Antistatic anti-radiation fabric cleaning agent recovery device

By designing a water filtration combination box and a sedimentation box, combined with multi-layer filter screens and heating condensation treatment, the problem of removing fine particulate impurities in the cleaning agent water is solved, achieving high efficiency, purity and purification effect of the cleaning agent.

CN224132873UActive Publication Date: 2026-04-17ZHEJIANG FENGHE TEXTILE 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
2025-04-14
Publication Date
2026-04-17

AI Technical Summary

Technical Problem

Existing cleaning agent recovery devices are unable to effectively remove fine particulate impurities from the cleaning agent water, affecting the purity of the recovered cleaning agent.

Method used

The system employs a combined water filtration box structure, including a conical filter screen and a filter yarn layer, combined with a water pump and a sedimentation tank. Through multi-layer filtration and static sedimentation, the cleaning agent water is further treated using a heating tank and a condensation tank, thereby improving purity and purification efficiency.

Benefits of technology

It significantly improves the purity of the cleaning agent water and the efficiency of recycling and processing, enhancing the purity and purification effect of the cleaning agent.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224132873U_ABST
    Figure CN224132873U_ABST
Patent Text Reader

Abstract

The utility model discloses an antistatic anti-radiation fabric cleaning agent recovery device which comprises a water filtering combination box, the water filtering combination box is composed of a box base, a first conical filter screen, a filter yarn layer, a first filter screen cylinder, a second filter screen cylinder and a box cover, and a sediment box is arranged on the right side of the water filtering combination box. A first water conveying assembly is installed between the bottom side of the water filtering combined box and the settling box, a heating barrel is arranged on the right side of the settling box, a second water conveying assembly is installed between the bottom side of the settling box and the heating barrel, a condensing box is arranged on the right side of the settling box, and a gas conveying assembly is installed between the settling box and the condensing box. Compared with an existing cleaning agent recovery device, the cleaning agent recovery device has the advantages that the purity of a filtered cleaning agent water body and the working efficiency of cleaning agent water body recovery processing can be improved through the design, and the overall practicability is enhanced.
Need to check novelty before this filing date? Find Prior Art

Description

Technical Field

[0001] This utility model relates to the field of cleaning agent recycling technology, specifically a cleaning agent recycling device for antistatic and radiation-proof fabrics. Background Technology

[0002] Antistatic and anti-radiation fabric is a special textile that combines antistatic and electromagnetic shielding functions. It is widely used in many fields to provide protection and comfort. After production, the fabric needs to be cleaned to ensure its cleanliness for easy processing later.

[0003] Existing cleaning agent recovery devices typically use filters to intercept and filter solid impurities in the water when recovering a mixture of cleaning agent and water, thereby reducing the impurities in the cleaning agent water and purifying it. However, the water often contains a large number of fine particulate impurities that cannot be intercepted and removed by the filters, resulting in impurities still remaining in the purified and concentrated cleaning agent.

[0004] Therefore, it is necessary to design an antistatic and radiation-resistant fabric cleaning agent recovery device to improve the above problems. Utility Model Content

[0005] To address the shortcomings of existing technologies, this utility model designs an antistatic and radiation-proof fabric cleaning agent recovery device. This cleaning agent recovery device aims to solve the technical problem that existing technologies are not convenient for intercepting and removing fine particulate impurities contained in the cleaning agent water, thus affecting the purity of the recovered cleaning agent.

[0006] To achieve the above objectives, this utility model provides the following technical solution:

[0007] A device for recovering cleaning agents from antistatic and radiation-proof fabrics includes a water filtration assembly box. The water filtration assembly box consists of a box base, a conical filter screen, a filter yarn layer, a filter screen cylinder, a filter screen cylinder, and a box cover. A sedimentation tank is located on the right side of the water filtration assembly box. A water supply component is installed between the bottom of the water filtration assembly box and the sedimentation tank. A heating tank is located on the right side of the sedimentation tank. A water supply component is installed between the bottom of the sedimentation tank and the heating tank. A condensation tank is located on the right side of the sedimentation tank. An air supply component is installed between the sedimentation tank and the condensation tank.

