Hydrogen-generating film cloth processing equipment

By adjusting the height and limiting structure of the take-up roller mounting mechanism, the problems of misalignment and wrinkles caused by the inconsistency between the take-up roller and the output roller in the hydrogen-coated membrane fabric processing equipment were solved, realizing the equipment's flexible adaptability and high-quality winding, and improving the compatibility and efficiency of the production line.

CN223534516UActive Publication Date: 2025-11-11XIFANG NEW MATERIAL DEV (NANTONG) CO LTD
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Patent Information

Application Number
CN202423174210.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-23
Publication Date
2025-11-11
Estimated Expiration
2034-12-23

AI Technical Summary

Technical Problem

In existing hydrogen-generating membrane fabric processing equipment, the mounting mechanism of the take-up roller is fixed at a fixed height. When the take-up roller and the output roller are not on the same horizontal line, the membrane fabric is prone to shifting or wrinkling during transmission, which affects product quality. Furthermore, the equipment is difficult to adapt to different models or sizes of output equipment, reducing the compatibility and efficiency of the production line.

Method used

An adjustable take-up roller mounting mechanism was designed. Through a combination structure of slide rail, slide chute, connecting frame plate and motor drive, the horizontal consistency of the take-up roller and the output roller is achieved. An adjustable limit mechanism and a bidirectional screw system are adopted to adapt to the take-up requirements of different widths and heights. The motor operation is controlled by the control panel to achieve flexible adjustment of the take-up roller.

Benefits of technology

It effectively reduces the offset and wrinkles of the membrane fabric during transmission, improves product quality, enhances the versatility of the equipment and the flexibility of the production line, adapts to different models and specifications of fabric output equipment, and improves production efficiency.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model provides hydrogen generating film cloth processing equipment which comprises a winding table, a first sliding rail is arranged at the upper end of the winding table, a plurality of sliding groove frames are arranged at the upper end of the first sliding rail, a connecting frame plate is arranged between the interiors of the sliding groove frames in a sliding mode, and a plurality of mounting discs are rotationally arranged in the connecting frame plate through rotating columns. A first motor is arranged on the rear side of the connecting frame plate, an output shaft of the first motor is connected with the rear end of the rotating column on the rear side through a coupler, a height adjusting mechanism is arranged in the first sliding rail, and an adjustable limiting mechanism is arranged on the left side of the upper end of the winding table. According to the hydrogen-generating film cloth processing equipment, the height of the installation mechanism of the wind-up roll can be adjusted, and the problems of deviation, wrinkling and uneven tension of film cloth in the conveying process can be reduced by guaranteeing the horizontal consistency of the wind-up roll and the cloth outlet roll, so that the product quality is improved, and the production cost is reduced. And the device can better adapt to cloth discharging equipment of different models and specifications, and the universality of the equipment and the flexibility of a production line are improved.
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Description

Technical Field

[0001] This utility model belongs to the field of hydrogen-generating membrane fabric processing technology, and specifically relates to a hydrogen-generating membrane fabric processing equipment. Background Technology

[0002] Hydrogen-coated fabrics are believed to have antioxidant properties that can help combat free radical damage to skin cells. This can help reduce the appearance of fine lines and wrinkles, improve skin radiance and elasticity, and may provide some relief for inflammatory skin conditions such as acne or eczema.

[0003] Existing hydrogen-emitting membrane fabric processing equipment uses a take-up roller mounted on a rotating shaft and a rotating column driven by a motor to achieve the take-up processing of the hydrogen-emitting membrane fabric. However, the mounting mechanism for mounting the take-up roller has a fixed height and cannot maintain a horizontal alignment with the output roller of different equipment for take-up processing. When the take-up roller and the output roller are not on the same horizontal line, the membrane fabric will shift or wrinkle during transmission, affecting the quality of the final product. Furthermore, the fixed take-up height limits the flexibility of the equipment, making it difficult to adapt to different models or sizes of output equipment, thus reducing the compatibility and efficiency of the production line. Utility Model Content

[0004] In view of this, this utility model addresses the shortcomings of the prior art by providing a hydrogen-generating membrane fabric processing equipment. The height of the winding roller mounting mechanism is adjustable. By ensuring the horizontal consistency of the winding roller and the output roller, the problems of membrane fabric deviation, wrinkles, and uneven tension during transmission can be reduced, thereby improving product quality. It can also better adapt to different models and specifications of output equipment, improving the equipment's versatility and the production line's flexibility.

