Heat dissipation device of ultrasonic automatic material raking machine and ultrasonic automatic material raking machine using same

By combining the oil pump with hollow heat exchange copper plates, cooling nozzles, and filter plates, the problem of localized overheating in the ultrasonic automatic material feeder is solved, achieving stable operation of the equipment and recycling of cooling oil, thus improving the safety and practicality of the equipment.

CN223822904UActive Publication Date: 2026-01-23GUANGZHOU AOJIN METAL PROD CO LTD
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Patent Information

Application Number
CN202520411129.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-03-10
Publication Date
2026-01-23
Estimated Expiration
2035-03-10

AI Technical Summary

Technical Problem

When the ultrasonic automatic material handling machine operates at high power, it generates a large amount of energy accumulation, which leads to local overheating and affects the stability and lifespan of the equipment.

Method used

The system employs a combination of an oil pump, a hollow heat exchange copper plate, and a cooling nozzle. The cooling oil is used to exchange heat and cool the ultrasonic vibrator and the workpiece surface. Solid foreign objects are filtered out using a filter plate and an arc-shaped sludge collection tank. The cooling circulation pump is used to achieve oil recycling.

Benefits of technology

It improves the operational stability and safety of the equipment, extends its service life, and enhances the usability of the cooling oil and the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a heat dissipation device of an ultrasonic automatic material raking machine and the ultrasonic automatic material raking machine using the heat dissipation device, and relates to the technical field of heat dissipation devices of material raking machines. The device comprises a machining table, an arch frame is fixedly connected to the top of the machining table, an oil collecting groove is formed in the machining table, oil collecting openings are symmetrically formed in the top of the oil collecting groove, lifting sliding grooves are symmetrically formed in the inner side of the arch frame, and lifting sliding tables are slidably connected to the interiors of the lifting sliding grooves. When the ultrasonic vibrator is started to conduct vibration material stripping on the workpiece, the oil distributing pump is started to guide cooling oil in the oil collecting tank into the hollow heat exchange copper plate, heat exchange cooling is conducted on the heating end of the ultrasonic vibrator, and meanwhile the cooling oil is sprayed to the output end of the ultrasonic vibrator and the surface of the workpiece through the cooling spray head; and meanwhile, the output end of the ultrasonic vibrator and the surface of the workpiece are subjected to heat exchange and cooling, so that heat exchange and cooling of the ultrasonic vibrator and the surface of the workpiece are conveniently achieved, and the operation stability of the device is improved.
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Description

Technical Field

[0001] This application relates to the technical field of heat dissipation devices for material handling machines, and in particular to heat dissipation devices for ultrasonic automatic material handling machines and ultrasonic automatic material handling machines using the same. Background Technology

[0002] Ultrasonic automatic material handling machines are automated devices that utilize ultrasonic vibration technology to separate, clean, or process materials. They are widely used in food processing, chemical, and pharmaceutical industries. Their core working principle involves converting electrical energy into mechanical vibration through an ultrasonic transducer, which is then transmitted to the material handling tool or working head. This high-frequency vibration efficiently processes the materials. With the increasing demand for industrial automation, ultrasonic automatic material handling machines have gradually become important equipment on production lines due to their high efficiency, precision, and non-contact operation. However, as the power and workload of these machines increase, the heat generated during operation has become a significant issue, a key factor affecting the equipment's performance and lifespan.

[0003] Existing ultrasonic automatic material handling machines mainly consist of an ultrasonic generator, a transducer, a vibrating tool head, and a control system. The ultrasonic generator produces high-frequency electrical signals, which the transducer converts into mechanical vibrations. These vibrations are then transmitted to the material through the vibrating tool head, enabling functions such as material handling, separation, or cleaning. To improve the automation level, some machines are also equipped with sensors and intelligent control systems that can automatically adjust the vibration frequency and intensity based on the material characteristics. Although existing technologies have made significant progress in functionality and automation, the heat dissipation problem during prolonged high-power operation remains largely unresolved.