[0008] Preferably, a conical filter screen is fixedly connected to the top of the base, a filter yarn layer is laid on the top of the conical filter screen, a filter cylinder is inserted into the top of the base, a conical filter screen is fixedly connected to the bottom of the filter cylinder and above the filter yarn layer, a filter cylinder is inserted into the top of the filter cylinder, a conical filter screen is fixedly connected to the bottom of the filter cylinder, a box cover is threaded to the top of the filter cylinder, a water injection pipe is installed on the top of the box cover, and handles are fixedly connected to both sides of the box cover and the filter cylinder.

[0009] Preferably, the water supply assembly consists of a water pump and a water supply pipe, the bottom of the water filter assembly box is fixedly connected to the water pump, and a water supply pipe is installed between the water pump and the sedimentation tank.

[0010] Preferably, the second water conveying component has the same structure as the first water conveying component, and a first drain pipe is installed on the bottom side of the sedimentation tank, with a first control valve installed inside the first drain pipe.

[0011] Preferably, the top of the heating tank is threaded with a tank cover, a motor is installed on the top of the tank cover, a stirring rod is installed at the bottom of the motor and below the tank cover, a second drain pipe is installed on the bottom side of the heating tank, and a second control valve is installed inside the second drain pipe.

[0012] Preferably, the gas delivery assembly consists of a vacuum pump and a gas delivery pipe, with the vacuum pump installed on the top of the sedimentation tank and the gas delivery pipe installed between the vacuum pump and the tank lid.

[0013] Preferably, a condenser tube is installed inside the condenser box, a circulating cooling device is installed on the outside of the condenser box at a position corresponding to the condenser tube, a drain pipe is installed on the bottom side of the condenser box, and a control valve is installed inside the drain pipe.

[0014] Compared with the prior art, the beneficial effects of this utility model are:

[0015] 1. The cleaning agent water is introduced into the water filter combination box through the water injection pipe. The second filter cylinder uses the third conical filter to intercept and filter the solid impurities contained in the cleaning agent water. The filter structure, which is composed of the second conical filter, the filter yarn layer and the first conical filter, uses the filter yarn layer to intercept and filter the particulate impurities contained in the cleaning agent water, thereby improving the purity of the cleaning agent water. The first water delivery component uses a water pump to improve the filtration efficiency of the filter yarn layer.

[0016] 2. The filtered cleaning agent water enters the sedimentation tank for static sedimentation, allowing the cleaning agent to separate into layers with the water. This facilitates the water conveying component two to transport the bottom layer of cleaning agent water with the highest concentration after static sedimentation into the heating tank for purification, thereby improving the efficiency of cleaning agent recovery and purification. Attached Figure Description

[0017] Figure 1 A schematic diagram of the overall three-dimensional structure of the antistatic and radiation-proof fabric cleaning agent recovery device;

[0018] Figure 2 A schematic diagram of the internal structure of a cleaning agent recovery device for antistatic and radiation-proof fabrics.

[0019] Figure 3 for Figure 2 A magnified structural diagram of region A in the middle.

[0020] In the diagram: 1. Water filtration assembly box; 101. Box base; 102. Conical filter screen one; 103. Filter yarn layer; 104. Filter screen cylinder one; 1041. Conical filter screen two; 105. Filter screen cylinder two; 1051. Conical filter screen three; 106. Box cover; 1061. Water injection pipe; 107. Water supply assembly one; 1071. Water pump; 1072. Water supply pipe; 2. Sedimentation tank; 201. Water supply assembly two; 202. Drainage pipe one; 3. Heating tank; 301. Tank cover; 3011. Motor; 302. Stirring rod; 303. Drainage pipe two; 4. Condensation tank; 401. Gas supply assembly; 4011. Gas pump; 4012. Gas supply pipe; 402. Condensation pipe; 4021. Circulating cooling device; 403. Drainage pipe three. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. All other embodiments obtained by those skilled in the art based on the embodiments of the present utility model without creative effort are within the protection scope of the present utility model.