[0005] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows: a hydrogen-generating membrane fabric processing equipment, including a winding table, a slide rail at the upper end of the winding table, multiple sliding groove frames at the upper end of the slide rail, a connecting frame plate slidably arranged between the multiple sliding groove frames, multiple mounting discs rotatably arranged inside the connecting frame plate via a rotating column, a motor at the rear side of the connecting frame plate, the output shaft of the motor being connected to the rear end of the rotating column via a coupling, a height adjustment mechanism inside the slide rail, and an adjustable limit mechanism on the upper left side of the winding table. The degree adjustment mechanism includes multiple rotating frames slidably disposed inside the slide rail one. Each rotating frame has a connecting frame rotatably disposed inside. Multiple rotating seats are disposed at the lower end of the connecting frame plate. The multiple connecting frames are rotatably connected to the interior of adjacent rotating seats. A bidirectional lead screw one is rotatably disposed inside the slide rail one. Two rotating frames are threadedly connected to the front and rear corresponding ends of the bidirectional lead screw one. An electric drive unit one for driving the bidirectional lead screw one to rotate is disposed on the rear side of the slide rail one. The electric drive unit one includes a motor two disposed on the rear side of the slide rail one. The output shaft of the motor two is connected to the rear end of the bidirectional lead screw one through a coupling.

[0006] As a further improvement of this utility model, the adjustable limiting mechanism includes a slide plate disposed on the left side of the upper end of the winding table. A slide rail II is slidably disposed inside the slide plate. Two limiting frame plates are slidably disposed inside the slide rail II. The front and rear positions of the two limiting frame plates are corresponding. A bidirectional lead screw II is rotatably disposed inside the slide rail II. The two limiting frame plates are respectively threaded to the front and rear corresponding ends of the bidirectional lead screw II. The slide rail II and the connecting frame plate are connected by a connecting plate. An electric drive unit II for driving the bidirectional lead screw II to rotate is disposed on the rear side of the slide rail II. The electric drive unit II includes a motor III disposed on the rear side of the slide rail II. The output shaft of the motor III is connected to the rear end of the bidirectional lead screw II through a coupling.

[0007] As a further improvement of this utility model, a support mounting frame is provided at the lower end of the winding table. The winding table and the support mounting frame are fixed by welding. The support mounting frame has multiple mounting holes inside.

[0008] As a further improvement of this utility model, a control panel is provided on the front side of the winding table, and motors one, two and three are all electrically connected to the control panel.

[0009] Compared with the prior art, the beneficial effects of this utility model are as follows:

[0010] Firstly, by fixing the take-up roller between two mounting plates, the hydrogen-emitting membrane fabric to be wound is passed through the limiting frame plates on both sides and fixed on the take-up roller. Then, the motor is turned on by controlling the control panel, and the output shaft drives the take-up roller between the mounting plates on the rotating column to rotate, thereby quickly realizing the anti-displacement winding process of the hydrogen-emitting membrane fabric.

[0011] Secondly, the motor is turned on via the control panel. The output shaft drives the bidirectional lead screw to rotate, which can cause the limit frame plates on both sides to move closer or further apart. This allows it to adapt to the winding and processing of hydrogen-coated film fabrics of different widths, thus improving the flexibility of the winding and processing equipment.

[0012] Thirdly, the control panel activates motor 2, which in turn drives the bidirectional lead screw 1 to rotate. This causes the rotating frames on both sides to move closer or further apart, and the winding roller inside the connecting frame moves upward or downward under the constraint of the slide rail. The adjustable limit mechanism, also controlled by the connecting plate, moves upward or downward under the constraint of the slide rail, thus adjusting the winding height. The height of the winding roller's mounting mechanism is adjustable. By ensuring the horizontal consistency of the winding roller and the fabric output roller, issues such as fabric offset, wrinkles, and uneven tension during transmission can be reduced, thereby improving product quality. Furthermore, it better adapts to different models and specifications of fabric output equipment, enhancing the equipment's versatility and the production line's flexibility.

[0013] Fourth, the winding and processing equipment can be quickly fixed through the mounting holes inside the support frame, improving the stability of the winding and processing equipment and thus improving the winding quality of the hydrogen-coated membrane. Attached Figure Description

[0014] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments.

