Impurity collecting structure of vacuum ultrasonic cleaning machine

The magnetic collection component and the mass-liquid separation collection component solve the problem that metal particles in the impurity collection structure cannot be collected separately, achieve the purity of the cleaning liquid and the recycling of resources, and simplify the operation process.

CN223312632UActive Publication Date: 2025-09-09SUZHOU ZHONGCHUANGBO ENVIRONMENTAL SCI & TECH CO LTD
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Patent Information

Application Number
CN202422479529.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-14
Publication Date
2025-09-09
Estimated Expiration
2034-10-14

AI Technical Summary

Technical Problem

The existing impurity collection structure cannot effectively collect metal particles in the cleaning liquid separately, resulting in the metal impurities easily becoming free in the cleaning liquid and reattaching to the surface of the object being cleaned, and the operation of separating and collecting impurities is cumbersome.

Method used

It uses magnetic collection components and mass-liquid separation collection components to quickly collect metal particles using magnetic suction, and uses spiral conveying plates and water pumps to achieve immediate discharge of impurities and recycling of cleaning fluid.

Benefits of technology

It effectively prevents metal impurities from adhering again, reduces wear on cleaning machine components, reduces resource waste, ensures the purity of the cleaning fluid, reduces the frequency of manual cleaning, and realizes the recycling of the cleaning fluid.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of impurity collection structures, in particular to an impurity collection structure of a vacuum ultrasonic cleaner, which comprises an ultrasonic cleaner body, a magnetic collection component, a mass-liquid separation and collection component, a cleaning cavity and a cleaning liquid reflux inlet. A magnetic suction type collecting assembly is arranged in the ultrasonic cleaning machine body. A mass-liquid separation and collection assembly is arranged below the magnetic suction type collection assembly; a cleaning cavity is formed in the upper end part of the ultrasonic cleaning machine body; a cleaning liquid backflow opening is formed in the inner wall of the cleaning cavity. According to the magnetic cleaning machine, small metal particles in cleaning liquid can be rapidly and accurately adsorbed and collected through the magnetic attraction effect of the magnetic collection assembly, the situation that the small metal particles are mixed into the cleaning liquid again to affect the cleaning effect is avoided, the subsequent impurity separation efficiency can be improved, abrasion and damage to internal parts of the cleaning machine caused by metal impurities are reduced, and the service life of the cleaning machine is prolonged. Subsequent recycling and reusing are facilitated, and resource waste is reduced.
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Description

Technical Field

[0001] The utility model relates to the technical field of impurity collection structures, in particular to an impurity collection structure for a vacuum ultrasonic cleaning machine. Background Art

[0002] As cleaning requirements in various industries increase, the application scope of vacuum ultrasonic cleaning machines continues to expand. They are frequently used in fields such as the medical and electronics industries, using ultrasound to thoroughly clean them to ensure product quality and performance. As an important component of vacuum ultrasonic cleaning machines, the impurity collection structure is also increasingly needed in the market.

[0003] When the existing impurity collection structure is in use, the metal particles remaining in the cleaning liquid cannot be collected separately, resulting in the metal impurities easily being free in the cleaning liquid and then re-attaching to the surface of the cleaned object. At the same time, the separated impurities are not easy to collect, and the operation process is cumbersome.

[0004] Therefore, it is urgent to set up a structure that can separately collect the metals in the cleaning liquid, reduce their flow inside the cleaning machine, and prevent them from re-attaching to the surface of the items to be cleaned. In addition, a structure that can automatically discharge the impurities collected inside can ensure the purity of the cleaning liquid and facilitate the collection of separated impurities. Utility Model Content

[0005] In order to overcome the problem that the metal particles remaining in the cleaning liquid cannot be collected separately during the use of the impurity collection structure, the metal impurities are easily freed in the cleaning liquid and then re-attached to the surface of the cleaned object. At the same time, the separated impurities are not easy to collect, and the operation process is cumbersome.

[0006] The technical solution of the utility model is: an impurity collection structure of a vacuum ultrasonic cleaning machine, comprising an ultrasonic cleaning machine body, a magnetic collection component, a mass-liquid separation collection component, a cleaning cavity, and a cleaning liquid reflux port; a magnetic collection component is arranged inside the ultrasonic cleaning machine body; a mass-liquid separation collection component is arranged below the magnetic collection component; a cleaning cavity is arranged at the upper end of the ultrasonic cleaning machine body; and a cleaning liquid reflux port is arranged on the inner wall of the cleaning cavity.

