Cleaning device of detection equipment

By integrating the various mechanisms of the cleaning device into the box and dividing it into cavities, the problems of large space, inconvenient installation, and difficult maintenance caused by external components in existing devices are solved, achieving a compact structure and efficient cleaning effect, and improving installation efficiency and cleaning quality.

CN224265863UActive Publication Date: 2026-05-22DONGGUAN LANGSHUO AUTOMATION TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
DONGGUAN LANGSHUO AUTOMATION TECH CO LTD
Filing Date
2025-06-11
Publication Date
2026-05-22

AI Technical Summary

Technical Problem

Existing cleaning devices suffer from problems such as large footprint, inconvenient installation, and difficult maintenance due to the external placement of components such as water inlet pipes and valve bodies.

Method used

The first cleaning mechanism, the second cleaning mechanism, and the drying mechanism of the cleaning device are integrated inside the box and divided into a first cavity and a second cavity by an isolation block. A first drain pipe and a second drain pipe are respectively installed to achieve a compact structure. Through the coordinated work of the drug supply component, the clean water supply component, the air supply component, and the diversion component, the drug supply, clean water rinsing, and drying operations are realized.

Benefits of technology

It improves space utilization, reduces installation difficulty and cost, enhances installation efficiency, improves cleaning effect and the adaptability and flexibility of the device, and ensures cleaning quality and the reliability of subsequent treatment.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the field of cleaning equipment, in particular to a cleaning device of detection equipment, which comprises a box, and a first cleaning mechanism for providing cleaning workpieces, a second cleaning mechanism for providing clean water and an air drying mechanism for blow-drying are arranged in the box; an isolation block is fixedly arranged in the box and divides the box into a first cavity and a second cavity; a first through hole communicated with the first cavity and a second through hole communicated with the second cavity are formed in the box; the box is provided with a first drainage pipe communicated with the first cavity and a second drainage pipe communicated with the second cavity. The structure of the cleaning device is compact, the space utilization rate is increased, and the installation difficulty and cost are reduced.
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Description

Technical Field

[0001] This application relates to the field of cleaning equipment, and in particular to a cleaning apparatus for a testing device. Background Technology

[0002] In the field of machining and manufacturing, feeders (including mechanical feeders and oil film feeders) play a crucial role in accurately transferring bar stock to machine tools for processing. After machining, the bar stock is transformed into workpieces of various shapes and specifications. The appearance and dimensional quality of these workpieces directly determine the final performance and usability of the product. Therefore, efficient and accurate appearance and dimensional inspection of workpieces is an indispensable and important part of the machining process, which is of vital importance for ensuring product quality, improving production efficiency, and reducing the defect rate. During workpiece inspection, the cleaning process is a key step in ensuring the accuracy of inspection and the quality of the workpiece. Only when the workpiece surface is clean and free of impurities can the reliability of subsequent inspection results be ensured.

[0003] A cleaning device is disclosed in the related technology, including a cleaning container with a cleaning chamber inside. A diversion valve, a first inlet pipe, a second inlet pipe, a third inlet pipe, and a fourth inlet pipe are provided outside the cleaning container. The diversion valve has a valve body with a flow inlet, two first outlets and two second outlets arranged opposite to each other and connected to each other. The flow inlet of the valve body is connected to the cleaning chamber of the cleaning container. The inlets of the first and second inlet pipes are respectively connected to the two first outlets of the valve body. The outlets of the water pipe and the second inlet pipe are respectively connected to the cleaning chamber of the cleaning container. The inlets of the third inlet pipe and the fourth inlet pipe are respectively connected to the two second outlets of the valve body. The outlets of the third inlet pipe and the fourth inlet pipe are respectively connected to the cleaning chamber of the cleaning container. The water outlets of the first inlet pipe and the second inlet pipe have opposite water outlet directions, which allows the water flowing into the cleaning chamber to rotate in a clockwise direction. The water outlets of the third inlet pipe and the fourth inlet pipe have opposite water outlet directions, which allows the water flowing into the cleaning chamber to rotate in a counterclockwise direction.

