Oil stain cleaning device for machine tool parts

By combining steam cleaning and electrolytic cleaning, the problems of low efficiency and poor adaptability of existing machine tool parts oil and dirty cleaning technology are solved, and efficient and thorough oil and dirty cleaning effect is achieved, adapting to the high standards of modern manufacturing.

CN120243519AInactive Publication Date: 2025-07-04GAOYOU YONGFA MACHINERY
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Patent Information

Application Number
CN202510461286.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-14
Publication Date
2025-07-04
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing oil-stained cleaning technology for machine tool parts has obvious shortcomings in cleaning efficiency, thoroughness and adapting to the cleaning needs of complex parts, and cannot meet the strict standards of modern manufacturing. The brush cleaning method can easily lead to a decrease in cleaning effect.

Method used

The method of combining steam cleaning and electrolytic cleaning is adopted, and the oil stains are softened by high-temperature steam and the residual oil stains are further decomposed through electrochemical reactions. The circulation pump and filter are combined to achieve the recycling of the electrolyte to enhance the cleaning effect.

Benefits of technology

It significantly improves cleaning efficiency, shortens cleaning time, ensures thoroughness and stability of cleaning, adapts to the cleaning needs of complex parts, and reduces cleaning time and equipment maintenance frequency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to the technical field of part cleaning, and discloses a machine tool part oil stain cleaning device which is characterized in that a machine body is provided with an electrolytic bath, the electrolytic bath is communicated with a liquid discharge pipe, the liquid discharge pipe penetrates through the machine body and is provided with a valve, two electrodes are symmetrically installed on the inner side wall of the electrolytic bath through electrode supports, and the electrodes are divided into an anode and a cathode; a power source is installed on the outer side wall of the electrolytic cell, the two electrodes are both connected with the power source, a cover body is installed on the machine body, a steam generator is installed on the machine body, and the output end of the steam generator communicates with a steam pipeline; the end, away from the steam generator, of the steam pipeline penetrates through the cover body, extends into the leakage groove and is provided with a steam spray head assembly, and a part fixing mechanism is installed in the electrolytic bath. Two modes of steam cleaning and electrolytic cleaning are combined, so that the cleaning effect is more thorough, the cleaning efficiency is greatly improved, the cleaning time is shortened, and the cleaning efficiency is improved. And the high oil stain cleaning requirement of machine tool parts can be met.
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Description

Technical Field

[0001] The present invention relates to the technical field of component cleaning, and particularly to an oil stain cleaning device for machine tool components. Background Art

[0002] In the critical fields of machining, manufacturing, and maintenance of machine tool components, the cleanliness of components has a decisive impact on the stability, accuracy, and service life of machine tools. With the advancement of the manufacturing industry towards high precision and high complexity, the structures of machine tool components have become increasingly delicate, and the materials used have also become increasingly diverse, which has raised the requirements for oil stain cleaning technology to an unprecedented level.

[0003] Existing oil stain cleaning technologies for machine tool components have obvious shortcomings in terms of cleaning efficiency, thoroughness of cleaning effect, protection of components, and meeting the cleaning requirements of complex components, and can no longer meet the stringent standards for machine tool component cleaning in modern manufacturing. For the "oil stain wiping device for machine tool components" with the patent number CN202320339283.7, this device removes oil stains through the physical friction of a brush, which solves the problem of low manual cleaning efficiency to a certain extent. However, its disadvantages are also prominent. After several cleanings, the brush is extremely prone to attaching oil stains, resulting in a serious decline in the subsequent wiping effect, and it is difficult to completely remove oil stains in a single wipe.

[0004] Therefore, it is necessary to provide an oil stain cleaning device for machine tool components to solve the above technical problems. Summary of the Invention

[0005] The purpose of the present invention is to provide an oil stain cleaning device for machine tool components to solve the existing problems in the above background art.

