A cloth collecting device
By combining the swing device and the static elimination device, the problems of fabric collapse and static electricity during the fabric collection process are solved, achieving fabric flatness and static electricity removal, and improving the performance of the collection device.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUXI TIANHUA CHAOJING TECH CO LTD
- Filing Date
- 2025-08-20
- Publication Date
- 2026-07-24
AI Technical Summary
Traditional fabric receiving devices are prone to causing fabric to collapse during the receiving process and cannot effectively remove static electricity from the fabric surface.
The design employs a combination of a swing device and an antistatic device. The swing device drives the discharge port to swing with adjustable amplitude via a crank-connecting rod mechanism, while the antistatic device removes static electricity through an antistatic bar and an ion pump. Combined with an ultrasonic sensor to monitor the fabric stacking height, the swing frequency is dynamically adjusted to ensure the fabric is flat and static electricity is removed.
It effectively prevents fabric from collapsing, and removes static electricity from the fabric surface during the winding process, simplifying the process and improving the flatness and efficiency of fabric winding.
Smart Images

Figure CN224547580U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to fabric shaping equipment, and in particular to a fabric output device for a shaping machine that prevents fabric collapse. Background Technology
[0002] In the textile printing and dyeing industry, fabric setting is often required, and the setting machine is the main machine used for setting textile products. Fabric output is the final step in the setting machine's processing of the fabric. After the fabric has been set in the setting machine, it is transported to the receiving basket via the output device. The fabric enters the receiving basket through the swinging motion of the swaying device. An improper swinging angle can cause the fabric to collapse after stacking, increasing the difficulty of subsequent processing.
[0003] Publication No.: CN208932675U, a fabric swaying device for a setting machine. This utility model discloses a fabric swaying device for a setting machine, relating to the field of textile printing and dyeing equipment technology. It includes a base disposed at the fabric outlet of the setting machine, a fabric swaying mechanism disposed on the base, and fabric pressing mechanisms symmetrically disposed at both ends of the base. The key technical points are: a triangular cross-section guide frame is provided in the center of the base along its width; the fabric swaying device includes a fabric knife for swinging the fabric out and a cradle for moving the fabric knife; the fabric pressing mechanism includes a fabric pressing rod and cylinders disposed at both ends of the fabric pressing rod for driving the fabric pressing rod to move. This utility model provides a fabric swaying device for a setting machine, solving the problem of uneven stacking of fabric conveyed from the setting machine.
[0004] Although this device solves the problem of uneven stacking of fabric conveyed from the stenter, it cannot remove static electricity from the fabric surface while collecting the fabric. Utility Model Content
[0005] In view of this, the present invention proposes a fabric receiving device to prevent collapse.
[0006] A fabric receiving device for preventing collapse includes a frame 1, a discharge roller 2 located at the output end of the frame 1, and a receiving frame located below the discharge roller 2. A swing device 4 is provided between the discharge roller 2 and the receiving frame. The output end of the swing device 4 has a hollow discharge port 41. Static elimination devices 5 are symmetrically installed on the inner walls of both sides of the discharge port 41. The distance between the two static elimination devices 5 is adjustable, and after adjustment, the distance between the surface of the fabric 10 and the static elimination device 5 is ≤2cm. The static elimination device 5 includes an static bar 51 with a length ≥ the width of the fabric 10 and an ion pump that powers it. This invention solves the problem that the fabric obtained by the traditional receiving device is prone to collapse after stacking, and can remove static electricity from the surface of the fabric while receiving the material.
[0007] Furthermore, the static eliminator 5 is fixed by a mounting bracket 6, and the two ends of the mounting bracket 6 are connected to the swing arm 7 via a connecting plate 61.
[0008] Furthermore, the connecting plate 61 is provided with a waist-shaped hole 611, through which fasteners pass to achieve lateral displacement adjustment of the mounting bracket 6.
[0009] Furthermore, the upper part of the discharge port 41 is provided with two parallel and spaced transmission rollers 8, which are laterally rotatably connected between the swing arm 7 and arranged in an up-down staggered manner; the fabric 10 is S-shaped and passed between the two transmission rollers 8 to form an anti-deviation structure.
[0010] Furthermore, the surface of the discharge roller 2 is covered with a rubber layer with raised dots.
[0011] Furthermore, a pressure roller 9 is provided above the surface of the discharge roller 2, and the pressure roller 9 elastically abuts against the discharge roller 2 to form a fabric flattening mechanism.
[0012] Furthermore, the swing arm 7 is connected to a crank-connecting rod mechanism, which is driven by a speed-regulating motor to realize adjustable swing amplitude of the discharge port 41.
