Superfine microfiber soft surface material surface decontamination treatment device
By combining the cleaning mechanism and the air blowing component, the problems of low efficiency and material damage in traditional cleaning methods are solved, achieving a high-efficiency and low-damage cleaning effect for microfiber soft materials.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- CHANGZHOU JIACHEN NEW FIBER TECHNOLOGY CO LTD
- Filing Date
- 2025-09-16
- Publication Date
- 2026-07-24
AI Technical Summary
Traditional cleaning methods for microfiber soft materials are inefficient and can easily damage the materials. Existing mechanical cleaning methods may cause damage to the fiber structure.
The device, which employs a cleaning mechanism and an air blowing assembly working in tandem, includes a cleaning tank, an ultrasonic transducer, a support roller, a liquid replenishment assembly, and an air blowing assembly. It achieves a highly efficient and low-damage cleaning process through ultrasonic cleaning, airflow drying, and automatic liquid replenishment.
It achieves efficient cleaning of microfiber soft material surfaces, avoiding uneven cleaning and material damage, and improving cleaning efficiency and quality.
Smart Images

Figure CN224548733U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of surface cleaning equipment for microfiber soft materials, specifically a surface cleaning device for microfiber soft materials. Background Technology
[0002] Microfiber soft material is a high-performance synthetic leather material, also known as microfiber reinforced leather or microfiber leather. It is the third generation of synthetic leather and is made of nylon microfiber and polyurethane through a special process. It is mainly composed of polyamide and polyurethane and is widely used in bags, clothing, automotive interior surfaces and other fields.
[0003] However, these materials are extremely prone to absorbing dust and other contaminants during production, affecting their appearance and performance. Therefore, after production, microfiber soft fabrics need to be cleaned and decontaminated to improve their quality. Traditional decontamination methods mostly involve manual wiping or soaking, which is not only inefficient but also produces unsatisfactory cleaning results and can easily damage the microfiber soft fabrics. Furthermore, some existing technologies use mechanical methods such as roller brushes to rub and knead the microfiber soft fabrics. Due to the characteristics of these materials, the force of roller brush cleaning can easily damage their fiber structure, resulting in breakage of the microfiber soft fabrics during cleaning.
[0004] In summary, this utility model provides a surface cleaning device for microfiber soft materials to solve the above problems. Utility Model Content
[0005] To solve the above-mentioned technical problems, this utility model provides the following technical solution:
[0006] A surface cleaning device for microfiber soft materials includes a support frame, a cleaning mechanism mounted on the surface of the support frame, and an air blowing assembly mounted on the lower end of the support frame. The cleaning mechanism includes a cleaning tank fixed to the support frame, a liquid replenishment assembly located on the front of the support frame, an ultrasonic transducer mounted in the inner cavity of the cleaning tank, a support roller mounted in the inner cavity of the cleaning tank for supporting microfiber soft synthetic leather, a drain pipe mounted at the bottom of the cleaning tank for draining waste, and a guide frame mounted at one end of the cleaning tank. The air blowing assembly includes a blower, an air blowing pipe located in the inner cavity of the guide frame, a nozzle communicating with the air blowing pipe, an aeration pipe fixed to the bottom of the inner cavity of the cleaning tank, an aeration head located on the surface of the aeration pipe, and a connecting pipe communicating with the aeration pipe and the air blowing pipe.
[0007] Furthermore, in this invention, several ultrasonic transducers are provided, and they are evenly distributed on the front and back sides of the inner cavity of the cleaning tank.
[0008] Furthermore, in this utility model, the bottom of the cleaning pool is conical, one end of the drain pipe is connected to the inner cavity of the cleaning pool, and the other end of the drain pipe is equipped with a drain solenoid valve.
[0009] Furthermore, in this utility model, the replenishment component includes a cleaning agent tank, a delivery pump fixed to the support frame, a diversion pipe fixed to the upper end of the inner cavity of the cleaning tank, a spray head connected to the bottom of the diversion pipe, and a delivery pipe connected to the outlet of the delivery pump.