[0006] To achieve the above purpose, the present invention provides the following technical solution: An oil stain cleaning device for machine tool components, including a machine body, an electrolytic cell is provided on the machine body, a drain pipe is communicated with the electrolytic cell, the drain pipe penetrates the machine body and is provided with a valve, two electrodes are symmetrically installed on the inner side wall of the electrolytic cell through an electrode support, the electrodes are divided into an anode and a cathode, a power supply is installed on the outer side wall of the electrolytic cell, and both electrodes are connected to the power supply, and the anode is connected to the positive pole of the power supply, and the cathode is connected to the negative pole of the power supply, a cover body is installed on the machine body through a detachable locking fastener, a steam generator is installed on the machine body, an output end of the steam generator is communicated with a steam pipe, and one end of the steam pipe far from the steam generator penetrates the cover body and extends into a leakage tank and is provided with a steam spray head assembly.

[0007] As a further solution of the present invention, a circulation pump and a filter are provided outside the machine body, a circulation pipe is communicated between the circulation pump and the electrolytic cell, a filter pipe is communicated between the circulation pump and the filter, and a return pipe is communicated between the filter and the electrolytic cell.

[0008] As a further solution of the present invention, a fixed flower disc and a hanging bracket are provided on the inner bottom wall of the electrolytic cell. The fixed flower disc includes a plurality of symmetrically arranged extending rods, and the included angles between adjacent extending rods are equal. A working guiding column is fixedly installed on the hanging bracket. The working guiding column includes a cylindrical rod and a lead screw. A joint seat is sleeved on the cylindrical rod. A plurality of slots are symmetrically formed on the upper end face of the joint seat. A floating ball is provided below the joint seat. A rotating disc is provided below the floating ball. Both the rotating disc and the floating ball are sleeved on the cylindrical rod. The floating ball is of a hollow structure. A plurality of fixing ropes are commonly installed between the rotating disc and the fixed flower disc. A top seat is connected in a matching manner on the lead screw. A plurality of inserting rods are symmetrically installed at the lower end of the top seat.

[0009] As a further solution of the present invention, a connecting ring is rotatably connected to the top seat. An annular groove is formed on the upper end face of the top seat, and the connecting ring is located in the annular groove. A limiting annular groove is formed on the inner side wall of the annular groove. A limiting ring is provided on the side wall of the connecting ring, and the limiting ring is located in the limiting annular groove. A return spring is commonly installed between the connecting ring and the hanging bracket.

[0010] As a further solution of the present invention, a driving mechanism is installed at the upper end of the rotating rod, and the driving mechanism can be a motor or a rocker.

[0011] As a further solution of the present invention, a controller is installed on the machine body, and the power supply, the circulation pump, the filter, the steam generator, and the driving mechanism (when it is a motor) are electrically connected to the controller.

[0012] As a further solution of the present invention, a liquid level sensor, a current sensor, and a temperature sensor are installed on the inner wall of the electrolytic cell, and the liquid level sensor, the current sensor, and the temperature sensor are all electrically connected to the controller.

[0013] The present invention combines two cleaning methods of steam cleaning and electrolytic cleaning. The steam generator generates steam, and the steam is passed through the steam pipeline and the steam spray head assembly to perform preliminary steam cleaning on the machine tool parts located in the leakage tank. The heat effect of the high-temperature steam is used to soften the oil stains, and then part of the oil stains are removed by the impact force. Immediately afterwards, electrolytic cleaning can be carried out. The power supply supplies power to the electrodes symmetrically installed on the inner side wall of the electrolytic cell. The anode is connected to the positive pole of the power supply, and the cathode is connected to the negative pole. An electric field is formed in the electrolyte to trigger an electrochemical reaction and further decompose the residual oil stains. The two cleaning methods of steam cleaning and electrolytic cleaning work together. Compared with a single cleaning method, the cleaning time is greatly shortened, and the cleaning efficiency is significantly improved. BRIEF DESCRIPTION OF THE DRAWINGS

[0014] The present invention will be further described below with reference to the drawings and embodiments.