[0013] Furthermore, the surface of the static bar 51 of the static elimination device 5 is provided with an insulating protective cover 511, which has directional ion release holes with the openings facing the surface of the fabric 10.
[0014] Furthermore, the side wall of the receiving frame is equipped with an ultrasonic sensor, which monitors the stacking height of the fabric in real time and feeds it back to the controller. The controller dynamically adjusts the swing frequency of the swing device 4 based on the feedback.
[0015] The beneficial effects of this utility model are as follows: This utility model proposes an anti-collapse fabric winding device, including a frame 1, a discharge roller 2 located at the output end of the frame 1, and a winding frame located below the discharge roller 2. A swing device 4 is provided between the discharge roller 2 and the winding frame. The output end of the swing device 4 has a hollow discharge port 41. Static elimination devices 5 are symmetrically installed on the inner walls of both sides of the discharge port 41. The distance between the two static elimination devices 5 is adjustable, and after adjustment, the distance between the surface of the fabric 10 and the static elimination device 5 is ≤2cm. The static elimination device 5 includes an static bar 51 with a length ≥ the width of the fabric 10 and an ion pump that powers it. This utility model solves the problem that the fabric obtained by traditional winding devices is prone to collapse after stacking, and can remove static electricity from the surface of the fabric while winding. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0017] Figure 2 This is a schematic diagram of the swing device of this utility model.
[0018] Explanation of main component symbols
[0019] Frame 1, discharge roller 2, swing device 4, static eliminator 5, mounting frame 6, swing arm 7, transmission roller 8, pressure roller 9, cloth 10, discharge port 41, static bar 51, insulating protective cover 511, connecting plate 61, waist-shaped hole 611.
[0020] The following detailed description, in conjunction with the accompanying drawings, will further illustrate this utility model. Detailed Implementation
[0021] The following embodiments are described to aid in understanding this application. These embodiments are not, and should not be, construed in any way as limiting the scope of protection of this application.
[0022] In the following description, those skilled in the art will recognize that throughout this discussion, components may be described as individual functional units (which may include subunits), but those skilled in the art will recognize that various components or portions thereof may be divided into individual components or may be integrated together (including integrated within a single system or component).
[0023] Furthermore, the connection between components or systems is not intended to be limited to a direct connection; on the contrary, data between these components may be modified, reformatted, or otherwise altered by intermediate components. Additionally, other or fewer connections may be used. It should also be noted that the terms "connection," "link," or "input" should be understood to include direct connections, indirect connections via one or more intermediate devices, and wireless connections. Example 1:
[0024] like Figure 1-2 As shown, a fabric receiving device for preventing collapse includes a frame 1, a discharge roller 2 located at the output end of the frame 1, and a receiving frame located below the discharge roller 2. A swinging device 4 is provided between the discharge roller 2 and the receiving frame. The output end of the swinging device 4 has a hollow discharge port 41. Static elimination devices 5 are symmetrically installed on the inner walls of both sides of the discharge port 41. The distance between the two static elimination devices 5 is adjustable, and after adjustment, the distance between the surface of the fabric 10 and the static elimination device 5 is ≤2cm. The static elimination device 5 includes an static bar 51 with a length ≥ the width of the fabric 10 and an ion pump that powers it. The swinging device 4 can be adjusted to a suitable swinging angle according to the material of different fabrics and the stacking of fabrics in the receiving frame. It can also remove static electricity from the surface of the fabric while receiving the material, simplifying the complex process.
[0025] The static eliminator 5 is fixed by the mounting bracket 6, and the two ends of the mounting bracket 6 are connected to the swing arm 7 via the connecting plate 61. The connecting plate 61 is provided with a waist-shaped hole 611, and the fastener passes through the waist-shaped hole 611 to realize the lateral displacement adjustment of the mounting bracket 6. The swing arm 7 is connected to the crank-connecting rod mechanism, which is driven by the speed-regulating motor to realize the adjustable swing amplitude of the discharge port 41. The swing device 4 can be adjusted to a suitable swing angle according to the material of different fabrics and the stacking of fabrics in the receiving frame.
[0026] The upper part of the discharge port 41 is provided with two parallel and spaced transmission rollers 8. The two transmission rollers 8 are laterally rotatably connected between the swing arm 7 and are arranged in an up-down staggered manner. The fabric 10 is S-shaped and passes between the two transmission rollers 8 to form an anti-deviation structure, so that the fabric enters the discharge port 41 more accurately. The fabric 10 has its own weight, and the two transmission rollers 8 can use the weight of the fabric 10 to flatten the fabric 10 during transmission.
[0027] The surface of the discharge roller 2 is covered with a rubber layer with raised dots. The rough surface of the rubber layer increases friction, which is beneficial for the transmission of the fabric 10.