[0004] Because the first, second, third, and fourth water inlet pipes and the valve body are all located outside the cleaning container in the relevant technology, it not only significantly increases the overall footprint of the cleaning device, making the device appear bulky and cumbersome, which is not conducive to use in places with limited space; but also the external placement of these components brings great inconvenience to the installation work, making the installation process cumbersome and complicated, increasing installation costs and time, reducing installation efficiency, and also increasing the difficulty of subsequent maintenance and repair. Utility Model Content

[0005] In order to overcome the problems of large footprint, inconvenient installation, and difficult maintenance caused by the placement of components such as water inlet pipes and valve bodies outside the cleaning container in existing cleaning devices, this application provides a cleaning device for testing equipment.

[0006] The cleaning device for testing equipment provided in this application adopts the following technical solution:

[0007] A cleaning device for a testing equipment includes a box, in which an isolation block is fixedly disposed, dividing the box into a first cavity and a second cavity; the first cavity is provided with a first cleaning mechanism for cleaning workpieces, and the second cavity is provided with a second cleaning mechanism for cleaning workpieces and a drying mechanism for drying workpieces; the box has a first through hole communicating with the first cavity and a second through hole communicating with the second cavity; the box has a first drain pipe communicating with the first cavity and a second drain pipe communicating with the second cavity.

[0008] By adopting the above technical solution, a first cleaning mechanism for providing clean workpieces, a second cleaning mechanism for providing clean water, and a drying mechanism for blowing dry are integrated inside a box. The box is divided into a first chamber and a second chamber by a partition block. A robotic arm can transport the workpiece to the first chamber for cleaning by the first cleaning mechanism, and then transport it to the second chamber for secondary cleaning. The box has a first drain pipe and a second drain pipe connected to the two chambers respectively. This effectively solves the problems of large footprint, inconvenient installation, and difficult maintenance caused by the external placement of components such as water inlet pipes and valves in existing cleaning devices. It achieves a compact structure for the cleaning device, improves space utilization, reduces installation difficulty and cost, increases installation efficiency, and also facilitates subsequent maintenance and repair work.

[0009] Optionally, the first cleaning mechanism includes a chemical supply component, a first diversion component, and multiple spraying components; the chemical supply component is used to supply chemical solution to the first diversion component; the first diversion component is disposed in the first cavity and is used to distribute the chemical solution to the multiple spraying components; the spraying components are used to spray chemical solution onto the workpiece in the first cavity.

[0010] By adopting the above technical solution, the orderly supply, distribution and spraying of the cleaning solution are achieved, so that the workpiece can be cleaned evenly and effectively in the first cavity, which improves the cleaning effect and efficiency. At the same time, it also improves the structural compactness and operational reliability of the entire cleaning device, further enhancing the performance and advantages of the cleaning device in practical applications.

[0011] Optionally, the drug supply assembly includes a first liquid storage container, a first water pipe assembly, and a first water pump, with the first water pump disposed within the first liquid storage container; the first diversion assembly includes a first diversion block and multiple first diversion pipes, with a first main flow channel formed within the first diversion block, one end of which is open and the other end closed; one end of the first water pipe assembly is connected to the first water pump, and the other end of the first water pipe assembly is connected to the first diversion assembly; the first diversion block has multiple spaced-apart first diversion holes, which are connected to the first main flow channel; each first diversion pipe is connected to a corresponding first diversion hole, and the other end of each first diversion pipe is connected to the drug spraying assembly.

[0012] By adopting the above technical solution, the first water pump can transport the liquid in the first storage container to the first diversion component through the first water pipe assembly. After the liquid enters the first main channel, it is evenly distributed to each first diversion pipe through multiple first diversion holes, and then transported to the spraying component, thereby achieving uniform spraying and cleaning of the workpiece, ensuring the stability of the liquid supply and the uniformity of the distribution, improving the cleaning effect. At the same time, the coordinated work of each component also improves the operating efficiency and reliability of the entire cleaning device.

[0013] Optionally, each of the spraying components includes a first support, a first adjusting block, a first fastener, and a first nozzle. The first support is fixed to the inner wall of the first cavity, the first adjusting block is slidably engaged with the first support, the first fastener is used to fix the first adjusting block on the first support, and the first nozzle is fixed on the first adjusting block.