[0015] Figure 1It is a schematic diagram of the overall structure of the present invention; Figure 2 In the present invention Figure 1 It is an intuitive view from another perspective; Figure 3 In the present invention Figure 1 It is a schematic diagram of the structure after removing the body shell and the cover; Figure 4 In the present invention Figure 3 It is an intuitive view from another perspective; Figure 5 It is of the present invention Figure 4 It is a schematic diagram of the structure after removing the body; Figure 6 It is of the present invention Figure 5 It is a schematic diagram of the structure after removing the electrolytic cell, the circulation pump and their connecting pipes; Figure 7 It is an enlarged view of the structure of the hanger part in the present invention; Figure 8 It is an enlarged view of the structure of the floating ball part in the present invention; Figure 9 It is an enlarged view of the structure of the working guiding column part in the present invention; Figure 10 It is a schematic diagram of the structure of the top seat in the present invention; Figure 11 It is a schematic diagram of the structure of the connecting ring in the present invention.

[0016] In the figure: 1. Body, 2. Drain pipe, 3. Cover, 4. Extension frame, 5. Removable locking fastener, 6. Driving mechanism, 7. Circulation pump, 8. Filter, 9. Circulation pipe, 10. Return pipe, 11. Steam pipe, 12. Power supply, 13. Electrolytic cell, 14. Hanger, 15. Steam generator, 16. Rotating rod, 17. Electrode, 18. Rotating disc, 19. Floating ball, 20. Fixed flower disc, 21. Fixed rope, 22. Connector seat, 23. Top seat, 24. Truss, 25. Buffer cavity seat, 26. Working guiding column, 27. Electric slide rail, 28. Slot, 29. Plug rod, 30. Return spring, 31. Connecting ring. Detailed implementation manners Embodiment 1

[0017] As Figures 1-5As shown in the figure, an oil stain cleaning device for machine tool parts includes a machine body 1. An electrolytic cell 13 is provided on the machine body 1. A drain pipe 2 is connected to the electrolytic cell 13. The drain pipe 2 penetrates the machine body 1 and is provided with a valve. Two electrodes 17 are symmetrically installed on the inner side wall of the electrolytic cell 13 through electrode brackets. The electrodes 17 are divided into an anode and a cathode. A power supply 12 is installed on the outer side wall of the electrolytic cell 13, and both electrodes 17 are connected to the power supply 12. The anode is connected to the positive pole of the power supply 12, and the cathode is connected to the negative pole of the power supply 12. A cover 3 is installed on the machine body 1 through a detachable locking fastener 5. The detachable locking fastener 5 is composed of a lock body, a movable lock tongue, a buckle ring, and an adjustment knob. The lock body is firmly installed at the edge of the extension frame 4 by welding or bolt fixing. The movable lock tongue is embedded inside the lock body and can slide flexibly in a specific track. One end of it is provided with an inclined guiding surface to facilitate smooth connection with the buckle ring during buckling. The buckle ring is fixed at the corresponding edge position of the cover 3, with a strong material and precise dimension matching with the movable lock tongue. The adjustment knob is installed outside the lock body and is connected to the internal movable lock tongue transmission rod through a threaded connection. When the cover 3 needs to be installed on the machine body 1, place the cover 3 in the appropriate position to make the buckle ring close to the lock body, push the movable lock tongue, and under the action of its guiding surface, the movable lock tongue slides into the buckle ring and is clamped tightly. If the cover 3 needs to be disassembled, just rotate the adjustment knob. The adjustment knob drives the movable lock tongue transmission rod to retract the movable lock tongue into the lock body, and the cover 3 can be easily removed. This detachable locking fastener 5 has a delicate structure design and convenient operation. It can not only ensure the firm sealing of the cover 3 during the operation of the device but also be quickly disassembled when needed, meeting the operation requirements of different cleaning stages.

