An environmental protection soap production leftover material recycling device

By using a motor-driven cleaning brush and a fan, soap scraps are automatically collected, solving the problems of complex operation and safety hazards in existing technologies. This achieves efficient and safe scrap recycling, improving production efficiency and finished product quality.

CN224542432UActive Publication Date: 2026-07-24ANHUI CAIJING TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ANHUI CAIJING TECH CO LTD
Filing Date
2025-04-17
Publication Date
2026-07-24

AI Technical Summary

Technical Problem

Existing soap production scrap recycling equipment requires manual collection by operators, which is complicated, inefficient, and poses safety hazards.

Method used

An environmentally friendly soap production scrap recycling device was designed. It uses a motor-driven cleaning brush and a blower to automatically collect soap scraps. The non-stick cloth tube and blower enable contactless recycling. The perforated scraper and second cleaning brush clean up dead corners to ensure the stability and thoroughness of recycling.

Benefits of technology

It improves production efficiency, ensures the stability of scrap collection quality, reduces operator contact with scrap, avoids safety hazards, and improves operator safety and finished product quality.

✦ Generated by Eureka AI based on patent content.

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  • Figure CN224542432U_ABST
    Figure CN224542432U_ABST
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Abstract

The utility model provides a kind of environmental protection type soap production offcut recovery device, belong to soap production technical field, it solves the technical problem such as existing recovery device needing operator manual recovery soap scrap, operation is complex, efficiency is low etc..The environmental protection type soap production offcut recovery device, including soap recovery furnace body, soap recovery furnace body top is fixed with cloth-drying tube, cloth-drying tube is fixed with light steel plate in the end far from soap recovery furnace body, soap recovery furnace body adjacent two sides are all fixed with slide rail, first motor is fixed on slide rail, first motor output end is fixed with lead screw, and sliding block is threadedly connected on lead screw, sliding block top is fixed with mounting plate, and mounting plate is fixed with electric telescopic rod, electric telescopic rod top is fixed with outer frame, and second motor is fixed in outer frame.The utility model has the advantages that operator can recover and collect soap offcut without directly contacting workbench.
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Description

Technical Field

[0001] This utility model belongs to the field of soap production technology, and relates to a scrap recycling device, particularly an environmentally friendly soap production scrap recycling device. Background Technology

[0002] Soap production generates scraps in multiple stages. After being pressed into large blocks or strips, soap needs to be cut into standard sizes (such as blocks or sheets). During cutting, irregular fragments or chips are produced at the edges or ends. Scraps are also generated during molding; when pressing soap using molds, excess soap solution may overflow from the mold edges, forming excess scraps. These scraps still contain soap base, oils, fragrances, and other effective ingredients, and discarding them directly would be a waste of raw materials. Recycling these scraps allows them to be remelted and processed into new soap, reducing raw material procurement costs. Directly discarding soap scraps can pollute the environment (especially industrial soaps containing chemical components). Recycled scraps, mixed with new raw materials, can be reprocessed using standardized processes, avoiding fluctuations in finished product quality due to differences in raw materials.

[0003] A search revealed a Chinese patent document disclosing a device for recycling soap scraps from soap production [Application No.: CN201920851915.1; Publication No.: CN210163419U]. This recycling device, equipped with a flywheel, can accelerate the feeding process and crush and beat the soap scraps; the auxiliary feeding roller ensures uniform heating of the hot melt while also assisting in the feeding process.

[0004] Although the scrap recycling device disclosed in the patent accelerates the feeding process and crushes and beats the soap, the recycling device requires operators to manually collect the soap scraps, which is complicated to operate and inefficient. Utility Model Content

[0005] The purpose of this invention is to address the aforementioned problems in existing technologies by proposing an environmentally friendly soap production scrap recycling device. The technical problem this invention aims to solve is: how to enable operators to recycle and collect soap scraps without directly contacting the workbench.