[0010] Furthermore, in this utility model, one end of the delivery pipe is connected to the outlet of the delivery pump, the other end of the delivery pipe is connected to the inner cavity of the diversion pipe, and the inlet of the delivery pump is connected to the inner cavity of the cleaning agent tank.
[0011] Furthermore, in this utility model, the fan is fixed to the inner cavity of the support frame, the air blowing pipe is fixed to the upper end of the inner cavity of the guide frame, and the nozzle is located at the lower end of the surface of the air blowing pipe.
[0012] Furthermore, in this utility model, one end of the connecting pipe is connected to the outlet of the blower, and the other end of the connecting pipe is connected to the blowing pipe and the aeration pipe respectively, and a regulating solenoid valve is provided at the connection between the connecting pipe and the blowing pipe and the aeration pipe.
[0013] Beneficial effects: This utility model has the following beneficial effects:
[0014] This invention achieves surface cleaning of microfiber soft fabric materials through the coordinated operation of a cleaning mechanism and an air blowing assembly. The cleaning tank in the cleaning mechanism creates an environment for soaking and cleaning the microfiber soft fabric materials. The ultrasonic transducer generates ultrasonic waves in the cleaning tank. With the help of ultrasonic cavitation, acceleration, and direct flow, the dirt layer is dispersed, emulsified, and peeled off, thereby achieving the cleaning purpose. At the same time, the setting of the support roller ensures the stable transport of the microfiber soft fabric materials during the cleaning process, preventing uneven cleaning caused by material movement. By integrating the cleaning tank, ultrasonic transducer, liquid replenishment assembly, and air blowing assembly, effective cleaning and decontamination of microfiber soft fabric materials is achieved. Compared with traditional manual wiping or mechanical cleaning, it avoids the instability and low efficiency of cleaning. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of the main structure of this utility model;
[0016] Figure 2 This is a schematic diagram of the connection structure between the support frame and the air blowing assembly of this utility model;
[0017] Figure 3 This is a bottom view of the cleaning tank of this utility model;
[0018] Figure 4 This is a schematic diagram of the main structure of the air blowing component of this utility model.
[0019] In the picture:
[0020] 100. Support frame; 200. Cleaning mechanism; 210. Cleaning tank; 220. Liquid replenishment assembly; 221. Cleaning agent tank; 222. Transfer pump; 223. Diverter pipe; 224. Spray head; 225. Transfer pipe; 230. Ultrasonic transducer; 240. Support roller; 250. Sewage pipe; 260. Guide frame; 300. Air blowing assembly; 310. Blower; 320. Air blowing pipe; 330. Nozzle; 340. Aeration pipe; 350. Aeration head; 360. Connecting pipe. Detailed Implementation
[0021] To better understand the technical content of this utility model, specific embodiments are described below in conjunction with the accompanying drawings. Various aspects of this utility model are described in this disclosure with reference to the accompanying drawings, which illustrate numerous illustrative embodiments. The embodiments of this disclosure are not necessarily defined to include all aspects of this utility model. It should be understood that the various concepts and embodiments described above, as well as those described in more detail below, can be implemented in any of many ways, because the concepts and embodiments disclosed in this utility model are not limited to any particular implementation. Furthermore, some aspects of this utility model can be used alone or in any suitable combination with other aspects disclosed in this utility model.
[0022] Example 1
[0023] like Figure 1-4 As shown, this is the first embodiment of the present invention. This embodiment provides a surface cleaning device for microfiber soft materials, including a support frame 100, a cleaning mechanism 200 mounted on the surface of the support frame 100, and an air blowing assembly 300 mounted on the lower end of the support frame 100. The cleaning mechanism 200 includes a cleaning tank 210 fixed to the support frame 100, a liquid replenishment assembly 220 located on the front of the support frame 100, an ultrasonic transducer 230 installed in the inner cavity of the cleaning tank 210, and an ultrasonic transducer 230 installed in the inner cavity of the cleaning tank 210 for microfiber... The system includes a support roller 240 supported by soft synthetic leather, a drain pipe 250 installed at the bottom of the cleaning tank 210 for sewage discharge, and a guide frame 260 installed at one end of the cleaning tank 210. The air blowing assembly 300 includes a blower 310, an air blowing pipe 320 located in the inner cavity of the guide frame 260, a nozzle 330 communicating with the air blowing pipe 320, an aeration pipe 340 fixed at the bottom of the inner cavity of the cleaning tank 210, an aeration head 350 located on the surface of the aeration pipe 340, and a connecting pipe 360 communicating with the aeration pipe 340 and the air blowing pipe 320.