[0018] A steam generator 15 is installed on the machine body 1, and the output end of the steam generator 15 is connected to the steam pipe 11. The end of the steam pipe 11 away from the steam generator 15 passes through the cover body 3 and extends into the electrolytic cell 13 and is installed with a steam nozzle assembly. The steam pipe 11 is divided into a first pipe and a second pipe through a connector. The first pipe is connected to the steam generator 15, and the second pipe is connected to the steam nozzle assembly to realize the detachability of the steam pipe 11. The connector of the steam pipe 11 is mainly composed of a male connector, a female connector, a sealing gasket and a fastening nut. The male connector is integrally formed at the end of the first pipe (the pipe connected to the steam generator 15), and its outer wall is provided with an external thread, and an annular groove is processed at the port. The female connector is installed at the starting end of the second pipe (the pipe connected to the steam nozzle assembly), and is provided with an internal thread matching the external thread of the male connector. There is a circle of grooves on the inner side of the female connector port for placing the sealing gasket. The fastening nut is set on the outer side of the female connector, and its inner thread is consistent with the external thread of the female connector. When the steam pipe 11 needs to be connected, the male connector is inserted into the female connector to ensure that the sealing gasket is accurately embedded in the annular groove of the male connector. At this time, the fastening nut is rotated to screw it along the external thread of the female connector. As the fastening nut is tightened, the female connector and the male connector are tightly connected together, and the sealing gasket is further deformed under the action of pressure to achieve a good sealing effect. When the steam pipe 11 needs to be disassembled, the fastening nut is rotated in the opposite direction to disengage it from the female connector, and then the male connector and the female connector can be easily separated to complete the disassembly operation of the steam pipe 11. This connector structure is reasonably designed, which can not only ensure the sealing of steam during transportation, but also realize the installation and disassembly of the steam pipe 11 conveniently and quickly, meeting the equipment's maintenance and replacement requirements for the steam nozzle assembly under different working conditions.

[0019] A circulation pump 7 and a filter 8 are provided outside the machine body 1. A circulation pipe 9 is connected between the circulation pump 7 and the electrolytic cell 13. The circulation pipe 9 and the discharge pipe 2 are both located at a relatively lower position of the electrolytic cell 13. A filter pipe is connected between the circulation pump 7 and the filter 8. A reflux pipe 10 is connected between the filter 8 and the electrolytic cell 13. The reflux pipe 10 is located at a higher position in the electrolytic cell 13.

[0020] During use, first start the steam generator 15. The high-temperature steam generated passes through the steam pipeline 11 and is ejected from the steam nozzle assembly to steam clean the machine tool parts placed in the electrolytic cell 13, softening and initially removing the surface oil stains by using the thermal effect and impact force of the high-temperature steam. After the steam cleaning is completed, the steam pipeline 11 is disassembled through the connector, and then the steam nozzle assembly and the cover body 3 are disassembled and separated from the machine body 1 through the detachable locking fastener 5. Subsequently, electrolyte is introduced into the electrolytic cell 13. The power supply 12 is connected to two electrodes 17 symmetrically installed on the inner side wall of the electrolytic cell 13 through the electrode bracket. The anode is connected to the positive pole of the power supply, and the cathode is connected to the negative pole of the power supply to form an electrolytic circuit. When the power supply 12 is turned on, current passes through the electrolyte, and an electrochemical reaction occurs. The metal electrode at the anode may dissolve, and at the same time, anions in the solution lose electrons at the anode to undergo an oxidation reaction; cations in the solution at the cathode gain electrons to undergo a reduction reaction. For example, hydrogen ions in water gain electrons to generate hydrogen, effectively decomposing the oil stains and causing the oil stains to separate from the surface of the parts.

[0021] During the electrolyte cleaning process, the circulating pump 7 located outside the machine body 1 extracts the electrolyte containing oil stain impurities from the bottom of the electrolytic cell 13 through the circulating pipe 9, sends it into the filter 8 through the filter pipe for filtration, and after removing the oil stains and impurities, the clean electrolyte flows back from a higher position of the electrolytic cell 13 through the return pipe 10 to realize the recycling of the electrolyte and maintain the electrolytic cleaning effect. Embodiment 2