[0006] The objective of this utility model can be achieved through the following technical solutions:

[0007] An environmentally friendly soap production scrap recycling device includes a soap recycling furnace body. A non-stick cloth tube is fixed to the top of the soap recycling furnace body. A light steel plate is fixed to the end of the non-stick cloth tube away from the soap recycling furnace body. Slide rails are fixed on both sides of the soap recycling furnace body. A first motor is fixed on the slide rails. A lead screw is fixed to the output end of the first motor. A slider is threaded onto the lead screw. A mounting plate is fixed to the top of the slider. An electric telescopic rod is fixed to the mounting plate. An outer frame is fixed to the top of the electric telescopic rod. A second motor is fixed inside the outer frame. A first cleaning brush is fixed to the output end of the second motor.

[0008] The working principle of this utility model is as follows: A caster wheel is installed below the soap recycling furnace body. The operator moves the soap recycling furnace body to the table where the soap production scraps are located. The first motor is activated, driving the lead screw to rotate. The slider, limited by the slide rail, cannot follow the lead screw's rotation. A threaded transmission occurs between the slider and the lead screw, enabling linear movement of the slider within the direction of the lead screw. The mounting plate follows the slider's movement, and the electric telescopic rod follows the mounting plate's movement. The electric telescopic rod extends or retracts, and the outer frame follows the electric telescopic rod's movement. The second motor follows the outer frame's movement, and the first cleaning brush follows the second motor's movement until the first cleaning brush reaches the location of the scraps. The second motor then... Two second motors drive two first cleaning brushes to rotate counterclockwise and clockwise respectively, sweeping soap scraps onto a light steel plate and into the inlet of the soap recycling furnace body through a non-stick cloth tube. The non-stick cloth tube is made of recycled polyester, an environmentally friendly material, which improves the environmental friendliness of the production process. The above process replaces the manual collection of soap scraps from the recycling workbench surface by the linear and rotary motion of the two first cleaning brushes, improving production efficiency, ensuring the stability of scrap collection quality, reducing contact between soap scraps and operators, and preventing operators from coming into contact with sharp soap production and processing equipment or chemicals, thus improving the safety of operators' work.

[0009] An abutment plate is fixed on the outer frame, and the abutment plate is fixed below the light steel plate. The first cleaning brush contacts the upper surface of the light steel plate.

[0010] With the above structure, as the outer frame moves with the electric telescopic rod, the contact plate moves with the outer frame, the light steel plate moves with the outer frame, and the top of the non-stick cloth tube moves with the light steel plate, so that the vertical distance between the bottom of the first cleaning brush and the top of the light steel plate remains consistent. The soap scraps collected by the first cleaning brush can be caught by the light steel plate, improving the stability of scrap recycling and collection.

[0011] The mounting plate is fixed with baffles at both ends of the slide rail in the same straight direction, and the bottom of the baffles contacts the top of the slide rail.

[0012] With the above structure, when the mounting plate moves with the slider, the baffle moves with the mounting plate. The baffle is always in contact with the top of the slide rail, which avoids the first cleaning brush sweeping soap scraps into the slide rail and causing parts to jam when the light steel plate and the soap recycling furnace body are at the same level, thus improving the service life of the equipment.

[0013] A fixed plate is fixed to the top of the first cleaning brush, and a movable frame is inserted through the fixed plate. A perforated scraper is fixed at the bottom of the inner wall of the movable frame. The perforated scraper is fitted onto the bristles of the first cleaning brush, and a spring is fixed between the fixed plate and the movable frame.

[0014] With the above structure, after the first cleaning brush finishes its work, the second motor drives the first cleaning brush to rotate above the inlet of the soap recycling furnace. The operator presses down on the movable frame, which compresses the spring during its downward movement. The perforated scraper moves down with the movable frame and scrapes across the bristles of the first cleaning brush, scraping the soap scraps stuck in the bristles into the soap recycling furnace. This operation increases the amount of soap scraps recovered, prevents soap scraps from getting stuck in the bristles during the cleaning process, and also provides a preliminary cleaning effect on the first cleaning brush. This prevents soap scraps from causing confusion in the soap composition during subsequent recycling steps, thus improving the quality of the finished soap product.

