Full-automatic cleaning and drying equipment

By introducing components such as sedimentation tanks, guide plates, and porous cotton blocks into the cleaning equipment, combined with the design of airbag rings and counterweight heads, the problem of incomplete filtration of impurities in the cleaning fluid is solved, achieving efficient filtration and recycling of the cleaning fluid.

CN223996818UActive Publication Date: 2026-03-17JINAN BINENGXIN INTELLIGENT EQUIPMENT CO LTD
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-07
Publication Date
2026-03-17

AI Technical Summary

Technical Problem

Existing cleaning equipment cannot effectively filter impurities in the cleaning solution, resulting in poor recycling of the cleaning solution.

Method used

The filtration system, consisting of a sedimentation tank, guide plate, porous cotton wadding, filter screen, air bladder ring, and counterweight head, uses a V-shaped guiding structure to settle impurities and the combination of air bladder ring and counterweight head to achieve fine filtration and improve the filtration effect of the cleaning solution.

Benefits of technology

It achieves efficient precipitation and adsorption of impurities, significantly improves the filtration effect of cleaning solution, simplifies sewage discharge operations, and enhances the quality of cleaning solution recycling.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN223996818U_ABST
    Figure CN223996818U_ABST
Patent Text Reader

Abstract

The utility model discloses full-automatic cleaning and drying equipment, and relates to the technical field of cleaning equipment, the full-automatic cleaning and drying equipment comprises a shell and an ultrasonic cleaning mechanism, the ultrasonic cleaning mechanism is arranged at the inner bottom of the shell, the ultrasonic cleaning mechanism comprises a sediment box and a guide plate, the guide plate is arranged at the inner lower part of the sediment box, and the guide plate is arranged in the sediment box. Two groups of guide plates are oppositely arranged, a V-shaped precipitation port structure is formed between the guide plates, and a slag discharge port is mounted at the left side end of the bottom of the precipitation tank. Impurities can sink to the bottom after standing through the arrangement of the precipitation tank, the impurities in cleaning fluid can be conveniently precipitated and collected through the V-shaped guide structures, and the slag discharge port is additionally mounted at the bottom of the precipitation tank, so that the impurities in the cleaning fluid can be conveniently removed. According to the cleaning fluid filtering device, by arranging the impurity removing block, impurities can be effectively adsorbed into the impurity removing block, cleaning fluid filtered by the impurity removing block is discharged from the first filtering plate, fine impurity removing and filtering operation is completed, and the filtering effect of the cleaning fluid is improved.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of cleaning equipment technology, specifically a fully automatic cleaning and drying equipment. Background Technology

[0002] Cleaning is necessary after workpiece machining for several important reasons: First, it ensures workpiece quality by removing residual impurities. During machining processes such as cutting and grinding, a large amount of chips, debris, and grinding shavings are generated. If these impurities remain on the workpiece surface, they will affect the dimensional accuracy and surface roughness. For example, in precision machining, even tiny chip residues can lead to improper part fit, affecting equipment performance and lifespan. Cleaning thoroughly removes these impurities, ensuring a clean workpiece surface and providing favorable conditions for subsequent machining, assembly, and use. Second, it removes machining fluids and oil. To improve machining efficiency, reduce cutting temperature, and minimize tool wear, various machining fluids, such as cutting fluids and lubricants, are typically used during machining. These fluids remain on the workpiece surface after use, and if not cleaned, they may corrode the workpiece, especially in humid environments where corrosion is accelerated. The presence of oil can also affect surface coating treatments such as painting and electroplating, leading to decreased coating adhesion and problems like peeling and flaking. Third, it prevents microscopic defects. The surface of the machined workpiece may contain microscopic defects such as cracks and pinholes. During the cleaning process, appropriate cleaning methods and cleaning agents can remove surface dirt and impurities, making these micro-defects more clearly exposed, which facilitates subsequent inspection and repair.

[0003] Currently, when using cleaning equipment, the cleaning solution needs to be filtered to remove impurities and allow for recycling. However, current filtration equipment typically consists of several stacked filter layers, which cannot effectively remove impurities from the cleaning solution, hindering practical use and reducing the efficiency of subsequent recycling.