[0024] like Figure 1-4As shown, the cleaning mechanism 200 includes a cleaning tank 210, an ultrasonic transducer 230, a liquid replenishment component 220, a support roller 240, a drain pipe 250, and a guide frame 260, forming a closed-loop cleaning process responsible for cleaning microfiber soft fabric materials. Cleaning liquid is added to the cleaning tank 210, and the liquid level overflows the top of the support roller 240, allowing the microfiber soft fabric material to be fully immersed in the cleaning liquid. The liquid replenishment component 220 wets the microfiber soft fabric material through a spray head 224 and maintains the cleaning liquid level. The operating frequency and power of the ultrasonic transducer 230 can be adjusted according to actual needs to adapt to the cleaning requirements of different types and levels of dirt on microfiber soft fabric materials. The support roller 240 provides support for the microfiber soft fabric material, preventing it from sinking and being damaged, and can also assist in conveying it. The drain solenoid valve installed on the drain pipe 250 can perform timed or manual draining operations according to the cleaning cycle or the degree of dirt accumulation in the cleaning tank 210, ensuring that the cleaning tank 210 always maintains a clean cleaning environment.
[0025] The air blowing assembly 300 controls and distributes airflow through a blower 310, air blowing pipe 320, nozzle 330, aeration pipe 340, and connecting pipe 360. The airflow generated by the blower 310 of the air blowing assembly 300 is delivered to the air blowing pipe 320 and the aeration pipe 340 through the connecting pipe 360. The nozzle 330 on the air blowing pipe 320 can directly blow the airflow onto the surface of the cleaned microfiber soft material to help remove residual moisture and tiny dirt. The aeration head 350 on the aeration pipe 340 can evenly distribute the airflow in the form of tiny bubbles in the cleaning tank 210, increasing the oxygen content in the cleaning liquid, promoting the chemical reaction between the cleaning agent and the dirt, and further improving the cleaning effect. By adjusting the regulating solenoid valve on the connecting pipe 360, the airflow of the air blowing pipe 320 and the aeration pipe 340 can be flexibly controlled to meet the needs of different cleaning stages. Through the coordinated cooperation of the cleaning mechanism 200 and the air blowing assembly 300, efficient and low-damage cleaning of stains on the surface of the microfiber soft material is achieved.
[0026] Example 2
[0027] Reference Figure 1-3 This is the second embodiment of the present invention, which is based on the previous embodiment.
[0028] In this embodiment, several ultrasonic transducers 230 are provided, and they are evenly distributed on the front and back sides of the inner cavity of the cleaning tank 210.
[0029] The bottom of the cleaning tank 210 is conical. One end of the drain pipe 250 is connected to the inner cavity of the cleaning tank 210, and the other end of the drain pipe 250 is equipped with a drain solenoid valve.
[0030] The replenishment assembly 220 includes a cleaning agent tank 221, a delivery pump 222 fixed to the support frame 100, a diversion pipe 223 fixed to the upper end of the inner cavity of the cleaning tank 210, a spray head 224 connected to the bottom of the diversion pipe 223, and a delivery pipe 225 connected to the outlet of the delivery pump 222.
[0031] One end of the delivery pipe 225 is connected to the outlet of the delivery pump 222, and the other end of the delivery pipe 225 is connected to the inner cavity of the diversion pipe 223. The inlet of the delivery pump 222 is connected to the inner cavity of the cleaning agent tank 221.