[0007] Preferably, the magnetic suction of the magnetic collection component can be used to quickly and accurately adsorb and collect small metal particles in the cleaning liquid, preventing them from mixing into the cleaning liquid again and affecting the cleaning effect, reducing the wear and damage of the internal components of the cleaning machine caused by metal impurities, and being more conducive to subsequent recycling and reuse, reducing resource waste. The mass-liquid separation collection component can more effectively capture and separate impurities generated during the cleaning process, ensuring the purity of the cleaning liquid, and can discharge impurities immediately without the need for frequent manual cleaning. At the same time, the filtered cleaning liquid can be recycled again, reducing the consumption of cleaning liquid.

[0008] Preferably, the magnetic collection component includes a first drive motor, a first transmission rod, a stirring blade, an impurity collection box, a second drive motor, a second transmission rod, a drive gear, a push gear plate, an extension rod, an expansion plate, a strong magnet, a groove and a pressure spring; the first drive motor is installed on the side end of the ultrasonic cleaning machine body; the output shaft of the first drive motor passes through the ultrasonic cleaning machine body and is fixedly connected to the first transmission rod; the side end of the first transmission rod is transmission-connected to the stirring blade; the side wall of the ultrasonic cleaning machine body is fixedly connected with an impurity collection box, and the first drive motor drives the first transmission rod to rotate, thereby rotating the external stirring blade, so that the metal particles in the cleaning liquid will not be deposited, which is convenient for subsequent magnetic adsorption collection.

[0009] Preferably, a second drive motor is installed on the side end of the impurity collection box; the output shaft of the second drive motor passes through the impurity collection box and is fixedly connected to the second transmission rod; the outer end of the second transmission rod is fixedly connected to a drive gear; a pushing gear plate is slidably connected to the inside of the impurity collection box; and the pushing gear plate is engaged with the driving gear, and the second drive motor drives the second transmission rod to rotate, thereby rotating the driving gear, and driving the pushing gear plate below to move, thereby collecting and placing the expansion plate and strong magnet in front.

[0010] Preferably, the side end of the pushing gear plate is fixedly connected to an extension rod; the side end of the extension rod is hingedly connected to an expansion plate; the side end of the expansion plate is provided with a strong magnet; the side end of the extension rod is provided with a groove; the inside of the groove is fixedly connected to a pressure spring; the pressure spring is provided under the expansion plate, and when the extension rod is retracted toward the impurity collection box, the expansion plate is pressed downward to squeeze it onto the pressure spring, so that the expansion plate can be close to the extension rod and can be stored in the impurity collection box, thereby taking out the collected metal impurities, and when the extension rod is pushed forward, it can be unfolded to increase the contact area between the strong magnet and the cleaning liquid, thereby better adsorbing the metal impurities.

[0011] Preferably, the mass-liquid separation and collection component includes a third drive motor, a third transmission rotating rod, a spiral conveying plate, a filter cartridge, a fixed cartridge, a water pump and a screen box; the output shaft of the third drive motor passes through the ultrasonic cleaning machine body and is fixedly connected to the third transmission rotating rod; the outer end of the third transmission rotating rod is fixedly connected to the spiral conveying plate, and the third drive motor drives the third transmission rotating rod to rotate, thereby rotating the spiral conveying plate, so that impurities entering the filter cartridge can be pushed laterally until they are discharged.

[0012] Preferably, a filter cartridge is sleeved on the outside of the spiral conveying plate; a fixed cartridge is sleeved on the outside of the filter cartridge; a water pump is provided inside the ultrasonic cleaning machine body, the fixed cartridge can collect the filtered cleaning liquid, and the cleaning liquid is pumped into the screen box by the water pump.

[0013] Preferably, the input pipe of the water pump is connected to the outer end of the fixed cylinder, and the output pipe of the water pump is connected to the screen box; the top of the screen box is connected to the cleaning liquid return port, and the screen box performs the final filtration, allowing the clean cleaning liquid to be flushed into the cleaning process for recycling.