[0004] Under high-power operating conditions, the ultrasonic vibrations of the ultrasonic automatic material feeder generate a large amount of energy. This energy accumulates inside the equipment and may cause localized overheating, especially near core components such as the transducer and vibrating tool head. Localized overheating not only affects the operational stability of the equipment but may also lead to the aging or damage of critical components, thereby shortening the equipment's service life. Utility Model Content

[0005] The purpose of this application is to address the problem that ultrasonic vibrations in an ultrasonic automatic material handling machine generate a large amount of energy, which accumulates inside the equipment and may lead to local overheating, affecting the operational stability of the equipment. This application provides a heat dissipation device for the ultrasonic automatic material handling machine and an ultrasonic automatic material handling machine using the same.

[0006] To achieve the above objectives, this application specifically adopts the following technical solution:

[0007] The heat dissipation device of the ultrasonic automatic material handling machine includes a processing table. An arch frame is fixedly connected to the top of the processing table. An oil collection groove is formed inside the processing table, and oil collection ports are symmetrically formed at the top of the oil collection groove. A lifting slide is symmetrically formed on the inner side of the arch frame, and a lifting slide is slidably connected inside the lifting slide. An ultrasonic vibrator is fixedly connected to one end of the lifting slide. Electric actuators are symmetrically hinged to the inner top of the arch frame, and the output end of the electric actuators is hinged to the lifting slide. A support frame is fixedly connected to the inner top of the oil collection port, and inclined guide nets are symmetrically fixedly connected inside the oil collection port. The processing table... The device is fixedly connected to a hopper at one end. A discharge port communicating with the hopper is opened on one side of the oil collection port. One end of the inclined guide net passes through the discharge port and extends into the interior of the hopper. An oil collection tank is fixedly connected to the top of the arch frame. An oil distribution pump is fixedly connected to the output end of the oil collection tank. A hollow heat exchange copper plate is fixedly connected to one end of the ultrasonic vibrator. The output end of the oil distribution pump is fixedly connected to the hollow heat exchange copper plate through a pipe. A cooling nozzle is fixedly connected to one end of the lifting slide. The output end of the hollow heat exchange copper plate is fixedly connected to the cooling nozzle through a pipe. The cooling nozzle is tilted towards the output end of the ultrasonic vibrator.

[0008] By adopting the above technical solution, and by setting up the oil distribution pump in conjunction with the hollow heat exchange copper plate and the cooling nozzle, it is convenient to start the oil distribution pump to introduce the cooling oil inside the oil collection tank into the hollow heat exchange copper plate when the ultrasonic vibrator is started to vibrate and remove the workpiece. This allows for heat exchange and cooling of the heating end of the ultrasonic vibrator. At the same time, the cooling nozzle sprays the cooling oil onto the output end of the ultrasonic vibrator and the surface of the workpiece, thus achieving heat exchange and cooling between the output end of the ultrasonic vibrator and the surface of the workpiece. This facilitates heat exchange and cooling between the ultrasonic vibrator and the workpiece surface, improving the operational stability of the device.

[0009] Furthermore, multiple guide plates are uniformly fixedly connected inside the hollow heat exchange copper plate, with adjacent guide plates arranged alternately to form an S-shaped flow channel.

[0010] By adopting the above technical solution and using the combination of S-shaped flow channels and guide plates, the travel distance of the cooling oil through the hollow heat exchange copper plate is effectively extended, thereby improving the heat exchange efficiency of the cooling oil through the hollow heat exchange copper plate and the ultrasonic vibrator.

[0011] Furthermore, the output end of the oil distribution pump is symmetrically and fixedly connected with an elastic telescopic tube, and the output end of the elastic telescopic tube is fixedly connected to the input end of the hollow heat exchange copper plate.

[0012] By adopting the above technical solution, and by using the elastic telescopic tube in conjunction with the hollow heat exchange copper plate, the elasticity of the elastic telescopic tube can be utilized to reduce the interference of the elastic telescopic tube on the movement trajectory of the ultrasonic vibrator, thereby improving the safety of the device.