[0015] Figure 1 This is a schematic diagram of the structure of this utility model;

[0016] Figure 2 This is an enlarged structural diagram of point A in this utility model;

[0017] Figure 3 This is a schematic diagram of the right-side cross-sectional structure of the present invention;

[0018] Figure 4 This is a schematic diagram of the left-side cross-sectional structure of this utility model.

[0019] In the diagram: 101, winding table; 102, support mounting frame; 103, control panel; 104, motor one; 105, mounting plate; 106, connecting frame plate; 107, slide rail one; 108, slide rail frame; 109, connecting plate; 201, motor two; 202, rotating frame; 203, double-acting lead screw one; 204, connecting frame; 205, rotating seat; 301, motor three; 302, limiting frame plate; 303, slide rail two; 304, double-acting lead screw two; 305, slide rail plate. Detailed Implementation

[0020] To better understand this utility model, the following embodiments further illustrate its content, but the scope of protection of this utility model is not limited to the embodiments described below. Numerous specific details are set forth in the following description to provide a more thorough understanding of this utility model. However, it will be apparent to those skilled in the art that this utility model can be practiced without one or more of these details.

[0021] like Figure 1 , 4 As shown, a hydrogen-generating membrane fabric processing device includes a winding table 101. A slide rail 107 is provided at the upper end of the winding table 101. Multiple sliding groove frames 108 are provided at the upper end of the slide rail 107. A connecting frame plate 106 is slidably arranged between the multiple sliding groove frames 108. Multiple mounting discs 105 are rotatably arranged inside the connecting frame plate 106 via a rotating column. A motor 104 is provided at the rear side of the connecting frame plate 106. The output shaft of the motor 104 is connected to the rear end of the rotating column via a coupling. A height adjustment mechanism is provided inside the slide rail 107. An adjustable limiting mechanism is provided on the upper left side of the winding table 101. The adjustable limiting mechanism includes components installed on the winding table 101. 01 The upper left side of the slide plate 305 has a slide rail 303 slidably arranged inside the slide rail 305. The slide rail 303 has two limiting frame plates 302 slidably arranged inside the slide rail 303. The slide rail 303 has a double lead screw 304 rotatably arranged inside the slide rail 303. The two limiting frame plates 302 are respectively threaded to the front and rear corresponding ends of the double lead screw 304. The slide rail 303 and the connecting frame plate 106 are connected by a connecting plate 109. The rear side of the slide rail 303 is provided with an electric drive unit 2 for driving the double lead screw 304 to rotate. The electric drive unit 2 includes a motor 301 located on the rear side of the slide rail 303. The output shaft of the motor 301 is connected to the rear end of the double lead screw 304 through a coupling.

[0022] like Figure 2 , 3 As shown, the height adjustment mechanism includes multiple rotating frames 202 slidably disposed inside the slide rail 107. Each of the multiple rotating frames 202 has a connecting frame 204 rotatably disposed inside. The lower end of the connecting frame plate 106 is provided with multiple rotating seats 205. The multiple connecting frames 204 are rotatably connected to the interior of adjacent rotating seats 205 respectively. A bidirectional lead screw 203 is rotatably disposed inside the slide rail 107. The two rotating frames 202 are threadedly connected to the front and rear corresponding ends of the bidirectional lead screw 203 respectively. An electric drive unit 1 for driving the bidirectional lead screw 203 to rotate is disposed on the rear side of the slide rail 107. The electric drive unit 1 includes a motor 201 disposed on the rear side of the slide rail 107. The output shaft of the motor 201 is connected to the rear end of the bidirectional lead screw 203 through a coupling.

[0023] like Figure 1As shown, a control panel 103 is provided on the front side of the winding table 101, and motors 104, 201 and 301 are all electrically connected to the control panel 103.

[0024] First, the take-up roller is fixed between the two mounting plates. Then, the hydrogen-emitting membrane fabric to be rolled up is passed through the limit frame plates 302 on both sides and fixed on the take-up roller. Next, the motor 104 is turned on by the control panel 103. The output shaft drives the take-up roller between the mounting plates 105 on the rotating column to rotate, thereby realizing the anti-displacement winding process of the hydrogen-emitting membrane fabric.

[0025] The motor 301 is turned on by the control panel 103. The output shaft drives the bidirectional lead screw 304 to rotate, which can drive the limit frame plates 302 on both sides to move closer or further apart, thus adapting to the winding and processing of hydrogen-generating film cloth of different widths.