[0014] By adopting the above technical solution, the sliding cooperation between the first adjusting block and the first support allows the position of the first nozzle to be flexibly adjusted according to the actual cleaning needs. After adjustment, it is fixed by the first fastener, thereby ensuring that the first nozzle can accurately target the part of the workpiece that needs to be cleaned, improving the targeting and effect of cleaning. It also enhances the adaptability and flexibility of the cleaning device to different workpieces, further improving the working performance and practicality of the entire cleaning device.

[0015] Optionally, the second cleaning mechanism includes a water supply component, a second diversion component, and multiple water spraying components; the water supply component is used to supply clean water to the second diversion component; the second diversion component is disposed in the second cavity and is used to distribute clean water to the multiple water spraying components; the water spraying components are used to spray clean water onto the workpiece in the second cavity.

[0016] By adopting the above technical solution, the orderly supply and distribution of clean water is achieved, so that the workpiece can be fully rinsed with clean water in the second chamber, effectively removing residual chemicals and other impurities from the workpiece surface, further improving the cleaning quality, ensuring the integrity and continuity of the entire cleaning device, and improving the efficiency and effectiveness of the cleaning work.

[0017] Optionally, the water supply assembly includes a second liquid storage container, a second water pipe assembly, and a second water pump. The second water pump is disposed within the second liquid storage container. The second diversion assembly includes a second diversion block and multiple second diversion pipes. A second main flow channel is formed within the second diversion block, with one end of the second main flow channel being open and the other end being closed. One end of the second water pipe assembly is connected to the second water pump, and the other end is connected to the opening of the second diversion assembly. Multiple spaced second diversion holes are formed on the second diversion block, and the second diversion holes are connected to the second main flow channel. The second diversion pipes are connected to the second diversion holes one-to-one, and the other end of the second diversion pipes is connected to the water spray assembly.

[0018] By adopting the above technical solution, the second water pump can transport the clean water in the second storage container to the second diversion component through the second water pipe assembly. After the clean water enters the second main channel, it is evenly distributed to each second diversion pipe through multiple second diversion holes, and then transported to the water spray assembly, thereby realizing uniform clean water spraying and cleaning of the workpiece, ensuring the stability of the clean water supply and the uniformity of distribution, effectively improving the cleaning effect. At the same time, the coordinated work of each component also enhances the operational reliability and efficiency of the entire cleaning device.

[0019] Optionally, each water spray assembly includes a second support, a second adjusting block, a second fastener, and a second nozzle. The second support is fixed to the inner wall of the second cavity, the second adjusting block is slidably engaged with the second support, the second fastener is used to fix the second adjusting block on the second support, and the second nozzle is fixed on the second adjusting block.

[0020] By adopting the above technical solution, the sliding cooperation between the second adjusting block and the second support allows the position of the second nozzle to be flexibly adjusted according to the actual cleaning needs. After adjustment, it is fixed by the second fastener, thereby ensuring that the second nozzle can accurately aim at the part of the workpiece that needs to be rinsed, improving the targeting and effect of water rinsing, and also enhancing the adaptability and flexibility of the cleaning device to different workpieces, further improving the working performance and practicality of the entire cleaning device.

[0021] Optionally, the drying mechanism includes an air supply assembly and a third diversion assembly; the air supply assembly is used to supply gas; the third diversion assembly is disposed in the second cavity and is used to distribute the gas to multiple jet nozzles; the jet nozzles are used to blow air onto the workpiece in the second cavity.

[0022] By adopting the above technical solution, the workpieces can be dried quickly after cleaning, effectively removing residual moisture from the workpiece surface and avoiding problems such as rust and damage that may be caused by residual moisture. This improves the cleaning quality of the workpieces and the reliability of subsequent processing, and also ensures the uniformity and efficiency of the drying process, further enhancing the functional integrity and practicality of the entire cleaning device.