[0015] A blower is fixed to the top of the light steel plate, and a TPE flexible tee is fixed to the output end of the blower. A mesh is fixed to the through hole of the TPE flexible tee near the blower. A butterfly valve is connected to the flange of the through hole at the bottom of the TPE flexible tee. A corrugated air duct is interference-fitted to the through hole at the top of the TPE flexible tee. A feed cylinder is fixed to the end of the corrugated air duct away from the TPE flexible tee.

[0016] Using the above structure, the operator holds the feed cylinder and aligns its inlet with the hard-to-reach corners on the soap production workbench that are difficult to clean with the first cleaning brush. As the feed cylinder moves, the corrugated duct deforms, activating the exhaust fan. The exhaust fan sequentially draws the soap scraps through the TPE flexible tee and the corrugated duct, creating suction. During the exhaust fan's operation, the butterfly valve remains closed, drawing the soap scraps into the TPE flexible tee. A screen prevents soap scraps from entering the exhaust fan's input. After cleaning, the exhaust fan is turned off, and the butterfly valve is opened, allowing the scraps on the screen and valve core to pass through the butterfly valve. After the soap scraps on the workbench are collected and recycled inside the soap recycling furnace, the furnace is used to process them for reuse, which is environmentally friendly. During this process, the mesh restricts the movement of the soap scraps and protects the exhaust fan. The butterfly valve is closed during the operation of the exhaust fan to ensure consistent airflow and prevent suction from affecting the inlet of the soap recycling furnace. This optimizes the existing soap recycling method and prevents operators from directly contacting the soap production workbench, thus improving the safety of operators.

[0017] A second cleaning brush is fixed at the top of the feed cylinder.

[0018] With the above structure, during the process of the feed cylinder sucking up the soap scraps on the workbench, the second cleaning brush can reach some dead corners of the equipment to brush out and suck up the soap scraps. The second cleaning brush, together with the suction of the exhaust fan, makes it easy to clean the dead corners that the first cleaning brush cannot reach, so that the soap scraps are collected more thoroughly, reducing the amount of soap scraps left in the corners of the equipment, preventing residual soap scraps from being mixed into the production of soap with other ingredients, and improving the quality of the finished soap.

[0019] Compared with existing technologies, this environmentally friendly soap production scrap recycling device has the following advantages:

[0020] 1. By using two primary cleaning brushes in a straight line and rotational motion, soap scraps on the workbench surface can be collected manually instead of by the operator, thus improving production efficiency, ensuring the stability of scrap collection quality, reducing contact between soap scraps and operators, avoiding contact with sharp soap production and processing equipment or chemicals, and improving the safety of operators' work.

[0021] 2. By setting a movable perforated scraper, the perforated scraper moves down with the movable frame and scrapes over the bristles of the first cleaning brush, scraping the soap scrap stuck in the bristles into the soap recycling furnace body. The above operation increases the amount of soap scrap recycled, avoids soap scrap getting stuck in the bristles during the cleaning process, and at the same time achieves the effect of preliminary cleaning of the first cleaning brush, preventing soap scrap from causing the soap composition to become disordered in the subsequent recycling steps, and improving the quality of the finished soap product.

[0022] 3. The second cleaning brush reaches into some hard-to-reach corners of the equipment, brushes out soap scraps and sucks them in. The second cleaning brush, together with the suction of the exhaust fan, makes it easy to clean up the soap scraps in the hard-to-reach corners that the first cleaning brush cannot reach. This makes the collection of soap scraps more thorough, reduces the amount of soap scraps left in the corners of the equipment, and prevents residual soap scraps from being mixed into the production of soap with other ingredients, thereby improving the quality of the finished soap. Attached Figure Description

[0023] Figure 1 This is a schematic diagram of the structure of this utility model.

