Cleaning equipment for chemical fiber cloth processing
The cleaning device, which combines ultrasonic vibration with cleaning balls, solves the problem of damage and wrinkles to synthetic fiber fabrics caused by traditional cleaning equipment, achieving a highly efficient and non-damaging cleaning effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JINJIANG WANDING TECHNOLOGY CO LTD
- Filing Date
- 2025-05-28
- Publication Date
- 2026-04-24
AI Technical Summary
Traditional cleaning equipment can easily cause surface damage and wrinkles to synthetic fiber fabrics, affecting product quality.
A cleaning device that combines ultrasonic vibration and cleaning balls, along with a limiting rod and a drying device, achieves efficient cleaning and reduces wrinkles.
It improves the cleaning effect of synthetic fiber fabrics, reduces surface damage and wrinkles, and ensures product quality.
Smart Images

Figure CN224160855U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cleaning equipment technology, and in particular to a cleaning equipment for processing chemical fiber fabrics. Background Technology
[0002] Synthetic fiber fabrics are characterized by high strength, corrosion resistance, and ease of processing, and are widely used in clothing, home furnishings and other fields. During the production process of synthetic fiber fabrics, the surface may be contaminants such as oil stains and dust, which need to be removed through a cleaning process to ensure the quality of the finished product. However, traditional cleaning equipment mostly uses soaking and stirring, which can easily damage the surface of the synthetic fiber fabric and cause wrinkles, affecting subsequent processing. Utility Model Content
[0003] Therefore, in view of the above problems, this utility model proposes a cleaning device for processing chemical fiber fabrics.
[0004] To achieve the above objectives, the present invention provides a cleaning device for processing chemical fiber fabrics, comprising a frame, a sinking trough mounted on the frame, a drain pipe mounted on the sinking trough, a first support frame mounted on the sinking trough, a second support frame mounted on the sinking trough, a placement cylinder rotatably mounted on the first support frame for placing the chemical fiber fabric, and a winding cylinder rotatably mounted on the second support frame for winding the chemical fiber fabric. A cleaning device for cleaning the chemical fiber fabric is also provided on the frame between the placement cylinder and the winding cylinder.
[0005] A further improvement is that the cleaning device includes: a cleaning tank mounted on a frame via an elastic device; an ultrasonic device mounted on the cleaning tank for causing fluid vibration; a cleaning ball mounted on the cleaning tank for repeatedly impacting the synthetic fiber cloth; a water inlet pipe mounted on the frame for supplying water to the cleaning tank; a drain outlet opened on the cleaning tank; and at least two limiting rods mounted on the cleaning tank to ensure that the synthetic fiber cloth is submerged in water, wherein the limiting rods are located below the drain outlet.
[0006] A further improvement is that the ultrasonic device includes: an ultrasonic generator mounted on a frame and an ultrasonic transducer mounted on the side wall of the cleaning tank.
[0007] A further improvement is that the elastic device includes several elastic pads fixedly mounted on the frame, and the cleaning tank is fixedly mounted on the elastic pads.
[0008] A further improvement is that the cleaning ball includes: a mesh cloth ball, pumice particles disposed within the mesh cloth ball, activated carbon blocks disposed within the mesh cloth ball, and coconut shell fiber filaments disposed within the mesh cloth ball.
[0009] A further improvement is that two symmetrical limiting plates are also fitted on the limiting rod, the gap between the limiting plate and the cleaning pool is smaller than the size of the cleaning ball, and the limiting plate is also provided with a limiting sleeve to improve stability.
[0010] A further improvement is that a drying device is also provided on the frame.
[0011] A further improvement is that the drying device includes: a support base mounted on the frame and located between the winding drum and the cleaning device; a ventilation hole opened on the support base; and a fan mounted on the support base and located at the ventilation hole.