[0023] Optionally, the third diversion assembly includes a third diversion block and multiple jet components. An exhaust channel is provided within the third diversion block, with one end open and the other end closed. The air supply assembly includes a vortex blower and an air pipe assembly. The vortex blower is housed within the testing equipment. One end of the air pipe assembly is connected to the vortex blower, and the other end is connected to the open end of the third diversion block. Multiple third diversion holes are provided on the third diversion block. Each jet component is connected to one of the third diversion holes, and the jet component is fixed within the third diversion hole and connected to the exhaust channel.

[0024] By adopting the above technical solution, the gas generated by the worm blower is transported to the third diversion component through the air pipe assembly. After entering the exhaust channel, it is evenly distributed to each jet component through multiple third diversion holes, and then ejected by the jet component, thereby achieving uniform blowing and drying of the workpiece. This ensures the stability of the gas supply and the uniformity of the distribution, improves the drying efficiency and quality, and at the same time, the coordinated work of each component also enhances the reliability and stability of the entire drying mechanism.

[0025] In summary, this application includes at least one of the following beneficial technical effects:

[0026] 1. By integrating the first cleaning mechanism for providing clean workpieces, the second cleaning mechanism for providing clean water, and the air-drying mechanism for drying into the interior of a box, and using a partition block to divide the box into a first chamber and a second chamber, a compact structure for the cleaning device is achieved. The box has a first drain pipe and a second drain pipe connected to the two chambers respectively, effectively solving the problems of large footprint, inconvenient installation, and difficult maintenance caused by the external placement of components such as water inlet pipes and valves in existing cleaning devices. This significantly improves space utilization, reduces installation difficulty and cost, increases installation efficiency, and also facilitates subsequent maintenance and repair work.

[0027] 2. The first cleaning mechanism, through the coordinated operation of the chemical supply component, the first diversion component, and multiple spraying components, achieves the orderly supply, distribution, and spraying of chemical solutions, ensuring that the workpiece receives uniform and effective cleaning within the first chamber. The second cleaning mechanism, through the cooperation of the clean water supply component, the second diversion component, and multiple spraying components, thoroughly rinses the workpiece with clean water, effectively removing residual chemical solutions and other impurities from the workpiece surface. This not only improves the cleaning effect and efficiency but also enhances the adaptability and flexibility of the cleaning device to different workpieces, further improving the overall performance and practicality of the cleaning system.

[0028] 3. The air-drying mechanism, through the collaboration of the air supply component and the third diversion component, achieves rapid drying of the cleaned workpieces, effectively removing residual moisture from the workpiece surface and avoiding problems such as rust and damage that may be caused by moisture residue. This improves the cleaning quality and the reliability of subsequent processing. Simultaneously, the coordinated work of each component ensures the uniformity and efficiency of the drying process, as well as the reliability and stability of the entire cleaning device, further enhancing its functional integrity and practicality. Attached Figure Description

[0029] Figure 1 This is a schematic diagram of the cleaning device of the detection equipment in the embodiments of this application.

[0030] Figure 2 This is a schematic diagram of the structure of the box, the first cleaning mechanism, the second cleaning mechanism and the drying mechanism in the embodiments of this application.

[0031] Figure 3 This is a structural schematic diagram of the box body, the first cleaning mechanism, the second cleaning mechanism, and the drying mechanism from another perspective in the embodiments of this application.

[0032] Figure 4 This is a schematic diagram of the structure of the first shunt component in the embodiments of this application.

[0033] Explanation of reference numerals in the attached figures:

[0034] 1. Box; 11. Box body; 111. First drain pipe; 112. Second drain pipe; 12. Cover; 121. First through hole; 122. Second through hole; 13. Isolation block; 14. First cavity; 15. Second cavity; 2. First cleaning mechanism; 21. First water pipe assembly; 211. Medicine tube; 212. First connector; 213. First bamboo joint tube; 214. Second connector; 22. First diversion assembly; 221. First diversion block; 222. First main channel; 223. First diversion hole; 23. Spraying assembly; 231. First support; 232 1. First adjusting block; 2. First nozzle; 3. Second cleaning mechanism; 3. Second water pipe assembly; 3.1 Water pipe; 3.12 Third connector; 3.13 Second bamboo joint pipe; 3.14 Fourth connector; 3.2 Second diversion assembly; 3.21 Second diversion block; 3.22 Second main channel; 3.23 Second diversion hole; 3.3 Spray assembly; 3.31 Second support; 3.32 Second adjusting block; 3.33 Second nozzle; 4. Drying mechanism; 4.3 Diversion assembly; 4.11 Third diversion block; 4.12 Exhaust channel; 4.13 Third diversion hole. Detailed Implementation

[0035] The following is in conjunction with the appendix Figure 1-4 This application will be described in further detail.

