A cleaning device for integrated slippers production
By employing a three-dimensional cleaning method that combines bidirectional rotating brushing with up-and-down reciprocating rinsing, the problem of incomplete cleaning in existing slipper production equipment has been solved. This method effectively removes rubber particles and mold residues, ensuring the cleanliness of the slippers.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- HUBEI LIANGTAI SHOES CO LTD
- Filing Date
- 2025-09-08
- Publication Date
- 2026-08-04
AI Technical Summary
Existing cleaning equipment used in slipper production is inadequate to completely remove rubber particles and mold residue embedded in crevices, and traditional cleaning methods are inefficient or pose a risk of corrosion.
It adopts a three-dimensional cleaning method of bidirectional rotating brushing and up-and-down reciprocating rinsing. The brush frame in the cleaning component performs bidirectional rotating brushing and up-and-down reciprocating rinsing, combined with the synchronous transmission of the electric telescopic rod and drive component, to achieve three-dimensional cleaning of slippers.
It effectively removes rubber particles, dust, and mold residue from the surface of slippers, improving cleaning efficiency, avoiding corrosion risks, and achieving a comprehensive cleaning effect.
Smart Images

Figure CN224586444U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of slipper production and cleaning technology, specifically relating to an integrated slipper production cleaning device. Background Technology
[0002] As a daily necessity, slippers undergo processes such as injection molding, cutting, and polishing during production, which can easily leave impurities such as rubber particles, mold release agents, and dust on the surface of the finished product. To ensure product quality and consumer experience, the cleaning process is an important part of slipper production, and integrated slipper production cleaning equipment is usually used.
[0003] Currently, cleaning equipment used in integrated slipper production generally adopts traditional methods such as high-pressure water rinsing and chemical soaking. Although high-pressure water rinsing can remove surface dust through multi-angle spraying, it is difficult to penetrate the slipper texture and edge gaps to achieve thorough cleaning. Although chemical soaking can dissolve some residues, the process is time-consuming, wastewater treatment costs are high, and there is a risk of corrosion to the slipper materials. Of course, mechanical brushing is also used. This method usually uses a single-sided fixed structure and a brushing structure on the other side. Although it can achieve cleaning, it can only cover a local area of the slipper and cannot effectively and thoroughly remove rubber particles embedded in the gaps or highly adhesive mold residues, resulting in cleaning dead spots and low efficiency. Utility Model Content
[0004] In view of this, the present invention provides an integrated cleaning device for slipper production, which can perform three-dimensional cleaning of slippers by bidirectional rotating brushing and up-and-down reciprocating rinsing through the cleaning components, effectively removing rubber particles, dust and mold residue.
[0005] To solve the above-mentioned technical problems, this utility model provides an integrated cleaning device for slipper production, including a cleaning cylinder and a cleaning assembly mounted thereon. The cleaning assembly includes a fixed plate mounted on the outer arc surface of the cleaning cylinder. Both ends of the fixed plate are provided with rectangular sliding grooves, and sliding frames are slidably connected in the rectangular sliding grooves. Brush frames are rotatably connected to the ends of the sliding frames near the axis of the cleaning cylinder. The brush ends of the two brush frames are arranged opposite to each other, and the rotation directions of the two brush frames are opposite. The axes of the two brush frames coincide with the axis of the cleaning cylinder. The fixed plate is also provided with a drive assembly for synchronously driving the brush frames to rotate, that is, performing three-dimensional cleaning of slippers by bidirectional rotational brushing and up-and-down reciprocating rinsing, effectively removing rubber particles, dust and mold residues.
[0006] The cleaning assembly includes electrically operated telescopic rods respectively installed in rectangular troughs. The telescopic ends of the electric telescopic rods face opposite directions, and the telescopic ends of the electric telescopic rods are fixedly connected to the adjacent sliding frame on the same side, thus enabling them to move up and down.
