Cashmere and wool fabric combined processing device and use method thereof

Through the combined treatment method of ultrasonic vibration, hot air preheating and spraying adhesive, the problem of insufficient bonding force during the composite process of cashmere wool fabric is solved, and efficient bonding effect and tight fusion of the fabric is achieved, improving the durability and peel resistance of the fabric.

CN120363587APending Publication Date: 2025-07-25SHANGHAI GAOFAN TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202510840398.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-23
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

During the hot pressing and composite processing device of existing cashmere wool fabric, the bonding force between wool cashmere and the base fabric is insufficient, resulting in low durability and peel resistance of the composite fabric, and poor adhesion between the adhesive and the fabric.

Method used

The combined treatment method of ultrasonic vibration, hot air preheating and spraying adhesive is adopted. The fabric molecules are rapidly vibrated and frictionally generated by ultrasonic high-frequency vibration. The fabric is preheated with the hot air component, and the spraying component is sprayed with adhesive, and the fabric is restored by mechanically typing and slapping components.

Benefits of technology

It improves the bonding power between wool cashmere and base fabric, enhances the contact between the adhesive and the fabric, promotes the close integration of the two, and improves the durability and anti-peel performance of the fabric.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention relates to a cashmere and wool fabric composite processing device and a using method thereof, and relates to the technical field of fabric production.The cashmere and wool fabric composite processing device comprises two symmetrically-distributed rack supporting plates and two rotating cylinder assemblies arranged between the two rack supporting plates in an up-down rotating mode, and the two layers of cashmere and wool fabric are wound around the corresponding rotating cylinder assemblies respectively; a driving mechanism used for driving the two rotating drum assemblies to rotate is arranged on the end face of the machine frame supporting plate. A hot air assembly which is inserted into the rotary drum assembly and rotates along with the rotary drum assembly is arranged at the end part of the rotary drum assembly; and a spraying assembly which is used for spraying an adhesive to the inner side of the fabric, is inserted into the rotary drum assembly and rotates along with the rotary drum assembly is arranged at the other end part of the rotary drum assembly. Ultrasonic high-frequency vibration, hot air preheating and adhesive spraying are adopted, the fabric before hot pressing is pretreated, and the hot pressing binding force of the fabric is improved.
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Description

Technical Field

[0001] The invention belongs to the technical field of fabric production, and specifically relates to a cashmere wool fabric composite processing device and a use method thereof. Background Art

[0002] Cashmere wool fabric is a fabric made of cashmere and wool blended or cashmere alone. In the process of cashmere wool fabric compounding, hot pressing compounding technology is generally used to press wool cashmere and base fabric together under high temperature and high pressure conditions. This process requires strict control of parameters such as temperature, pressure and time to ensure the firmness and stability of the composite fabric.

[0003] However, the existing composite processing hot pressing device only relies on a pressing plate to composite the base fabric with wool and cashmere, resulting in insufficient bonding between the wool and cashmere and the base fabric, and low durability and anti-peeling performance of the composite fabric; even if the existing composite processing device sprays corresponding adhesives on the fabrics before hot pressing to improve the pressing effect, the adhesion between the adhesive and the fabric is poor.

[0004] To this end, we provide a cashmere wool fabric composite processing device and a use method thereof to solve the above-mentioned problems. Summary of the invention

[0005] The purpose of the present invention is to provide a cashmere wool fabric composite processing device and a use method thereof in view of the problems of the background technology.

[0006] The present invention achieves the above-mentioned purpose through the following technical solutions: A cashmere and wool fabric composite processing device comprises two symmetrically distributed frame support plates and two rotating drum assemblies arranged between the two frame support plates, one up and one down, wherein two layers of cashmere and wool fabric are respectively wound around the corresponding rotating drum assemblies, and a driving mechanism for driving the two rotating drum assemblies to rotate is arranged on the end surfaces of the frame support plates; a hot air assembly is arranged at the end of the rotating drum assembly, which is inserted into the rotating drum assembly and rotates with the rotating drum assembly; a spraying assembly is arranged at the other end of the rotating drum assembly, which is used for spraying adhesive onto the inner side of the fabric and is inserted into the rotating drum assembly and rotates with the rotating drum assembly.

