structure to rotate in both directions. The second drive unit drives the screw to rotate in both directions. The screw drives the second gear to rotate. The second gear drives the rotating shaft to rotate through the first gear. The rotating shaft drives the crankshaft and the workpiece to be plated to rotate in both directions. This causes the cleaning component to move up and down repeatedly. The cleaning component cleans the workpiece to be plated. The crankshaft drives the connecting component to move back and forth, causing the air pump to pump air and inflate the air tank.
[0020] Step S3: After cleaning, the drive unit moves the workpiece to be plated vertically, and the electric slide rail moves the workpiece to be plated horizontally through the sliding seat that cooperates with it. The clamp releases the workpiece to be plated, so that the workpiece to be plated is fitted onto the fixed part, and the support seat supports the workpiece to be plated.
[0021] Step S4: Open the exhaust port of the air tank. The compressed air in the air tank enters the fixed pipe through the air outlet pipe and the air collection pipe. The compressed air in the fixed pipe is ejected through the jet hole, which causes the surrounding electroplating liquid to flow and pushes the workpiece to be plated to move upward, so that the workpiece to be plated can achieve a full coating.
[0022] Step S5: Turn off the main power supply. Electroplating is complete.
[0023] Compared with the prior art, the beneficial effects of the present invention are:
[0024] This invention employs two drive components, along with gear one, a screw, and a crankshaft. Drive component one engages gear one with gear two by moving gear one. Drive component two rotates the screw in both directions, which in turn rotates gear two. Gear two, through gear one, rotates a shaft, which in turn rotates the crankshaft and the workpiece to be plated in both directions. The screw cleans the workpiece by reciprocating the cleaning component. The crankshaft inflates an air pump by reciprocating the connecting component. The air pump inflates an air tank through a connecting pipe. An electric slide rail moves a sliding seat. Drive component one lowers the shaft to mount the workpiece onto the support assembly. Compressed air from the air tank enters the ventilation assembly and is ejected through a jet nozzle, causing the surrounding electroplating solution to flow and pushing the workpiece upwards, achieving a comprehensive plating effect. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the structure of the present invention.
[0026] Figure 2 This is an enlarged structural diagram of region A in this invention.
[0027] Figure 3 This is a cross-sectional view of the electroplating tank in this invention.
[0028] Figure 4 This is a three-dimensional structural diagram of the support base in this invention.
[0029] Figure 5 This is a side view of the cleaning component in this invention.
[0030] In the diagram: 01 outer casing, 02 sliding seat, 21 electric slide rail, 22 drive component 1, 23 dust hood, 24 screw, 25 drive component 2, 26 connecting seat, 27 crankshaft, 28 gear 1, 29 rotating shaft, 03 electroplating tank, 30 support assembly, 31 support base, 32 belt pulley drive structure 1, 33 belt pulley drive structure 2, 34 stirring shaft, 35 stirring component, 36 fixing component, 37 air collection pipe, 38 one-way valve, 39 fixing bracket, 41 gear 2, 42 connecting component, 43 air outlet pipe, 44 air pump, 45 air tank, 46 connecting pipe, 47 cleaning component, 48 rotating head, 49 mounting groove, 51 fixing pipe, 52 air jet hole, 60 ventilation assembly, 61 keyway, 62 sliding key. Implementation
[0031] To make the objectives, technical solutions, and advantages of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative and not intended to limit the invention.
[0032] The specific implementation of the present invention will be described in detail below with reference to specific embodiments.
[0033] like Figure 1-5 As shown, an electroplating processing apparatus for aerospace rotating parts according to an embodiment of the present invention includes a housing 01, an electroplating tank 03 fixedly connected inside the housing 01, and further includes:
[0034] The second driving component 25 has a screw 24 at its output end. A cleaning component 47 is threaded onto the screw 24. A dust suction cover 23 is provided on one side of the cleaning component 47. A gear 41 is fixedly connected to the end of the screw 24.
