Anti-static treatment equipment for fiber fabric

By designing the extrusion unit and absorption unit of the transmission mechanism, the problem of liquid waste in the antistatic treatment of fiber fabrics was solved, achieving full absorption of the fabric and resource conservation.

CN224148350UActive Publication Date: 2026-04-21ZIBO HAIRUN SILK DEV
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
ZIBO HAIRUN SILK DEV
Filing Date
2025-04-29
Publication Date
2026-04-21

AI Technical Summary

Technical Problem

Fiber fabrics are prone to static electricity during production, and existing antistatic treatment equipment suffers from liquid waste.

Method used

An antistatic treatment device including a transmission mechanism was designed. By combining a squeezing unit and an absorption unit, the fiber fabric is ensured to fully absorb the liquid in the antistatic liquid, and excess liquid is squeezed out when it is removed from the liquid surface to reduce waste.

Benefits of technology

This technology enables the full absorption of liquids and reduces waste during the antistatic treatment of fiber fabrics, thereby improving processing efficiency and resource utilization.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses anti-static treatment equipment for fiber fabrics, which relates to the field of fiber fabric processing and comprises a treatment box, a driving motor is mounted on the outer wall of the treatment box through a mounting bracket, and a fabric body and a transmission mechanism arranged on the treatment box and the driving motor are arranged on the inner side of the treatment box; the transmission mechanism comprises an extrusion unit and an absorption unit; the absorption unit is used for fully absorbing the antistatic liquid for the fabric body. By arranging the transmission mechanism, a fabric body can be completely immersed into the treatment box with antistatic liquid through the plurality of guide rods, and the fabric is extruded and deformed through the matching of one guide rod and a third extrusion rod, so that the fabric body better and uniformly absorbs the antistatic liquid in the process of resetting under the elasticity of the material, and the antistatic effect is improved. Meanwhile, after the fabric is moved out of the liquid level of the antistatic liquid, redundant liquid on the fabric body is extruded through reverse rotation of a first extrusion rod and a second extrusion rod, and liquid waste is reduced.
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Description

Technical Field

[0001] This utility model relates to the field of fiber fabric processing, specifically an antistatic treatment device for fiber fabrics. Background Technology

[0002] In the prior art, due to the inherent characteristics of the fabric, the polyester fiber fabric is prone to static electricity during production. Therefore, it is necessary to use antistatic treatment equipment to treat the polyester fiber fabric. During the treatment, an antistatic treatment liquid is introduced into the antistatic treatment equipment, so that the polyester fiber fabric is immersed in the antistatic treatment liquid. In order to fully and evenly absorb the antistatic treatment liquid into the polyester fiber fabric, this utility model proposes an antistatic treatment equipment for fiber fabric. Utility Model Content

[0003] The purpose of this utility model is to provide an antistatic treatment device for fiber fabrics in order to solve the problems mentioned in the background art.

[0004] To achieve the above objectives, this utility model provides the following technical solution: an antistatic treatment device for fiber fabrics, comprising a treatment box, a drive motor mounted on the outer wall of the treatment box via a mounting bracket, a fabric body disposed on the inner side of the treatment box, and a transmission mechanism disposed on the treatment box and the drive motor; the transmission mechanism includes a squeezing unit and an absorption unit; the absorption unit is used to fully absorb the antistatic liquid for the fabric body; the squeezing unit is used to squeeze out excess antistatic liquid on the fabric body.

[0005] As a further embodiment of this utility model: the extrusion unit includes a first extrusion rod, a first gear, a second gear, and a second extrusion rod; the first extrusion rod is connected to the output end of the drive motor via a rotating shaft and a coupling and extends into the interior of the processing box, the first extrusion rod being used to cooperate with the second extrusion rod to extrude the fabric body; the first gear is fixed to the end of the first extrusion rod and located inside the processing box, the first gear being used to provide rotational thrust to the second gear; the second gear is fixed to the end of the second extrusion rod, the second gear being used to drive the second extrusion rod to rotate synchronously; the second extrusion rod is rotatably installed inside the processing box and symmetrically distributed with the first extrusion rod, the second extrusion rod being used to cooperate with the first extrusion rod to extrude the fabric body.

