Relaxed suspension and impact mode switching open-width air stream softener structure

CN224833197UActive Publication Date: 2026-10-09苏州丹氏智能科技有限公司
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Patent Information

Application Number
CN202521854482.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-29
Publication Date
2026-10-09
Estimated Expiration
2035-08-29

AI Technical Summary

Technical Problem

传统的织物清洗主要采用简单的浸泡和机械搅拌方式,这种方式虽然能去除一些污垢,但对于一些紧密附着在织物纤维上的杂质去除效果有限,且容易导致织物变形、手感变差,尤其是对于一些高档或特殊处理的织物

Benefits of technology

[0012]本实用新型的有益效果是:本技术方案实现了布匹在松弛悬浮与撞击模式之间的灵活切换。松弛悬浮模式适用于轻柔处理,避免布匹因过度拍打而受损;撞击模式则通过精确控制气流方向和撞击力度,提升布匹的柔软度和蓬松度;

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Abstract

The utility model relates to a textile machinery technical field especially relates to a kind of slack suspension and impact mode switching's flat width airflow softener structure.It includes equipment ontology, the cloth conveying channel for conveying cloth being arranged in the equipment ontology, respectively in the impact component and the airflow conveying module for controlling cloth transmission direction and providing transmission force being arranged in the cloth conveying channel import and export end, the cloth transmission channel includes main conveying channel, respectively on the upper channel and the lower channel of the upper and lower ends of main conveying channel, the wind shield component for respectively controlling the airflow transmission direction of upper channel and the lower channel is arranged in the upper channel and the lower channel.The utility model has the beneficial effect that: the technical scheme has realized the flexible switching between cloth in slack suspension and impact mode, slack suspension mode is suitable for light and soft processing, avoid cloth and be damaged due to excessive beating.
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Description

Technical Field

[0001] This utility model relates to the field of textile machinery technology, and in particular to a flat-width airflow softening machine structure that can switch between relaxation suspension and impact modes. Background Technology

[0002] With increasingly stringent requirements for fabric quality, fabrics not only need to undergo basic processes such as cleaning and dyeing during processing, but also need to possess properties such as good hand feel and softness after treatment. Traditional fabric cleaning mainly uses simple soaking and mechanical agitation. While this method can remove some dirt, it has limited effectiveness in removing impurities that are tightly attached to the fabric fibers and can easily lead to fabric deformation and a deterioration in hand feel, especially for some high-end or specially treated fabrics.

[0003] The prior art, a high-performance flat-width air-beating softening machine with application number 2024113191087, uses airflow to control fabric transport and beats the fabric to change its softness or fluffiness. The prior art directly uses airflow for transport, but it cannot achieve continuous circulation of the fabric, resulting in poor efficiency. At the same time, it cannot guarantee that the fabric will not hit the baffle during transport, so for certain fabric types, excessive impact can cause damage.

[0004] Therefore, it is necessary to design a flat-plane airflow softener structure that can switch between relaxed suspension and impact modes to solve the above problems. Utility Model Content

[0005] The purpose of this invention is to provide a flat-width airflow softener structure that can switch between relaxed suspension and impact modes, in order to overcome the above-mentioned shortcomings of the existing technology.

[0006] To achieve the above objectives, the present invention adopts the following technical solution: A flat-width airflow softener structure with switchable suspension and impact modes includes a device body, a fabric conveying channel disposed within the device body for conveying fabric, impact components disposed at the inlet and outlet ends of the fabric conveying channel, and an airflow conveying module for controlling the fabric conveying direction and providing conveying force. The fabric conveying channel includes a main conveying channel, an upper channel and a lower channel connected to the upper and lower ends of the main conveying channel, and windbreak components are disposed within the upper and lower channels to control the airflow conveying direction of the upper and lower channels, respectively.

[0007] Preferably, it also includes guide and transmission components respectively disposed at the front and rear ends of the device body for conveying the fabric.

[0008] Preferably, the windbreak assembly divides the upper channel or the lower channel into a left channel and a right channel, and a guide plate is provided in the left channel and the right channel respectively. The guide plate guides the airflow in the left channel to flow to the left and the airflow in the right channel to flow to the right.

[0009] Preferably, the airflow conveying module is connected to the upper channel and the lower channel of the fabric conveying channel, respectively.