[0024] Figure 2 yes Figure 1 Enlarged view of the structure at point A in the middle.

[0025] Figure 3 This is a structural schematic diagram of the electric telescopic rod part in this utility model.

[0026] Figure 4 yes Figure 3 Enlarged view of the structure at point B in the middle.

[0027] Figure 5 This is a structural schematic diagram of the exhaust fan part in this utility model.

[0028] Figure 6 This is a schematic diagram of the structure of the partition mesh part of this utility model.

[0029] In the diagram, 1. Soap recycling furnace body; 2. Slide rail; 3. First motor; 4. Lead screw; 5. Slider; 6. Mounting plate; 7. Baffle; 8. Electric telescopic rod; 9. Outer frame; 10. Second motor; 11. First cleaning brush; 12. Fixed plate; 13. Movable frame; 14. Perforated scraper; 15. Spring; 16. Contact plate; 17. Non-stick cloth tube; 18. Light steel plate; 19. Exhaust fan; 20. TPE flexible tee; 21. Butterfly valve; 22. Partition screen; 23. Corrugated duct; 24. Feed cylinder; 25. Second cleaning brush. Detailed Implementation

[0030] The following are specific embodiments of the present invention, which are described in conjunction with the accompanying drawings. However, the present invention is not limited to these embodiments.

[0031] like Figures 1-6 As shown, this environmentally friendly soap production scrap recycling device includes a soap recycling furnace body 1. A non-stick cloth tube 17 is fixed to the top of the soap recycling furnace body 1. A light steel plate 18 is fixed to the end of the non-stick cloth tube 17 away from the soap recycling furnace body 1. Slide rails 2 are fixed on both adjacent sides of the soap recycling furnace body 1. A first motor 3 is fixed on the slide rails 2. A lead screw 4 is fixed to the output end of the first motor 3. A slider 5 is threaded onto the lead screw 4. A mounting plate 6 is fixed to the top of the slider 5. An electric telescopic rod 8 is fixed to the mounting plate 6. An outer frame 9 is fixed to the top of the electric telescopic rod 8. A second motor 10 is fixed inside the outer frame 9. A first cleaning brush 11 is fixed to the output end of the second motor 10.

[0032] In this embodiment, the soap recycling furnace body 1, the first motor 3, the electric telescopic rod 8, and the second motor 10 are all existing technologies. A caster wheel is installed below the soap recycling furnace body 1. The operator moves the soap recycling furnace body 1 to the table where soap production scraps are located, and then operates the first motor 3. The first motor 3 drives the lead screw 4 to rotate. The slider 5 is limited in the slide rail 2 and cannot follow the lead screw 4. A threaded transmission is generated between the slider 5 and the lead screw 4, enabling the slider 5 to move linearly within the direction of the lead screw 4. The mounting plate 6 moves with the slider, and the electric telescopic rod 8 moves with the mounting plate 6. The operation of the electric telescopic rod 8 extends or shortens, the outer frame 9 moves with the electric telescopic rod 8, the second motor 10 moves with the outer frame 9, and the first cleaning brush 11 moves with the second motor 10 until the first... The cleaning brush 11 moves to the location of the soap scraps, and the two second motors 10 drive the two first cleaning brushes 11 to rotate counterclockwise and clockwise respectively, sweeping the soap scraps onto the light steel plate 18 and into the inlet of the soap recycling furnace body 1 through the non-stick cloth tube 17. The non-stick cloth tube 17 is made of recycled polyester, which is an environmentally friendly material, improving the environmental friendliness of the production process. The above process replaces the manual collection of soap scraps from the surface of the recycling workbench by the linear and rotary motion of the two first cleaning brushes 11, improving production efficiency, ensuring the stability of the scrap collection quality, reducing contact between soap scraps and operators, avoiding contact with sharp soap production and processing equipment or chemicals, and improving the safety of the operators' work.