[0006] As a further embodiment of this utility model: the absorption unit includes a transmission rod, a guide rod, a positioning rod, a third extrusion rod, a docking rod, and a spring; the transmission rod is eccentrically rotatably connected to the outer wall of the first gear, and the transmission rod is used to synchronously drive the guide rod to rotate; the guide rod is rotatably installed inside the processing box, and the guide rod is used to guide the movement of the fabric body; the positioning rod is fixed to the bottom of the inner side of the processing box, and the positioning rod is used to guide the vertical movement of the third extrusion rod; the third extrusion rod is vertically slidably installed on the top outer wall of the positioning rod, and the third extrusion rod is used to cooperate with the guide rod to extrude the fabric body; the docking rod is fixed inside the third extrusion rod and extends to the inner wall of the positioning rod, and the docking rod is used to provide the spring with extrusion force; the two ends of the spring are respectively engaged with the bottom of the docking rod and the inner wall of the positioning rod, and the spring is used to always provide the docking rod with upward extrusion force.

[0007] As a further embodiment of this utility model: the first extrusion rod and the second extrusion rod are symmetrically distributed on both sides of the fabric body, and the interior of the processing box is provided with a rotation space for the second gear and the first gear to rotate.

[0008] As a further improvement of this utility model: the outer wall of the third extrusion rod is generally semi-circular, and the outer wall of the positioning rod is generally T-shaped.

[0009] As a further improvement of this utility model: the interior of the third extrusion rod is formed with a groove for the vertical movement of the positioning rod, and the inner wall of the positioning rod is formed with a space for the insertion of the docking rod.

[0010] As a further improvement of this utility model: the number of guide rods is four, and the four guide rods are distributed in a trapezoidal shape on the inner side of the processing box, with one of the guide rods located directly above the third extrusion rod.

[0011] Compared with the prior art, the beneficial effects of this utility model are:

[0012] By setting up a transmission mechanism, the fabric body can be completely immersed in the treatment tank containing antistatic liquid through multiple guide rods. The fabric is squeezed and deformed by the cooperation of a guide rod and a third extrusion rod, so that the fabric body can better and more evenly absorb antistatic liquid during the process of restoring under the elasticity of the material. At the same time, after the fabric is removed from the surface of the antistatic liquid, the excess liquid on the fabric body is squeezed by the reverse rotation of the first extrusion rod and the second extrusion rod, reducing liquid waste. Attached Figure Description

[0013] Figure 1 This is a schematic diagram of the structure of this utility model;

[0014] Figure 2This is a cross-sectional view of the internal structure of the processing box of this utility model;

[0015] Figure 3 This is a schematic diagram of the transmission mechanism of this utility model;

[0016] Figure 4 This is a partial enlarged view of point A of this utility model.

[0017] In the diagram: 1. Processing box; 2. Drive motor; 3. Fabric body; 4. Transmission mechanism; 401. First extrusion rod; 402. First gear; 403. Second gear; 404. Second extrusion rod; 405. Transmission rod; 406. Guide rod; 407. Positioning rod; 408. Third extrusion rod; 409. Connecting rod; 410. Spring. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] Please see Figures 1-4 In this embodiment of the present invention, an antistatic treatment device for fiber fabric includes a treatment box 1. A drive motor 2 is mounted on the outer wall of the treatment box 1 via a mounting bracket. A fabric body 3 is disposed on the inner side of the treatment box 1. A transmission mechanism 4 is disposed on the treatment box 1 and the drive motor 2. The transmission mechanism 4 includes a squeezing unit and an absorption unit. The absorption unit is used to fully absorb the antistatic liquid for the fabric body 3. The squeezing unit is used to squeeze the excess antistatic liquid on the fabric body 3.