[0036] The terminology used in this application is for the purpose of describing particular embodiments only and is not intended to be limiting of the application. Unless otherwise defined, the technical or scientific terms used in this application should have the ordinary meaning understood by one of ordinary skill in the art to which this application pertains. The terms "first," "second," and similar terms used in this application do not indicate any order, quantity, or importance, but are merely used to distinguish different components.

[0037] This application discloses a cleaning device for a testing equipment. (Refer to...) Figure 1 and Figure 2The cleaning device includes a box 1, which comprises a box body 11 and a cover 12. The cover 12 is fitted onto the box body 11 to seal the internal space of the box body 11, and is fixedly connected to the box body 11 by multiple bolts. An isolation block 13 is fixedly installed inside the box body 11, dividing the box body 11 into a first cavity 14 and a second cavity 15. A first cleaning mechanism 2 is installed in the first cavity 14, and a second cleaning mechanism 3 and a drying mechanism 4 are installed in the second cavity 15. A first through hole 121 and a second through hole 122 are provided on the cover 12, with the first through hole 121 located above the first cavity 14 and the second through hole 122 located above the second cavity 15. The first cleaning mechanism 2 is used to supply medicine to the first cavity 14, the second cleaning mechanism 3 is used to supply clean water to the second cavity 15, and the drying mechanism 4 is used to blow air into the second cavity 15. A first drain pipe 111 and a second drain pipe 112 are fixed on the box body 11. The first drain pipe 111 is connected to the first cavity 14, and the second drain pipe 112 is connected to the second cavity 15.

[0038] Reference Figure 2 , Figure 3 and Figure 4 The first cleaning mechanism 2 includes a chemical supply component, a first diversion component 22, and multiple spraying components 23. The first diversion component 22 includes a first diversion block 221 and multiple first diversion pipes. The first diversion block 221 is disposed within the first cavity 14, and a first main flow channel 222 is formed within the first diversion block 221. One end of the first main flow channel 222 is open, and the other end is closed. The chemical supply component includes a first liquid storage container and a first water pipe assembly 21, which is disposed within the first liquid storage container. One end of the first water pipe assembly 21 is connected to the liquid storage container, and the other end of the first water pipe assembly 21 is connected to the open end of the first main flow channel 222.

[0039] Reference Figure 2 and Figure 3 In this embodiment, the first water pipe assembly 21 includes a medicine pipe 211, a first connector 212, a first bamboo-joint pipe 213, and a second connector 214. The first connector 212 is fixed to the side wall of the box body 11, and the second connector 214 is fixed to the end of the first distribution block. The second connector 214 is interconnected with the first main flow channel 222. One end of the medicine pipe 211 is interconnected with the first liquid storage container, and the other end of the medicine pipe 211 is interconnected with one end of the first connector 212. One end of the first bamboo-joint pipe 213 is interconnected with the other end of the first connector 212, and the other end of the first bamboo-joint pipe 213 is interconnected with one end of the opening of the first distribution block 221.

[0040] Reference Figure 2 and Figure 4Each spraying assembly 23 includes a first support 231, a first adjusting block 232, a first fastener, and a first nozzle 233. The first support 231 is fixed to the inner wall of the first cavity 14. The first adjusting block 232 is slidably engaged with the first support 231. The first fastener is used to fix the first adjusting block 232 to the first support 231. The first nozzle 233 is fixed to the first adjusting block 232. A first diversion pipe corresponds one-to-one with the first nozzle 233. A plurality of first diversion holes 223 are provided on the first diversion block 221, and the plurality of first diversion holes 223 are interconnected with the first main channel 222. A first diversion pipe corresponds one-to-one with the first diversion hole 223. One end of the first diversion pipe is interconnected with the first diversion hole 223, and the other end of the first diversion pipe is interconnected with the first nozzle 233.