[0012] A further improvement is that a third support frame is symmetrically arranged on the sinking tank between the cleaning device and the drying device. The third support frame is provided with a first fixed rod and a sliding groove. A second fixed rod is provided in the sliding groove and can slide up and down. A tension spring is provided between the second fixed rod and the second fixed rod.
[0013] A further improvement is that rollers are provided on both the first and second fixing rods to reduce friction.
[0014] The advantages and beneficial effects of this utility model are as follows:
[0015] With a simple structure and convenient use, it is equipped with a cleaning device that can clean the chemical fiber fabric by high-frequency vibration of the fluid, thereby reducing the time the chemical fiber fabric is soaked in water. The vibration mode is less likely to cause wrinkles in the chemical fiber fabric and affect product quality. Furthermore, it is equipped with cleaning balls that can be used in conjunction with ultrasonic devices to increase the vibration amplitude of the chemical fiber fabric and absorb the dirt vibrated out, thus improving the cleaning effect. Attached Figure Description
[0016] Figure 1 This is a side view schematic diagram of a cleaning device for processing chemical fiber fabrics according to the present invention;
[0017] Figure 2 This is a side sectional view of a cleaning device for processing chemical fiber fabrics according to the present invention;
[0018] Figure 3 This is a top view schematic diagram of a cleaning tank for a cleaning equipment used in the processing of chemical fiber fabrics according to this utility model;
[0019] Figure 4 This is an enlarged schematic diagram of part A of a cleaning device for processing chemical fiber fabrics according to this utility model;
[0020] In the diagram: 101, frame; 102, sinking trough; 104, drain pipe; 105, first support frame; 106, second support frame; 107, placement cylinder; 108, winding drum; 109, cleaning tank; 110, water inlet pipe; 111, drain outlet; 112, limiting rod; 113, ultrasonic transducer; 114, elastic pad; 115, mesh ball; 116, limiting plate; 117, limiting sleeve; 118, support base; 119, ventilation hole; 120, fan; 121, third support frame; 122, first fixing rod; 123, second fixing rod; 124, tension spring; 125, roller; 126, sliding groove. Detailed Implementation
[0021] The specific embodiments of this utility model will be further described below with reference to the accompanying drawings and examples. The following examples are only used to more clearly illustrate the technical solution of this utility model and should not be construed as limiting the scope of protection of this utility model.
[0022] like Figures 1-4 As shown, a cleaning device for processing chemical fiber fabrics includes a frame 101, a sink trough 102 disposed on the frame 101, a drain pipe 104 disposed on the sink trough 102, a first support frame 105 disposed on the sink trough 102, a second support frame 106 disposed on the sink trough 102, a placement cylinder 107 rotatably disposed on the first support frame 105 for placing chemical fiber fabric, and a winding cylinder 108 rotatably disposed on the second support frame 106 for winding chemical fiber fabric. A cleaning device for cleaning chemical fiber fabrics is also disposed on the frame 101 between the placement cylinder 107 and the winding cylinder 108.
[0023] To clean the synthetic fiber fabric and prevent it from becoming wrinkled or being soaked in water for a long time, thus affecting its quality, the cleaning device includes: a cleaning tank 109 mounted on a frame 101 via an elastic device; an ultrasonic device mounted on the cleaning tank 109 for vibrating the fluid; a cleaning ball mounted on the cleaning tank 109 for repeatedly impacting the synthetic fiber fabric; a water inlet pipe 110 mounted on the frame 101 for supplying water to the cleaning tank; a drain outlet 111 opened on the cleaning tank; and at least two limiting rods 112 mounted on the cleaning tank to ensure that the synthetic fiber fabric is in water, the limiting rods 112 being located below the drain outlet 111.
[0024] In order to cause the fluid water in the cleaning tank 109 to vibrate at high frequency, thereby removing impurities from the chemical fiber cloth, the ultrasonic device includes: an ultrasonic generator (not shown in the figure) mounted on the frame 101, and an ultrasonic transducer 113 mounted on the side wall of the cleaning tank 109.