[0014] Beneficial effects of the utility model:

[0015] 1. During the use of the impurity collection structure, the metal particles remaining in the cleaning liquid cannot be collected separately, which makes it easy for the metal impurities to be free in the cleaning liquid and then re-attach to the surface of the cleaned object. At the same time, the separated impurities are not easy to collect, and the operation process is cumbersome. Therefore, the magnetic suction of the magnetic collection component can be used to quickly and accurately adsorb and collect the small metal particles in the cleaning liquid, so as to prevent them from being mixed into the cleaning liquid again and affecting the cleaning effect, and reduce the wear and damage of the internal components of the cleaning machine caused by metal impurities, which is more conducive to subsequent recycling and reuse, and reduces resource waste. The mass-liquid separation collection component can more effectively capture and separate the impurities generated during the cleaning process, ensure the purity of the cleaning liquid, and can discharge the impurities immediately without the need for frequent manual cleaning. At the same time, the filtered cleaning liquid can be recycled, reducing the consumption of cleaning liquid.

[0016] 2. The first drive motor drives the first transmission rotating rod to rotate, thereby rotating the external stirring blade, so that the metal particles in the cleaning liquid will not be deposited, which is convenient for subsequent magnetic adsorption and collection. The second drive motor drives the second transmission rotating rod to rotate, thereby rotating the driving gear, which drives the pushing gear plate below to move, thereby collecting and placing the expansion plate and the strong magnet in front. When the extension rod is retracted toward the impurity collection box, the expansion plate is pressed downward to squeeze the pressure spring, so that the expansion plate can be close to the extension rod and can be stored in the impurity collection box, thereby taking out the collected metal impurities. When the extension rod is pushed forward, it can be expanded to increase the contact surface between the strong magnet and the cleaning liquid, thereby better adsorbing the metal impurities.

[0017] 3. The third drive motor drives the third transmission rod to rotate, thereby rotating the spiral conveyor plate, so that the impurities entering the filter cylinder can be pushed horizontally until they are discharged. The fixed cylinder can collect the filtered cleaning liquid, and use the water pump to pump the cleaning liquid into the screen box. The screen box performs the final filtration, and the clean cleaning liquid is flushed into the cleaning process for recycling. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] Figure 1 Shown is a schematic diagram of the three-dimensional structure of the impurity collection structure of the utility model;

[0019] Figure 2Shown is a schematic diagram of the three-dimensional structure of the driving gear plate of the impurity collection structure of the present invention;

[0020] Figure 3 Shown is a schematic diagram of the three-dimensional structure of the expansion plate of the impurity collection structure of the present invention;

[0021] Figure 4 Shown is a schematic diagram of the three-dimensional structure of the spiral conveyor plate of the impurity collection structure of the utility model;

[0022] Figure 5 Shown is a schematic diagram of the three-dimensional structure of the screen box of the impurity collection structure of the present invention.

[0023] Explanation of the accompanying symbols: 1. Ultrasonic cleaning machine body; 2. Magnetic collection component; 3. Mass-liquid separation collection component; 4. Cleaning cavity; 5. Cleaning liquid reflux port; 201. First drive motor; 202. First transmission rotating rod; 203. Stirring blade; 204. Impurity collection box; 205. Second drive motor; 206. Second transmission rotating rod; 207. Drive gear; 208. Push gear plate; 209. Extension support rod; 210. Expansion plate; 211. Strong magnet; 212. Groove; 213. Pressure spring; 301. Third drive motor; 302. Third transmission rotating rod; 303. Screw conveyor plate; 304. Filter cylinder; 305. Fixed cylinder; 306. Water pump; 307. Screen box. DETAILED DESCRIPTION

[0024] The present invention will be further described below with reference to the accompanying drawings and embodiments.