[0007] The drive assembly includes pulley 1, which is respectively located at the outer end of the brush holder. The end of the sliding frame away from the cleaning cylinder is rotatably connected to a rotating rod. The outer end of the rotating rod is provided with pulley 2. The pulley 2 and the adjacent pulley 1 on the same side are connected by belt drive, which is to achieve synchronous transmission.
[0008] The drive assembly also includes a fixed box located on the outer side of the fixed plate. Both the upper and lower ends of the fixed box are rotatably connected to transmission rods. The outer ends of the transmission rods are movably inserted into rectangular slots on the adjacent rotating rods on the same side. The end of the transmission rod near the fixed box is cylindrical, and the end of the transmission rod away from the fixed box is rectangular, thus achieving the function of rapid transmission.
[0009] The drive assembly also includes a motor 1 located on the outside of the fixed box. The inner end of the output shaft of the motor 1 is provided with a bevel gear 1, and the inner end of the transmission rod is provided with a bevel gear 2. Both bevel gears 2 are meshed with bevel gear 1, which serves to achieve synchronous reverse drive.
[0010] It also includes a feeding assembly, which includes a fixed base located at the upper end of the outer arc surface of the cleaning cylinder. A lever is rotatably connected to the middle of the fixed base. The lever is higher than the upper end of the cleaning cylinder. A second motor is located near the fixed base on the outer arc surface of the cleaning cylinder. The output shaft of the second motor is fixedly connected to the lever. The upper end of the cleaning cylinder is within the movement range of the lever, thus realizing integrated feeding, cleaning and feeding operations.
[0011] The outer ends of the sliding frame are equipped with protective covers. Pulley 1 and Pulley 2 are located inside the protective covers on the same sliding frame, which ensures the safe operation of the transmission.
[0012] The outer side of the fixed plate is equipped with a protective cover. Both the upper and lower ends of the protective cover have through openings that are compatible with the sliding frame. The transmission rod and the motor are both located inside the protective cover, which ensures smooth movement between the structures.
[0013] The beneficial effects of the above-mentioned technical solution of this utility model are as follows:
[0014] 1. Pour an appropriate amount of cleaning solution into the cleaning drum. After the external feeder puts the slippers to be cleaned into the cleaning drum, the telescopic end of the upper electric telescopic rod retracts, driving the sliding frame to slide along the rectangular slide groove to adjust the position of the upper brush frame. After the upper brush frame extends into the drum and cooperates with the lower brush frame to clamp the slippers, the drive component drives the upper and lower brush frames to rotate in opposite directions at the same angular velocity. The reciprocating movement of the telescopic end of the electric telescopic rod achieves radial pressure, performing three-dimensional cleaning of the slippers through bidirectional rotational brushing and up-and-down reciprocating rinsing, effectively removing rubber particles, dust and mold residue. After cleaning is completed.
[0015] 2. Once the motor starts, it drives the first bevel gear to rotate through the output shaft. This bevel gear meshes with the second bevel gears on both sides, causing the upper and lower transmission rods to rotate synchronously in opposite directions. The ends of these transmission rods drive the rotating rods to rotate synchronously in opposite directions through a rectangular slot structure. This drives the upper and lower brush holders to rotate in opposite directions at the same angular velocity through the belt linkage between the second and first belt pulleys, thus maintaining rotation while the upper and lower brush holders move up and down.
[0016] 3. The second motor drives the paddle plate to rotate, thereby pushing out the slippers pushed out by the lower brush holder, realizing integrated loading, cleaning and unloading operations.
[0017] 4. The protective cover and the protective shield work together to provide safety protection for the internal structure and ensure smooth movement between the structures. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the main structure of an integrated slipper production cleaning device according to the present invention;
[0019] Figure 2 This is a cross-sectional structural diagram of the present invention;
[0020] Figure 3 This is a cross-sectional planar structural diagram of the present invention;
[0021] Figure 4 This is an enlarged structural diagram of point A of this utility model.