[0007] The rotating drum assembly includes an outer drum body rotatably arranged between two frame support plates, an inner drum body fixedly arranged in the outer drum body and coaxially therewith, and an ultrasonic vibration generator fixedly arranged in the inner drum body and coaxially therewith; a plurality of fan-shaped frames for transmitting vibrations, which are evenly distributed along the circumference and abut against the ultrasonic vibration generator, are movably penetrated on the surface of the inner drum body, and a plurality of vibration plates, which are evenly distributed along the circumference and abut against the fan-shaped frames, are movably penetrated on the surface of the outer drum body and are used for ultrasonic vibration processing and pulling away the surface of the fabric.

[0008] As a further optimization solution of the present invention, a plurality of first springs which are equally spaced and fixedly connected to the inner cylinder are fixedly provided on both sides of the sector frame; a positioning groove which is inserted and matched with the vibrating plate is provided on the arc surface of the sector frame.

[0009] As a further optimization solution of the present invention, a plurality of second springs which are equally spaced and fixedly connected to the outer cylinder are fixedly provided on both sides of the vibrating plate; a wind groove for spraying hot air and adhesive is provided on the end surface of the vibrating plate in contact with the fabric, and a plurality of equally spaced teeth are provided on both sides of the wind groove.

[0010] As a further optimization solution of the present invention, the driving mechanism includes a first gear ring and a second gear ring which are respectively fixedly sleeved on the upper and lower outer cylinders; a first gear which meshes with the first gear ring and is rotatably arranged on the frame support plate is provided on the side of the first gear ring, a second gear which meshes with the second gear ring and is rotatably arranged on the frame support plate is provided on the side of the second gear ring, the first gear meshes with the second gear, and a motor for driving the first gear to rotate is fixedly provided on the frame support plate.

[0011] As a further optimization solution of the present invention, the hot air assembly includes a first rotary joint fixedly provided on the frame and a first multi-way connector rotatably arranged on the side of the first rotary joint; a plurality of hot air pipes which are evenly distributed along the circumference and inserted into the wind groove are provided on the surface of the first multi-way connector.

[0012] As a further optimization solution of the present invention, the spraying assembly includes a second rotary joint and a second multi-way connector rotatably arranged on the side of the second rotary joint; a plurality of spraying main pipes which are evenly distributed along the circumference and inserted into the wind groove are provided on the surface of the second multi-way connector, and a plurality of equally spaced spraying branch pipes are provided on the spraying main pipes.

[0013] As a further optimization solution of the present invention, a first reciprocating mechanism for driving the spraying assembly to reciprocate axially along the rotating cylinder assembly is provided on the end surface of the frame support plate at the spraying assembly, and the rotating cylinder assembly drives the first reciprocating mechanism to move; the first reciprocating mechanism includes a third gear ring fixedly sleeved on the outer cylinder and a third gear located on the side of the third gear ring and meshing with it; a first connecting rod is hinged at the edge of the third gear, a slider is hinged at the end of the first connecting rod, a first guide rail which is slidably matched with the slider is fixedly provided on the frame support plate on the side of the slider, and a connecting plate is fixedly provided between the slider and the second rotary joint.

[0014] As a further optimization scheme of the present invention, it also includes a hot press box located on the side of the rotating drum assembly, wherein two flapping assemblies are respectively located on both sides of the fabric, and a second reciprocating mechanism is provided on the side of the hot press box for driving the flapping assembly to reciprocate and is hinged with the driving mechanism; the flapping assembly includes a mounting cylinder rotatably arranged in the hot press box and a plurality of rubber rods evenly spaced on the mounting cylinder, the mounting cylinder is also provided with a plurality of air outlet holes evenly spaced, and a hot air input pipe connected to the air outlet is provided at the end of the mounting cylinder.