[0035] An electric slide rail 21 and a sliding seat 02 that cooperate with it are provided. The electric slide rail 21 is fixedly installed inside the outer shell 01. A drive component 22, an air pump 44 and an air tank 45 are fixedly connected inside the sliding seat 02. A crankshaft 27 is rotatably connected inside the sliding seat 02. A rotating shaft 29 is movably connected to the output end of the drive component 22. The rotating shaft 29 is movably connected to the crankshaft 27. A gear 28 is fixedly connected to the rotating shaft 29. A clamp is provided at the end of the rotating shaft 29. A connecting component 42 is rotatably connected to the end of the crankshaft 27. The end of the connecting component 42 is rotatably connected to the push rod of the air pump 44. The air pump 44 is connected to the air tank 45 through a connecting pipe 46.
[0036] A support assembly 30 is fixedly connected inside the electroplating tank 03. The support assembly 30 has symmetrically arranged air jet holes 52. The air jet holes 52 are connected to the air storage tank 45 through the ventilation assembly 60.
[0037] The drive component 22 drives the gear 28 to move, causing the gear 28 to mesh with the gear 41. The drive component 25 drives the screw 24 to rotate in both directions, which in turn drives the gear 41 to rotate. The gear 41 drives the shaft 29 to rotate via the gear 28. The shaft 29 drives the crankshaft 27 and the workpiece to be plated to rotate in both directions. The screw 24 cleans the workpiece by driving the cleaning component 47 to move up and down. The crankshaft 27 drives the air pump 44 to pump air by driving the connecting component 42 to move back and forth. The air pump 44 inflates the air tank 45 through the connecting pipe 46. The electric slide rail 21 drives the sliding seat 02 to move. The drive component 22 lowers the shaft 29 to place the workpiece on the support component 30. The compressed air in the air tank 45 enters the ventilation component 60. The compressed air in the ventilation component 60 is ejected through the jet hole 52, which drives the electroplating liquid to flow and pushes the workpiece to be plated upward. The workpiece to be plated achieves a full coating effect by moving upward.
[0038] In this embodiment of the invention, preferably, the first driving component 22 is a cylinder, the second driving component 25 is a motor, the cleaning component 47 is a brush, and the connecting component 42 is a connecting rod. The clamp is an internal expansion chuck clamp (not shown in the figure; the internal expansion chuck clamp is prior art and will not be described in detail here); a transparent door is hinged on the outer shell 01; the screw 24 is rotatably disposed inside the outer shell 01; and the dust suction hood 23 is fixedly disposed inside the outer shell 01. When the cleaning component 47 cleans the workpiece to be plated by reciprocating lifting and lowering, the external fan is activated, and dust can be suctioned through the dust suction hood 23; the compressed air in the fixed pipe 51 is sprayed out through the jet hole 52, driving the surrounding electroplating liquid to flow, thereby increasing the contact amount between the workpiece to be plated and the electroplating liquid, and can also push the workpiece to be plated to move upward on the support component 30, so that the workpiece to be plated has no contact blind spots of hanging, clamping or supporting, and can be plated comprehensively without secondary plating, thus improving electroplating efficiency.
[0039] like Figure 2 and Figure 3 As shown, in a preferred embodiment of the present invention, the ventilation assembly 60 includes a gas collecting pipe 37, which is fixedly installed in the electroplating tank 03. The inlet of the gas collecting pipe 37 is fixedly connected to the outlet of the gas outlet pipe 43, and the inlet of the gas outlet pipe 43 is fixedly connected to the outlet of the gas storage tank 45. A symmetrically arranged fixing pipe 51 is fixedly connected to the gas collecting pipe 37.
[0040] like Figure 1-4 As shown, in a preferred embodiment of the present invention, the support assembly 30 includes a support base 31, a fixing member 36 is fixedly connected to the support base 31, and symmetrically arranged air jet holes 52 are opened in the support base 31, the air jet holes 52 are connected to the fixing pipe 51.
