Ultrasonic wave assisted ball valve machining and cleaning device

CN224724609UActive Publication Date: 2026-09-08XINDELI VALVE CO LTD
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Patent Information

Application Number
CN202522564655.8
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-12-03
Publication Date
2026-09-08
Estimated Expiration
2035-12-03

AI Technical Summary

Technical Problem

传统清洗工艺存在明显缺陷:一方面,机械刷洗容易损伤球体精密表面;另一方面,常规浸泡清洗难以彻底清除嵌在球体沟槽内的微米级颗粒

Benefits of technology

[0015] As can be seen from the above, the ultrasonic-assisted ball valve processing and cleaning device and its filter assembly provided in this application realize the circulation and purification of the cleaning fluid through the integrated filter assembly, effectively solving the problems of secondary pollution and cavitation intensity decay caused by impurity accumulation in traditional cleaning processes. It has the advantages of being able to filter impurities in the cleaning fluid in real time, preventing impurities from adhering to the surface of the ball valve workpiece again, maintaining the stability of cavitation intensity of ultrasonic cleaning, and improving cleaning quality and production efficiency.

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Abstract

The utility model relates to machining cleaning equipment technical field, concretely disclose an ultrasonic auxiliary ball valve processing cleaning device, including the cleaning tank, the right side of cleaning tank inner chamber is provided with the filter component, the filter component includes the water collecting tank, and the water collecting tank is located the right side in the cleaning tank inner chamber, the left side of water collecting tank inner chamber is provided with the filter screen, and both ends of filter screen are equipped with the clamping block, and the both ends of water collecting tank inner chamber left side are all set up the clamping groove that is compatible with the clamping block, the right side of water collecting tank is provided with the water pump, and the water pump is located the right side of cleaning tank, and the input end of water pump is connected with the water suction pipe. Through the integration filter component realizes the circulating purification of cleaning fluid, effectively solves the secondary pollution and cavitation intensity attenuation problem caused by the impurity accumulation in traditional cleaning process, has the advantage that can filter the impurity in cleaning fluid in real time, avoids the secondary adhesion of impurity on the ball valve workpiece surface, maintains the cavitation intensity stability of ultrasonic cleaning, improves the cleaning quality and production efficiency.
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Description

Technical Field

[0001] This utility model relates to the technical field of machining and cleaning equipment, specifically to an ultrasonic-assisted ball valve machining and cleaning device. Background Technology

[0002] As a key component of industrial fluid control systems, the ball valve's ball machining precision and surface cleanliness directly affect its sealing performance and service life. During precision machining, the ball surface can retain composite contaminants such as cutting fluid, metal shavings, oil, and abrasive particles. Traditional cleaning processes have significant drawbacks: on the one hand, mechanical brushing can easily damage the ball's precision surface; on the other hand, conventional immersion cleaning is insufficient to thoroughly remove micron-sized particles embedded in the ball's grooves. Although ultrasonic cleaning technology can improve cleaning efficiency through cavitation, during continuous operation, the detached impurities accumulate in the cleaning fluid, forming suspended contaminants. These impurities not only re-adhere to the workpiece surface but also significantly attenuate ultrasonic energy, causing the cavitation intensity to decrease sharply with prolonged cleaning time, severely affecting the stability of cleaning quality during mass production. Existing equipment generally lacks an effective online filtration system, making real-time purification of the cleaning fluid impossible. This is a key technological bottleneck restricting the improvement of ball valve machining and cleaning efficiency.

[0003] To address the aforementioned issues, existing technologies urgently need improvement. Utility Model Content

[0004] To address the shortcomings of existing technologies, this utility model provides an ultrasonic-assisted ball valve processing and cleaning device, which has the advantages of being able to filter impurities in the cleaning fluid in real time, preventing impurities from adhering to the surface of the ball valve workpiece again, maintaining the stability of the cavitation intensity of ultrasonic cleaning, and improving cleaning quality and production efficiency.