[0013] Furthermore, a filter plate is symmetrically fixedly connected inside the oil collection port. The filter plate is installed below the inclined guide net. An arc-shaped sludge collection groove adapted to the filter plate is symmetrically opened on the inner side of the oil collection port. A sludge discharge component is installed inside the oil collection groove.

[0014] By adopting the above technical solution, and by using the filter plate in conjunction with the arc-shaped sludge collection tank, it is easy to intercept and filter solid foreign objects in the cooling oil. Under the combined action of gravity and the impact of the cooling oil, the solid foreign objects slide into the arc-shaped sludge collection tank for collection. Then, the sludge discharge component is activated to discharge the solid foreign objects collected in the arc-shaped sludge collection tank. This facilitates the filtration and collection of the cooling oil, and improves the practicality of the device by utilizing the recycling of the cooling oil.

[0015] Furthermore, the sewage discharge assembly includes a solenoid valve fixedly connected to the output end of the arc-shaped sewage collection tank, a sewage discharge auger rotatably connected inside the arc-shaped sewage collection tank, a motor fixedly connected to the outside of the processing table, and the output end of the motor fixedly connected to the sewage discharge auger.

[0016] By adopting the above technical solution, and by setting up the auger and motor to work together, the starting motor can drive the auger to rotate, and open the solenoid valve to cooperate with the auger to push the foreign objects inside the arc-shaped sludge collection tank out, which effectively improves the practicality of the device.

[0017] Furthermore, an air inlet is symmetrically provided on one side of the oil collection port, and an air outlet is symmetrically provided on the other side of the oil collection port, with a fan fixedly connected inside the air outlet.

[0018] By adopting the above technical solution, and by setting up air inlets and outlets and using a fan in conjunction, it is easy to draw air through the air inlets and outlets by starting the fan, and to conduct contact heat exchange on the support frame and the workpieces on the surface, thereby improving the heat exchange efficiency of the device.

[0019] Furthermore, a filter screen is fixedly connected inside the air inlet.

[0020] By adopting the above technical solution, and by using a filter screen in conjunction with the air inlet, it is easy to intercept and filter the air passing through the air inlet, thereby reducing the impact of solid foreign objects in the air on the support frame and surface workpieces, and improving the practicality of the device.

[0021] An ultrasonic automatic material handling machine includes a cooling circulation pump fixedly connected to the top of an arch frame. The input end of the cooling circulation pump is fixedly connected to a circulation pipe, the input end of the circulation pipe is fixedly connected to the bottom of the oil collection tank, and the output end of the cooling circulation pump is fixedly connected to the inside of the oil collection tank.

[0022] By adopting the above technical solution and using the cooling circulation pump and circulation pipe in combination, it is convenient to start the cooling circulation pump to pump the cooling oil collected in the oil collection tank for cooling treatment, and then introduce it into the oil collection tank for collection. This facilitates the recycling of the cooling oil and further improves the practicality of the device.

[0023] In summary, this application includes at least one of the following beneficial effects:

[0024] 1. By using an oil distribution pump in conjunction with a hollow heat exchange copper plate and a cooling nozzle, the oil distribution pump can be activated to guide the cooling oil from the oil collection tank into the hollow heat exchange copper plate when the ultrasonic vibrator is started to vibrate and remove the workpiece. This allows for heat exchange and cooling of the heating end of the ultrasonic vibrator. Simultaneously, the cooling oil is sprayed onto the output end of the ultrasonic vibrator and the surface of the workpiece through the cooling nozzle, thus achieving heat exchange and cooling between the output end of the ultrasonic vibrator and the surface of the workpiece. This improves the operational stability of the device.

[0025] 2. By using a filter plate in conjunction with an arc-shaped sludge collection tank, solid foreign objects in the cooling oil can be easily intercepted and filtered. Under the combined force of gravity and the impact of the cooling oil, the solid foreign objects slide into the arc-shaped sludge collection tank for collection. Then, the sludge discharge component is activated to discharge the solid foreign objects collected in the arc-shaped sludge collection tank. This facilitates the filtration and collection of cooling oil, and improves the practicality of the device by utilizing the recycling of cooling oil. Attached Figure Description

[0026] Figure 1 This is a three-dimensional structural diagram of the main body of the device in this application.