[0041] In this embodiment of the invention, preferably, the fixing member 36 is a rod, and the fixing member 36 is perpendicular to the support base 31. The diameter of the fixing member 36 is smaller than the aperture of the workpiece to be plated. Specifically, the electric slide rail 21 drives the workpiece to be plated to move horizontally through the sliding base 02 that cooperates with it, and the driving member 22 drives the workpiece to be plated to move vertically. Then, the clamp is retracted so that the workpiece to be plated is fitted onto the fixing member 36. The support base 31 supports the workpiece to be plated. Then, the exhaust port of the air tank 45 is opened, and the compressed air in the air tank 45 enters the fixing pipe 51 through the exhaust pipe 43 and the air collection pipe 37. The compressed air in the fixing pipe 51 is ejected through the jet hole 52, thereby driving the electroplating solution to flow and pushing the workpiece to be plated to move upward. The workpiece to be plated achieves the effect of full coating by moving upward.
[0042] like Figure 3 As shown, in a preferred embodiment of the present invention, a one-way valve 38 is provided inside the fixed tube 51.
[0043] In this embodiment of the invention, preferably, the one-way valve 38 is used to prevent the plating solution from flowing back into the container. Specifically, compressed air in the gas storage tank 45 enters the fixed pipe 51 through the gas outlet pipe 43 and the gas collection pipe 37. The amount of gas in the fixed pipe 51 continuously increases, and the pressure continuously increases, which in turn opens the one-way valve 38, and then the compressed air is ejected through the jet nozzle 52.
[0044] like Figure 2 As shown, in a preferred embodiment of the present invention, the output end of the drive component 22 is fixedly connected to a connecting seat 26, the connecting seat 26 is provided with a mounting groove 49, the mounting groove 49 is rotatably connected to a rotating head 48, and the rotating head 48 is fixedly connected to a rotating shaft 29.
[0045] In a preferred embodiment of the invention, the first driving component 22 is activated. The first driving component 22 is rotatably connected to the rotating head 48 through the mounting groove 49 in the connecting seat 26, thereby driving the rotating shaft 29 to move in the vertical direction. In turn, the rotating shaft 29 can drive the first gear 28 and the workpiece to be plated to move in the vertical direction. When the first driving component 22 drives the first gear 28 to move in the vertical direction, so that the first gear 28 meshes with the second gear 41, the rotating screw 24 drives the second gear 41 to rotate, the second gear 41 drives the first gear 28 to rotate, the first gear 28 drives the rotating shaft 29 to rotate, and the rotating shaft 29 drives the rotating head 48 to rotate in the mounting groove 49.
[0046] like Figure 2 As shown, in a preferred embodiment of the present invention, a sliding key 62 is fixedly connected to the rotating shaft 29, and a keyway 61 is provided in the crankshaft 27, wherein the keyway 61 is slidably connected to the sliding key 62.
[0047] In a preferred embodiment of the invention, when the rotating shaft 29 drives the gear 28 and the workpiece to be plated to move in the vertical direction, the sliding key 62 slides in the keyway 61. When the gear 21 drives the gear 28 to rotate, and the gear 28 drives the rotating shaft 29 to rotate, the rotating shaft 29 drives the crankshaft 27 to rotate by sliding the sliding key 62 to the keyway 61. Then, the crankshaft 27 drives the air pump 44 to pump air through the connecting member 42, so that the air pump 44 inflates the air tank 45 through the connecting pipe 46.
[0048] like Figure 1 As shown, in a preferred embodiment of the present invention, the output end of the second driving component 25 is provided with a second belt pulley transmission structure 33, and the output end of the second belt pulley transmission structure 33 is provided with a first belt pulley transmission structure 32. Both the first belt pulley transmission structure 32 and the second belt pulley transmission structure 33 are rotatably mounted on a fixed frame 39. The fixed frame 39 is fixedly mounted on the outer shell 01. The output end of the first belt pulley transmission structure 32 is provided with a stirring shaft 34. The stirring shaft 34 is rotatably mounted in the electroplating tank 03. A plurality of stirring components 35 are fixedly connected to the stirring shaft 34, and the plurality of stirring components 35 are evenly distributed.
[0049] In this embodiment of the invention, preferably, the stirring element 35 is a rod. Specifically, when the electroplating solution is added to the electroplating tank 03 through the inlet, and the fixing frame 39 drives the screw 24 to rotate, the second driving element 25 drives the second belt pulley transmission structure 33 to rotate, the second belt pulley transmission structure 33 drives the first belt pulley transmission structure 32 to rotate, the first belt pulley transmission structure 32 drives the stirring shaft 34 to rotate, and the stirring shaft 34 drives the stirring element 35 to rotate, thereby stirring the electroplating solution and ensuring the uniformity of the coating.