[0020] The extrusion unit includes a first extrusion rod 401, a first gear 402, a second gear 403, and a second extrusion rod 404. The first extrusion rod 401 is connected to the output end of the drive motor 2 via a rotating shaft and a coupling and extends into the interior of the processing box 1. The first extrusion rod 401 is used to cooperate with the second extrusion rod 404 to extrude the fabric body 3. The first gear 402 is fixed to the end of the first extrusion rod 401 and located inside the processing box 1. The first gear 402 is used to provide rotational thrust to the second gear 403. The second gear 403 is fixed to the end of the second extrusion rod 404 and is used to drive the second extrusion rod 404 to rotate synchronously. The second extrusion rod 404 is rotatably installed inside the processing box 1 and is symmetrically distributed with the first extrusion rod 401. The second extrusion rod 404 is used to cooperate with the first extrusion rod 401 to extrude the fabric body 3. The absorption unit includes a transmission rod 405, a guide rod 406, a positioning rod 407, and a third extrusion rod 408. The system includes a connecting rod 409, a spring 410, and a transmission rod 405 eccentrically rotatably connected to the outer wall of the first gear 402. The transmission rod 405 is used to synchronously drive the guide rod 406 to rotate. The guide rod 406 is rotatably installed inside the processing box 1 and is used to guide the movement of the fabric body 3. The positioning rod 407 is fixed to the bottom of the inner side of the processing box 1 and is used to guide the vertical movement of the third extrusion rod 408. The third extrusion rod 408 is vertically slidably installed on the top outer wall of the positioning rod 407 and is used to cooperate with the guide rod 406 to extrude the fabric body 3. The connecting rod 409 is fixed inside the third extrusion rod 408 and extends to the inner wall of the positioning rod 407. The connecting rod 409 is used to provide the spring 410 with extrusion force. The two ends of the spring 410 are respectively engaged with the bottom of the connecting rod 409 and the inner wall of the positioning rod 407. The spring 410 is used to always provide the connecting rod 409 with upward extrusion force.

[0021] In this embodiment: the fabric body 3 that needs to be treated with antistatic agents is introduced into the interior of the treatment box 1. The fabric body 3 passes through the guide rod 406, the third extrusion rod 408, and the first extrusion rod 401 and the second extrusion rod 404, and then moves out of the other end of the treatment box 1. At this time, under the action of the trapezoidally distributed guide rod 406, the fabric body 3 is immersed in the antistatic liquid. The third extrusion rod 408, under the action of the spring 410, always provides an upward push to the docking rod 409, so that the third extrusion rod 408 fixed to the docking rod 409 and the guide rod 406 squeeze and clamp the fabric body 3, causing the fabric body 3 at this position to deform.

[0022] Then, by winding up the fabric body 3 and simultaneously starting the drive motor 2, the winding of the fabric body 3 will cause the fabric body 3 at the positions of the guide rod 406 and the third extrusion rod 408 to move out, allowing the fabric body 3 to recover under its own elasticity. During the recovery process, the fabric body 3 fully absorbs the antistatic liquid in the treatment box 1. After that, the fabric body 3 moves out and the surface of the antistatic liquid comes into contact with the first extrusion rod 401 and the second extrusion rod 404. Under the action of the drive motor 2, the first extrusion rod 401 synchronously drives the first gear 402 to rotate. The rotating first gear 402 gives the second gear 403 the opposite rotational thrust, so that the rotation direction of the second extrusion rod 404 and the first extrusion rod 401 is opposite to the movement direction of the fabric body 3, thereby squeezing the fabric body 3 and preventing excess antistatic liquid from being carried out of the treatment box 1, causing waste of antistatic liquid. This achieves the purpose of fully absorbing antistatic liquid in the fabric body 3 and reduces the waste of antistatic liquid.

[0023] Please refer to this carefully. Figures 1-4 The first extrusion rod 401 and the second extrusion rod 404 are symmetrically distributed on both sides of the fabric body 3. The interior of the processing box 1 is provided with a rotation space for the second gear 403 and the first gear 402 to rotate. The outer wall of the third extrusion rod 408 is generally semi-circular. The outer wall of the positioning rod 407 is generally T-shaped. The interior of the third extrusion rod 408 is formed with a groove for the positioning rod 407 to move vertically. The inner wall of the positioning rod 407 is formed with a space for the insertion of the docking rod 409. There are four guide rods 406, which are arranged in a trapezoidal shape on the inside of the processing box 1. One of the guide rods 406 is located directly above the third extrusion rod 408.

[0024] In this embodiment: with this structure, the third extrusion rod 408 is always subjected to the elastic force from the spring 410 and moves upward along the outer wall of the positioning rod 407. The semi-circular structure can better cooperate with the guide rod 406 to extrude the fabric body 3.