[0025] See also Figure 1-2The utility model provides an embodiment: an impurity collection structure of a vacuum ultrasonic cleaning machine, comprising an ultrasonic cleaning machine body 1, a magnetic collection component 2, a mass-liquid separation collection component 3, a cleaning cavity 4, and a cleaning liquid reflux port 5; the magnetic collection component 2 is arranged inside the ultrasonic cleaning machine body 1; the mass-liquid separation collection component 3 is arranged below the magnetic collection component 2; the cleaning cavity 4 is arranged at the upper end of the ultrasonic cleaning machine body 1; the cleaning liquid reflux port 5 is arranged on the inner wall of the cleaning cavity 4, the magnetic collection component 2 comprises a first driving motor 201, a first transmission rotating rod 202, a stirring blade 203, an impurity collection box 204, a second driving motor 205, a second transmission rotating rod 206, and a driving gear 207 , push gear plate 208, extension support rod 209, expansion plate 210, strong magnet 211, groove 212 and pressure spring 213; a first drive motor 201 is installed on the side end of the ultrasonic cleaning machine body 1; the output shaft of the first drive motor 201 passes through the ultrasonic cleaning machine body 1 and is fixedly connected to the first transmission rotating rod 202; the side end of the first transmission rotating rod 202 is transmission-connected to the stirring blade 203; the side wall of the ultrasonic cleaning machine body 1 is penetrated and fixedly connected to the impurity collection box 204, the first drive motor 201 drives the first transmission rotating rod 202 to rotate, thereby rotating the external stirring blade 203, so that the metal particles in the cleaning liquid will not be deposited, which is convenient for subsequent magnetic adsorption collection, and the impurity collection box 2 04 side end is installed with a second driving motor 205; the output shaft of the second driving motor 205 passes through the impurity collecting box 204 and is fixedly connected to the second transmission rotating rod 206; the outer end of the second transmission rotating rod 206 is fixedly connected to the driving gear 207; the interior of the impurity collecting box 204 is slidably connected to a pushing gear plate 208; and the pushing gear plate 208 is meshed with the driving gear 207, and the second driving motor 205 drives the second transmission rotating rod 206 to rotate, thereby rotating the driving gear 207, and driving the pushing gear plate 208 below to move, so as to collect and put in the expansion plate 210 and the strong magnet 211 in front, and the side end of the pushing gear plate 208 is fixedly connected to the extension support rod 209; the extension support rod 20 9 The side end is hingedly connected to an expansion plate 210; a strong magnet 211 is provided on the side end of the expansion plate 210; a groove 212 is provided on the side end of the extension rod 209; a pressure spring 213 is fixedly connected inside the groove 212; the pressure spring 213 is arranged below the expansion plate 210. When the extension rod 209 is retracted toward the impurity collection box 204, the expansion plate 210 is pressed downward to squeeze it onto the pressure spring 213, so that the expansion plate 210 can be close to the extension rod 209 and can be stored in the impurity collection box 204, thereby taking out the collected metal impurities. When the extension rod 209 is pushed forward, it can be unfolded to increase the contact surface between the strong magnet 211 and the cleaning liquid, thereby better adsorbing the metal impurities.

[0026] See also Figure 3-5In this embodiment, the mass-liquid separation and collection component 3 includes a third drive motor 301, a third transmission rotating rod 302, a spiral conveying plate 303, a filter cartridge 304, a fixed cylinder 305, a water pump 306 and a screen box 307; the output shaft of the third drive motor 301 passes through the ultrasonic cleaning machine body 1 and is fixedly connected to the third transmission rotating rod 302; the outer end of the third transmission rotating rod 302 is fixedly connected to the spiral conveying plate 303, and the third drive motor 301 drives the third transmission rotating rod 302 to rotate, thereby rotating the spiral conveying plate 303, so that the impurities entering the filter cartridge 304 can be pushed laterally until they are discharged. The outer side of the spiral conveying plate 303 is provided with a filter cylinder 304; the outer side of the filter cylinder 304 is provided with a fixed cylinder 305; a water pump 306 is provided inside the ultrasonic cleaning machine body 1, and the fixed cylinder 305 can collect the filtered cleaning liquid, and the cleaning liquid is pumped into the screen box 307 by using the water pump 306. The input end pipe of the water pump 306 is connected to the outer end of the fixed cylinder (305), and the output end pipe of the water pump 306 is connected to the screen box 307; the top of the screen box 307 is connected to the cleaning liquid reflux port 5, and the screen box 307 performs the final filtration, allowing the clean cleaning liquid to be flushed into the cleaning process for recycling.

[0027] During operation, the movable connecting rod 401 is first used to adjust the height of the noodle distributing roller 402 so that it can handle noodles of different specifications. The cylinder 406 drives the transverse connecting rod 404 to move up and down, so that the noodle distributing roller 402 below can be adjusted in height. It is flexibly adjusted according to the specifications of the noodles to avoid excessive pressure causing noodle breakage. The noodle distributing roller 402 can also be raised when cleaning.

[0028] Finally, the third drive motor 301 is used to drive the third transmission rotating rod 302 to rotate, thereby rotating the spiral conveying plate 303, so that the impurities entering the filter cylinder 304 can be pushed horizontally until they are discharged. The fixed cylinder 305 can collect the filtered cleaning liquid, and the water pump 306 is used to pump the cleaning liquid into the screen box 307. The screen box 307 performs the final filtration, allowing the clean cleaning liquid to be flushed into the cleaning process for recycling.