[0050] An embodiment of the present invention provides a method for processing aerospace rotating parts using an electroplating processing apparatus, comprising the following steps:
[0051] Step S1: Start the electric slide rail 21 and drive component 22. The electric slide rail 21 drives the sliding seat 02 to move in the horizontal direction, and the drive component 22 drives the gear 28 to move in the vertical direction, so that the gear 28 meshes with the gear 41.
[0052] Step S2: Add the electroplating solution into the electroplating tank 03 through the inlet. Start the second drive component 25. The second drive component 25 drives the first belt drive structure 32 to rotate through the second belt drive structure 33. The first belt drive structure 32 drives the stirring shaft 34 to rotate. The stirring shaft 34 drives the stirring component 35 to rotate, and the stirring component 35 stirs the electroplating solution. While the second drive component 25 drives the second belt drive structure 33 to rotate forward and reverse, the second drive component 25 drives the screw 24 to rotate forward and reverse. The screw 24 drives the second gear 41 to rotate. The second gear 41 drives the rotating shaft 29 to rotate through the first gear 28. The rotating shaft 29 drives the crankshaft 27 and the workpiece to be plated to rotate forward and reverse. In turn, the cleaning component 47 moves up and down repeatedly to clean the workpiece to be plated. The crankshaft 27 drives the connecting component 42 to move back and forth, so that the air pump 44 pumps air and inflates the air tank 45.
[0053] Step S3: After cleaning, the drive component 22 moves the workpiece to be plated in the vertical direction, and the electric slide rail 21 moves the workpiece to be plated in the horizontal direction through the sliding seat 02 that cooperates with it. The clamp releases the workpiece to be plated, so that the workpiece to be plated is fitted onto the fixing component 36, and the support seat 31 supports the workpiece to be plated.
[0054] Step S4: Open the exhaust port of the air storage tank 45. The compressed air in the air storage tank 45 enters the fixed pipe 51 through the air outlet pipe 43 and the air collection pipe 37. The compressed air in the fixed pipe 51 is ejected through the jet hole 52, causing the surrounding electroplating liquid to flow and push the workpiece to be plated to move upward, so that the workpiece to be plated can achieve a full coating.
[0055] Step S5: Turn off the main power supply. Electroplating is complete.
[0056] The above are merely preferred embodiments of the present invention. It should be noted that those skilled in the art can make several modifications and improvements without departing from the concept of the present invention, and these should also be considered within the scope of protection of the present invention. These modifications and improvements will not affect the effectiveness of the implementation of the present invention or the practicality of the patent.
Claims
1. An electroplating processing device for aerospace rotating parts, comprising a housing, wherein an electroplating tank is fixedly connected inside the housing, characterized in that, Also includes: The second driving component has a screw at its output end, a cleaning component is threaded onto the screw, a dust suction cover is provided on one side of the cleaning component, and a gear is fixedly connected to the end of the screw. An electric slide rail and a sliding seat that cooperates with it are provided. The electric slide rail is fixedly installed inside the housing. A drive component, an air pump and an air tank are fixedly connected inside the sliding seat. A crankshaft is rotatably connected inside the sliding seat. A rotating shaft is movably connected to the output end of the drive component. The rotating shaft is movably connected to the crankshaft. A gear is fixedly connected to the rotating shaft. A clamp is provided at the end of the rotating shaft. A connecting component is rotatably connected to the end of the crankshaft. The end of the connecting component is rotatably connected to the push rod of the air pump. The air pump is connected to the air tank through a connecting pipe. A support assembly is fixedly connected inside the electroplating tank. The support assembly has symmetrically arranged air jet holes, which are connected to the air storage tank through a ventilation assembly. The first drive component drives the first gear to move, causing the first gear to mesh with the second gear. The second drive component drives the screw to rotate in both directions, and the screw drives the second gear to rotate. The second gear drives the shaft to rotate through the first gear, and the shaft drives the crankshaft and the workpiece to be plated to rotate in both directions. The screw cleans the workpiece by driving the cleaning component to move up and down. The crankshaft drives the air pump to pump air by driving the connecting component to move back and forth. The air pump inflates the air tank through the connecting pipe. The electric slide rail drives the sliding seat to move. The first drive component drives the shaft to descend, placing the workpiece to be plated on the support component. The compressed air in the air tank enters the ventilation component. The compressed air in the ventilation component is ejected through the jet hole, causing the electroplating liquid to flow and pushing the workpiece to be plated upward. The workpiece to be plated achieves a full coating effect by moving upward. The ventilation assembly includes a gas collecting pipe, which is fixedly installed in the electroplating tank. The gas collecting pipe's inlet is fixedly connected to the gas outlet of the gas outlet pipe, and the gas outlet pipe's inlet is fixedly connected to the gas outlet of the gas storage tank. Symmetrically arranged fixed pipes are fixedly connected to the gas collecting pipe. The support assembly includes a support base, on which a fixing member is fixedly connected. Symmetrically arranged air jet holes are opened inside the support base, and the air jet holes are connected to the fixing pipe.