[0041] Reference Figure 1 and Figure 2 The first liquid storage container in the chemical supply assembly stores the chemical solution, which is then transported to the first diversion assembly 22 via the first water pipe assembly 21. The first diversion block 221 in the first diversion assembly 22 is located within the first cavity 14, with one end of its first main flow channel 222 connected to the first water pipe assembly 21, allowing the chemical solution to flow in. The first diversion block 221 has multiple spaced-apart first diversion holes 223, which communicate with the first main flow channel 222. Multiple first diversion pipes are connected one-to-one with the first diversion holes 223, and the other end of each first diversion pipe is connected to a spraying assembly 23. The chemical solution flows through the first diversion pipes to the first spray head 233, and is evenly sprayed from multiple angles onto the workpiece surface within the first cavity 14 for chemical cleaning, removing oil and impurities from the workpiece surface. After the first cleaning mechanism 2 completes all cleaning actions, the waste liquid in the first cavity 14 is discharged through the first drain pipe 111, maintaining the cleanliness and hygiene of the cleaning device.

[0042] Reference Figure 2 and Figure 3 The second cleaning mechanism 3 includes a clean water supply component, a second diversion component 32, and multiple water spray components 33. The second diversion component 32 includes a second diversion block 321 and multiple second diversion pipes. The second diversion block 321 is disposed within the second cavity 15, and a second main flow channel 322 is formed within the second diversion block 321. One end of the second main flow channel 322 is open, and the other end is closed. The clean water supply component includes a second liquid storage container, a second water pipe assembly 31, and a second water pump. The second water pump is disposed within the second liquid storage container. One end of the second water pipe assembly 31 is connected to the second water pump, and the other end of the second water pipe assembly 31 is connected to the open end of the second main flow channel 322.

[0043] Reference Figure 2 and Figure 3In this embodiment, the second water pipe assembly 31 includes a water pipe 311, a third connector 312, a second bamboo-joint pipe 313, and a fourth connector 314. The third connector 312 is fixed to the side wall of the box body 11. The fourth connector 314 is fixed to the end of the second distribution block and is located at one end of the opening of the second main channel 322, communicating with the second main channel 322. One end of the water pipe 311 is connected to the second liquid storage container, and the other end of the water pipe 311 is connected to one end of the second connector 314. One end of the second bamboo-joint pipe 313 is connected to the other end of the second connector 214, and the other end of the second bamboo-joint pipe 313 is connected to the fourth connector 314.

[0044] Reference Figure 2 Each water spray assembly 33 includes a second support 331, a second adjusting block 332, a second fastener, and a second nozzle 333. The second support 331 is fixed to the inner wall of the second cavity 15. The second adjusting block 332 is slidably engaged with the second support 331. The second fastener is used to fix the second adjusting block 332 onto the second support 331, and the second nozzle 333 is fixed onto the second adjusting block 332. A plurality of spaced-apart second diversion holes 323 are provided on the second diversion block 321, and all of the plurality of second diversion holes 323 are interconnected with the second main channel 322. A second diversion pipe corresponds one-to-one with the second diversion hole 323, and a second diversion pipe corresponds one-to-one with the second nozzle 333. One end of the second diversion pipe is interconnected with the second diversion hole 323, and the other end of the second diversion pipe is interconnected with the second nozzle 333.

[0045] Reference Figure 2 and Figure 3 The air-drying mechanism 4 includes an air supply component, a third diversion component 41, and multiple jet components. The air supply component includes a vortex blower and an air pipe assembly. The vortex blower is installed inside the testing equipment. The specific structure of the air pipe assembly is the same as that of the air pipe assembly and will not be described in detail here. The third diversion component 41 includes a third diversion block 411, which is installed inside the second cavity 15. An exhaust channel 412 is provided inside the third diversion block 411. One end of the exhaust channel 412 is open, and the other end is closed. One end of the air pipe assembly is connected to the vortex blower, and the other end of the air pipe assembly is connected to the open end of the exhaust channel 412. Multiple third diversion holes 413 are provided on the third diversion block 411. Each jet component corresponds to one of the third diversion holes 413 and is fixed inside the third diversion hole 413. The jet components are connected to the exhaust channel 412.