[0025] How to connect the ultrasonic transducer 113 to the cleaning tank 109 is common knowledge and will not be elaborated here.
[0026] To prevent the cleaning tank 109 from generating excessive noise during use, or from affecting the service life of both due to direct contact with the frame 101, the elastic device includes: a plurality of elastic pads 114 fixedly disposed on the frame 101, and the cleaning tank 109 is fixedly disposed on the elastic pads 114.
[0027] To improve the cleaning effect, absorb impurities, and prevent impurities from being reabsorbed by the synthetic fiber cloth, the cleaning ball includes: a mesh cloth ball 115, pumice particles (not shown in the figure) disposed within the mesh cloth ball 115, activated carbon blocks (not shown in the figure) disposed within the mesh cloth ball 115, and coconut shell fiber filaments (not shown in the figure) disposed within the mesh cloth ball 115.
[0028] During manufacturing, pumice granules, activated carbon blocks, and coconut shell fibers are placed on a mesh cloth, then wrapped up, rolled into a ball, and tied up to complete the manufacturing process.
[0029] Pumice particles, activated carbon blocks, and coconut shell fibers can all float directly on water;
[0030] Coconut shell fibers can absorb oil, silt, etc., activated carbon blocks can absorb organic matter, pigments, some heavy metals, and pumice particles can absorb suspended particles.
[0031] To maximize the contact between the cleaning ball and the synthetic fiber cloth and thus enhance the cleaning effect, two symmetrical limiting plates 116 are also fitted on the limiting rod 112. The gap between the limiting plate 116 and the cleaning pool 109 is smaller than the size of the cleaning ball. The limiting plate 116 is also provided with a limiting sleeve 117 to improve stability.
[0032] To reduce moisture on the fabric and facilitate fabric transfer and subsequent processing, a drying device is also provided on the frame 101. The drying device includes: a support base 118 disposed on the frame 101 and located between the take-up drum 108 and the cleaning device; a ventilation hole 119 opened on the support base 118; and a fan 120 disposed on the support base 118 and located at the ventilation hole 119.
[0033] The fan 120 can be an electric heating fan to enhance the drying effect;
[0034] In actual use, the distance between the take-up drum 108 and the washing tank 109 can be appropriately extended to directly dry the chemical fiber cloth.
[0035] In order to reduce the moisture of the synthetic fiber cloth before air drying, a third support frame 121 is symmetrically arranged on the sink trough 102 between the washing device and the air drying device. The third support frame 121 is provided with a first fixing rod 122 and a sliding groove 126. A second fixing rod 123 is provided in the sliding groove 126 and can slide up and down. A tension spring 124 is provided between the second fixing rod 123.
[0036] To prevent damage to the synthetic fiber fabric when pressing and squeezing out water, rollers 125 are provided on both the first fixing rod 122 and the second fixing rod 123 to reduce friction.
[0037] To facilitate control of winding, a servo motor (not shown in the figure) is also provided on the frame 101, and a reduction gearbox (not shown in the figure) is also provided on the frame 101. The servo motor is connected to the reduction gearbox, and the reduction gearbox is connected to the winding drum 108.
[0038] The frame 101 is also equipped with a control console (not shown in the figure), which is electrically connected to the servo motor, ultrasonic generator, and fan 120.
[0039] Working principle: When in use, first open the water inlet pipe 110 to fill the cleaning tank 109 and put in the cleaning ball. Then adjust the limit plate 116 to a spacing close to the width of the chemical fiber cloth. At this time, install the chemical fiber cloth on the placement cylinder 107, so that it passes through the cleaning tank 109, the roller 125 and the support base 118, and connects to the winding drum 108. At this time, the servo motor, ultrasonic generator and fan 120 can be started and electrically connected through the control console.