2. The electroplating processing apparatus for aerospace rotating parts according to claim 1, characterized in that, A one-way valve is installed inside the fixed pipe.
3. The electroplating processing apparatus for aerospace rotating parts according to claim 1, characterized in that, The output end of the drive component is fixedly connected to a connecting seat. The connecting seat has an installation groove, and a rotating head is rotatably connected to the installation groove. The rotating head is fixedly connected to the rotating shaft.
4. The electroplating processing apparatus for aerospace rotating parts according to claim 1, characterized in that, A sliding key is fixedly connected to the rotating shaft, and a keyway is provided inside the crankshaft, with the keyway slidably connected to the sliding key.
5. The electroplating processing apparatus for aerospace rotating parts according to claim 1, characterized in that, The output end of the second drive component is provided with a second belt pulley transmission structure, and the output end of the second belt pulley transmission structure is provided with a first belt pulley transmission structure. Both the first and second belt pulley transmission structures are rotatably mounted on a fixed frame, which is fixedly mounted on the outer shell. The output end of the first belt pulley transmission structure is provided with a stirring shaft, which is rotatably mounted in the electroplating tank. Several stirring components are fixedly connected to the stirring shaft, and the stirring components are evenly distributed.
6. A method for processing aerospace rotating parts using an electroplating processing apparatus according to any one of claims 1-5, characterized in that, Includes the following steps: Step S1: Start the electric slide rail and drive component one. The electric slide rail drives the sliding seat to move in the horizontal direction. The drive component one drives gear one to move in the vertical direction, so that gear one and gear two mesh and connect. Step S2: Add the electroplating solution into the electroplating tank through the inlet. Start the second drive unit. The second drive unit drives the first belt drive structure to rotate through the second belt drive structure. The first belt drive structure drives the stirring shaft to rotate. The stirring shaft drives the stirring component to rotate. The stirring component stirs the electroplating solution. At the same time, the second drive unit drives the second belt drive structure to rotate forward and reverse. The screw drives the second gear to rotate. The second gear drives the rotating shaft to rotate through the first gear. The rotating shaft drives the crankshaft and the workpiece to be plated to rotate forward and reverse. The cleaning component moves up and down repeatedly to clean the workpiece to be plated. The crankshaft drives the connecting parts to move back and forth, which causes the air pump to pump air. The air pump fills the air tank. Step S3: After cleaning, the drive unit moves the workpiece to be plated vertically, the electric slide rail moves the workpiece to be plated horizontally through the sliding seat that cooperates with it, the clamp releases the workpiece to be plated so that it fits onto the fixed part, and the support seat supports the workpiece to be plated. Step S4: Open the exhaust port of the air tank. The compressed air in the air tank enters the fixed pipe through the air outlet pipe and the air collection pipe. The compressed air in the fixed pipe is ejected through the jet hole, which causes the surrounding electroplating liquid to flow and pushes the workpiece to be plated to move upward, so that the workpiece to be plated can achieve a full coating. Step S5: Turn off the main power supply. Electroplating is complete.
Citation Information
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