[0022] Based on Embodiment 1, as Figures 5-11 shown, the parts fixing mechanism includes a fixing flower plate 20 and a hanging bracket 14 provided on the inner bottom wall of the electrolytic cell 13. The fixing flower plate 20 includes a plurality of symmetrically arranged extending rods, and the included angle between adjacent extending rods is equal, increasing the contact area between the parts and the electrolyte and improving the electrolytic cleaning effect. A working guiding column 26 is fixedly installed on the hanging bracket 14. The working guiding column 26 includes a cylindrical rod and a lead screw. A buoyancy lifting assembly is sleeved on the cylindrical rod. The buoyancy lifting assembly includes a joint seat 22, and the joint seat 22 is sleeved on the cylindrical rod. A plurality of slots 28 are symmetrically opened on the upper end surface of the joint seat 22. A floating ball 19 is provided below the joint seat 22, and a rotating disk 18 is provided below the floating ball 19. Both the rotating disk 18 and the floating ball 19 are sleeved on the cylindrical rod. The floating ball 19 is of a hollow structure. A plurality of fixing ropes 21 are commonly installed between the rotating disk 18 and the fixing flower plate 20. A rotating assembly is sleeved on the lead screw. The rotating assembly includes a top seat 23, and the top seat cooperates with the lead screw. A plurality of inserting rods 29 are symmetrically installed at the lower end of the top seat 23.

[0023] A connecting ring 31 is rotatably connected to the top seat 23. An annular groove is provided on the upper end surface of the top seat 23, and the connecting ring 31 is located in the annular groove. A limiting ring groove is provided on the inner side wall of the annular groove. A limiting ring is provided on the side wall of the connecting ring 31, and the limiting ring is located in the limiting ring groove. A reset spring 30 is installed between the connecting ring 31 and the hanger 14. The connecting ring 31 rotatably connected to the top seat 23 enables the top seat 23 to rotate flexibly within a certain range. The annular groove provides a rotation space for the connecting ring 31. At the same time, the limiting ring groove on the inner side wall of the annular groove and the limiting ring on the side wall of the connecting ring 31 cooperate with each other to limit the rotation range of the connecting ring 31 in the annular groove and prevent it from leaving the annular groove. When cleaning work is performed in the electrolytic cell 13, whether it is the impact of the steam nozzle in the steam cleaning stage or the liquid disturbance caused by the electrochemical reaction in the electrolytic cleaning stage, the components and the fixed structure connected thereto will shake and be stressed. The return spring 30 installed between the connecting ring 31 and the hanger 14 can be elastically deformed when these external forces act, absorbing and buffering part of the impact force. For example, when the steam impact causes the parts to shake and is transmitted to the top seat 23 through the fixed rope 21, the rotating disk 18, and the floating ball, the return spring 30 is compressed or stretched, reducing the impact force on the top seat 23 and related structures, avoiding damage to the structure due to rigid force, and also helping to maintain the fixed state of the parts and improve the stability of the cleaning process.

[0024] The steam nozzle assembly includes a rotating rod 16, which is mounted on the inner top wall of the cover body 3. A truss 24 is mounted on the lower end of the rotating rod 16. The truss 24 is slidably connected to the buffer chamber seat 25 through an electric slide rail 27. The electric slide rail 27 can control the position of the buffer chamber seat 25. One end of the steam pipe 11 passes through the rotating rod 16 and is connected to the buffer chamber seat 25. The side wall of the buffer chamber seat 15 is connected to the steam nozzle. A driving mechanism 6 is mounted on the upper end of the rotating rod 16. The driving mechanism 6 can be a motor or a rocker. In actual operation, when the driving mechanism 6 drives the rotating rod 16 to rotate, it does not rotate continuously in the same direction, but rotates alternately clockwise and counterclockwise. Avoid excessive winding of the steam pipe 11 due to continuous rotation in the same direction, resulting in distortion and damage of the pipe, affecting the normal delivery of steam and the cleaning work. The alternating rotation method can effectively avoid the problem of excessive winding of the steam pipe 11 and ensure the stable operation of the entire cleaning device.