[0022] Explanation of reference numerals in the attached drawings: 100, cleaning cylinder; 200, fixing plate; 201, rectangular chute; 202, sliding frame; 203, brush holder; 204, electric telescopic rod; 300, pulley one; 301, rotating rod; 302, pulley two; 303, fixing box; 304, transmission rod; 305, motor one; 306, bevel gear one; 307, bevel gear two; 400, fixing base; 401, lever plate; 402, motor two; 500, protective cover; 600, protective cover. Detailed Implementation
[0023] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the following will be described in conjunction with the accompanying drawings of the embodiments of this utility model. Figure 1-4 The technical solutions of the embodiments of this utility model are clearly and completely described herein. Obviously, the described embodiments are only some, not all, of the embodiments of this utility model. All other embodiments obtained by those skilled in the art based on the described embodiments of this utility model are within the protection scope of this utility model.
[0024] This embodiment provides an integrated cleaning device for slipper production, such as... Figure 1-4As shown: The system includes a cleaning cylinder 100 and a cleaning assembly mounted thereon. The cleaning assembly includes a fixing plate 200 mounted on the outer arc surface of the cleaning cylinder 100. Both ends of the fixing plate 200 are provided with rectangular sliding grooves 201. Sliding frames 202 are slidably connected in the rectangular sliding grooves 201. Brush frames 203 are rotatably connected to one end of the sliding frames 202 near the axis of the cleaning cylinder 100. The brush ends of the two brush frames 203 are arranged opposite to each other, and the rotation directions of the two brush frames 203 are opposite. The axis of the two brush frames 203 coincides with the axis of the cleaning cylinder 100. The fixing plate 200 is also provided with a drive assembly for synchronously driving the brush frames 203 to rotate. The cleaning assembly includes electric telescopic rods 204 respectively mounted in the rectangular sliding grooves 201. The telescopic ends of the electric telescopic rods 204 face opposite directions, and the telescopic ends of the electric telescopic rods 204 are fixedly connected to the adjacent sliding frames 202 on the same side.
[0025] First, an appropriate amount of cleaning solution is poured into the cleaning cylinder 100. After the external feeder puts the slippers to be cleaned into the cleaning cylinder 100, the telescopic end of the upper electric telescopic rod 204 retracts, driving the sliding frame 202 to slide along the rectangular slide groove 201 to adjust the position of the upper brush frame 203. After the upper brush frame 203 extends into the cylinder and cooperates with the lower brush frame 203 to clamp the slippers, the drive component drives the upper and lower brush frames 203 to rotate in opposite directions at the same angular velocity. The reciprocating movement of the telescopic end of the electric telescopic rod 204 achieves radial pressure, performing three-dimensional cleaning of the slippers through bidirectional rotational brushing and up-and-down reciprocating rinsing, effectively removing rubber particles, dust and mold residue. After cleaning is completed.
[0026] like Figure 1-4 As shown, the drive assembly includes pulleys 300 respectively disposed on the outer ends of the brush holder 203. A rotating rod 301 is rotatably connected to the end of the sliding frame 202 away from the cleaning cylinder 100. Each rotating rod 301 has a pulley 302 at its outer end. The pulley 302 and its adjacent pulley 300 on the same side are connected via belt drive. The drive assembly also includes a fixed box 303 disposed on the outer side of the fixed plate 200. A transmission rod 304 is rotatably connected to both the upper and lower ends of the fixed box 303. The outer ends of 04 are respectively movably inserted into the rectangular slots provided on the adjacent rotating rods 301 on the same side. The end of the transmission rod 304 near the fixed box 303 is cylindrical, and the end of the transmission rod 304 away from the fixed box 303 is rectangular. The drive assembly also includes a motor 305 located outside the fixed box 303. The inner end of the output shaft of the motor 305 is provided with a bevel gear 306, and the inner ends of the transmission rods 304 are provided with bevel gears 307. Both bevel gears 307 are meshed with bevel gears 306.