[0027] Figure 2 This is a schematic diagram of the internal structure of the oil collection port in this application.

[0028] Figure 3 This is a schematic diagram of the internal structure of the hollow heat exchange copper plate in this application.

[0029] Figure 4 This is a schematic diagram of the internal structure of the oil collection tank in this application.

[0030] Figure 5 This is an exploded view of the internal structure of the arc-shaped sludge collection tank in this application.

[0031] Explanation of reference numerals in the attached figures:

[0032] 1. Processing table; 2. Arch frame; 3. Oil collection trough; 4. Oil collection port; 5. Lifting slide; 6. Lifting slide; 7. Ultrasonic vibrator; 8. Electric actuator; 9. Support frame; 10. Inclined guide net; 11. Collection hopper; 12. Oil collection tank; 13. Oil distribution pump; 14. Hollow heat exchange copper plate; 15. Cooling nozzle; 16. Cooling circulation pump; 17. Guide plate; 18. Elastic telescopic tube; 19. Filter plate; 20. Arc-shaped sludge collection trough; 21. Solenoid valve; 22. Sludge discharge auger; 23. Motor; 24. Circulation pipe; 25. Air inlet; 26. Air outlet; 27. Fan; 28. Filter screen. Detailed Implementation

[0033] The following is in conjunction with the appendix Figure 1 —5 provides further details regarding this application.

[0034] This application discloses a heat dissipation device for an ultrasonic automatic material feeder and an ultrasonic automatic material feeder using the same.

[0035] Reference Figure 1 - Figure 3 The heat dissipation device of the ultrasonic automatic material handling machine includes a processing table 1, an arch frame 2 fixedly connected to the top of the processing table 1, an oil collection groove 3 inside the processing table 1, oil collection ports 4 symmetrically opened at the top of the oil collection groove 3, lifting slide grooves 5 symmetrically opened on the inner side of the arch frame 2, a lifting slide 6 slidably connected inside the lifting slide groove 5, an ultrasonic vibrator 7 fixedly connected to one end of the lifting slide 6, electric push rods 8 symmetrically hinged to the inner top of the arch frame 2, the output end of the electric push rods 8 hinged to the lifting slide 6, a support frame 9 fixedly connected to the inner top of the oil collection port 4, an inclined guide net 10 symmetrically fixedly connected inside the oil collection port 4, and a support frame 9 fixedly connected to one end of the processing table 1. The hopper 11 has a discharge port on one side of the oil collection port 4, which is connected to the hopper 11. One end of the inclined guide net 10 passes through the discharge port and extends into the interior of the hopper 11. The top of the arch frame 2 is fixedly connected to the oil collection tank 12. The output end of the oil collection tank 12 is fixedly connected to the oil distribution pump 13. One end of the ultrasonic vibrator 7 is fixedly connected to the hollow heat exchange copper plate 14. The output end of the oil distribution pump 13 is fixedly connected to the hollow heat exchange copper plate 14 through a pipe. One end of the lifting slide 6 is fixedly connected to the cooling nozzle 15. The output end of the hollow heat exchange copper plate 14 is fixedly connected to the cooling nozzle 15 through a pipe. The cooling nozzle 15 is tilted towards the output end of the ultrasonic vibrator 7.

[0036] The hollow heat exchange copper plate 14 has multiple guide plates 17 uniformly fixedly connected inside, and two adjacent guide plates 17 are staggered to form an S-shaped flow channel.

[0037] Furthermore, the output end of the oil distribution pump 13 is symmetrically and fixedly connected with an elastic telescopic tube 18, and the output end of the elastic telescopic tube 18 is fixedly connected to the input end of the hollow heat exchange copper plate 14.