[0025] In the oil cleaning device system for machine tool parts constructed in Example 1, the workflow starts with the placement of machine tool parts. First, the machine tool parts are accurately placed on the fixed disc 20, and then the electrolyte is introduced into the electrolytic cell 13. As the electrolyte gradually increases, the float 19 begins to contact the electrolyte and is acted upon by buoyancy. The float 19 is a hollow structure, and the buoyancy causes it to move upward, thereby driving the rotating disk 18 connected thereto to move upward synchronously. When the float 19 moves to a certain position, the joint seat 22 abuts against the top seat 23. At this time, the plug rod 29 at the lower end of the top seat 23 is inserted into the slot 28 of the joint seat 22 to achieve preliminary docking. Afterwards, the float 19 continues to push the top seat 23 upward. Since the top seat 23 cooperates with the screw rod, and the screw rod is fixed on the hanger 14, the top seat 23 will rotate around the screw rod during the upward movement. At this time, the reset spring 30 is compressed, thereby driving the float 19 and the rotating disk 18 to rotate. When the rotating disk 18 rotates, the fixing rope 21 connecting it and the fixed faceplate 20 also rotates accordingly. Through the winding and pulling of the fixing rope 21, the machine tool parts are further fixed to ensure that the parts are firmly positioned during the subsequent cleaning process. When the external force generated during the cleaning process disappears, the reset spring 30, by virtue of its own elastic restoring force, drives the connecting ring 31 and the top seat 23 connected thereto back to the initial or relatively stable position. After a batch of parts are cleaned and the device is ready for the next operation, the reset spring 30 restores the top seat 23 to the appropriate position, which is convenient for the subsequent placement of parts, fixation and cleaning process, ensuring that the entire device can operate continuously, efficiently and stably.

[0026] The steam generator is started, and the high-temperature steam generated is transmitted through the steam pipe. One end of the steam pipe passes through the rotating rod 16 and is connected to the buffer chamber seat 25, and the steam is ejected from the steam nozzle on the side wall of the buffer chamber seat 25. The driving mechanism 6 drives the rotating rod 16 to rotate alternately clockwise and counterclockwise to expand the coverage of the steam nozzle, and use the thermal effect and impact force of the high-temperature steam to soften and preliminarily remove the oil on the surface of the parts, while preventing the steam pipe from being excessively wound and twisted due to continuous unidirectional rotation. The electric slide rail 27 on the truss 24 can adjust the position of the buffer chamber seat 25 to adapt to parts of different shapes and sizes, thereby enhancing the pertinence of steam cleaning. Embodiment 3

[0027] On the basis of the second embodiment, a controller is installed on the machine body 1, and the power supply 12, the circulation pump 7, the filter 8, the steam generator 15, and the driving mechanism 6 (in the case of a motor) are electrically connected to the controller, and a liquid level sensor, a current sensor, and a temperature sensor are installed on the inner wall of the electrolytic cell 13, and the liquid level sensor, the current sensor, and the temperature sensor are all electrically connected to the controller. Under the framework of the second embodiment, the oil cleaning device for machine tool parts presents a highly intelligent control characteristic.

[0028] When starting the cleaning process, the controller triggers the steam generator 15 in an orderly manner according to a preset program, causing it to generate high-temperature steam that meets the requirements of the cleaning process to carry out steam cleaning operations on the machine tool parts. At the same time, the controller can precisely control the circulation pump 7 to extract the electrolyte rich in oil and impurities at the bottom of the electrolytic cell 13 at a predetermined flow rate and frequency, transport it to the filter 8 for purification, and then guide the purified electrolyte to flow back to the electrolytic cell 13 through the return pipe 10, thereby ensuring that the electrolyte is always in an excellent working state and maintaining stable and efficient electrolytic cleaning efficiency. In the electrolytic cleaning process, the power supply 12 supplies a stable current to the electrodes in the electrolytic cell 13. During this process, the controller flexibly adapts to the cleaning requirements of different types of machine tool parts by precisely controlling the power supply 12. For example, for parts with heavy oil stains and difficult-to-clean materials, the current intensity can be appropriately increased to strengthen the electrochemical reaction and thus more effectively decompose the oil stains.

