A textile dehydration device

Through the textile dehydration device combined with the inner cylinder assembly and the rotating mechanism, the rotating centrifugal force and intermittent beat mechanism are used to solve the problem of low efficiency and wrinkles in the treatment of large amounts of textiles, and the rapid and efficient dehydration and leveling effect are achieved.

CN119433881BActive Publication Date: 2025-07-22XUZHOU SANMIAN TEXTILE CO LTD
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Patent Information

Application Number
CN202510038107.3
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-10
Publication Date
2025-07-22
Estimated Expiration
2045-01-10

AI Technical Summary

Technical Problem

Existing textile dehydration devices are inefficient when processing large amounts of textiles, easily stacked, resulting in long rotation time, and wrinkles during rotation, making it impossible to achieve rapid and efficient dehydration.

Method used

The inner cylinder assembly is combined with the rotating mechanism, and dehydrate by rotating centrifugal force, and intermittent slapping of textiles is used to break the surface tension of the water flow, accelerate the throwing of moisture, and reduce wrinkles.

Benefits of technology

It improves the dehydration efficiency and quality of textiles, shortens the dehydration time, ensures the flatness and aesthetics of the textiles, and improves the practicality of the device.

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Abstract

The present invention is applicable to the technical field of textile production, and provides a textile dehydration device, which includes a dehydration tank, a base, a top seat, a drain pipe, legs, a water storage plate, a fixing block, a water outlet pipe and a box door, and further includes: an inner cylinder assembly, a rotating mechanism and an intermittent flapping mechanism. The inner cylinder assembly and the intermittent flapping mechanism are both arranged in the dehydration tank and are connected to each other, and the rotating mechanism is connected to the inner cylinder assembly. In the textile dehydration device of the present invention, the intermittent flapping mechanism can achieve intermittent flapping of textiles by cooperating with the rotating mechanism and the inner cylinder assembly. In this way, it can not only help to break the surface tension of the water flow inside the textiles, accelerate the dehydration rate of the textiles, so that the device can dehydrate a relatively large number of textiles quickly at the same time, but also make the textiles in a rotating state vibrate, further promoting the discharge of water and shortening the dehydration time.
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Description

Technical Field

[0001] The present invention belongs to the technical field of textile production, and particularly relates to a textile dehydration device. Background Art

[0002] Textiles are made by processing and weaving textile fibers. During the weaving process, there may be phenomena such as fine lint and foreign matter adhesion on textiles, which affect the appearance quality and cause great losses to enterprises. Therefore, doing a good job in cleaning textiles is an indispensable process. Currently, for the surface cleaning of textiles, mainly wet water washing methods are used. After water washing, the textiles need to be quickly dehydrated, otherwise it will affect the subsequent processing of the textiles.

[0003] Existing textile dehydration devices include a bottom plate, a second housing, a first housing, positioning pins, a rotating shaft, a servo motor, a connecting sleeve, an L-shaped rod, a fixed rod, and a moving mechanism. The moving mechanism can effectively clamp the textiles and ensure the stability of the textiles during the rotation of the textiles driven by the servo motor through the rotating shaft, which is beneficial to uniform drying of the textiles and prevents the textiles from being randomly stacked together during the spinning process, thereby avoiding problems such as slackness, texture decline, and wrinkles of the textiles.

[0004] Although the existing textile dehydration devices can fix and rotate the textiles for dehydration, when it is necessary to increase the number of textiles dehydrated at one time, since the textiles are prone to stacking during the fixing process, the device can only rely on the centrifugal force of the rotating shaft for dehydration. In this way, not only the rotation time is long, but also the processing efficiency is low, and it is impossible to quickly dehydrate a large number of textiles. Moreover, during the rotation process, the unfixed areas of the textiles will expand outward due to the centrifugal force, which will also cause wrinkles and require additional time and cost to level them.

[0005] Therefore, in view of the above situation, there is an urgent need to develop a textile dehydration device to overcome the deficiencies in current practical applications. Summary of the Invention

[0006] Aiming at the deficiencies existing in the prior art, the purpose of the embodiments of the present invention is to provide a textile dehydration device to solve the problems in the above background art.