[0015] As a further optimization scheme of the present invention, the second reciprocating mechanism includes a fourth gear fixedly arranged at the end of the mounting cylinder and a rack located on the side of the fourth gear and meshing with the fourth gear; a second guide rail slidingly matched with the rack is fixedly arranged on the hot press box on the side of the rack, and a second connecting rod is hingedly arranged at the end of the rack, and the other end of the second connecting rod is hinged at the edge of the first gear.

[0016] A method for using a cashmere wool fabric composite processing device comprises the following steps: S1: Start the ultrasonic vibration generator, which emits high-frequency vibration, which is transmitted to multiple vibration plates through the fan-shaped frame, and the inner layer of the fabric is ultrasonically vibrated by the multiple vibration plates. At the same time, the two rotating drum assemblies are driven to rotate by the driving mechanism, so that the vibration plates move the inner layer of the fabric while vibrating; S2: While the vibration plate is ultrasonically vibrating the fabric, hot air is delivered to the wind slot through the hot air assembly to blow the inner layer of the fabric, and the adhesive is sprayed through the spray assembly. During the spraying process, the drum assembly drives the first reciprocating mechanism to move, and the first reciprocating mechanism drives the spray assembly to reciprocate along the axial direction of the drum assembly, so as to improve the spraying uniformity of the adhesive; S3: After the fabric pretreatment is completed, the two layers of fabric are pressed together through a hot press; S4: After the pressing is completed, the drum assembly rotates, driving the second reciprocating mechanism to move, and the second reciprocating mechanism drives the beating assembly to beat the fabric and blow hot air to accelerate the drying speed and restore the fluffiness of the fabric.

[0017] The beneficial effects of the present invention are: 1. The present invention sets an ultrasonic vibration generator, a fan-shaped frame and a vibration plate, and adopts ultrasonic high-frequency vibration to make the contact points between the fabric molecules and the drum assembly vibrate and rub rapidly, generate local heat energy, and quickly heat up the fabric. At the same time, the surface layer of the fabric is mechanically moved to disperse the fibers, enhance the bonding force, and achieve an efficient bonding effect.

[0018] 2. By providing a hot air component and a spraying component, the present invention preheats the fabric and sprays an adhesive, improving the subsequent hot pressing effect. Moreover, after being ultrasonically vibrated, the hot air and the adhesive can be more dispersed and have better contact with the fabric.

[0019] 3. By providing a patting component and a second reciprocating mechanism, the present invention mechanically pats the fabric to restore its fluffiness. At the same time, the fabric is blown by hot air to further promote the fusion between the wool and cashmere layer and the base fabric, making the combination of the two more compact. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 is a three-dimensional schematic diagram of the overall structure of the present invention Figure 1 ; Figure 2 is a three-dimensional schematic diagram of the overall structure of the present invention Figure 2 ; Figure 3 is a front sectional view of the overall structure of the present invention; Figure 4 is an exploded structure schematic diagram of the rotating cylinder component of the present invention; Figure 5 is of the present invention Figure 4 enlarged view of the structure at A in Figure 6 is a schematic diagram of the driving mechanism of the present invention; Figure 7 is a schematic diagram of the hot air component of the present invention; Figure 8 is a schematic diagram of the spraying component and the first reciprocating mechanism of the present invention; Figure 9 is a schematic diagram of the patting component and the second reciprocating mechanism of the present invention.

[0021] In the figure: 1. Rack support plate; 2. Drum assembly; 201. Outer cylinder; 202. Inner cylinder; 203. Ultrasonic vibration generator; 204. Fan-shaped frame; 204a. First spring; 204b. Positioning groove; 205. Vibration plate; 205a. Second spring; 205b. Wind groove; 205c. Gear shifter; 3. Driving mechanism; 301. First gear ring; 302. Second gear ring; 303. First gear; 304. Second gear; 305. Motor; 4. Hot air assembly; 401. First rotary joint; 402. First multi-way connector; 403. Hot air pipe; 5. Spraying assembly; 501, second rotary joint; 502, second multi-way connector; 503, spraying main pipe; 504, spraying branch pipe; 6, first reciprocating mechanism; 601, third gear ring; 602, third gear; 603, first connecting rod; 604, slider; 605, first guide rail; 606, connecting plate; 7, hot press box; 8, beating assembly; 801, mounting tube; 802, rubber rod; 803, air outlet; 804, hot air input pipe; 9, second reciprocating mechanism; 901, second connecting rod; 902, rack; 903, second guide rail; 904, fourth gear. DETAILED DESCRIPTION