[0029] Through the above steps, the magnetic suction of the magnetic collection component 2 can be used to quickly and accurately adsorb and collect small metal particles in the cleaning liquid, preventing them from mixing into the cleaning liquid again and affecting the cleaning effect, reducing the wear and damage of the internal components of the cleaning machine caused by metal impurities, and being more conducive to subsequent recycling and reuse, reducing resource waste. The mass-liquid separation collection component 3 can more effectively capture and separate impurities generated during the cleaning process, ensure the purity of the cleaning liquid, and can discharge impurities immediately without the need for frequent manual cleaning. At the same time, the filtered cleaning liquid can be recycled again, reducing the consumption of cleaning liquid.

[0030] The embodiments of the present invention are described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Various changes can be made within the scope of knowledge possessed by those skilled in the art without departing from the purpose of the present invention.

Claims

1. A vacuum ultrasonic cleaning machine impurity collection structure, comprising an ultrasonic cleaning machine body (1); characterized in that: The ultrasonic cleaning machine also includes a magnetic collection component (2), a mass-liquid separation collection component (3), a cleaning cavity (4), and a cleaning liquid reflux port (5); the magnetic collection component (2) is arranged inside the ultrasonic cleaning machine body (1); the mass-liquid separation collection component (3) is arranged below the magnetic collection component (2); the cleaning cavity (4) is arranged at the upper end of the ultrasonic cleaning machine body (1); and the cleaning liquid reflux port (5) is arranged on the inner wall of the cleaning cavity (4).

2. The impurity collecting structure of a vacuum ultrasonic cleaning machine according to claim 1, characterized in that: The magnetic collection assembly (2) comprises a first drive motor (201), a first transmission rotating rod (202), a stirring blade (203), an impurity collection box (204), a second drive motor (205), a second transmission rotating rod (206), a drive gear (207), a pushing gear plate (208), an extension rod (209), an expansion plate (210), a strong magnet (211), a groove (212) and a pressure spring (213); the first drive motor (201) is installed at the side end of the ultrasonic cleaning machine body (1); the output shaft of the first drive motor (201) passes through the ultrasonic cleaning machine body (1) and is fixedly connected to the first transmission rotating rod (202); the side end of the first transmission rotating rod (202) is transmission-connected to the stirring blade (203); and the impurity collection box (204) is fixedly connected to the side wall of the ultrasonic cleaning machine body (1).

3. The impurity collecting structure of a vacuum ultrasonic cleaning machine according to claim 2, characterized in that: A second drive motor (205) is installed at a side end of the impurity collection box (204); an output shaft of the second drive motor (205) passes through the impurity collection box (204) and is fixedly connected to a second transmission rotating rod (206); an outer end of the second transmission rotating rod (206) is fixedly connected to a driving gear (207); a pushing gear plate (208) is slidably connected inside the impurity collection box (204); and the pushing gear plate (208) is meshed with the driving gear (207).

4. The impurity collecting structure of a vacuum ultrasonic cleaning machine according to claim 3, characterized in that: The side end of the pushing gear plate (208) is fixedly connected to an extension rod (209); the side end of the extension rod (209) is hingedly connected to an expansion plate (210); a strong magnet (211) is provided at the side end of the expansion plate (210); a groove (212) is provided at the side end of the extension rod (209); a pressure spring (213) is fixedly connected inside the groove (212); and the pressure spring (213) is provided below the expansion plate (210).

5. The impurity collecting structure of a vacuum ultrasonic cleaning machine according to claim 1, characterized in that: The mass-liquid separation and collection assembly (3) comprises a third drive motor (301), a third transmission rotating rod (302), a spiral conveying plate (303), a filter cylinder (304), a fixed cylinder (305), a water pump (306) and a screen box (307); the output shaft of the third drive motor (301) passes through the ultrasonic cleaning machine body (1) and is fixedly connected to the third transmission rotating rod (302); the outer end of the third transmission rotating rod (302) is fixedly connected to the spiral conveying plate (303).

6. The impurity collecting structure of a vacuum ultrasonic cleaning machine according to claim 5, characterized in that: A filter cartridge (304) is sleeved on the outer side of the spiral conveying plate (303); a fixing cartridge (305) is sleeved on the outer side of the filter cartridge (304); and a water pump (306) is provided inside the ultrasonic cleaning machine body (1).

7. The impurity collecting structure of a vacuum ultrasonic cleaning machine according to claim 6, characterized in that: The input pipe of the water pump (306) is connected to the outer end of the fixed cylinder (305), and the output pipe of the water pump (306) is connected to the screen box (307); the top of the screen box (307) is connected to the cleaning liquid return port (5).