[0033] A contact plate 16 is fixed on the outer frame 9, and the contact plate 16 is fixed below the light steel plate 18. The first cleaning brush 11 is in contact with the upper surface of the light steel plate 18. In this embodiment, as the outer frame 9 moves with the electric telescopic rod 8, the contact plate 16 moves with the outer frame 9, the light steel plate 18 moves with the outer frame 9, and the top of the non-stick cloth tube 17 moves with the light steel plate 18, so that the vertical distance between the bottom of the first cleaning brush 11 and the top of the light steel plate 18 remains consistent. The soap scraps collected by the first cleaning brush 11 can be caught by the light steel plate 18, improving the stability of scrap recycling and collection.

[0034] Baffles 7 are fixed at both ends of the mounting plate 6, which are aligned with the slide rail 2 in the same straight line. The bottom of the baffles 7 contacts the top of the slide rail 2. In this embodiment, when the mounting plate 6 moves with the slider 5, the baffles 7 move with the mounting plate 6. The baffles 7 are always in contact with the top of the slide rail 2, which prevents the first cleaning brush 11 from sweeping soap scraps into the slide rail 2 and causing parts to jam when the light steel plate 18 and the soap recycling furnace body 1 are at the same horizontal height, thus improving the service life of the equipment.

[0035] A fixing plate 12 is fixed to the top of the first cleaning brush 11. A movable frame 13 passes through the fixing plate 12. A perforated scraper 14 is fixed to the bottom of the inner wall of the movable frame 13. The perforated scraper 14 is fitted onto the bristles of the first cleaning brush 11. A spring 15 is fixed between the fixing plate 12 and the movable frame 13. In this embodiment, after the first cleaning brush 11 finishes working, the second motor 10 drives the first cleaning brush 11 to rotate above the inlet of the soap recycling furnace body 1. The operator presses down on the movable frame 13. During the downward movement of the movable frame 13, the spring 15 is squeezed. The perforated scraper 14 moves down with the movable frame 13 and scrapes across the bristles of the first cleaning brush 11, scraping the soap scrap stuck in the bristles into the soap recycling furnace body 1. The above operation increases the amount of soap scrap recovered, avoids soap scrap getting stuck in the bristles during the cleaning process, and also achieves the effect of preliminary cleaning of the first cleaning brush 11. This prevents the soap scrap from causing confusion in the soap composition during the subsequent recycling steps, thus improving the quality of the finished soap product.

[0036] A blower 19 is fixed to the top of the light steel plate 18. A TPE flexible tee 20 is fixed to the output end of the blower 19. A mesh 22 is fixed to the through hole of the TPE flexible tee 20 near the blower 19. A butterfly valve 21 is connected to the flange of the through hole at the bottom of the TPE flexible tee 20. A corrugated duct 23 is interference-fitted to the through hole at the top of the TPE flexible tee 20. A feed cylinder 24 is fixed to the end of the corrugated duct 23 away from the TPE flexible tee 20.

[0037] In this embodiment, both the exhaust fan 19 and the butterfly valve 21 are existing technologies. The operator holds the feed cylinder 24 and aligns the inlet of the feed cylinder 24 with the hard-to-clean corners of the soap production workbench that are difficult to clean by the first cleaning brush 11. During the movement of the feed cylinder 24, the corrugated duct 23 deforms along with the feed cylinder 24, and the exhaust fan 19 is activated. The exhaust fan 19 sequentially generates suction on the soap scraps through the TPE flexible tee 20 and the corrugated duct 23. During the operation of the exhaust fan 19, the butterfly valve 21 is in the closed state, sucking the soap scraps into the TPE flexible tee 20. The mesh 22 is set to prevent the soap scraps from entering the input end of the exhaust fan. After the soap scraps are cleaned, the exhaust fan 19 is turned off and the butterfly valve 21 is opened. The scraps on the mesh 22 and the valve core of the butterfly valve 21 are allowed to enter the soap recycling furnace body 1 through the butterfly valve. After the collection of soap scraps on the workbench is completed, the soap recycling furnace body 1 is run to process the collected soap scraps for secondary use, which is environmentally friendly. In the above process, the mesh 22 restricts the movement path of the soap scraps and protects the exhaust fan. The butterfly valve 21 is closed during the operation of the exhaust fan 19 to ensure the consistency of the exhaust direction and avoid the suction affecting the inlet of the soap recycling furnace body 1. This optimizes the existing soap recycling method and avoids direct contact between operators and the soap production workbench, improving the safety of operators in production.