[0022] The present application is further described in detail below in conjunction with the accompanying drawings. It is necessary to point out here that the following specific implementation methods are only used to further illustrate the present application and cannot be understood as limiting the scope of protection of the present application. Technical personnel in this field can make some non-essential improvements and adjustments to the present application based on the above application content.

[0023] Embodiment 1 In order to solve the problem that the existing fabric composite processing device uses hot pressing composite technology to composite wool and cashmere with basic fabrics, the composite fabrics have low durability and anti-peeling performance due to insufficient bonding strength between wool and cashmere and basic fabrics, and only rely on hot pressing plates for composite processing. Figure 1 , Figure 3 The present invention provides a cashmere wool fabric composite processing device, comprising two symmetrically distributed frame support plates 1 and two drum assemblies 2 that are arranged between the two frame support plates 1 and rotate one up and one down. The two layers of cashmere wool fabric are respectively wound on the corresponding drum assemblies 2. The end surface of the frame support plate 1 is provided with a driving mechanism 3 for driving the two drum assemblies 2 to rotate; and also includes a hot press box 7 located on the side of the drum assembly 2. The ultrasonic device in the drum assembly 2 emits high-frequency vibration, so that the contact points between the fabric molecules and the drum assembly 2 are rapidly vibrated and rubbed, generating local heat energy, causing the fabric to heat up rapidly, and at the same time, the surface layer of the fabric is mechanically moved to disperse its fibers, enhance the bonding force, and achieve an efficient bonding effect.

[0024] like Figures 4 - 5As shown, the drum assembly 2 includes an outer drum 201 rotatably arranged between two frame support plates 1, an inner drum 202 fixedly arranged in the outer drum 201 and coaxially therewith, and an ultrasonic vibration generator 203 fixedly arranged in the inner drum 202 and coaxially therewith; a plurality of fan-shaped frames 204 for transmitting vibrations, which are evenly distributed along the circumference and abut against the ultrasonic vibration generator 203, are movably penetrated on the surface of the inner drum 202, and a plurality of first springs 204a, which are evenly distributed and fixedly connected to the inner drum 202, are fixedly arranged on both sides of the fan-shaped frames 204; a plurality of first springs 204a, which are evenly distributed and fixedly connected to the inner drum 202, are movably penetrated on the surface of the outer drum 201. A plurality of vibration plates 205 are evenly distributed along the circumference and abutted against the fan-shaped frame 204 for ultrasonically vibrating and pushing away the surface of the fabric. A plurality of second springs 205a, which are evenly distributed and fixedly connected to the outer cylinder 201, are fixedly provided on both sides of the vibration plate 205. A positioning groove 204b, which is plugged into and cooperates with the vibration plate 205, is provided on the arc surface of the fan-shaped frame 204. The outer end of the vibration plate 205 abuts against the fabric. A wind groove 205b for spraying hot air and adhesive is provided on the end surface of the vibration plate 205 abutting against the fabric. A plurality of evenly distributed pushing teeth 205c are provided on both sides of the wind groove 205b.

[0025] When in use, the ultrasonic vibration generator 203 emits high-frequency vibration and transmits it to the surrounding fan-shaped frame 204. The fan-shaped frame 204 then transmits the vibration to the surrounding vibration plate 205. The end of the vibration plate 205 causes the fabric molecules to vibrate and rub rapidly at the contact point. The heat energy generated improves the subsequent hot pressing effect. At the same time, the driving mechanism 3 drives the vibration plate 205 to rotate, and mechanically moves the fabric through the teeth 205c to disperse the fibers, thereby improving the spraying effect and preheating effect of the adhesive; the fan-shaped frame 204 has an amplifying effect, so that the ultrasonic vibration generator 203 can drive more vibration plates 205 to vibrate, thereby increasing the contact area between the fabric and the vibration plate 205.