[0005] This application provides an ultrasonic-assisted ball valve processing and cleaning device, the technical solution of which is as follows:

[0006] An ultrasonic-assisted ball valve processing and cleaning device includes a cleaning tank. A filter assembly is arranged on the right side of the inner cavity of the cleaning tank. The filter assembly includes a water collection tank, which is located on the right side of the inner cavity of the cleaning tank. A filter screen is arranged on the left side of the inner cavity of the water collection tank. Both ends of the filter screen are provided with locking blocks. Both ends of the left side of the inner cavity of the water collection tank are provided with locking grooves that are adapted to the locking blocks. A water pump is arranged on the right side of the water collection tank, and the water pump is located on the right side of the cleaning tank. The input end of the water pump is connected to a suction pipe, and the other end of the suction pipe is connected to the bottom of the right side of the cleaning tank. The output end of the water pump is connected to an outlet pipe, which is located above the water collection tank.

[0007] Furthermore, this application also proposes that the top of the filter screen is provided with a handle, and the surface of the handle is covered with an anti-slip sleeve.

[0008] Furthermore, this application also proposes that the bottom of the inner cavity of the water collection tank is inclined, and the inclination angle is not less than forty-five degrees.

[0009] Furthermore, this application also proposes that the bottom of the filter screen is sloped, and the angle of inclination is in close contact with the bottom of the inner cavity of the water collection tank.

[0010] Furthermore, this application also proposes that a limiting plate is fixedly sleeved on the surface of the water outlet pipe, and the bottom of the limiting plate is fixedly connected to the cleaning tank.

[0011] Furthermore, this application also proposes that a fixing bracket is snapped onto the surface of the water pump, and the left side of the fixing bracket is fixedly connected to the cleaning tank.

[0012] Furthermore, this application also proposes that ultrasonic generators are provided on both sides of the bottom of the cleaning tank, and the two ultrasonic generators are arranged symmetrically about the center of the cleaning tank.

[0013] Furthermore, this application also proposes that a drain outlet is provided at the bottom of the front of the cleaning tank, and a control valve is provided inside the drain outlet.

[0014] Furthermore, this application also proposes that the bottom of the cleaning tank is provided with an anti-slip mat, and the bottom of the anti-slip mat is provided with anti-slip particles.

[0015] As can be seen from the above, the ultrasonic-assisted ball valve processing and cleaning device and its filter assembly provided in this application realize the circulation and purification of the cleaning fluid through the integrated filter assembly, effectively solving the problems of secondary pollution and cavitation intensity decay caused by impurity accumulation in traditional cleaning processes. It has the advantages of being able to filter impurities in the cleaning fluid in real time, preventing impurities from adhering to the surface of the ball valve workpiece again, maintaining the stability of cavitation intensity of ultrasonic cleaning, and improving cleaning quality and production efficiency. Attached Figure Description

[0016] The accompanying drawings, which are included to provide a further understanding of this application and form part of this application, illustrate exemplary embodiments and are used to explain this application, but do not constitute an undue limitation of this application. In the drawings:

[0017] Figure 1 This is a schematic diagram of the structure of this utility model;

[0018] Figure 2 This is a schematic diagram of the filter assembly structure of this utility model;

[0019] Figure 3 This is a schematic diagram of a partial explosion of the water collection tank of this utility model.

[0020] In the diagram: 1. Cleaning tank; 2. Drain outlet; 3. Anti-slip mat; 4. Ultrasonic generator; 5. Filter assembly; 501. Water collection tank; 502. Handle; 503. Anti-slip sleeve; 504. Filter screen; 505. Water outlet pipe; 506. Limiting plate; 507. Water pump; 508. Suction pipe; 509. Fixing frame; 5010. Locking block; 5011. Locking slot. Detailed Implementation

[0021] The following drawings will disclose several embodiments of this utility model. For clarity, many practical details will be described in the following description. However, it should be understood that these practical details should not be used to limit this utility model. That is, in some embodiments of this utility model, these practical details are not essential. In addition, for the sake of simplicity, some conventional structures and components will be shown in the drawings in a simple schematic manner.