[0007] To achieve the above purpose, the present invention provides the following technical solutions:

[0008] A textile dehydration device includes a dehydration tank, a base, and a top seat. The upper and lower ends of the dehydration tank are respectively fixedly connected to the base and the top seat. A drain pipe is installed on the base, and legs are distributed at the bottom of the base. An annular water storage plate and fixed blocks are respectively fixed on the inner wall of the dehydration tank. A water outlet pipe is fixed on the water storage plate, passing through the fixed block and communicating with the base. A door is rotatably installed on the outer wall of the dehydration tank. The device further includes:

[0009] Inner cylinder assembly, the inner cylinder assembly is arranged in the dehydration tank, and both ends of the inner cylinder assembly are rotatably connected to the fixed block through bearings, and a fixing mechanism is distributed on the surface of the inner cylinder assembly;

[0010] Rotating mechanism, one end of the rotating mechanism is installed on the outer wall of the top seat, and the other end of the rotating mechanism extends into the dehydration tank and is connected to one end of the inner cylinder assembly;

[0011] Intermittent flapping mechanism, the intermittent flapping mechanism includes a connecting component, a driving and controlling component, a flapping plate and an intermittent limiting component. The connecting component includes a fixed seat, a fixed shaft, a connecting seat and an arc-shaped chute. The fixed seat is fixed on the inner wall of the base, and a fixed shaft extending into the dehydration tank is fixed on the fixed seat. One end of the fixed shaft is rotatably installed with a connecting seat, and arc-shaped chutes eccentric to it are circumferentially and equidistantly distributed on the connecting seat. The arc-shaped chute is slidably matched with the driving and controlling component installed on the inner wall of the inner cylinder assembly. One end of the driving and controlling component is installed with a flapping plate, and the bottom of the connecting seat is matched with the intermittent limiting component installed on the fixed seat. The fixed seat, the fixed shaft, the connecting seat, the inner cylinder assembly, the fixed block, the water storage plate and the dehydration tank are all concentric;

[0012] The fixing mechanism fixes the textile on the outer wall of the inner cylinder assembly. The rotating mechanism drives the inner cylinder assembly to rotate on the fixed block. The inner cylinder assembly simultaneously drives the textile and the driving and controlling component to rotate. The inner cylinder assembly realizes the dehydration of the textile by driving the textile on it to rotate synchronously. The intermittent flapping mechanism realizes the intermittent flapping of the textile by cooperating with the rotating mechanism and the inner cylinder assembly.

[0013] As a further technical solution of the present invention, the driving and controlling component includes:

[0014] Fixed columns circumferentially distributed on the inner wall of the inner cylinder assembly;

[0015] Sliding members slidably installed on the fixed columns, and a first spring is installed between one end of the sliding member and the inner cylinder assembly;

[0016] A first connecting member whose one end is rotatably connected to the other end of the sliding member, and the other end of the first connecting member is slidably installed in the arc-shaped chute;

[0017] Second connecting members rotatably installed on both sides of the sliding member, and adjacent second connecting members are rotatably connected;

[0018] A connecting frame installed at the connection of adjacent second connecting members;

[0019] A connecting column fixedly connected to the side of the first connecting member, and the connecting column is fixedly connected to the inner wall of the flapping plate.

[0020] As a further technical solution of the present invention, the intermittent limiting assembly includes:

[0021] An eccentric shaft eccentrically fixed to the bottom of the connecting seat;

[0022] A limiting member rotatably installed on the fixed seat, and the limiting member is intermittently engaged with the eccentric shaft;

[0023] A V-shaped elastic sheet installed on the fixed seat, and one side of the V-shaped elastic sheet abuts against one side of the limiting member;

[0024] A stop block fixed to the fixed seat, and the stop block abuts against the other side of the V-shaped elastic sheet.

[0025] As a further technical solution of the present invention, the inner cylinder assembly includes:

[0026] Two annular edge seats symmetrically arranged at the upper and lower ends in the dehydration tank, and the outer walls of the two annular edge seats are respectively rotatably connected to two fixed blocks on the inner wall of the dehydration tank through bearings, and the inner wall of one of the annular edge seats is fixedly connected to the rotating mechanism;

[0027] Vertical rib plates circumferentially distributed between the two annular edge seats and fixedly connected to both of them, and fixing columns are fixedly connected to the inner walls of the vertical rib plates.

[0028] As a further technical solution of the present invention, an annular installation groove is opened at one end of the annular edge seat close to the vertical rib plate, a linear installation groove is vertically opened in the vertical rib plate, the two installation grooves communicate with each other, and a fixing mechanism for fixing textiles is slidably distributed in the two installation grooves, and the installation groove is a groove body with a convex-shaped cross-section.

[0029] As a further technical solution of the present invention, the rotating mechanism includes:

[0030] A rotating motor fixed to the outer wall of the top seat, and one end of the rotating motor extends into the dehydration tank;

[0031] A spur gear located in the dehydration tank and fixedly connected to the output end of the rotating motor;

[0032] An internal gear fixed to the inner wall of the annular edge seat, and the internal gear meshes with the spur gear.