[0010] Preferably, the windbreak assembly includes a swing baffle and a drive cylinder that is rotatably connected to the swing baffle and drives the swing baffle to swing.

[0011] Preferably, the impact assembly includes a baffle composed of several baffles and a mounting block for mounting the baffle, the mounting block being installed in the inner cavity of the device body.

[0012] The beneficial effects of this invention are: this technical solution enables flexible switching between relaxed suspension and impact modes for fabrics. The relaxed suspension mode is suitable for gentle handling, preventing fabric damage from excessive beating; the impact mode, by precisely controlling the airflow direction and impact force, enhances the softness and fluffiness of the fabric. By combining the baffle assembly and the guide plate, precise control of airflow direction is achieved, allowing the fabric to flexibly switch between relaxed suspension and impact modes to meet the processing needs of different types of fabrics. By setting up an impact adjustment component, the inclined impact plate guides and beats the fabric, which not only improves the softening effect of the fabric, but also prevents the fabric from deviating from the track during transportation. Attached Figure Description

[0013] Figure 1 This is a cross-sectional view of a flat-width airflow softener structure that can switch between relaxed suspension and impact modes according to the present invention. Figure 2 This is a schematic diagram of the fabric conveying channel of a flat-width airflow softening machine structure that can switch between relaxation suspension and impact modes according to the present invention. Figure 3 This is a partial schematic diagram of the fabric conveying channel of a flat-width airflow softening machine structure that can switch between relaxation suspension and impact modes according to the present invention. Figure 4 This is a schematic diagram of the impact component of a flat-width airflow softener structure that can switch between relaxed suspension and impact modes according to the present invention. In the diagram: 1. Equipment body; 2. Guide and transmission assembly; 3. Fabric conveying channel; 4. Impact assembly; 5. Airflow conveying module; 31. Main conveying channel; 32. Upper channel; 33. Lower channel; 34. Windbreak assembly; 321. Left channel; 322. Right channel; 333. Guide plate; 431. Swing baffle; 432. Rotation; 433. Drive cylinder; 41. Baffle; 42. Mounting block. Detailed Implementation

[0014] Reference Figures 1 to 4 A flat-width airflow softener structure that can switch between relaxation suspension and impact modes includes a device body 1, a guide transmission component 2 respectively disposed at the front and rear ends of the device body 1 for conveying fabric, a fabric conveying channel 3 disposed in the device body 1 for conveying fabric, an impact component 4 respectively disposed at the inlet and outlet ends of the fabric conveying channel 3, and an airflow conveying module 5 for controlling the fabric conveying direction and providing transmission force. The fabric conveying channel 3 includes a main conveying channel 31, an upper channel 32 and a lower channel 33 connected to the upper and lower ends of the main conveying channel 31 respectively, and a wind-blocking component 34 is provided in the upper channel 32 and the lower channel 33. The wind-blocking component 34 blocks the upper channel 32 or the lower channel 33 into a left channel 321 and a right channel 322. In order to make the airflow drive the transmission direction more accurately and improve the output effect of the airflow, guide plates 333 are respectively provided in the left channel 321 and the right channel 322. The guide plates 333 guide the airflow in the left channel 321 to flow to the left and guide the airflow in the right channel 322 to flow to the right. The airflow conveying module 5 is connected to the upper channel 32 and the lower channel 33 of the fabric conveying channel 3, respectively; The windbreak assembly 34 includes a swing baffle 431 and a drive cylinder 433 that is connected to the swing baffle 431 by a rotation 432 and drives the swing baffle to swing. The windbreak assembly 43 is respectively placed in the upper channel 32 and the lower channel 33, and controls the airflow transmission direction of the upper channel 32 and the lower channel 33 respectively; A specific implementation example involves passing a piece of fabric requiring softening through the main conveying channel 31, with both ends fixed. The airflow conveying module 5 provides the conveying gas. If the fabric needs to be conveyed to the left, the windbreak assembly 32 drives the swing baffle 431 to swing to the right, blocking the right channel 322. The airflow from both the upper and lower channels then flows to the left, thus conveying the fabric to the left. Similarly, moving the swing baffle 432 to the right drives it to swing to the left, blocking the left channel 321, thus conveying the airflow to the right. The specific angle of movement is adjustable. The maximum angle results in the smoothest airflow, increasing the speed of conveying to the left or right. When the windbreak assembly 43 is in the middle position, i.e., when the airflow from the left and right channels is equal, it acts as a buffer, preventing the fabric from being rapidly conveyed to either side and from impacting the impact assembly 4, thus ending the beating process. The specific control depends on the type of fabric.