[0038] When in use, when the workpiece is placed on top of the support frame 9 and the electric push rod 8 is activated to push the lifting slide 6 to drive the ultrasonic vibrator 7 to move along the length of the lifting slide 5 to the top of the workpiece, the lifting slide 6 drives the hollow heat exchange copper plate 14 to pull the elastic telescopic tube 18 to stretch and deform. Then the ultrasonic vibrator 7 is activated to drive the workpiece to vibrate and scrape the material. Under the action of gravity, the workpiece passes through the support frame 9, enters the inside of the oil collection port 4, and falls into the inside of the collection hopper 11 for collection along the guide of the inclined guide net 10.

[0039] Simultaneously, by starting the oil distribution pump 13, the cooling oil inside the oil collection tank 12 is introduced into the hollow heat exchange copper plate 14 through the elastic telescopic tube 18. The cooling oil then flows along the guide direction of the guide plate 17, passes through the S-shaped guide channel, and undergoes sufficient heat exchange and cooling with the ultrasonic vibrator 7 through the hollow heat exchange copper plate 14. Then, it is sprayed through the cooling nozzle 15 onto the contact end between the output end of the ultrasonic vibrator 7 and the workpiece, allowing for rapid contact heat exchange between the output end of the ultrasonic vibrator 7 and the workpiece. This reduces the processing temperature between the output end of the ultrasonic vibrator 7 and the surface of the workpiece, thereby facilitating heat exchange and cooling between the ultrasonic vibrator 7 and the workpiece surface and improving the operational stability of the device.

[0040] Then, the cooled oil after heat exchange is allowed to fall into the oil collection tank 3 through the oil collection port 4 and the inclined guide net 10 under the action of gravity. Then, the electric push rod 8 is started in reverse to drive the lifting slide 6 to move upward along the length of the lifting slide 5. At the same time, the elastic expansion tube 18 is used to shrink and deform, so as to reduce the interference of the elastic expansion tube 18 on the lifting trajectory of the ultrasonic vibrator 7 and improve the safety of the device.

[0041] Reference Figure 2 and Figure 4 , Figure 5 The oil collection port 4 is symmetrically fixedly connected with a filter plate 19. The filter plate 19 is installed below the inclined guide net 10. The inner side of the oil collection port 4 is symmetrically provided with an arc-shaped sludge collection trough 20 adapted to the filter plate 19. The oil collection trough 3 is equipped with a sludge discharge component.

[0042] The sewage discharge assembly includes a solenoid valve 21 fixedly connected to the output end of the arc-shaped sewage collection tank 20, a sewage discharge auger 22 rotatably connected inside the arc-shaped sewage collection tank 20, and a motor 23 fixedly connected to the outside of the processing table 1. The output end of the motor 23 is fixedly connected to the sewage discharge auger 22.

[0043] In use, when the cooling oil passes through the oil collection port 4 and the inclined guide net 10 into the oil collection tank 3, the filter plate 19 intercepts and filters the cooling oil, so that solid foreign objects in the cooling oil are intercepted on the surface of the filter plate 19. Under the impact of the cooling oil and the pull of gravity, the solid foreign objects slide down the surface of the filter plate 19 into the arc-shaped sludge collection tank 20 for collection. Then, the motor 23 is started to open the solenoid valve 21, so that the solenoid valve 21 releases the seal on one end of the arc-shaped sludge collection tank 20. At the same time, the motor 23 drives the drain auger 22 to rotate and push the solid foreign objects collected in the arc-shaped sludge collection tank 20 out of the processing table 1. This facilitates the filtration and collection of cooling oil, promotes the recycling of cooling oil, and effectively improves the practicality of the device.

[0044] Reference Figure 1 and Figure 2 , Figure 4 An air inlet 25 is symmetrically opened on one side of the oil collection port 4, and an exhaust port 26 is symmetrically opened on the other side of the oil collection port 4. A fan 27 is fixedly connected inside the exhaust port 26.

[0045] The air inlet 25 is internally fixedly connected to a filter screen 28.