[0004] The above.

[0005] In view of the above, this application is hereby submitted. Utility Model Content

[0006] The purpose of this invention is to provide a fully automatic cleaning and drying device to solve the problems mentioned in the background art.

[0007] To solve the above-mentioned technical problems, this utility model provides a fully automatic cleaning and drying equipment, including a shell and an ultrasonic cleaning mechanism;

[0008] An ultrasonic cleaning mechanism is installed at the bottom inner part of the housing. The ultrasonic cleaning mechanism consists of a sedimentation tank and guide plates. The guide plates are installed in the lower inner part of the sedimentation tank. Two sets of guide plates are arranged opposite each other, forming a V-shaped sedimentation port structure between the guide plates. A slag discharge port is installed at the bottom left end of the sedimentation tank. The sedimentation tank is connected to a filter box through a pumping pipe. The connection point between the pumping pipe and the sedimentation tank is located on the side away from the slag discharge port. A filter screen is installed at the connection point between the pumping pipe and the sedimentation tank.

[0009] In one embodiment, a first filter plate is installed in the middle of the filter box, the first filter plate is located below the pumping pipe, and a debris removal block is placed on the top surface of the first filter plate. The debris removal block is a porous cotton wadding block structure.

[0010] In one embodiment, the bottom right side of the filter box is connected to the bottom left side of the circulation box via a connecting pipe. A second filter plate is installed in the lower inner part of the circulation box, and an installation pipe with an internal thread structure is installed on the top of the circulation box.

[0011] In one embodiment, a processing mechanism is installed inside the mounting tube. The processing mechanism consists of a positioning tube, a liquid extraction tube, a liquid discharge tube, a counterweight head, a liquid extraction port, and an airbag ring. The positioning tube is connected to the mounting tube through its external thread. The top of the positioning tube is connected to the liquid discharge tube, and the bottom of the positioning tube is provided with a liquid extraction tube. The bottom of the liquid extraction tube is connected to the counterweight head, and the outer circumferential surface of the counterweight head is provided with a liquid extraction port in a ring array.

[0012] In one embodiment, the liquid extraction tube is reserved to be of a length suitable for the sedimentation tank, and the liquid extraction tube is a flexible tube structure.

[0013] In one embodiment, the bottom of the counterweight head is provided with an air bladder ring.

[0014] In one embodiment, a water blowing mechanism and a drying mechanism are installed in the upper inner part of the housing, and a chain transmission mechanism is installed inside the housing.

[0015] Compared with the prior art, the beneficial effects of this utility model are:

[0016] 1. The sedimentation tank allows impurities to settle to the bottom. The V-shaped guide structure facilitates the sedimentation and collection of impurities in the cleaning solution. The addition of a slag discharge port at the bottom makes sewage discharge very convenient. The impurity removal block effectively adsorbs impurities inside the block. The cleaning solution filtered through the impurity removal block is discharged from the first filter plate, completing the fine impurity removal filtration operation and improving the filtration effect of the cleaning solution.

[0017] 2. The cleaning solution is introduced into the circulation tank through the connecting pipe, so that the impurities are below the second filter plate. When the filtered water is above the filter screen, the liquid extraction port is driven by the external power of the drain pipe to pump water. The liquid extraction port relies on the combination of the air bag ring and the gravity and buoyancy of the counterweight head to always be below the water surface, so as to reduce the impurity content in the extracted filtered water and thus improve the overall filtration effect. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the overall structure of a fully automatic cleaning and drying equipment.

[0019] Figure 2 A detailed view of the interior of a sedimentation tank in a fully automatic cleaning and drying device;

[0020] Figure 3 A detailed structural diagram of the filter box in a fully automatic cleaning and drying device;

[0021] Figure 4 This is a detailed diagram of the internal structure of the circulation tank in a fully automatic cleaning and drying device.