[0046] Reference Figure 2 and Figure 3After the chemical cleaning is completed, the second cleaning mechanism 3 begins operation. The second liquid storage container in the water supply assembly stores clean water, which is transported to the second diversion assembly 32 via the second water pipe assembly 31. The second diversion block 321 in the second diversion assembly 32 is located within the second cavity 15, with one end of its second main channel 322 connected to the second water pipe assembly 31, allowing clean water to flow in. The clean water then flows through the second diversion pipe to the second nozzle 333, which sprays it evenly from multiple angles onto the workpiece surface within the second cavity 15 for rinsing, removing residual chemicals and other impurities. After rinsing, the drying mechanism 4 begins operation. The blower in the air supply assembly generates gas, which is transported through the air pipe assembly to the exhaust channel 412 of the third diversion assembly 41. The gas in the exhaust channel 412 is evenly ejected through multiple jet nozzles, blowing onto the workpiece surface within the second cavity 15. The blown gas helps remove residual moisture and impurities from the workpiece surface, achieving rapid drying and ensuring the quality of workpiece cleaning. Throughout the cleaning and drying process, the waste liquid in the second chamber 15 is discharged through the second drain pipe 112, keeping the cleaning device clean and hygienic.

[0047] The implementation principle of the above embodiment is as follows: the medicine stored in the first storage container of the medicine supply assembly is transported to the first diversion assembly 22 through the first water pipe assembly 21. The medicine flows through the first main channel 222 in the first diversion block 221, through multiple first diversion holes 223 and corresponding first diversion pipes, to the first nozzles 233 of each spraying assembly 23, and is evenly sprayed from multiple angles onto the surface of the workpiece in the first cavity 14 to remove oil and impurities from the workpiece surface. After cleaning, the waste liquid in the first cavity 14 is discharged through the first drain pipe 111. After the medicine cleaning is completed, the second cleaning mechanism 3 starts to work. The clean water stored in the second storage container of the clean water supply assembly is transported to the second diversion assembly 32 through the second water pipe assembly 31. Clean water flows through the second main channel 322 within the second diversion block 321, through multiple second diversion holes 323 and corresponding second diversion pipes, to the second nozzles 333 of each spray assembly 33. It is then evenly sprayed from multiple angles onto the workpiece surface within the second cavity 15, removing residual chemicals and other impurities. After rinsing, the waste liquid in the second cavity 15 is discharged through the second drain pipe 112. Following the clean water rinsing, the drying mechanism 4 begins operation. The vortex blower in the air supply assembly generates gas, which is transported through the air pipe assembly to the exhaust channel 412 of the third diversion assembly 41. The gas in the exhaust channel 412 is evenly sprayed out through multiple jet nozzles, blowing onto the workpiece surface within the second cavity 15 to remove residual moisture and impurities, achieving rapid drying and ensuring the quality of workpiece cleaning. Throughout the cleaning and drying process, through a reasonable mechanism setup and process arrangement, effective cleaning and drying of the workpiece are achieved, while maintaining the cleanliness and hygiene of the cleaning device.

[0048] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.

Claims

1. A cleaning device for a testing equipment, characterized in that: The device includes a box (1), in which an isolation block (13) is fixedly installed, dividing the box (1) into a first cavity (14) and a second cavity (15); the first cavity (14) is provided with a first cleaning mechanism (2) for cleaning workpieces, and the second cavity (15) is provided with a second cleaning mechanism (3) for cleaning workpieces and a drying mechanism (4) for drying workpieces; the box (1) has a first through hole (121) communicating with the first cavity (14), and a second through hole (122) communicating with the second cavity (15); the box (1) has a first drain pipe (111) communicating with the first cavity (14) and a second drain pipe (112) communicating with the second cavity (15).

2. The cleaning device for a testing equipment according to claim 1, characterized in that: The first cleaning mechanism (2) includes a chemical supply component, a first diversion component (22), and multiple spraying components (23); the chemical supply component is used to supply chemical solution to the first diversion component (22); the first diversion component (22) is disposed in the first cavity (14) and is used to distribute the chemical solution to the multiple spraying components (23); the spraying components (23) are used to spray chemical solution onto the workpiece in the first cavity (14).