[0046] In use, the fan 27 is started to draw air through the air inlet 25 and the air outlet 26. As the air passes through the air inlet 25 and the air outlet 26, it makes contact heat exchange with the support frame 9 and the workpiece on the surface, which further improves the heat dissipation effect of the device. At the same time, the filter screen 28 is set to intercept and filter the air in contact with the support frame 9 and the workpiece surface, so as to reduce the impact of solid foreign objects in the air on the workpiece surface and improve the practicality of the device.

[0047] Reference Figure 1 and Figure 2 The ultrasonic automatic material handling machine includes a cooling circulation pump 16 fixedly connected to the top of the arch frame 2. The input end of the cooling circulation pump 16 is fixedly connected to a circulation pipe 24. The input end of the circulation pipe 24 is fixedly connected to the bottom of the oil collection tank 3. The output end of the cooling circulation pump 16 is fixedly connected to the inside of the oil collection tank 12.

[0048] In use, after the cooling oil falls into the oil distribution pump 13 for collection, the cooling circulation pump 16 is started in conjunction with the circulation pipe 24 to pump the cooling oil collected in the oil distribution pump 13 for cooling treatment. Then, the cooling oil is introduced into the oil collection tank 12 for collection and storage through the cooling circulation pump 16, which facilitates the recycling of the cooling oil and improves the practicality of the device.

[0049] The heat dissipation device of the ultrasonic automatic material feeder in this embodiment and the implementation principle of the ultrasonic automatic material feeder using it are as follows: When the workpiece is placed on the top of the support frame 9 and the electric push rod 8 is activated to push the lifting slide 6 to drive the ultrasonic vibrator 7 to move along the length direction of the lifting slide 5 to the top of the workpiece, the ultrasonic vibrator 7 is activated to drive the workpiece to vibrate and feed, and the workpiece passes through the support frame 9 under the action of gravity, enters the interior of the oil collection port 4, and falls into the interior of the collection hopper 11 for collection along the guide of the inclined guide net 10.

[0050] Simultaneously, by starting the oil distribution pump 13, the cooling oil inside the oil collection tank 12 is introduced into the hollow heat exchange copper plate 14 through the elastic telescopic tube 18. The cooling oil is guided by the guide plate 17, passes through the S-shaped guide channel, and undergoes sufficient heat exchange and cooling with the ultrasonic vibrator 7 through the hollow heat exchange copper plate 14. Then, it is sprayed through the cooling nozzle 15 onto the contact end between the output end of the ultrasonic vibrator 7 and the workpiece, so as to quickly conduct contact heat exchange between the output end of the ultrasonic vibrator 7 and the workpiece, thereby reducing the processing temperature of the output end of the ultrasonic vibrator 7 and the surface of the workpiece.

[0051] Then, the cooled oil after heat exchange is allowed to fall into the oil collection tank 3 through the oil collection port 4 and the inclined guide net 10 under the action of gravity for collection. At the same time, the filter plate 19 is set to intercept and filter the cooled oil, so that solid foreign objects in the cooled oil are intercepted on the surface of the filter plate 19. Under the impact of the cooled oil and the pull of gravity, the solid foreign objects slide down the surface of the filter plate 19 into the arc-shaped sludge collection tank 20 for collection. Then, the motor 23 is started to open the solenoid valve 21, so that the solenoid valve 21 releases the seal on one end of the arc-shaped sludge collection tank 20. At the same time, the motor 23 drives the sludge discharge auger 22 to rotate and push the solid foreign objects collected in the arc-shaped sludge collection tank 20 out of the interior of the processing table 1.

[0052] Next, the cooling circulation pump 16 is started in conjunction with the circulation pipe 24 to pump the cooling oil collected inside the oil distribution pump 13 for cooling treatment. Then, the cooled cooling oil is introduced into the oil collection tank 12 for collection and storage through the cooling circulation pump 16.