[0022] In the diagram: 1. Housing; 2. Ultrasonic cleaning mechanism; 21. Sedimentation tank; 22. Guide plate; 3. Pumping pipe; 4. Filter box; 41. Connecting pipe; 42. First filter plate; 43. Impurity removal block; 5. Circulation tank; 51. Second filter plate; 52. Installation pipe; 6. Processing mechanism; 61. Positioning pipe; 62. Liquid extraction pipe; 63. Liquid discharge pipe; 64. Counterweight head; 65. Liquid extraction port; 66. Airbag ring. Detailed Implementation

[0023] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0024] Please see Figure 1-3 This utility model provides a technical solution: including a housing 1 and an ultrasonic cleaning mechanism 2;

[0025] like Figures 1-2As shown, an ultrasonic cleaning mechanism 2 is installed at the bottom inner part of the housing 1. The ultrasonic cleaning mechanism 2 consists of a sedimentation tank 21 and a guide plate 22. The guide plate 22 is installed in the lower inner part of the sedimentation tank 21. Two sets of guide plates 22 are arranged opposite each other, forming a V-shaped sedimentation port structure between the guide plates 22. A slag discharge port is installed at the bottom left end of the sedimentation tank 21. The sedimentation tank 21 is connected to the filter box 4 through a pumping pipe 3. The connection point between the pumping pipe 3 and the sedimentation tank 21 is located on the side away from the slag discharge port. A filter screen is installed at the connection point between the pumping pipe 3 and the sedimentation tank 21. The sedimentation tank 21 allows impurities to settle to the bottom after settling. The V-shaped guide structure facilitates the sedimentation and collection of impurities in the cleaning solution. The addition of a slag discharge port at the bottom makes the sewage discharge operation very convenient.

[0026] Preferably, in one embodiment, such as Figures 2-3 The filter box 4 has a first filter plate 42 installed in the middle. The first filter plate 42 is located below the pump pipe 3. A removal block 43 is placed on the top surface of the first filter plate 42. The removal block 43 is a porous cotton block structure. By setting the removal block 43, impurities can be effectively adsorbed inside the removal block 43. The cleaning liquid filtered by the removal block 43 is discharged from the first filter plate 42, completing the fine removal filtration operation and improving the filtration effect of the cleaning liquid.

[0027] Preferably, in one embodiment, such as Figure 2 As shown, the bottom right side of the filter box 4 is connected to the bottom left side of the circulation box 5 via a connecting pipe 41. A second filter plate 51 is installed in the lower inner part of the circulation box 5, and an installation pipe 52 is installed on the top of the circulation box 5. The installation pipe 52 has an internal thread structure.

[0028] Preferably, in one embodiment, such as Figure 4 As shown, a processing mechanism 6 is installed inside the mounting tube 52. The processing mechanism 6 consists of a positioning tube 61, a liquid extraction tube 62, a liquid discharge tube 63, a counterweight head 64, a liquid extraction port 65, and an airbag ring 66. The positioning tube 61 is connected to the mounting tube 52 through its external thread. The top of the positioning tube 61 is connected to the liquid discharge tube 63, and the bottom of the positioning tube 61 is provided with a liquid extraction tube 62. The bottom of the liquid extraction tube 62 is connected to the counterweight head 64. The outer circumferential surface of the counterweight head 64 is provided with liquid extraction ports 65 in a ring array.

[0029] Preferably, in one embodiment, such as Figure 4 As shown, the liquid extraction tube 62 is reserved with a length adapted to the circulation tank 5, and the liquid extraction tube 62 is a flexible tube structure.

[0030] Preferably, in one embodiment, such as Figure 4As shown, the bottom of the counterweight head 64 is provided with an airbag ring 66. During operation, the cleaning fluid is introduced into the circulation tank 5 through the connecting pipe 41, so that the impurities are below the second filter plate 51. When the filtered water is above the second filter plate 51, the liquid extraction port 65 is driven by the external power of the drain pipe 63 to pump water. The liquid extraction port 65 is always below the water surface by the cooperation of the airbag ring 66 and the gravity and buoyancy of the counterweight head 64, so as to reduce the impurity content in the extracted filtered water and thus improve the overall filtration effect.