[0026] like Figure 6 As shown, the driving mechanism 3 includes a first gear ring 301 and a second gear ring 302 which are respectively fixedly mounted on the upper and lower outer cylinders 201; a first gear 303 meshing with and rotating with the first gear ring 301 is provided on the side of the first gear ring 301, and a second gear 304 meshing with and rotating with the second gear ring 302 is provided on the side of the second gear ring 302, and the first gear 303 meshes with the second gear 304, and a motor 305 for driving the first gear 303 to rotate is fixed on the frame support plate 1. When in use, the motor 305 is started, the motor 305 drives the first gear 303 to rotate, the first gear 303 drives the second gear 304 and the first gear ring 301 to rotate, the second gear 304 drives the second gear ring 302 to rotate, and the first gear ring 301 and the second gear ring 302 respectively drive their respective outer cylinders 201 to rotate.

[0027] Embodiment 2 On the basis of the first embodiment, in order to further improve the bonding force after hot pressing of the fabric and enhance the pretreatment effect before hot pressing of the fabric, for example Figures 1 - 2 As shown, at the end of the rotary drum assembly 2, there is a hot air assembly 4 inserted into the rotary drum assembly 2 and rotating with the rotary drum assembly 2; at the other end of the rotary drum assembly 2, there is a spraying assembly 5 for spraying adhesive onto the inner side of the fabric, inserted into the rotary drum assembly 2 and rotating with the rotary drum assembly 2. On the end face of the frame support plate 1 at the spraying assembly 5, there is a first reciprocating mechanism 6 for driving the spraying assembly 5 to reciprocate axially along the rotary drum assembly 2, and the rotary drum assembly 2 drives the first reciprocating mechanism 6 to move. The fabric is preheated by the hot air assembly 4. After the fabric undergoes ultrasonic vibration treatment and mechanical agitation by the rotary drum assembly 2, it can come into more sufficient contact with the hot air. The adhesive is sprayed onto the fabric by the spraying assembly 5, and after ultrasonic treatment, the adhesive can be more dispersed and has better adhesion to the fabric.

[0028] For example Figure 7 As shown, the hot air assembly 4 includes a first rotary joint 401 fixedly arranged on the frame and a first multi-way connector 402 rotatably arranged on the side of the first rotary joint 401; on the surface of the first multi-way connector 402, there are a plurality of hot air pipes 403 evenly distributed along the circumference and inserted into the air groove 205b. External hot air enters the first multi-way connector 402 through the first rotary joint 401, is distributed by the first multi-way connector 402 and then enters each hot air pipe 403, and then enters the air groove 205b through the hot air pipe 403 to blow and preheat the fabric.

[0029] For example Figure 8 As shown, the spraying assembly 5 includes a second rotary joint 501 and a second multi-way connector 502 rotatably arranged on the side of the second rotary joint 501; on the surface of the second multi-way connector 502, there are a plurality of spraying main pipes 503 evenly distributed along the circumference and inserted into the air groove 205b, and a plurality of spraying branch pipes 504 are arranged at equal intervals on the spraying main pipes 503. The adhesive enters the second multi-way connector 502 through the second rotary joint 501, is distributed by the second multi-way connector 502 and then enters each spraying main pipe 503, and then enters the spraying branch pipes 504 through the spraying main pipes 503 to spray the adhesive onto the fabric.