[0032] like Figure 1-3 As shown, the uniform arrangement of ultrasonic transducers 230 utilizes the principle of ultrasonic vibration to efficiently remove stains from the surface and micropores of the microfiber soft material. Support rollers 240 provide flexible support to the microfiber soft material during cleaning, preventing direct contact with the bottom of the cleaning tank 210 or excessive stretching. Guide frames 260 facilitate stable passage of the material during cleaning. A winding machine can be installed at the lower end of the guide frame 260, and an unwinding machine can be installed at the other end of the cleaning tank 210. Through the coordinated operation of the unwinding machine, support rollers 240, and winding machine, the microfiber soft material can be effectively cleaned. This system performs continuous cleaning operations and is applicable to production lines for microfiber soft fabrics. The cleaning agent tank 221 of the replenishment component 220 is pre-filled with cleaning agent. The cleaning agent in the tank 221 is pumped into the distribution pipe 223 via the delivery pipe 225 by the delivery pump 222, and then evenly sprayed into the cleaning tank 210 via the spray head 224. This provides a continuous cleaning effect for the microfiber soft fabric, ensuring thorough cleaning. The replenishment component 220 not only realizes automatic replenishment of cleaning agent, but also ensures the continuity and stability of the cleaning process, thereby improving cleaning efficiency.
[0033] Example 3
[0034] Reference Figure 1 , 2 4 and 5 are the third embodiment of this utility model, which is based on the first two embodiments.
[0035] In this embodiment, the blower 310 is fixed to the inner cavity of the support frame 100, the air blowing pipe 320 is fixed to the upper end of the inner cavity of the guide frame 260, and the nozzle 330 is located at the lower end of the surface of the air blowing pipe 320.
[0036] One end of the connecting pipe 360 is connected to the outlet of the blower 310, and the other end of the connecting pipe 360 is connected to the air blowing pipe 320 and the aeration pipe 340 respectively. A regulating solenoid valve is provided at the connection between the connecting pipe 360 and the air blowing pipe 320 and the aeration pipe 340.
[0037] like Figure 1 , 2As shown in Figure 4, the blower 310 provides air power for the entire air blowing assembly 300. The airflow is delivered to the air blowing pipe 320 and the aeration pipe 340 through the connecting pipe 360. The nozzle 330 on the air blowing pipe 320 is located inside the guide frame 260 and is used to dry the surface of the cleaned microfiber soft material. The aeration pipe 340 and the aeration head 350 are located at the bottom of the cleaning tank 210. The flow of the cleaning liquid is enhanced by bubble disturbance, which improves the ultrasonic cleaning efficiency. The airflow ratio of blowing and aeration can be controlled by adjusting the solenoid valve to realize airflow adjustment and energy-saving control at different cleaning stages. Through the synergistic cooperation of ultrasonic cleaning and airflow drying, the cleaning efficiency and quality are significantly improved, while protecting the integrity of the surface structure of the microfiber soft material.
[0038] In use, first, cleaning solution is added to the cleaning tank 210, and then the microfiber soft material is placed into the cleaning tank 210. The support roller 240 is responsible for supporting the microfiber soft material to prevent it from sinking and being damaged. At the same time, it can assist in the transport of the microfiber soft material. The ultrasonic transducer 230 is activated to generate ultrasonic waves, which efficiently removes stains from the surface and micropores of the microfiber soft material. The cleaning agent tank 221 of the replenishment component 220 is pre-stored with cleaning agent. The cleaning agent is pumped from the cleaning agent tank 221 through the delivery pipe 225 into the diversion pipe 223 by the delivery pump 222, and then evenly sprayed into the cleaning tank 210 by the spray head 224, providing a continuous cleaning effect for the microfiber soft material and ensuring thorough cleaning. The replenishment component 220 not only realizes the automatic replenishment of cleaning agent, but also ensures the continuity and stability of the cleaning process and improves cleaning efficiency.
[0039] The blower 310 provides air power to the air blowing assembly 300. The airflow is delivered to the air blowing pipe 320 and the aeration pipe 340 through the connecting pipe 360. The nozzle 330 on the air blowing pipe 320 is located inside the guide frame 260 and is used to dry the surface of the cleaned microfiber soft material. The aeration pipe 340 and the aeration head 350 are located at the bottom of the cleaning tank 210. The flow of the cleaning liquid is enhanced by the agitation of the bubbles, which further improves the ultrasonic cleaning efficiency.