[0031] Preferably, in one embodiment, such as Figure 1 As shown, a water blowing mechanism 11 and a drying mechanism 12 are installed in the upper part of the housing 1. A chain transmission mechanism 13 is installed inside the housing 1. The chain transmission mechanism 13 sequentially passes through the ultrasonic cleaning mechanism 2, the water blowing mechanism 11, and the drying mechanism 12 to complete the cleaning and drying.

[0032] Working principle:

[0033] The sedimentation tank 21 allows impurities to settle to the bottom. The V-shaped guide structure facilitates the sedimentation and collection of impurities in the cleaning solution. The addition of a slag discharge port at the bottom makes wastewater discharge very convenient. The impurity removal block 43 effectively adsorbs impurities inside. The cleaning solution filtered by the impurity removal block 43 is discharged from the first filter plate 42, completing the fine impurity removal filtration operation and improving the filtration effect of the cleaning solution. The cleaning solution is introduced into the circulation tank 5 through the connecting pipe 41, so that the impurities are below the second filter plate 51. When the filtered water is above the second filter plate 51, the suction port 65 is driven by the external power of the discharge pipe 63 to pump water. The suction port 65 is always below the water surface by the combination of gravity and buoyancy of the air bag ring 66 and the counterweight head 64, which reduces the impurity content in the filtered water and thus improves the overall filtration effect.

Claims

1. A full-automatic cleaning and drying device, comprising a shell (1) and an ultrasonic cleaning mechanism (2), characterized in that: an ultrasonic cleaning mechanism (2) is installed on the inner bottom of the shell (1), the ultrasonic cleaning mechanism (2) comprises a sediment tank (21) and a guide plate (22), the inner lower part of the sediment tank (21) is provided with the guide plate (22), the guide plate (22) is oppositely provided with two groups, a V-shaped sediment port structure is formed between the guide plates (22), a slag discharge port is installed on the bottom left end of the sediment tank (21), the sediment tank (21) is communicated with a filter tank (4) through a pumping pipe (3), the connection point of the pumping pipe (3) and the sediment tank (21) is located on the side away from the slag discharge port, and a filter screen is installed at the connection between the pumping pipe (3) and the sediment tank (21).

2. The fully automatic washing and drying apparatus as claimed in claim 1, wherein: A first filter plate (42) is installed on the inner middle part of the filter tank (4), the first filter plate (42) is below the pumping pipe (3), and a deimpurity block (43) is placed on the top surface of the first filter plate (42), the deimpurity block (43) is a porous cotton block structure as a whole.

3. The fully automatic washing and drying apparatus of claim 2, wherein: The right bottom of the filter tank (4) is communicated with the left bottom of a circulating tank (5) through a communication pipe (41), a second filter plate (51) is installed on the inner lower part of the circulating tank (5), and a mounting pipe (52) is installed on the top of the circulating tank (5), the mounting pipe (52) is an internal thread structure.

4. The fully automatic washing and drying apparatus of claim 3, wherein: A treatment mechanism (6) is installed in the mounting pipe (52), the treatment mechanism (6) comprises a positioning pipe (61), a liquid suction pipe (62), a liquid discharge pipe (63), a counterweight head (64), a liquid suction port (65) and an air bag ring (66), the positioning pipe (61) is connected with the mounting pipe (52) through external threads, the top of the positioning pipe (61) is connected with the liquid discharge pipe (63), the bottom of the positioning pipe (61) is provided with the liquid suction pipe (62), the bottom of the liquid suction pipe (62) is connected with the counterweight head (64), and the outer circumferential surface of the counterweight head (64) is annularly arranged with the liquid suction port (65).

5. The fully automatic washing and drying apparatus of claim 4, wherein: The length of the liquid suction pipe (62) is reserved to be suitable for the sediment tank (21), and the liquid suction pipe (62) is a hose structure.

6. The fully automatic washing and drying apparatus of claim 4, wherein: The bottom of the counterweight head (64) is provided with the air bag ring (66).

7. The fully automatic washing and drying apparatus of claim 1, wherein: A water blowing mechanism and a drying mechanism are installed on the inner upper part of the shell (1), and a chain transmission mechanism is installed in the shell (1).