[0022] Example:

[0023] This utility model provides a device for recovering cleaning agents for antistatic and radiation-proof fabrics. This device aims to solve the technical problem that it is not easy to intercept and remove fine particulate impurities contained in the cleaning agent water under the existing technology, thus affecting the purity of the recovered cleaning agent.

[0024] Please see Figures 1-3This embodiment provides a device for recovering cleaning agents from antistatic and anti-radiation fabrics, including a water filtration assembly box 1. The water filtration assembly box 1 consists of a base 101, a conical filter screen 102, a filter yarn layer 103, a filter cylinder 104, a filter cylinder 105, and a cover 106. The top of the base 101 is fixedly connected to the conical filter screen 102, and the top of the conical filter screen 102 is covered with the filter yarn layer 103, which provides support for the bottom of the filter yarn layer 103. The top of the base 101 is inserted into the filter cylinder 104, and the bottom of the filter cylinder 104, above the filter yarn layer 103, is fixedly connected to the conical filter screen 1041, which limits and fixes the filter yarn layer 103. The top of the filter cylinder 104 is inserted into the filter cylinder 105. 5. A conical filter screen three 1051 is fixedly connected to the bottom of filter screen cylinder two 105, and a box cover 106 is threadedly connected to the top of filter screen cylinder two 105. A water injection pipe 1061 is installed on the top of the box cover 106. The cleaning agent water is introduced into the water filter combination box 1 through the water injection pipe 1061. Filter screen cylinder two 105 uses the conical filter screen three 1051 to intercept and filter the solid impurities contained in the cleaning agent water. The filter structure, which is composed of conical filter screen two 1041, filter yarn layer 103 and conical filter screen one 102, uses the filter yarn layer 103 to intercept and filter the particulate impurities contained in the cleaning agent water, thereby improving the purity of the cleaning agent water. Handles one are fixedly connected to both sides of the box cover 106 and filter screen cylinder one 104, which facilitates the disassembly and cleaning of the intercepted impurities in the water filter combination box 1 in the later stage.

[0025] In this embodiment, please refer to Figure 1 and Figure 2 A water conveying assembly 107 is installed between the bottom of the water filter assembly box 1 and the sedimentation tank 2. The water conveying assembly 107 consists of a water pump 1071 and a water conveying pipe 1072. The bottom of the water filter assembly box 1 is fixedly connected to the water pump 1071. A water conveying pipe 1072 is installed between the water pump 1071 and the sedimentation tank 2. The water conveying assembly 107 uses the water pump 1071 to transport the filtered cleaning agent water to the sedimentation tank 2 through the water conveying pipe 1072.

[0026] In this embodiment, please refer to Figure 1 and Figure 2A sedimentation tank 2 is located on the right side of the water filtration combination box 1. A water conveying component 201 is installed between the bottom of the sedimentation tank 2 and the heating tank 3. The water conveying component 201 has the same structure as the water conveying component 107. The sedimentation tank 2 allows the cleaning agent water to settle and separate into layers with the water. This facilitates the water conveying component 201 to transport the bottom layer of cleaning agent water with the highest concentration after settling into the heating tank 3 for purification, thereby improving the efficiency of cleaning agent recovery and purification. A drain pipe 202 is installed on the bottom of the sedimentation tank 2. A control valve is installed inside the drain pipe 202. The control valve controls the opening of the drain pipe 202 to facilitate the discharge of the remaining water with low cleaning agent content in the sedimentation tank 2 for treatment.