[0040] At this time, the synthetic fiber fabric moves slowly under the action of the winding drum 108. It is first cleaned in the cleaning tank 109. The high-frequency vibrating fluid causes the impurities in the synthetic fiber fabric to be quickly precipitated. The precipitated impurities are absorbed by the cleaning balls, thus preventing them from being absorbed by the synthetic fiber fabric again. Subsequently, the synthetic fiber fabric is squeezed by the roller 125 to initially remove the water. Then, it is blown by the fan 120 to further remove the water. Finally, it is wound up to facilitate transportation to the next step.
[0041] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions above are only illustrative of the principles of this utility model. Various changes and modifications may be made to this utility model without departing from the spirit and scope of this utility model. All such changes and modifications fall within the scope of protection of this utility model as defined by the appended claims and their equivalents.
Claims
1. A cleaning device for processing synthetic fiber fabrics, comprising a frame, a sinking trough disposed on the frame, a drain pipe disposed on the sinking trough, a first support frame disposed on the sinking trough, a second support frame disposed on the sinking trough, a placement cylinder rotatably disposed on the first support frame for placing synthetic fiber fabric, and a winding cylinder rotatably disposed on the second support frame for winding up the synthetic fiber fabric, characterized in that: A cleaning device for cleaning synthetic fiber fabric is also installed on the frame between the placement drum and the take-up drum.
2. The cleaning equipment for processing chemical fiber fabrics according to claim 1, characterized in that: The cleaning device includes: a cleaning tank mounted on a frame via an elastic device; an ultrasonic device mounted on the cleaning tank for causing fluid vibration; a cleaning ball mounted on the cleaning tank for repeatedly impacting the synthetic fiber cloth; a water inlet pipe mounted on the frame for supplying water to the cleaning tank; a drain outlet opened on the cleaning tank; and at least two limiting rods mounted on the cleaning tank to ensure that the synthetic fiber cloth is submerged in water, wherein the limiting rods are located below the drain outlet.
3. The cleaning equipment for processing chemical fiber fabrics according to claim 2, characterized in that: The ultrasonic device includes: an ultrasonic generator mounted on a frame and an ultrasonic transducer mounted on the side wall of the cleaning tank.
4. The cleaning equipment for processing chemical fiber fabrics according to claim 2, characterized in that: The elastic device includes: a plurality of elastic pads fixedly mounted on the frame, and the cleaning tank fixedly mounted on the elastic pads.
5. The cleaning equipment for processing chemical fiber fabrics according to claim 2, characterized in that: The cleaning ball includes: a mesh cloth ball, pumice particles disposed within the mesh cloth ball, activated carbon blocks disposed within the mesh cloth ball, and coconut shell fiber filaments disposed within the mesh cloth ball.
6. The cleaning equipment for processing chemical fiber fabrics according to claim 2, characterized in that: The limiting rod is also fitted with two symmetrical limiting plates. The gap between the limiting plates and the cleaning pool is smaller than the size of the cleaning ball. The limiting plates are also provided with limiting sleeves to improve stability.
7. The cleaning equipment for processing chemical fiber fabrics according to claim 1, characterized in that: The frame is also equipped with a drying device.
8. The cleaning equipment for processing chemical fiber fabrics according to claim 7, characterized in that: The air-drying device includes: a support base mounted on the frame and located between the take-up drum and the cleaning device; a ventilation hole opened on the support base; and a fan mounted on the support base and located at the ventilation hole.
9. The cleaning equipment for processing chemical fiber fabrics according to claim 8, characterized in that: A third support frame is symmetrically arranged on the sinking trough between the cleaning device and the drying device. A first fixed rod is provided on the third support frame. The third support frame also has a sliding groove. A second fixed rod is provided in the sliding groove and can slide up and down. A tension spring is provided between the second fixed rod and the second fixed rod.
10. A cleaning device for processing chemical fiber fabrics according to claim 9, characterized in that: Both the first and second fixing rods are equipped with rollers to reduce friction.