[0038] A second cleaning brush 25 is fixed to the top of the feed cylinder 24. In this embodiment, during the process of the feed cylinder 24 sucking up the soap scraps on the workbench, the second cleaning brush 25 can reach some dead corners of the equipment to brush out and suck up the soap scraps. The second cleaning brush 25, together with the suction of the exhaust fan 19, makes it easy to clean the dead corners that the first cleaning brush 11 cannot reach, so that the soap scraps are collected more thoroughly, reducing the amount of soap scraps left in the corners of the equipment, preventing the residual soap scraps from being mixed into the production of soap with other ingredients, and improving the quality of the finished soap.

[0039] The working principle of this utility model is as follows: A caster wheel is installed below the soap recycling furnace body 1. The operator moves the soap recycling furnace body 1 to the table where soap production scraps are located, and starts the first motor 3. The first motor 3 drives the lead screw 4 to rotate. The slider 5 is limited in the slide rail 2 and cannot follow the lead screw 4. A threaded transmission is generated between the slider 5 and the lead screw 4, realizing the linear movement of the slider 5 within the direction of the lead screw 4. The mounting plate 6 moves with the slider. When the mounting plate 6 moves with the slider 5, the baffle 7 moves with the mounting plate 6. The baffle 7 always contacts the top of the slide rail 2, preventing the first cleaning brush 11 from sweeping soap scraps into the slide rail 2 and causing parts to jam when the light steel plate 18 and the soap recycling furnace body 1 are at the same horizontal height. The electric telescopic rod 8 follows the installation... The movement of plate 6 extends or retracts the electric telescopic rod 8. The outer frame 9 follows the movement of the electric telescopic rod 8. During the movement of the outer frame 9 with the electric telescopic rod 8, the contact plate 16 moves with the outer frame 9, the light steel plate 18 moves with the outer frame 9, and the top of the non-stick cloth tube 17 moves with the light steel plate 18, ensuring that the vertical distance between the bottom of the first cleaning brush 11 and the top of the light steel plate 18 remains consistent. The soap scraps collected by the first cleaning brush 11 can be caught by the light steel plate 18. The second motor 10 follows the movement of the outer frame 9, and the first cleaning brush 11 follows the movement of the second motor 10 until the first cleaning brush 11 moves to the location of the soap scraps. The two second motors 10 drive the two first cleaning brushes 11 to rotate counterclockwise and clockwise in opposite directions, respectively, to collect the soap scraps. The material is swept onto the light steel plate 18 and enters the inlet of the soap recycling furnace body 1 through the non-stick cloth tube 17. After the first cleaning brush 11 finishes its work, the second motor 10 drives the first cleaning brush 11 to rotate above the inlet of the soap recycling furnace body 1. The operator presses down the movable frame 13. During the downward movement of the movable frame 13, the spring 15 is squeezed. The perforated scraper 14 moves down with the movable frame 13 and scrapes over the bristles of the first cleaning brush 11, scraping the soap scraps stuck in the bristles into the soap recycling furnace body 1. The operator holds the feeding cylinder 24 and aligns the inlet of the feeding cylinder 24 with the dead corners that the first cleaning brush 11 cannot clean on the soap production worktable. During the process of the feeding cylinder 24 sucking up the soap scraps on the worktable, the second cleaning brush 25 can reach some dead corners of the equipment and brush out the soap scraps. Soap scraps are sucked in, and the second cleaning brush 25, in conjunction with the suction of the exhaust fan 19, facilitates the cleaning of soap scraps in hard-to-reach areas by the first cleaning brush 11. During the movement of the feed cylinder 24, the corrugated duct 23 deforms, causing the exhaust fan 19 to operate. The exhaust fan 19 sequentially draws the soap scraps through the TPE flexible tee 20 and the corrugated duct 23. During the operation of the exhaust fan 19, the butterfly valve 21 is closed, sucking the soap scraps into the TPE flexible tee 20. The partition screen 22 prevents soap scraps from entering the exhaust fan input. After the soap scraps are cleaned, the exhaust fan 19 is turned off and the butterfly valve 21 is opened, allowing the scraps on the partition screen 22 and the valve core of the butterfly valve 21 to enter the soap recycling furnace body 1 through the butterfly valve.After the collection of soap scraps on the workbench is completed, the soap recycling furnace 1 is operated to process the collected soap scraps.