[0027] When motor 305 starts, it drives bevel gear 306 to rotate via the output shaft. This bevel gear meshes with bevel gears 307 on both sides, causing the upper and lower transmission rods 304 to rotate synchronously in opposite directions. The ends of these rods drive the rotating rod 301 to rotate synchronously in opposite directions via a rectangular slot structure. This rotation is then linked to the belt of pulley 300 via pulley 302, causing the upper and lower brush holders 203 to rotate in opposite directions at the same angular velocity. This allows the upper and lower brush holders 203 to maintain rotation while moving up and down.
[0028] like Figure 1-3 As shown, it also includes a feeding assembly, which includes a fixed base 400 located at the upper end of the outer arc surface of the cleaning cylinder 100. A lever 401 is rotatably connected to the middle of the fixed base 400. The lever 401 is higher than the upper end of the cleaning cylinder 100. A second motor 402 is located on the outer arc surface of the cleaning cylinder 100 near the fixed base 400. The output shaft of the second motor 402 is fixedly connected to the lever 401. The upper end of the cleaning cylinder 100 is within the movement range of the lever 401.
[0029] Motor 402 drives the paddle plate 401 to rotate, thereby pushing out the slippers pushed out by the lower brush holder 203, realizing integrated feeding, cleaning and unloading operations.
[0030] like Figure 1 As shown, the outer ends of the sliding frame 202 are each provided with a protective cover 500, and the first pulley 300 and the second pulley 302 are respectively located inside the protective cover 500 on the same sliding frame 202.
[0031] The protective cover 500 provides safety protection for the internal pulley 300 and pulley 302, ensuring safe operation of the transmission.
[0032] like Figure 1 As shown, a protective cover 600 is provided on the outside of the fixed plate 200. Both the upper and lower ends of the protective cover 600 have through openings that are compatible with the sliding frame 202. The transmission rod 304 and the motor 305 are both located inside the protective cover 600.
[0033] The protective cover 600 provides safety protection for its internal mechanisms and ensures smooth movement between structures.
[0034] The working principle of the integrated slipper production cleaning device provided by this utility model is as follows: First, an appropriate amount of cleaning liquid is poured into the cleaning cylinder 100. After the external feeding machine puts the slippers to be cleaned into the cleaning cylinder 100, the telescopic end of the upper electric telescopic rod 204 retracts, driving the sliding frame 202 to slide along the rectangular slide groove 201 to adjust the position of the upper brush frame 203. At this time, the rotating rod 301 connected to it slides synchronously and cooperates with the transmission rod 304. After the upper brush frame 203 extends into the cylinder and cooperates with the lower brush frame 203 to clamp the slippers, the motor 305 starts and drives the bevel gear 306 to rotate through the output shaft. This bevel gear meshes with the two bevel gears 307 on both sides, driving the upper and lower transmission rods 304 to rotate synchronously in opposite directions. The rectangular slot structure drives the rotating rod 301 to rotate synchronously in the opposite direction, which in turn links the belt of the pulley 302 and the pulley 300 to make the upper and lower brush holders 203 rotate in opposite directions at the same angular velocity. This, combined with the reciprocating movement of the telescopic end of the electric telescopic rod 204, achieves radial pressure, performing a three-dimensional cleaning of the slippers through bidirectional rotational brushing and up-and-down reciprocating rinsing. This effectively removes rubber particles, dust, and mold residue. After cleaning, the motor 305 stops, the upper electric telescopic rod 204 extends to push out the brush holder 203, and the lower electric telescopic rod 204 retracts to push the slippers out of the cleaning cylinder 100. Then, the motor 402 drives the baffle 401 to complete the slipper discharge. The entire process is ensured by the protective cover 500 and the protective cover 600 to ensure the safe operation of the transmission mechanism.
[0035] Furthermore, it should be noted that, in the description of this utility model, unless otherwise explicitly specified and limited, the terms "installation," "connection," and "joining" should be interpreted broadly. For example, they can refer to a fixed connection, a detachable connection, or an integral connection; they can refer to a mechanical connection or an electrical connection; they can refer to a direct connection or an indirect connection through an intermediate medium; and they can refer to the internal connection of two components. Those skilled in the art can understand the specific meaning of the above terms in this utility model according to the specific circumstances.