[0027] In this embodiment, please refer to Figure 1 and Figure 2 A heating tank 3 is located on the right side of the sedimentation tank 2. A tank cover 301 is threadedly connected to the top of the heating tank 3. A motor 3011 is installed on the top of the tank cover 301. A stirring rod 302 is installed at the bottom of the motor 3011 and below the tank cover 301. The heating tank 3 heats and concentrates the cleaning agent water. The motor 3011 drives the stirring rod 302 to stir the heated and concentrated cleaning agent water, so that it is heated evenly. A second drain pipe 303 is installed on the bottom side of the heating tank 3. A second control valve is installed inside the second drain pipe 303. The second control valve controls the opening of the second drain pipe 303 to facilitate the output of the concentrated and purified cleaning agent.

[0028] In this embodiment, please refer to Figure 1 and Figure 2 A condenser 4 is located on the right side of the sedimentation tank 2. A gas supply assembly 401 is installed between the sedimentation tank 2 and the condenser 4. The gas supply assembly 401 consists of a vacuum pump 4011 and a gas supply pipe 4012. The vacuum pump 4011 is installed on the top of the sedimentation tank 2. A gas supply pipe 4012 is installed between the vacuum pump 4011 and the tank cover 301. The vacuum pump 4011 transports the water vapor generated when the heating tank 3 heats and concentrates the cleaning agent water to the condenser 4 through the gas supply pipe 4012. The interior of the condenser 4... A condenser tube 402 is installed. A circulating cooling device 4021 is installed on the outside of the condenser box 4 and at a position corresponding to the condenser tube 402. The circulating cooling device 4021 circulates and cools the condenser tube 402, so that water vapor is converted into liquid form after contacting the condenser tube 402 for storage. A drain pipe 3 403 is installed on the bottom side of the condenser box 4. A control valve 3 is installed inside the drain pipe 3 403. The control valve 3 controls the opening of the drain pipe 3 403 to facilitate the discharge of liquefied water vapor later.

[0029] In addition, it should be noted that the water pump 1071, control valve, heating tank 3, motor 3011, air pump 4011, condenser 402 and circulating cooling device 4021 are all existing technologies, and their internal working principles and operation procedures will not be described in detail here.

[0030] The working process of this utility model is as follows: First, the cleaning agent water is introduced into the filter combination box 1 through the water injection pipe 1061. The filter cylinder 2 105 uses the conical filter 3 1051 to intercept and filter the solid impurities contained in the cleaning agent water. The filter structure, which combines the conical filter 2 1041, the filter yarn layer 103, and the conical filter 1 102, uses the filter yarn layer 103 to intercept and filter the particulate impurities contained in the cleaning agent water, thereby improving the purity of the cleaning agent water. The water delivery component 107 uses the water pump 1071 to transport the filtered cleaning agent water to the sedimentation tank 2 through the water delivery pipe 1072. The sedimentation tank 2 allows the cleaning agent water to settle and separate into layers with the water. The water delivery component 2 201 transports the bottom layer of cleaning agent water with the highest concentration after settling into the heating tank 3 for purification, improving the efficiency of cleaning agent recovery and purification. The heating tank 3... The cleaning agent water is heated and concentrated. The motor 3011 drives the stirring rod 302 to stir the cleaning agent water during heating and concentration, so that it is heated evenly. The vacuum pump 4011 delivers the water vapor generated by the heating tank 3 during the heating and concentration of the cleaning agent water to the condenser 4 through the air pipe 4012. The circulating cooling device 4021 circulates and cools the condenser 402, so that the water vapor is converted into a liquid form after contact with the condenser 402 for storage. A drain pipe 3 403 is installed on the bottom side of the condenser 4. A control valve 3 is installed inside the drain pipe 3 403. The control valve 3 controls the opening of the drain pipe 3 403 to facilitate the discharge of the liquefied water vapor later. The control valve 2 controls the opening of the drain pipe 2 303 to facilitate the output of the concentrated and purified cleaning agent in the heating tank 3. The control valve 1 controls the opening of the drain pipe 202 to facilitate the discharge of the remaining water with low cleaning agent content in the sedimentation tank 2 for treatment.