[0022] Please see Figure 1-3 This application proposes an ultrasonic-assisted ball valve processing and cleaning device, including a cleaning tank 1. A filter assembly 5 is provided on the right side of the inner cavity of the cleaning tank 1. The filter assembly 5 includes a water collection tank 501, which is located on the right side of the inner cavity of the cleaning tank 1. A filter screen 504 is provided on the left side of the inner cavity of the water collection tank 501. Both ends of the filter screen 504 are provided with locking blocks 5010. Both ends of the left side of the inner cavity of the water collection tank 501 are provided with locking grooves 5011 that are adapted to the locking blocks 5010. A water pump 507 is provided on the right side of the water collection tank 501, which is located on the right side of the cleaning tank 1. The input end of the water pump 507 is connected to a suction pipe 508, and the other end of the suction pipe 508 is connected to the bottom of the right side of the cleaning tank 1. The output end of the water pump 507 is connected to a water outlet pipe 505, which is located above the water collection tank 501.

[0023] In practical applications, the filter assembly 5 can be understood as a structural unit for separating solid impurities in the cleaning fluid, which can be achieved in various ways. For example, it can be a multi-layered screen combination, with each layer having a different pore size to intercept particles of different sizes step by step; or it can be achieved through magnetic adsorption, using magnetic materials to selectively capture metal debris. Furthermore, the water collection tank 501, as the container for the filter unit, can have its shape and material adjusted according to specific needs, such as a cylindrical or rectangular structure, and made of corrosion-resistant materials such as stainless steel or engineering plastics. The filter screen 504 can be made of wire mesh, nylon filter cloth, or other materials with filtration functions, and its main function is to intercept solid particles in the cleaning fluid. The design of the locking block 5010 and the slot 5011 can be replaced by other forms of quick-connect structures, such as a sliding rail installation structure or a flexible snap-fit ​​structure, to facilitate the disassembly and maintenance of the filter screen 504. The selection of the water pump 507 can also be adjusted according to actual needs, such as using a centrifugal pump or a diaphragm pump, whose main purpose is to provide power support for liquid circulation.

[0024] The innovation of this application lies in effectively removing suspended impurities from the cleaning fluid through an integrated circulating filtration mechanism, preventing impurity accumulation that leads to ultrasonic energy attenuation and thus maintaining stable cleaning efficiency. Specifically, the design of the filter components 5, concentrated at the edge of the cleaning area, shortens the liquid transmission distance and reduces the risk of secondary deposition of impurities during flow. Simultaneously, the water collection tank 501 provides an independent space for impurity separation, avoiding interference with the ultrasonic working environment of the main cleaning area. Furthermore, the design of drawing liquid from the bottom of the cleaning tank 1, filtering it, and then returning it from the top of the water collection tank 501 creates a uniform top-down distribution, preventing air bubbles from interfering with ultrasonic wave propagation and promoting overall circulation and renewal of the cleaning fluid.

[0025] This device forms a complete circulating filtration system by installing a filter assembly 5 on the right side of the inner cavity of the cleaning tank 1, thereby solving the problem of decreased ultrasonic cleaning efficiency caused by the accumulation of impurities in the cleaning fluid. The filter assembly 5 includes a water collection tank 501, which, as an independent filtration space, effectively separates impurities in the cleaning fluid, preventing them from interfering with the ultrasonic working environment of the main cleaning area. Furthermore, a filter screen 504 is installed on the left side of the inner cavity of the water collection tank 501. The filter screen 504, through locking blocks 5010 at both ends, engages with slots 5011 opened at both ends of the left side of the inner cavity of the water collection tank 501, enabling quick positioning and tool-free disassembly. This facilitates timely cleaning of clogged impurities, thereby ensuring continuous filtration efficiency.

[0026] A water pump 507 is installed on the right side of the water collection tank 501. The input end of the water pump 507 is connected to the bottom of the right side of the cleaning tank 1 via a suction pipe 508. Utilizing the natural settling property of impurities, it draws liquid from the area with high concentrations of impurities at the bottom of the cleaning tank 1, improving the targeted removal of impurities. Specifically, the output end of the water pump 507 delivers the filtered cleaning liquid to the top of the water collection tank 501 via an outlet pipe 505, ensuring that the cleaning liquid is evenly distributed from top to bottom, avoiding air bubbles interfering with ultrasonic wave propagation, and promoting the overall circulation and renewal of the cleaning liquid. Thus, through the synergistic operation of the above structures, suspended impurities in the cleaning liquid are effectively removed, avoiding the problem of ultrasonic energy attenuation caused by impurity accumulation, thereby maintaining stable cleaning efficiency. As a preferred embodiment, the filter assembly 5 is concentrated at the edge of the cleaning area, shortening the liquid transmission distance, reducing the risk of secondary deposition of impurities during the flow process, and further optimizing the cleaning effect.