[0030] The first reciprocating mechanism 6 includes a third gear ring 601 fixedly sleeved on the outer cylinder 201 and a third gear 602 located on the side of the third gear ring 601 and meshing with it. Both the third gear ring 601 and the third gear 602 can be set as 45-degree helical gears. A first connecting rod 603 is hinged at the edge of the third gear 602, and a slider 604 is hinged at the end of the first connecting rod 603. A first guide rail 605 slidably matched with the slider 604 is fixedly arranged on the frame support plate 1 on the side of the slider 604. A connecting plate 606 is fixedly arranged between the slider 604 and the second rotary joint 501. During the rotation of the outer cylinder 201, the third gear ring 601 is driven to rotate. The third gear ring 601 drives the third gear 602 to rotate. The third gear 602 drives the slider 604 to reciprocate along the first guide rail 605 through the first connecting rod 603. The slider 604 drives the second rotary joint 501 to reciprocate through the connecting plate 606. The reciprocating motion drives the entire spraying assembly 5 to reciprocate, so that the spraying branch pipe 504 can spray each part of the fabric, greatly improving the spraying uniformity.

[0031] Embodiment 3 On the basis of Embodiment 1 and Embodiment 2, in order to solve the problem that after hot pressing by the existing fabric hot pressing and compounding processing device, the fabric is difficult to quickly return to the fluffy state, affecting the fabric quality, as Figure 1 、 3 、as shown in Figure 9, two beating assemblies 8 are arranged on both sides of the fabric in the hot pressing box 7. A second reciprocating mechanism 9 for driving the beating assembly 8 to reciprocate and hinged to the driving mechanism 3 is arranged on the side surface of the hot pressing box 7.

[0032] The beating assembly 8 includes a mounting cylinder 801 rotatably arranged in the hot pressing box 7 and a plurality of rubber rods 802 equally spaced on the mounting cylinder 801. A plurality of air outlet holes 803 are also arranged on the mounting cylinder 801. A hot air input pipe 804 communicating with the air outlet holes 803 is arranged at the end of the mounting cylinder 801. The second reciprocating mechanism 9 includes a fourth gear 904 fixedly arranged at the end of the mounting cylinder 801 and a rack 902 located on the side of the fourth gear 904 and meshing with it. A second guide rail 903 slidably matched with the rack 902 is fixedly arranged on the hot pressing box 7 on the side of the rack 902. A second connecting rod 901 is hinged at the end of the rack 902, and the other end of the second connecting rod 901 is hinged at the edge of the first gear 303.

[0033] During use, the first gear 303 drives the rack 902 to reciprocate along the second guide rail 903 through the second connecting rod 901 during rotation. The rack 902 drives the fourth gear 904 to rotate forward and backward continuously. The fourth gear 904 drives the mounting cylinder 801 to rotate forward and backward continuously. The mounting cylinder 801 drives the rubber rod 802 to beat the fabric, restoring the fluffiness of the fabric. At the same time, hot air is ejected from the air outlet 803 to blow the fabric, further promoting the fusion between the wool and cashmere layer and the base fabric, making the combination of the two closer.

[0034] The present invention also provides a method for using a composite processing device for cashmere and wool fabrics, including the following steps: S1: Start the ultrasonic vibration generator 203. The ultrasonic vibration generator 203 emits high-frequency vibrations, which are transmitted to a plurality of vibrating plates 205 through the sector frame 204. The inner layer of the fabric is subjected to ultrasonic vibration treatment through the plurality of vibrating plates 205. At the same time, the driving mechanism 3 drives the two rotating cylinder assemblies 2 to rotate, so that the vibrating plates 205 stir the inner layer of the fabric while vibrating; S2: While the vibrating plates 205 perform ultrasonic vibration treatment on the fabric, hot air is conveyed to the air groove 205b through the hot air component 4 to perform hot air blowing treatment on the inner layer of the fabric. The adhesive is sprayed through the spraying component 5. During the spraying process, the rotating cylinder assembly 2 drives the first reciprocating mechanism 6 to move. The first reciprocating mechanism 6 drives the spraying component 5 to reciprocate axially along the rotating cylinder assembly 2, thereby improving the spraying uniformity of the adhesive; S3: After the fabric pretreatment is completed, the two layers of fabric are pressed together through the hot pressing box 7; S4: After the pressing is completed, while the rotating cylinder assembly 2 rotates, it drives the second reciprocating mechanism 9 to move. The second reciprocating mechanism 9 drives the beating component 8 to beat the fabric and blow hot air, accelerating the drying speed and restoring the fluffiness of the fabric.