3. The cleaning device for a testing equipment according to claim 2, characterized in that: The drug supply water assembly includes a first liquid storage container, a first water pipe assembly (21), and a first water pump, with the first water pump disposed within the first liquid storage container; the first diversion assembly (22) includes a first diversion block (221) and a plurality of first diversion pipes, with a first main channel (222) opened within the first diversion block (221), one end of the first main channel (222) being open and the other end being closed; one end of the first water pipe assembly (21) is connected to the first water pump, and the other end of the first water pipe assembly (21) is connected to the first diversion assembly (22); a plurality of spaced first diversion holes (223) are opened on the first diversion block (221), and the first diversion holes (223) are connected to the first main channel (222); the first diversion pipes are connected to the first diversion holes (223) one by one, and the other end of the first diversion pipes is connected to the spraying assembly (23).

4. The cleaning device for a testing equipment according to claim 3, characterized in that: Each of the spraying components (23) includes a first support (231), a first adjusting block (232), a first fastener, and a first nozzle (233). The first support (231) is fixed to the inner wall of the first cavity (14). The first adjusting block (232) slides with the first support (231). The first fastener is used to fix the first adjusting block (232) on the first support (231). The first nozzle (233) is fixed on the first adjusting block (232).

5. The cleaning device for a testing equipment according to claim 1, characterized in that: The second cleaning mechanism (3) includes a clean water supply component, a second diversion component (32), and multiple water spray components (33); the clean water supply component is used to supply clean water to the second diversion component (32); The second diversion component (32) is disposed in the second cavity (15) for distributing clean water to a plurality of the water spray components (33); the water spray components (33) are used to spray clean water onto the workpiece in the second cavity (15).

6. The cleaning device for a testing equipment according to claim 5, characterized in that: The water supply assembly includes a second liquid storage container, a second water pipe assembly (31), and a second water pump. The second water pump is disposed in the second liquid storage container. The second diversion assembly (32) includes a second diversion block (321) and a plurality of second diversion pipes. A second main channel (322) is provided in the second diversion block (321). One end of the second main channel (322) is open and the other end is closed. One end of the second water pipe assembly (31) is connected to the second water pump, and the other end is connected to the opening of the second diversion assembly (32). A plurality of second diversion holes (323) are provided on the second diversion block (321) at intervals. The second diversion holes (323) are connected to the second main channel (322). The second diversion pipes are connected to the second diversion holes (323) one by one, and the other end of the second diversion pipes is connected to the water spray assembly (33).

7. The cleaning device for a testing equipment according to claim 6, characterized in that: Each water spray assembly (33) includes a second support (331), a second adjusting block (332), a second fastener, and a second nozzle (333). The second support (331) is fixed to the inner wall of the second cavity (15). The second adjusting block (332) slides with the second support (331). The second fastener is used to fix the second adjusting block (332) on the second support (331). The second nozzle (333) is fixed on the second adjusting block (332).

8. The cleaning device for a testing equipment according to claim 1, characterized in that: The air drying mechanism (4) includes an air supply component and a third diversion component (41); the air supply component is used to supply gas; the third diversion component (41) is disposed in the second cavity (15) and is used to distribute gas to multiple jets; the jets are used to blow air onto the workpiece in the second cavity (15).

9. The cleaning device for a testing equipment according to claim 8, characterized in that: The third diversion component (41) includes a third diversion block (411) and multiple jets. An exhaust channel (412) is provided in the third diversion block (411). One end of the exhaust channel (412) is open and the other end is closed. The air supply component includes a vortex blower and an air pipe assembly. The vortex blower is installed in the detection equipment. One end of the air pipe assembly is connected to the vortex blower, and the other end of the air pipe assembly is connected to the open end of the third diversion block (411). Multiple third diversion holes (413) are provided on the third diversion block (411). Each jet is connected to a corresponding third diversion hole (413), and the jet is fixed in the third diversion hole (413) and connected to the exhaust channel (412).