[0027] This application further proposes that the top of the filter screen 504 is provided with a handle 502, and the surface of the handle 502 is covered with an anti-slip sleeve 503.

[0028] Specifically, handle 502 refers to a structure that facilitates the operator's gripping and movement of filter screen 504. It can be cylindrical, rectangular, or other grip-friendly shapes. In practical applications, handle 502 is typically fixed to the top of filter screen 504 by welding, threaded connections, or snap-fitting to ensure stability. Anti-slip sleeve 503 can be understood as a flexible material layer wrapped around the surface of handle 502, designed to increase friction and prevent slippage during operation. The anti-slip sleeve 503 can be made of rubber, silicone, or similar polymer materials, thereby improving operational safety and convenience.

[0029] In detail, the above solution provides a direct gripping point for the operator by adding a handle 502 to the top of the filter 504, making the removal and maintenance of the filter 504 more convenient. At the same time, the anti-slip sleeve 503 on the surface of the handle 502 further enhances the stability of the grip, avoiding inconvenience or inefficiency caused by slipping. This design not only simplifies the maintenance process of the filter 504 but also significantly improves the overall ease of operation of the cleaning device. Furthermore, the combined use of the handle 502 and the anti-slip sleeve 503 effectively reduces operator fatigue, especially in scenarios involving frequent replacement or cleaning of the filter 504.

[0030] This application further proposes that the bottom of the inner cavity of the water collection tank 501 is inclined, and the inclination angle is not less than forty-five degrees.

[0031] Specifically, the sloping bottom of the inner cavity of the water collection tank 501 refers to its design with a certain slope, which guides impurities to slide down to the lower point. In practical applications, this slope can be achieved through machining, molding, or other methods. The purpose is to utilize gravity to allow impurities to slide down naturally, preventing them from accumulating at the bottom. At the same time, limiting the tilt angle to at least 45 degrees ensures the slope is steep enough to allow impurities to slide down smoothly and prevent accumulation.

[0032] In detail, the above technical solution effectively solves the problem of impurity deposition by designing the bottom of the inner cavity of the water collection tank 501 as a sloping structure with an inclination angle of not less than 45 degrees. The sloping design at the bottom of the inner cavity of the water collection tank 501 complements the overall function of the filter assembly 5, allowing impurities in the cleaning fluid to quickly slide to the lower point and be discharged under the action of gravity, thereby significantly improving filtration efficiency. In addition, this design also ensures the purity of the cleaning fluid, thus improving the overall cleaning effect. Through the above technical solution, not only is the functionality of the water collection tank 501 optimized, but a reliable guarantee is also provided for the long-term stable operation of the cleaning device.

[0033] This application further proposes that the bottom of the filter screen 504 is inclined, and the inclination angle is in close contact with the bottom of the inner cavity of the water collection tank 501.

[0034] Specifically, the sloped bottom of filter screen 504 refers to its design as a planar structure with a certain angle, which can be achieved by stamping metal sheets or injection molding engineering plastics. The purpose of this sloped design is to utilize gravity to guide impurities to slide off naturally, preventing them from accumulating on the surface of filter screen 504. Simultaneously, the design ensuring close contact between the bottom of the inner cavity of the water collection tank 501 and the bottom of the filter screen 504 can be achieved by adding a sealing strip to the contact surface or by employing precision machining processes. This aims to prevent impurities from entering the gaps and causing blockages.