[0040] In summary, by setting up an electrically driven first cleaning brush and a fan-driven feeding cylinder, the function of recycling and collecting soap scraps can be achieved without the operator having direct contact with the workbench.

[0041] The specific embodiments described herein are merely illustrative examples illustrating the spirit of this utility model. Those skilled in the art to which this utility model pertains may make various modifications or additions to the described specific embodiments or use similar methods to substitute them, without departing from the spirit of this utility model or exceeding the scope defined by the appended claims.

Claims

1. An environmentally friendly soap production scrap recycling device, comprising a soap recycling furnace body (1), characterized in that, The top of the soap recycling furnace body (1) is fixed with a non-stick cloth tube (17). A light steel plate (18) is fixed at the end of the non-stick cloth tube (17) away from the soap recycling furnace body (1). Slide rails (2) are fixed on both sides of the soap recycling furnace body (1). A first motor (3) is fixed on the slide rail (2). A lead screw (4) is fixed at the output end of the first motor (3). A slider (5) is threaded on the lead screw (4). A mounting plate (6) is fixed at the top of the slider (5). An electric telescopic rod (8) is fixed on the mounting plate (6). An outer frame (9) is fixed at the top of the electric telescopic rod (8). A second motor (10) is fixed inside the outer frame (9). A first cleaning brush (11) is fixed at the output end of the second motor (10).

2. The environmentally friendly soap production scrap recycling device according to claim 1, characterized in that, A contact plate (16) is fixed on the outer frame (9). The contact plate (16) is fixed below the light steel plate (18). The first cleaning brush (11) is in contact with the upper surface of the light steel plate (18).

3. The environmentally friendly soap production scrap recycling device according to claim 1, characterized in that, The mounting plate (6) is fixed with baffles (7) at both ends of the slide rail (2) in the same straight direction, and the bottom of the baffles (7) contacts the top of the slide rail (2).

4. The environmentally friendly soap production scrap recycling device according to claim 1, characterized in that, A fixed plate (12) is fixed on the top of the first cleaning brush (11), and a movable frame (13) is provided on the fixed plate (12). A perforated scraper (14) is fixed at the bottom of the inner wall of the movable frame (13). The perforated scraper (14) is sleeved on the bristles of the first cleaning brush (11). A spring (15) is fixed between the fixed plate (12) and the movable frame (13).

5. The environmentally friendly soap production scrap recycling device according to claim 1, characterized in that, A blower (19) is fixed to the top of the light steel plate (18). A TPE flexible tee (20) is fixed to the output end of the blower (19). A mesh (22) is fixed to the through hole of the TPE flexible tee (20) near the blower (19). A butterfly valve (21) is connected to the flange of the through hole at the bottom of the TPE flexible tee (20). A corrugated duct (23) is interference-fitted to the through hole at the top of the TPE flexible tee (20). A feed cylinder (24) is fixed to the end of the corrugated duct (23) away from the TPE flexible tee (20).

6. The environmentally friendly soap production scrap recycling device according to claim 5, characterized in that, A second cleaning brush (25) is fixed at the top of the feed cylinder (24).