[0029] A liquid level sensor, a current sensor, and a temperature sensor are installed on the inner wall of the electrolytic cell 13. These sensors, as the key sensing elements of the device, collect relevant data in real time and feedback it to the controller. The liquid level sensor is responsible for monitoring the liquid level height of the electrolyte in the electrolytic cell 13. Once the liquid level is lower than the set threshold, it immediately sends a signal to the controller. After receiving the signal, the controller then controls the external liquid supply device to automatically supplement an appropriate amount of electrolyte into the electrolytic cell 13 to ensure the continuity of the electrolytic cleaning process. The current sensor continuously monitors the current changes during the electrolysis process. Once the current shows abnormal fluctuations and deviates from the preset normal working range, the current sensor immediately transmits the abnormal information to the controller. The controller then adjusts the parameters of the power supply 12 to prompt the current to return to an appropriate value, ensuring the stable and efficient progress of the electrochemical reaction and avoiding adverse effects on the cleaning effect and equipment caused by abnormal current. The temperature sensor monitors the electrolyte temperature in real time. The electrolyte temperature has a significant impact on the rate of the electrochemical reaction. Maintaining an appropriate temperature is the key to improving the cleaning efficiency and quality. When the temperature sensor detects that the electrolyte temperature exceeds or is lower than the set range, it will quickly send a signal to the controller.

[0030] If the drive mechanism 6 uses a motor configuration, the controller can precisely set the rotation speed, rotation direction, and operation duration of the motor. The motor drives the rotating rod 16 to rotate clockwise and counterclockwise alternately accordingly, ensuring that the steam nozzle assembly can evenly spray and clean the parts with steam, and at the same time effectively avoiding the risk of damage to the steam pipe 11 caused by excessive winding.

Claims

1. An oil stain cleaning device for machine tool parts, comprising a machine body, characterized in that: An electrolytic cell is provided on the body. A drain pipe is connected to the electrolytic cell. The drain pipe penetrates the body and is provided with a valve. Two electrodes are symmetrically installed on the inner side wall of the electrolytic cell through electrode brackets. The electrodes are divided into an anode and a cathode. A power supply is installed on the outer side wall of the electrolytic cell, and both electrodes are connected to the power supply. A cover body is installed on the body. A steam generator is installed on the body. The output end of the steam generator is connected to a steam pipe. One end of the steam pipe away from the steam generator penetrates the cover body and extends into a leakage tank and is provided with a steam spray head assembly. A component fixing mechanism is installed in the electrolytic cell.

2. The oil stain cleaning device for machine tool parts according to claim 1, wherein: A circulation pump and a filter are provided outside the body. A circulation pipe is connected between the circulation pump and the electrolytic cell. A filter pipe is connected between the circulation pump and the filter. A return pipe is connected between the filter and the electrolytic cell.

3. The oil stain cleaning device for machine tool parts according to claim 1, characterized in that: The component fixing mechanism includes a fixed flower plate and a hanging bracket arranged on the inner bottom wall of the electrolytic cell. A working guide post is fixedly installed on the hanging bracket. The working guide post includes a cylindrical rod and a lead screw. A buoyancy lifting component is sleeved on the fixed column. A rotating component is matched with the lead screw, and the buoyancy lifting component drives the rotating component. A fixing rope is jointly installed between the buoyancy lifting component and the fixed flower plate.

4. The oil stain cleaning device for machine tool parts according to claim 3, characterized in that: The buoyancy lifting component includes a floating ball, and the floating ball is of a hollow structure. A rotating disk is arranged below the floating ball, and the upper end of the fixing rope is arranged on the rotating disk. A joint seat is sleeved on the cylindrical rod, and a plurality of slots are symmetrically opened on the upper end face of the joint seat.

5. The oil stain cleaning device for a machine tool component according to claim 4, wherein: The rotating component includes a top seat, and the top seat is arranged on the lead screw. A plurality of insertion rods are symmetrically installed at the lower end of the top seat.

6. The oil stain cleaning device for machine tool parts according to claim 5, characterized in that: A connecting ring is rotatably connected to the top seat, and a return spring is jointly installed between the connecting ring and the hanging bracket.

7. The oil stain cleaning device for machine tool parts according to claim 2, characterized in that: A controller is installed on the body, and the power supply, the circulation pump, the filter, and the steam generator are electrically connected to the controller.

8. An oil stain cleaning device for machine tool parts according to claim 7, characterized in that: A liquid level sensor, a current sensor, and a temperature sensor are installed on the inner wall of the electrolytic cell, and the liquid level sensor, the current sensor, and the temperature sensor are all electrically connected to the controller.

Citation Information

Patent Citations

  • Oil stain wiping equipment for machine tool parts

    CN219425117U