[0035] In detail, this technical solution utilizes a specific angled slope at the bottom of the filter screen 504 to effectively guide impurities such as metal shavings and abrasive particles generated during the cleaning process to slide naturally down the slope. The tight fit between the bottom of the inner cavity of the water collection tank 501 and the bottom of the filter screen 504 ensures that impurities can smoothly slide into the bottom of the water collection tank 501 without accumulating at the contact surface. This design not only maintains the permeability of the filter screen 504 and ensures normal circulation of the cleaning fluid, but also ensures the effective transmission of ultrasonic energy, thereby maintaining the stability of the cleaning effect. Furthermore, this design, combined with the structural features of the water collection tank 501, better fulfills the impurity collection function and improves the overall operating efficiency of the cleaning system.

[0036] The above technical solution enables the effective separation and collection of impurities in the cleaning fluid, solves the problem of reduced filtration efficiency caused by impurity accumulation, and ensures the continuous and efficient operation of the ultrasonic cleaning process.

[0037] This application further proposes that a limiting plate 506 is fixedly sleeved on the surface of the water outlet pipe 505, and the bottom of the limiting plate 506 is fixedly connected to the cleaning tank 1.

[0038] Specifically, the limiting plate 506 refers to a fixed structure used to limit the vibration of the water outlet pipe 505. It can be implemented using a flat plate structure made of metal sheet, high-strength plastic, or composite material. In practical applications, the limiting plate 506 can be fixedly connected to the cleaning tank 1 by bolts, welding, or snap-fit. Its purpose is to provide stable support for the water outlet pipe 505 and reduce the vibration transmission caused by the operation of the water pump 507.

[0039] In detail, during the delivery of cleaning fluid, the water outlet pipe 505 experiences vibrations due to the operation of the water pump 507. These vibrations may cause the outlet pipe 505 to sway or shift, affecting the stable delivery of the cleaning fluid. By fixing a limiting plate 506 onto the surface of the outlet pipe 505, the transmission of vibration can be effectively suppressed, ensuring that the outlet pipe 505 remains in the predetermined position. Simultaneously, the bottom of the limiting plate 506 is fixedly connected to the cleaning tank 1, further enhancing the overall structural stability and preventing uneven flow of the cleaning fluid caused by vibration. Furthermore, this design improves the efficiency of the ultrasonic-assisted cleaning process, ensuring the cleaning device maintains reliability and stability during long-term operation.

[0040] Based on the above solution, the setting of the limiting plate 506 not only solves the vibration problem of the water outlet pipe 505, but also indirectly optimizes the performance of the entire cleaning device. For example, during the coordinated operation of the filter assembly 5 and the water pump 507, the stable water outlet pipe 505 ensures the uniform delivery of the cleaning fluid, thereby improving the working efficiency of the filter screen 504 and the water collection tank 501. This design cleverly integrates the functions of each component to form a highly efficient and stable cleaning system.

[0041] This application further proposes that the surface of the water pump 507 is snapped with a fixing bracket 509, and the left side of the fixing bracket 509 is fixedly connected to the cleaning tank 1.

[0042] Specifically, the mounting bracket 509 refers to a support structure used to limit the position of the water pump 507. It can be made of metal brackets, plastic clips, or other materials with sufficient strength and rigidity. The mounting bracket 509 is attached to the surface of the water pump 507 by snap-fit, which can effectively reduce the vibration and displacement of the water pump 507 during operation. The purpose of this design is to improve the overall stability of the device and ensure the continuity and reliability of the cleaning process.

[0043] In detail, the mounting bracket 509 is directly attached to the surface of the water pump 507, providing stable support and reducing potential shaking of the water pump 507 during operation. Simultaneously, the left side of the mounting bracket 509 is fixedly connected to the cleaning tank 1, tightly integrating the water pump 507 assembly with the cleaning tank 1 to form a unified structure. This design not only prevents displacement or loosening of the water pump 507 but also avoids interference from vibration on the flow of the cleaning fluid and the transmission of ultrasonic energy. Furthermore, the introduction of the mounting bracket 509, in conjunction with other components in the aforementioned cleaning device, such as the water collection tank 501 and the filter screen 504, further optimizes the performance of the entire cleaning system. Through this physical fixing mechanism, abnormal movement of the water pump 507 is suppressed, thereby ensuring the stability and efficiency of the cleaning process.

[0044] In summary, the design of the mounting bracket 509, by providing stable support and connection, solves the vibration and displacement problems that may occur during the operation of the water pump 507, improves the stability and cleaning efficiency of the device, and provides an important guarantee for the reliable operation of the entire cleaning system.