[0040] All standard parts used in this application can be purchased from the market, and can be customized according to the description and drawings. The specific connection methods of each part adopt conventional methods such as bolts, rivets, and welding that are mature in the prior art. The machinery, parts and equipment adopt conventional models in the prior art. The control method is automatic control through a controller. The control circuit of the controller can be implemented by simple programming by those skilled in the art and is common knowledge in the field. Since this application is mainly used to protect mechanical devices, the control method and circuit connection will not be explained in detail in this application.
[0041] Although the present invention has been disclosed above with reference to preferred embodiments, it is not intended to limit the present invention. Those skilled in the art to which this invention pertains can make various modifications and refinements without departing from the spirit and scope of the present invention. Therefore, the scope of protection of this invention shall be determined by the claims.
Claims
1. A surface cleaning device for microfiber soft materials, characterized in that: It includes a support frame (100), a cleaning mechanism (200) mounted on the surface of the support frame (100), and an air blowing assembly (300) mounted on the lower end of the support frame (100). The cleaning mechanism (200) includes a cleaning tank (210) fixed to the support frame (100), a liquid replenishment component (220) located on the front of the support frame (100), an ultrasonic transducer (230) installed in the inner cavity of the cleaning tank (210), a support roller (240) installed in the inner cavity of the cleaning tank (210) for supporting the microfiber soft synthetic leather, a drain pipe (250) installed at the bottom of the cleaning tank (210) for draining sewage, and a guide frame (260) installed at one end of the cleaning tank (210). The air blowing assembly (300) includes a blower (310), an air blowing pipe (320) located in the inner cavity of the guide frame (260), a nozzle (330) communicating with the air blowing pipe (320), an aeration pipe (340) fixed to the bottom of the inner cavity of the cleaning tank (210), an aeration head (350) located on the surface of the aeration pipe (340), and a connecting pipe (360) communicating with the aeration pipe (340) and the air blowing pipe (320).
2. The surface cleaning device for microfiber soft materials as described in claim 1, characterized in that: Several ultrasonic transducers (230) are provided, and they are evenly distributed on the front and back sides of the inner cavity of the cleaning tank (210).
3. The surface cleaning device for microfiber soft materials as described in claim 1, characterized in that: The bottom of the cleaning tank (210) is conical, one end of the drain pipe (250) is connected to the inner cavity of the cleaning tank (210), and the other end of the drain pipe (250) is equipped with a drain solenoid valve.
4. The surface cleaning device for microfiber soft materials as described in claim 1, characterized in that: The replenishment component (220) includes a cleaning agent tank (221), a delivery pump (222) fixed to the support frame (100), a diversion pipe (223) fixed to the upper end of the inner cavity of the cleaning tank (210), a spray head (224) connected to the bottom of the diversion pipe (223), and a delivery pipe (225) connected to the outlet of the delivery pump (222).
5. The surface cleaning device for microfiber soft materials as described in claim 4, characterized in that: One end of the delivery pipe (225) is connected to the outlet of the delivery pump (222), the other end of the delivery pipe (225) is connected to the inner cavity of the diversion pipe (223), and the inlet of the delivery pump (222) is connected to the inner cavity of the cleaning agent tank (221).
6. The surface cleaning device for microfiber soft materials as described in claim 1, characterized in that: The blower (310) is fixed to the inner cavity of the support frame (100), the air blowing pipe (320) is fixed to the upper end of the inner cavity of the guide frame (260), and the nozzle (330) is located at the lower end of the surface of the air blowing pipe (320).
7. The surface cleaning device for microfiber soft materials as described in claim 1, characterized in that: One end of the connecting pipe (360) is connected to the outlet of the blower (310), and the other end of the connecting pipe (360) is connected to the air blowing pipe (320) and the aeration pipe (340) respectively. A regulating solenoid valve is provided at the connection between the connecting pipe (360) and the air blowing pipe (320) and the aeration pipe (340).