Claims

1. A heat dissipation device for an ultrasonic automatic material handling machine, comprising a processing table (1), characterized in that: An arch frame (2) is fixedly connected to the top of the processing table (1). An oil collection groove (3) is provided inside the processing table (1). An oil collection port (4) is symmetrically provided at the top of the oil collection groove (3). A lifting slide groove (5) is symmetrically provided on the inner side of the arch frame (2). A lifting slide table (6) is slidably connected inside the lifting slide groove (5). An ultrasonic vibrator (7) is fixedly connected to one end of the lifting slide table (6). An electric push rod (8) is symmetrically hinged to the inner top of the arch frame (2). The output end of the electric push rod (8) is hinged to the lifting slide table (6). A support frame (9) is fixedly connected to the inner top of the oil collection port (4). An inclined guide net (10) is symmetrically fixedly connected inside the oil collection port (4). A material collection hopper (11) is fixedly connected to one end of the processing table (1). The oil collection port (4) has a discharge port connected to the collection hopper (11) on one side. One end of the inclined guide net (10) passes through the discharge port and extends into the interior of the collection hopper (11). The top of the arch frame (2) is fixedly connected to the oil collection tank (12). The output end of the oil collection tank (12) is fixedly connected to the oil distribution pump (13). One end of the ultrasonic vibrator (7) is fixedly connected to the hollow heat exchange copper plate (14). The output end of the oil distribution pump (13) is fixedly connected to the hollow heat exchange copper plate (14) through a pipe. One end of the lifting slide (6) is fixedly connected to the cooling nozzle (15). The output end of the hollow heat exchange copper plate (14) is fixedly connected to the cooling nozzle (15) through a pipe. The cooling nozzle (15) is tilted towards the output end of the ultrasonic vibrator (7).

2. The heat dissipation device of the ultrasonic automatic material handling machine according to claim 1, characterized in that: The hollow heat exchange copper plate (14) has multiple guide plates (17) uniformly fixedly connected inside. The two adjacent guide plates (17) are arranged alternately and form an S-shaped flow channel.

3. The heat dissipation device of the ultrasonic automatic material handling machine according to claim 1, characterized in that: The output end of the oil distribution pump (13) is symmetrically and fixedly connected to an elastic telescopic tube (18), and the output end of the elastic telescopic tube (18) is fixedly connected to the input end of the hollow heat exchange copper plate (14).

4. The heat dissipation device of the ultrasonic automatic material handling machine according to claim 1, characterized in that: The oil collection port (4) is symmetrically fixedly connected to a filter plate (19), which is installed below the inclined guide net (10). The inner side of the oil collection port (4) is symmetrically provided with an arc-shaped sludge collection groove (20) adapted to the filter plate (19). The oil collection groove (3) is equipped with a sludge discharge component.

5. The heat dissipation device of the ultrasonic automatic material handling machine according to claim 4, characterized in that: The sewage discharge assembly includes a solenoid valve (21) fixedly connected to the output end of the arc-shaped sewage collection tank (20), a sewage discharge auger (22) rotatably connected inside the arc-shaped sewage collection tank (20), and a motor (23) fixedly connected to the outside of the processing table (1). The output end of the motor (23) is fixedly connected to the sewage discharge auger (22).

6. The heat dissipation device of the ultrasonic automatic material handling machine according to claim 1, characterized in that: An air inlet (25) is symmetrically opened on one side of the oil collection port (4), and an air outlet (26) is symmetrically opened on the other side of the oil collection port (4). A fan (27) is fixedly connected inside the air outlet (26).

7. The heat dissipation device of the ultrasonic automatic material handling machine according to claim 6, characterized in that: A filter screen (28) is fixedly connected inside the air inlet (25).

8. An ultrasonic automatic material handling machine, applicable to the heat dissipation device of the ultrasonic automatic material handling machine according to any one of claims 1-7, characterized in that: It includes a cooling circulation pump (16) fixedly connected to the top of the arch frame (2), the input end of the cooling circulation pump (16) is fixedly connected to a circulation pipe (24), the input end of the circulation pipe (24) is fixedly connected to the bottom of the oil collection tank (3), and the output end of the cooling circulation pump (16) is fixedly connected to the inside of the oil collection tank (12).