[0031] The entire operation process is simple and convenient. Compared with existing cleaning agent recovery devices, this utility model can improve the purity of the filtered cleaning agent water and the efficiency of cleaning agent water recovery and processing through design, thereby enhancing its overall practicality.

[0032] The above embodiments are preferred implementations of this utility model. In addition, this utility model can also be implemented in other ways. Any obvious substitutions without departing from the concept of this technical solution are within the protection scope of this utility model.

Claims

1. An antistatic radiation-proof fabric cleaning agent recovery device comprising a water filtering combination box (1), characterized in that: The water filtration combination box (1) is composed of a box base (101), a conical filter screen (102), a filter yarn layer (103), a filter screen cylinder (104), a filter screen cylinder (105), and a box cover (106). A sedimentation box (2) is provided on the right side of the water filtration combination box (1). A water conveying component (107) is installed between the bottom side of the water filtration combination box (1) and the sedimentation box (2). A heating tank (3) is provided on the right side of the sedimentation box (2). A water conveying component (201) is installed between the bottom side of the sedimentation box (2) and the heating tank (3). A condensation box (4) is provided on the right side of the sedimentation box (2). An air conveying component (401) is installed between the sedimentation box (2) and the condensation box (4).

2. The anti-static radiation-proof fabric cleaning agent recycling device according to claim 1, characterized in that: A conical filter screen (102) is fixedly connected to the top of the base (101). A filter yarn layer (103) is laid on the top of the conical filter screen (102). A filter cylinder (104) is inserted into the top of the base (101). A conical filter screen (1041) is fixedly connected to the bottom of the filter cylinder (104) and above the filter yarn layer (103). A filter cylinder (105) is inserted into the top of the filter cylinder (104). A conical filter screen (1051) is fixedly connected to the bottom of the filter cylinder (105). A box cover (106) is threadedly connected to the top of the box cover (106). A water injection pipe (1061) is installed on the top of the box cover (106). A handle is fixedly connected to both sides of the box cover (106) and the filter cylinder (104).

3. The anti-static radiation-proof fabric cleaning agent recycling device according to claim 1, characterized in that: The water supply assembly (107) consists of a water pump (1071) and a water supply pipe (1072). The bottom of the water filter assembly box (1) is fixedly connected to the water pump (1071), and the water supply pipe (1072) is installed between the water pump (1071) and the sedimentation tank (2).

4. The anti-static radiation-proof fabric cleaning agent recycling device according to claim 3, characterized in that: The second water conveying component (201) has the same structure as the first water conveying component (107). The bottom side of the sedimentation tank (2) is equipped with a first drain pipe (202), and the inside of the first drain pipe (202) is equipped with a first control valve.

5. The anti-static radiation-proof fabric cleaning agent recycling device according to claim 1, characterized in that: The top of the heating tank (3) is threaded with a lid (301), a motor (3011) is installed on the top of the lid (301), a stirring rod (302) is installed at the bottom of the motor (3011) and below the lid (301), a drain pipe (303) is installed on the bottom side of the heating tank (3), and a control valve is installed inside the drain pipe (303).

6. The antistatic and radiation-resistant fabric cleaning agent recovery device according to claim 5, characterized in that: The gas delivery assembly (401) consists of a vacuum pump (4011) and a gas delivery pipe (4012). The vacuum pump (4011) is installed on the top of the sedimentation tank (2), and the gas delivery pipe (4012) is installed between the vacuum pump (4011) and the lid (301).

7. The anti-static radiation-proof fabric cleaning agent recycling device according to claim 1, characterized in that: The condenser (4) is equipped with a condenser pipe (402) inside. A circulating cooling device (4021) is installed on the outside of the condenser (4) at a position corresponding to the condenser pipe (402). A drain pipe (403) is installed on the bottom side of the condenser (4). A control valve is installed inside the drain pipe (403).