[0036] The above description is the preferred embodiment of this utility model. It should be noted that for those skilled in the art, several improvements and modifications can be made without departing from the principle of this utility model, and these improvements and modifications should also be considered within the protection scope of this utility model.
Claims
1. A one-piece cleaning device for slipper production, characterized in that: The system includes a cleaning cylinder (100) and a cleaning assembly disposed thereon. The cleaning assembly includes a fixing plate (200) disposed on the outer arc surface of the cleaning cylinder (100). Both ends of the fixing plate (200) are provided with rectangular sliding grooves (201). Sliding frames (202) are slidably connected in the rectangular sliding grooves (201). Brush frames (203) are rotatably connected at one end of the sliding frames (202) near the axis of the cleaning cylinder (100). The brush ends of the two brush frames (203) are arranged opposite to each other. The two brush frames (203) rotate in opposite directions. The axes of the two brush frames (203) coincide with the axis of the cleaning cylinder (100). The fixing plate (200) is also provided with a driving assembly for synchronously driving the brush frames (203) to rotate.
2. The integrated slipper production cleaning device as described in claim 1, characterized in that: The cleaning assembly includes electric telescopic rods (204) respectively disposed in rectangular chute (201), the telescopic ends of the electric telescopic rods (204) facing opposite directions, and the telescopic ends of the electric telescopic rods (204) respectively fixedly connected to the adjacent sliding frame (202) on the same side.
3. The integrated slipper production cleaning device as described in claim 1, characterized in that: The drive assembly includes pulley 1 (300) respectively disposed at the outer end of the brush holder (203), and a rotating rod (301) is rotatably connected to the end of the sliding frame (202) away from the cleaning cylinder (100). The outer end of the rotating rod (301) is provided with pulley 2 (302), and the pulley 2 (302) is connected to the adjacent pulley 1 (300) on the same side by belt drive.
4. The integrated slipper production cleaning device as described in claim 3, characterized in that: The drive assembly also includes a fixed box (303) disposed on the outer side of the fixed plate (200). Both the upper and lower ends of the fixed box (303) are rotatably connected to a transmission rod (304). The outer ends of the transmission rod (304) are respectively movably inserted into rectangular slots provided on the adjacent rotating rod (301) on the same side. The end of the transmission rod (304) near the fixed box (303) is cylindrical, and the end of the transmission rod (304) away from the fixed box (303) is rectangular.
5. The integrated slipper production cleaning device as described in claim 4, characterized in that: The drive assembly also includes a motor (305) disposed on the outside of the fixed box (303). The inner end of the output shaft of the motor (305) is provided with a bevel gear (306), and the inner end of the transmission rod (304) is provided with a bevel gear (307). Both bevel gears (307) are meshed with bevel gears (306).
6. The integrated slipper production cleaning device as described in claim 1, characterized in that: It also includes a feeding assembly, which includes a fixed seat (400) located on the upper end of the outer arc surface of the cleaning cylinder (100). A lever (401) is rotatably connected to the middle of the fixed seat (400). The lever (401) is higher than the upper end of the cleaning cylinder (100). A second motor (402) is provided on the outer arc surface of the cleaning cylinder (100) near the fixed seat (400). The output shaft of the second motor (402) is fixedly connected to the lever (401). The upper end of the cleaning cylinder (100) is located within the moving range of the lever (401).
7. The integrated slipper production cleaning device as described in claim 3, characterized in that: The outer ends of the sliding frame (202) are provided with protective covers (500), and the first pulley (300) and the second pulley (302) are respectively located in the protective covers (500) on the same sliding frame (202).
8. The integrated slipper production cleaning device as described in claim 5, characterized in that: The outer side of the fixed plate (200) is provided with a protective cover (600). Both the upper and lower ends of the protective cover (600) have through openings that are compatible with the sliding frame (202). The transmission rod (304) and the motor (305) are both located inside the protective cover (600).