[0015] The impact assembly 4 includes a baffle 41 composed of several baffles and a mounting block 43 for mounting the baffle. The mounting block is installed in the inner cavity of the device body 1. The baffle is set at a certain tilt angle, which is set according to the position of the impact assembly 4. If the impact assembly is set on the left side, the baffle is tilted to the left, tilting from top to bottom to the left. This design not only allows the fabric to impact, but also has a certain guiding function, guiding the fabric to the left and transmitting it into the cavity. Similarly, if it is placed on the right side, the baffle is set to the right, in the same direction as described above.

[0016] In this implementation, the fabric, after being processed in the previous step, is passed sequentially from the end through the guide transmission component 2, from inside the equipment body, through the fabric transmission channel 3, and out through the guide transmission component 2 at the end, completing the fabric installation. The length of the fabric to be processed is determined according to the size of the cavity, specifically set according to the model size. The front guide transmission component 2 transmits the fabric into the inner cavity of the equipment body. After the fabric has been transmitted for a certain length, it is clamped. The rear guide transmission component 2 also clamps the fabric at the end. During the above transmission process, the airflow conveying module 5 can simultaneously perform pneumatic conveying of the fabric. Then, the fabric softening process is performed. Through the pneumatic operation of the airflow conveying module 5, the fabric is continuously circulated and transmitted from left to right. During the transmission process, the fabric continuously impacts the impact components 4 at both ends. As needed, the airflow direction is controlled to achieve multiple patting, thereby making the fabric soft and fluffy, reducing the warp stretch of the fabric, and improving the warp shrinkage rate.

[0017] The advantages of this invention are that it allows for flexible switching between relaxed suspension and impact modes for fabric. The relaxed suspension mode is suitable for gentle handling, preventing damage to the fabric from excessive beating; the impact mode, by precisely controlling the airflow direction and impact force, enhances the softness and fluffiness of the fabric. By combining the baffle assembly and the guide plate, precise control of airflow direction is achieved, allowing the fabric to flexibly switch between relaxed suspension and impact modes to meet the processing needs of different types of fabrics. By setting up an impact adjustment component, the inclined impact plate guides and beats the fabric, which not only improves the softening effect of the fabric, but also prevents the fabric from deviating from the track during transportation.

[0018] 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. A flat-width airflow softener structure capable of switching between relaxation suspension and impact modes, comprising a device body, a fabric conveying channel disposed within the device body for conveying fabric, impact components disposed at the inlet and outlet ends of the fabric conveying channel, and an airflow conveying module for controlling the fabric conveying direction and providing conveying force, characterized in that: The fabric conveying channel includes a main conveying channel, an upper channel and a lower channel connected to the upper and lower ends of the main conveying channel, and windbreak components that control the airflow direction of the upper channel and the lower channel respectively are provided in the upper channel and the lower channel.

2. The flat-width airflow softener structure with adjustable suspension and impact modes according to claim 1, characterized in that: It also includes guide and transmission components respectively disposed at the front and rear ends of the device body for conveying the fabric.

3. The flat-width airflow softener structure with adjustable suspension and impact modes according to claim 1, characterized in that: The windbreak assembly divides the upper channel or the lower channel into a left channel and a right channel. A guide plate is provided in the left channel and the right channel respectively. The guide plate guides the airflow in the left channel to flow to the left and the airflow in the right channel to flow to the right.

4. The flat-width airflow softener structure with adjustable suspension and impact modes according to claim 1, characterized in that: The airflow conveying module is connected to the upper channel and the lower channel of the fabric conveying channel, respectively.

5. The flat-width airflow softener structure with adjustable suspension and impact modes according to claim 1, characterized in that: The windbreak assembly includes a swing baffle and a drive cylinder that is rotatably connected to the swing baffle and drives the swing baffle to swing.

6. The flat-width airflow softener structure with adjustable suspension and impact modes according to claim 1, characterized in that: The impact assembly includes a baffle composed of several baffles and a mounting block for mounting the baffle, the mounting block being installed in the inner cavity of the device body.