[0045] This application further proposes that ultrasonic generators 4 are provided on both sides of the bottom of the cleaning tank 1, and the two ultrasonic generators 4 are arranged symmetrically about the cleaning tank 1.

[0046] Specifically, the ultrasonic generator 4 refers to the device used to generate ultrasonic vibrations, which can be implemented using a piezoelectric ceramic transducer or a magnetostrictive transducer. In practical applications, the ultrasonic generator 4 converts high-frequency electrical signals into mechanical vibrations, thereby creating a cavitation effect in the cleaning fluid, aiming to improve cleaning efficiency and uniformity. The centrally symmetrical arrangement means that the two ultrasonic generators 4 are symmetrically distributed with respect to the central axis of the cleaning tank 1. This layout ensures that ultrasonic energy is uniformly transmitted within the cleaning tank 1, avoiding energy concentration or loss in localized areas.

[0047] Specifically, by placing ultrasonic generators 4 on both sides of the bottom of the cleaning tank 1, covering the width of the cleaning tank 1, the ultrasonic energy can be evenly distributed in the horizontal direction, avoiding energy attenuation or propagation blind spots caused by a single sound source. Simultaneously, the centrally symmetrical arrangement of the two ultrasonic generators 4 further optimizes the uniformity of energy distribution, ensuring that the cavitation effect in the cleaning fluid remains consistent throughout the cleaning area. Furthermore, the above scheme, in conjunction with the filter assembly 5, water pump 507, and other structures within the cleaning tank 1, jointly enhances the overall performance of the cleaning device. For example, during the cleaning process, the filter assembly 5 continuously purifies the cleaning fluid, while the evenly distributed ultrasonic energy ensures that impurities on the ball valve surface can be effectively stripped and discharged with the liquid, thereby significantly improving the consistency and reliability of the cleaning effect.

[0048] The above technical solution solves the problem of uneven ultrasonic energy distribution in the cleaning chamber 1 caused by improper positioning of the ultrasonic generator 4, achieving high efficiency and uniformity in the cleaning process and providing better cleaning assurance for ball valve processing.

[0049] This application further proposes that a drain outlet 2 is provided at the bottom of the front side of the cleaning tank 1, and a control valve is provided in the inner cavity of the drain outlet 2.

[0050] Specifically, drain outlet 2 refers to the opening structure used to discharge the dirty liquid inside cleaning tank 1. It can be round, square, or other suitable shapes. The purpose is to effectively discharge impurities and dirty liquid accumulated at the bottom of cleaning tank 1 through gravity, preventing impurities from depositing and affecting the ultrasonic wave propagation effect. The control valve is a device used to regulate or cut off the fluid passage. It can be implemented using different types of valve structures such as manual valves, solenoid valves, or pneumatic valves. The purpose is to precisely control the opening and closing of drain outlet 2 according to actual needs, thereby ensuring stable liquid level during the cleaning process and timely discharge after cleaning.

[0051] In detail, the drain outlet 2 is positioned at the bottom of the front of the cleaning tank 1 for easy access and operation by the operator. Gravity allows accumulated impurities and dirty liquid to flow naturally to the drain outlet 2, reducing residue at the bottom of the tank. The control valve inside the drain outlet 2 flexibly adapts to different cleaning stages. During cleaning, the valve is closed to maintain a stable liquid level and prevent premature loss of cleaning fluid; after cleaning, the valve is opened to quickly discharge the dirty liquid containing a large amount of impurities, avoiding contamination of the cleaning fluid and attenuation of ultrasonic energy. Furthermore, the drain outlet 2 works in conjunction with the aforementioned filter assembly 5. After preliminary purification of the cleaning fluid by the filter assembly 5, the remaining dirty liquid is discharged through the drain outlet 2, forming a complete cleaning fluid management mechanism that significantly improves cleaning efficiency and extends the service life of the cleaning fluid.

[0052] The above technical solution effectively solves the problem of impurity accumulation at the bottom of the cleaning tank 1, ensures that the cleaning fluid can be replaced in a timely manner, thereby improving cleaning efficiency and providing a more reliable cleaning guarantee for ball valve processing.