[0035] The above embodiments only represent one implementation mode of the present invention. The description is relatively specific and detailed, but it should not be construed as a limitation on the scope of the present invention patent. It should be noted that for those of ordinary skill in the art, without departing from the concept of the present invention, several modifications and improvements can still be made, and these all belong to the protection scope of the present invention.

Claims

1. A composite processing device for cashmere and wool fabrics, comprising two symmetrically distributed frame support plates (1) and two rotating cylinder assemblies (2) rotatably arranged one above the other between the two frame support plates (1), characterized in that: The two layers of cashmere and wool fabric are respectively wound around the corresponding rotating drum assemblies (2), and a driving mechanism (3) for driving the two rotating drum assemblies (2) to rotate is provided on the end surface of the frame support plate (1); A hot air assembly (4) is provided at the end of the rotating drum assembly (2) and is inserted into the rotating drum assembly (2) and rotates with the rotating drum assembly (2); a spraying assembly (5) is provided at the other end of the rotating drum assembly (2) and is used for spraying adhesive onto the inner side of the fabric and is inserted into the rotating drum assembly (2) and rotates with the rotating drum assembly (2); The rotary drum assembly (2) comprises an outer drum body (201) rotatably arranged between two frame support plates (1), an inner drum body (202) fixedly arranged in the outer drum body (201) and coaxial therewith, and an ultrasonic vibration generator (203) fixedly arranged in the inner drum body (202) and coaxial therewith; A plurality of fan-shaped frames (204) for transmitting vibrations, which are evenly distributed along the circumference and abut against the ultrasonic vibration generator (203), are movably provided on the surface of the inner cylinder (202); a plurality of vibration plates (205) for ultrasonic vibration treatment of the surface layer of the fabric and for removing the surface layer of the fabric, which are evenly distributed along the circumference and abut against the fan-shaped frames (204), are movably provided on the surface of the outer cylinder (201).

2. The composite processing device for cashmere and wool fabrics according to claim 1, characterized in that: A plurality of first springs (204a) are fixedly provided on both sides of the fan-shaped frame (204) and are distributed at equal intervals and fixedly connected to the inner cylinder (202); A positioning groove (204b) for plugging and cooperating with the vibration plate (205) is provided on the arc surface of the fan-shaped frame (204).

3. The composite processing device for cashmere and wool fabrics according to claim 2, characterized in that: A plurality of second springs (205a) are fixedly provided on both sides of the vibration plate (205) and are distributed at equal intervals and fixedly connected to the outer cylinder (201); An air slot (205b) for ejecting hot air and adhesive is provided on the end surface of the vibration plate (205) abutting against the fabric, and a plurality of equally spaced teeth (205c) are provided on both sides of the air slot (205b).

4. A composite processing device for cashmere and wool fabrics according to claim 1, characterized in that: The driving mechanism (3) comprises a first gear ring (301) and a second gear ring (302) which are respectively fixedly mounted on the upper and lower outer cylinders (201); A first gear (303) meshing with and rotatably disposed on the frame support plate (1) is provided on the side of the first gear ring (301); a second gear (304) meshing with and rotatably disposed on the frame support plate (1) is provided on the side of the second gear ring (302); the first gear (303) meshes with the second gear (304); and a motor (305) for driving the first gear (303) to rotate is fixedly provided on the frame support plate (1).

5. A cashmere and wool fabric composite processing device according to claim 3, characterized in that: The hot air assembly (4) comprises a first rotating joint (401) fixedly arranged on a frame, and a first multi-way connecting piece (402) rotatably arranged on the side of the first rotating joint (401); A plurality of hot air pipes (403) are provided on the surface of the first multi-way connector (402) and are evenly distributed along the circumference and inserted into the air slot (205b).