[0025] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any equivalent substitutions or changes made by those skilled in the art within the technical scope disclosed in the present utility model, based on the technical solution and the inventive concept of the present utility model, should be included within the protection scope of the present utility model.

Claims

1. An antistatic treatment device for fiber fabrics, comprising a treatment box (1), wherein a drive motor (2) is mounted on the outer wall of the treatment box (1) via a mounting bracket, and a fabric body (3) is disposed on the inner side of the treatment box (1), characterized in that, A transmission mechanism (4) is installed on the processing box (1) and the drive motor (2); the transmission mechanism (4) includes a squeezing unit and an absorption unit; the absorption unit is used to fully absorb the antistatic liquid for the fabric body (3); the squeezing unit is used to squeeze the excess antistatic liquid on the fabric body (3).

2. The apparatus for anti-static treatment of a fiber fabric according to claim 1, wherein The extrusion unit includes a first extrusion rod (401), a first gear (402), a second gear (403), and a second extrusion rod (404). The first extrusion rod (401) is connected to the output end of the drive motor (2) via a rotating shaft and a coupling and extends into the interior of the processing box (1). The first extrusion rod (401) is used to cooperate with the second extrusion rod (404) to extrude the fabric body (3). The first gear (402) is fixed to the end of the first extrusion rod (401) and located inside the processing box (1). The first gear (402) is used to provide rotational thrust to the second gear (403). The second gear (403) is fixed to the end of the second extrusion rod (404). The second gear (403) is used to drive the second extrusion rod (404) to rotate synchronously. The second extrusion rod (404) is rotatably installed inside the processing box (1) and symmetrically distributed with the first extrusion rod (401). The second extrusion rod (404) is used to cooperate with the first extrusion rod (401) to extrude the fabric body (3).

3. The apparatus for anti-static treatment of a fiber fabric according to claim 1, wherein The absorption unit includes a transmission rod (405), a guide rod (406), a positioning rod (407), a third extrusion rod (408), a docking rod (409), and a spring (410). The transmission rod (405) is eccentrically rotatably connected to the outer wall of the first gear (402), and the transmission rod (405) is used to synchronously drive the guide rod (406) to rotate. The guide rod (406) is rotatably installed on the inner side of the treatment box (1), and the guide rod (406) is used to provide guidance for the movement of the fabric body (3). The positioning rod (407) is fixed to the bottom inner side of the treatment box (1), and the positioning rod (407) is used to guide the third extrusion rod (408). The vertical movement is guided; the third extrusion rod (408) is vertically slidably mounted on the top outer wall of the positioning rod (407), and the third extrusion rod (408) is used to cooperate with the guide rod (406) to extrude the fabric body (3); the connecting rod (409) is fixed inside the third extrusion rod (408) and extends to the inner wall of the positioning rod (407), and the connecting rod (409) is used to provide the spring (410) with extrusion force; the two ends of the spring (410) are respectively engaged with the bottom of the connecting rod (409) and the inner wall of the positioning rod (407), and the spring (410) is used to always provide the connecting rod (409) with upward extrusion force.

4. The apparatus for anti-static treatment of a fiber fabric according to claim 2, wherein The first extrusion rod (401) and the second extrusion rod (404) are symmetrically distributed on both sides of the fabric body (3), and the interior of the processing box (1) is provided with a rotation space for the second gear (403) and the first gear (402) to rotate.

5. The antistatic treatment equipment for fiber fabrics according to claim 3, characterized in that, The outer wall of the third extrusion rod (408) is generally semi-circular, and the outer wall of the positioning rod (407) is generally T-shaped.

6. The apparatus for anti-static treatment of a fiber fabric according to claim 3, wherein The third extrusion rod (408) has a groove formed inside for the vertical movement of the positioning rod (407), and the inner wall of the positioning rod (407) has a space for the insertion of the docking rod (409).

7. The apparatus for anti-static treatment of a fiber fabric according to claim 3, wherein The number of guide rods (406) is four, and the four guide rods (406) are arranged in a trapezoidal shape on the inner side of the processing box (1), with one of the guide rods (406) located directly above the third extrusion rod (408).