[0053] This application further proposes that the bottom of the cleaning tank 1 is provided with an anti-slip mat 3, and the bottom of the anti-slip mat 3 is provided with anti-slip particles.

[0054] Specifically, the anti-slip mat 3 refers to a flexible material layer with a high coefficient of friction, which can be made of materials such as rubber, silicone, or polyurethane. Its purpose is to prevent the cleaning tank 1 from shifting due to vibration or external factors by increasing the friction of the contact surface. The anti-slip particles refer to the raised structures distributed on the bottom of the anti-slip mat 3. They can be achieved through molding, spraying, or bonding, etc., to further improve the surface roughness and enhance grip performance, especially significantly improving stability in wet and slippery environments.

[0055] In detail, the anti-slip pad 3 at the bottom of the cleaning tank 1 forms a buffer and friction medium through direct contact with the placement surface, effectively absorbing the energy generated by ultrasonic vibrations and preventing the cleaning tank 1 from sliding or shifting. Simultaneously, the anti-slip particles at the bottom of the anti-slip pad 3 increase the micro-roughness of the contact surface, providing reliable fixation even under wet and slippery conditions. This design not only solves the instability problem that may be caused by vibration during operation of the cleaning tank 1, but also improves the safety and reliability of the entire device, ensuring that the cleaning process can be carried out efficiently and smoothly. Furthermore, the combined use of the anti-slip pad 3 and anti-slip particles exhibits excellent anti-slip performance on placement surfaces of different materials and tilt angles, thus adapting to various practical application scenarios.

[0056] The above description is merely an embodiment of this utility model and is not intended to limit the scope of this utility model. Various modifications and variations can be made to this utility model by those skilled in the art. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principle of this utility model should be included within the scope of the claims of this utility model.

Claims

1. An ultrasonic-assisted ball valve processing and cleaning device, comprising a cleaning tank (1), characterized in that: A filter assembly (5) is provided on the right side of the inner cavity of the cleaning tank (1). The filter assembly (5) includes a water collection tank (501), and the water collection tank (501) is located on the right side of the inner cavity of the cleaning tank (1). A filter screen (504) is provided on the left side of the inner cavity of the water collection tank (501). Both ends of the filter screen (504) are provided with locking blocks (5010). Both ends of the left side of the inner cavity of the water collection tank (501) are provided with openings that are compatible with the locking blocks (5010). The card slot (5011) has a water pump (507) on the right side of the water collection tank (501), and the water pump (507) is located on the right side of the cleaning tank (1). The input end of the water pump (507) is connected to a suction pipe (508), and the other end of the suction pipe (508) is connected to the bottom of the right side of the cleaning tank (1). The output end of the water pump (507) is connected to a water outlet pipe (505), and the water outlet pipe (505) is located above the water collection tank (501).

2. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The filter screen (504) is provided with a handle (502) at the top, and the surface of the handle (502) is covered with an anti-slip sleeve (503).

3. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The bottom of the inner cavity of the water collection tank (501) is inclined, and the inclination angle is not less than forty-five degrees.

4. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The bottom of the filter screen (504) is inclined, and the angle of inclination is in close contact with the bottom of the inner cavity of the water collection tank (501).

5. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The surface of the water outlet pipe (505) is fixedly fitted with a limiting plate (506), and the bottom of the limiting plate (506) is fixedly connected to the cleaning tank (1).

6. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The surface of the water pump (507) is fitted with a fixing bracket (509), and the left side of the fixing bracket (509) is fixedly connected to the cleaning tank (1).

7. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The bottom of the cleaning tank (1) is equipped with ultrasonic generators (4) on both sides, and the two ultrasonic generators (4) are arranged symmetrically about the cleaning tank (1).

8. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The bottom of the front of the cleaning tank (1) is provided with a drain outlet (2), and the inner cavity of the drain outlet (2) is provided with a control valve.

9. The ultrasonic-assisted ball valve processing and cleaning device according to claim 1, characterized in that: The bottom of the cleaning tank (1) is provided with an anti-slip mat (3), and the bottom of the anti-slip mat (3) is provided with anti-slip particles.