6. The composite processing device for cashmere and wool fabrics according to claim 3, characterized in that: The spraying assembly (5) comprises a second rotary joint (501) and a second multi-way connection piece (502) rotatably arranged on the side of the second rotary joint (501); A plurality of spray main pipes (503) evenly distributed along the circumference and inserted into the air slot (205b) are provided on the surface of the second multi-way connector (502), and a plurality of spray branch pipes (504) evenly distributed at intervals are provided on the spray main pipe (503).

7. The composite processing device for cashmere and wool fabrics according to claim 6, characterized in that: A first reciprocating mechanism (6) is provided on the end surface of the frame support plate (1) at the spray assembly (5) for driving the spray assembly (5) to reciprocate along the axial direction of the drum assembly (2), and the drum assembly (2) drives the first reciprocating mechanism (6) to move; The first reciprocating mechanism (6) comprises a third gear ring (601) fixedly sleeved on the outer cylinder (201) and a third gear (602) located on the side of the third gear ring (601) and meshing with the third gear ring (601); A first connecting rod (603) is hingedly provided at the edge of the third gear (602), a slider (604) is hingedly provided at the end of the first connecting rod (603), a first guide rail (605) slidably matched with the slider (604) is fixedly provided on the frame support plate (1) on the side of the slider (604), and a connecting plate (606) is fixedly provided between the slider (604) and the second rotary joint (501).

8. A composite processing device for cashmere and wool fabrics according to claim 4, characterized in that: It also includes a hot press box (7) located on the side of the rotating drum assembly (2), wherein two beating assemblies (8) are provided in the hot press box (7) and are respectively located on both sides of the fabric, and a second reciprocating mechanism (9) is provided on the side of the hot press box (7) and is used to drive the beating assembly (8) to reciprocate and is hinged to the driving mechanism (3); The beating assembly (8) comprises a mounting tube (801) rotatably disposed in the hot press box (7) and a plurality of rubber rods (802) distributed at equal intervals on the mounting tube (801); the mounting tube (801) is also provided with a plurality of air outlet holes (803) distributed at equal intervals; and a hot air input pipe (804) connected to the air outlet holes (803) is provided at the end of the mounting tube (801).

9. The composite processing device for cashmere and wool fabrics according to claim 8, wherein: The second reciprocating mechanism (9) comprises a fourth gear (904) fixedly arranged at the end of the mounting cylinder (801) and a rack (902) located on the side of the fourth gear (904) and meshing with the fourth gear (904); A second guide rail (903) is fixedly provided on the hot press box (7) on the side of the rack (902) and is slidably matched with the rack (902). A second connecting rod (901) is hingedly provided at the end of the rack (902). The other end of the second connecting rod (901) is hingedly provided at the edge of the first gear (303).

10. A method for using the cashmere and wool fabric composite processing device according to any one of claims 1-9, characterized in that, The following steps are involved: S1: starting the ultrasonic vibration generator (203), the ultrasonic vibration generator (203) emits high-frequency vibration, which is transmitted to the plurality of vibration plates (205) via the fan-shaped frame (204), and the inner layer of the fabric is subjected to ultrasonic vibration treatment by the plurality of vibration plates (205). At the same time, the two rotating drum assemblies (2) are driven to rotate by the driving mechanism (3), so that the vibration plates (205) move the inner layer of the fabric while vibrating; S2: While the vibrating plate (205) ultrasonically vibrates the fabric, hot air is conveyed to the air trough (205b) through the hot air assembly (4) to blow the inner layer of the fabric with hot air. During the spraying process, the rotating cylinder assembly (2) drives the first reciprocating mechanism (6) to move, and the first reciprocating mechanism (6) drives the spraying assembly (5) to reciprocate axially along the rotating cylinder assembly (2), thereby improving the spraying uniformity of the adhesive; S3: After the fabric pretreatment is completed, the two layers of fabric are pressed together by the hot pressing box (7); S4: After the pressing is completed, while the rotating cylinder assembly (2) rotates, it drives the second reciprocating mechanism (9) to move, and the second reciprocating mechanism (9) drives the flapping assembly (8) to flap and blow hot air on the fabric, accelerating the drying speed and restoring the fluffiness of the fabric.