[0028] A pressure roller 9 is provided above the surface of the discharge roller 2. The pressure roller 9 elastically abuts against the discharge roller 2 to form a fabric flattening mechanism for flattening the fabric 10.
[0029] The static eliminator 5 has an insulating protective cover 511 on the surface of the static bar 51. The protective cover 511 has a directional ion release hole with the opening facing the surface of the fabric 10. The opening releases directional ions towards the fabric 10. The static eliminator 5 has static bars 51 on both sides, which makes the static removal efficiency of the fabric higher.
[0030] The side wall of the receiving frame is equipped with an ultrasonic sensor, which monitors the stacking height of the fabric in real time and feeds it back to the controller. The controller dynamically adjusts the swing frequency of the swing device 4 according to the feedback. The swing device can adjust the appropriate swing angle according to the stacking of the fabric in the receiving frame to prevent the fabric from collapsing.
[0031] The beneficial effects of this utility model are as follows: This utility model proposes an anti-collapse fabric winding device, including a frame 1, a discharge roller 2 located at the output end of the frame 1, and a winding frame located below the discharge roller 2. A swing device 4 is provided between the discharge roller 2 and the winding frame. The output end of the swing device 4 has a hollow discharge port 41. Static elimination devices 5 are symmetrically installed on the inner walls of both sides of the discharge port 41. The distance between the two static elimination devices 5 is adjustable, and after adjustment, the distance between the surface of the fabric 10 and the static elimination device 5 is ≤2cm. The static elimination device 5 includes an static bar 51 with a length ≥ the width of the fabric 10 and an ion pump that powers it. This utility model solves the problem that the fabric obtained by traditional winding devices is prone to collapse after stacking, and can remove static electricity from the surface of the fabric while winding.
[0032] Although this application discloses several aspects and embodiments, other aspects and embodiments will be obvious to those skilled in the art. Various modifications and improvements can be made without departing from the concept of this application, and these all fall within the scope of protection of this application. The various aspects and embodiments disclosed in this application are for illustrative purposes only and are not intended to limit this application. The actual scope of protection of this application is determined by the claims.
Claims
1. A fabric receiving device for preventing collapse, comprising a frame (1), a discharge roller (2) disposed at the output end of the frame (1), and a receiving frame disposed below the discharge roller (2), characterized in that, A swing device (4) is provided between the discharge roller (2) and the receiving frame. The output end of the swing device (4) is provided with a hollow discharge port (41). Static elimination devices (5) are symmetrically installed on the inner walls of both sides of the discharge port (41). The distance between the two static elimination devices (5) is adjustable, and the distance between the fabric (10) surface and the static elimination device (5) after adjustment is ≤2cm. The static elimination device (5) includes an electrostatic bar (51) with a length ≥ the width of the fabric (10) and an ion pump that powers it.
2. The apparatus as described in claim 1, characterized in that: The static eliminator (5) is fixed by a mounting bracket (6), and the two ends of the mounting bracket (6) are connected to the swing arm (7) via a connecting plate (61).
3. The apparatus as described in claim 2, characterized in that: The connecting plate (61) is provided with a waist-shaped hole (611), and the fastener passes through the waist-shaped hole (611) to realize the lateral displacement adjustment of the mounting bracket (6).
4. The apparatus as claimed in claim 1, characterized in that: The upper part of the discharge port (41) is provided with two parallel and spaced transmission rollers (8). The two transmission rollers (8) are connected to the swing arm (7) in a horizontal rotation and are arranged in an up-down staggered manner. The fabric (10) is S-shaped and passed between the two transmission rollers (8) to form an anti-deviation structure.
5. The apparatus as claimed in claim 1, characterized in that: The surface of the discharge roller (2) is covered with a rubber layer with raised dots.
6. The apparatus as claimed in claim 1, characterized in that: A pressure roller (9) is provided above the surface of the discharge roller (2), and the pressure roller (9) elastically abuts against the discharge roller (2) to form a fabric flattening mechanism.
7. The apparatus as claimed in claim 2, characterized in that: The swing arm (7) is connected to a crank-connecting rod mechanism, which is driven by a speed-regulating motor to realize the adjustable swing amplitude of the discharge port (41).
8. The apparatus as claimed in claim 1, characterized in that: The surface of the static bar (51) of the static elimination device (5) is provided with an insulating protective cover (511), which has a directional ion release hole with the opening facing the surface of the fabric (10).
9. The apparatus as claimed in claim 1, characterized in that: The side wall of the receiving frame is equipped with an ultrasonic sensor, which is used to monitor the stacking height of the fabric in real time and feed it back to the controller. The controller dynamically adjusts the swing frequency of the swing device (4) according to the feedback.