[0026] The motor 201 can also be turned on via the control panel 103. The output shaft drives the bidirectional lead screw 203 to rotate, which causes the rotating frames 202 on both sides to move closer or further apart. This causes the winding roller inside the connecting frame plate 106 to move up or down under the restriction of the slide frame 108. The adjustable limit mechanism is also driven to move up or down under the restriction of the slide plate 305 via the connecting plate 109, thereby achieving the adjustment of the winding processing height.

[0027] According to another embodiment of the present invention, such as Figure 1 As shown, a support mounting frame 102 is provided at the lower end of the winding table 101. The support mounting frame 102 has multiple mounting holes inside, which are located at the four corners of the support mounting frame 102. The winding processing equipment can be quickly fixed through the mounting holes inside the support mounting frame 102, thereby improving the stability of the winding processing equipment.

[0028] Finally, it should be noted that the above embodiments are only used to illustrate the technical solution of this utility model and not to limit it. Other modifications or equivalent substitutions made by those skilled in the art to the technical solution of this utility model, as long as they do not depart from the spirit and scope of the technical solution of this utility model, should be covered within the scope of the claims of this utility model.

Claims

1. A hydrogen-generating membrane fabric processing device, comprising a winding table (101), characterized in that: The upper end of the winding table (101) is provided with a slide rail (107), and the upper end of the slide rail (107) is provided with multiple slide rail frames (108). A connecting frame plate (106) is slidably arranged between the multiple slide rail frames (108). Multiple mounting plates (105) are rotatably arranged inside the connecting frame plate (106) through a rotating column. A motor (104) is provided on the rear side of the connecting frame plate (106). The output shaft of the motor (104) is connected to the rear end of the rotating column on the rear side through a coupling. The slide rail (107) is provided with a height adjustment mechanism. An adjustable limiting mechanism is provided on the upper left side of the winding table (101).

2. The hydrogen-generating membrane fabric processing equipment as described in claim 1, characterized in that: The height adjustment mechanism includes multiple rotating frames (202) slidably disposed inside the slide rail (107). Each of the multiple rotating frames (202) has a connecting frame (204) rotatably disposed inside. The lower end of the connecting frame plate (106) is provided with multiple rotating seats (205). The multiple connecting frames (204) are rotatably connected to the interior of the adjacent rotating seats (205). A bidirectional lead screw (203) is rotatably disposed inside the slide rail (107). The two rotating frames (202) are threadedly connected to the front and rear corresponding ends of the bidirectional lead screw (203). An electric drive unit is provided on the rear side of the slide rail (107) to drive the bidirectional lead screw (203) to rotate.

3. The hydrogen-generating membrane fabric processing equipment as described in claim 2, characterized in that: The electric drive unit includes a second motor (201) located on the rear side of the slide rail (107). The output shaft of the second motor (201) is connected to the rear end of the double lead screw through a coupling.

4. The hydrogen-generating membrane fabric processing equipment as described in claim 3, characterized in that: The adjustable limiting mechanism includes a slide plate (305) disposed on the upper left side of the winding table (101). A slide rail (303) is slidably disposed inside the slide plate (305). Two limiting frame plates (302) are slidably disposed inside the slide rail (303). A bidirectional lead screw (304) is rotatably disposed inside the slide rail (303). The two limiting frame plates (302) are threadedly connected to the front and rear corresponding ends of the bidirectional lead screw (304) respectively. The slide rail (303) and the connecting frame plate (106) are connected by a connecting plate (109). An electric drive unit (2) for driving the bidirectional lead screw (304) to rotate is disposed on the rear side of the slide rail (303).

5. The hydrogen-generating membrane fabric processing equipment as described in claim 4, characterized in that: The electric drive unit 2 includes a motor 3 (301) located on the rear side of the slide rail 2 (303), and the output shaft of the motor 3 (301) is connected to the rear end of the double lead screw 2 through a coupling.

6. The hydrogen-generating membrane fabric processing equipment as described in claim 1, characterized in that: The lower end of the winding table (101) is provided with a support mounting frame (102), and the support mounting frame (102) has multiple mounting holes inside.

7. The hydrogen-generating membrane fabric processing equipment as described in claim 5, characterized in that: The front side of the winding table (101) is provided with a control panel (103), and motors one (104), two (201) and three (301) are all electrically connected to the control panel (103).