[0033] As a further technical solution of the present invention, the fixing mechanism includes:

[0034] A first slider slidably installed in the installation groove;

[0035] A second slider slidably installed in the installation groove, and a second spring is installed between the end faces of the first slider and the second slider close to each other;

[0036] A connecting shaft fixed on the first slider and passing through the second slider, with one end of the connecting shaft extending outside the installation groove;

[0037] A clamping block fixedly connected to one end of the connecting shaft, with a pull ring fixed on the top of the clamping block.

[0038] Compared with the prior art, the beneficial effects of the present invention are:

[0039] The fixing mechanism can effectively fix textiles with different shapes by changing its position on the inner cylinder assembly. At the same time, the fixing mechanism can stay on the inner cylinder assembly through its own elastic force, thereby ensuring the stability of the textiles on the inner cylinder assembly, and further improving the dehydration quality of the textiles;

[0040] The rotating mechanism drives the inner cylinder assembly to rotate on the fixed block. The inner cylinder assembly simultaneously drives the textiles and the driving and control assembly to rotate. The centrifugal force generated when the inner cylinder assembly rotates can throw the water in the textiles onto the inner wall of the dehydration tank, thereby realizing the dehydration of the textiles. The use of rotational centrifugal force can effectively remove the moisture in the textiles, thereby improving the dehydration efficiency and quality of the textiles;

[0041] In the rotating state, the driving and control assembly can cooperate with the intermittent limiting assembly in the stationary state to enable the beating plate to reciprocate horizontally while rotating with the inner cylinder assembly, thereby realizing the intermittent beating of the textiles. This can not only help break the surface tension of the water flow inside the textiles, making the moisture more easily thrown out under the action of rotational centrifugal force, accelerating the dehydration rate of the textiles, so that a larger number of textiles can be dehydrated quickly at the same time, but also make the rotating textiles vibrate through the beating method, further promoting the discharge of moisture, greatly reducing the dehydration time of a large number of textiles, improving the working efficiency of the dehydration device. At the same time, through the beating method, the wrinkles formed by the textiles during rotation can also be reduced, ensuring the flatness and beauty of the textiles after dehydration, and improving the practicality of the dehydration device.

[0042] To more clearly elaborate on the structural features and functions of the present invention, the present invention will be described in detail below with reference to the accompanying drawings and specific embodiments. Description of the Drawings

[0043] Figure 1 It is a schematic structural diagram of the textile dehydration device provided by the embodiment of the present invention from the first perspective.

[0044] Figure 2 It is a structural cross-sectional view of the textile dehydration device provided by the embodiment of the present invention from the first perspective.

[0045] Figure 3 It is a vertical cross-sectional view of the textile dehydration device provided by the embodiment of the present invention from the second perspective.

[0046] Figure 4 is Figure 2 An enlarged view of the structure of the inner cylinder assembly and the rotating mechanism.

[0047] Figure 5 is Figure 4 A transverse sectional view of the structure at C-C in the figure.

[0048] Figure 6 is Figure 4 A transverse sectional view of the structure at D-D in the figure.

[0049] Figure 7 is Figure 3 An enlarged view of the structure at A in the figure.

[0050] Figure 8 is Figure 5 An enlarged view of the structure at B in the figure.

[0051] Figure 9 is Figure 4 An enlarged view of the fixing mechanism in the figure.

[0052] Reference numerals: 1 - dehydration tank, 2 - tank door, 3 - base, 31 - drain pipe, 4 - leg, 5 - top seat, 6 - rotating mechanism, 61 - rotating motor, 62 - spur gear, 63 - internal gear, 7 - inner cylinder assembly, 71 - annular edge seat, 72 - vertical rib plate, 73 - mounting groove, 8 - intermittent flapping mechanism, 81 - connecting assembly, 811 - fixing seat, 812 - fixing shaft, 813 - connecting seat, 814 - arc-shaped chute, 82 - driving and controlling assembly, 821 - connecting piece one, 822 - sliding piece, 823 - fixing column, 824 - connecting piece two, 825 - connecting frame, 826 - connecting column, 827 - spring one, 83 - flapping plate, 84 - intermittent limiting assembly, 841 - eccentric shaft, 842 - limiting piece, 843 - V-shaped elastic sheet, 844 - stopper, 9 - fixing mechanism, 91 - slider one, 92 - slider two, 93 - connecting shaft, 94 - clamping block, 95 - pull ring, 96 - spring two, 10 - water storage plate, 11 - fixing block, 12 - water outlet pipe, 13 - bearing. Detailed implementation manners

[0053] In order to make the objectives, technical solutions and advantages of the present invention clearer and more understandable, the present invention will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not used to limit the present invention.

[0054] The following describes the specific implementation of the present invention in detail with reference to specific embodiments.

[0055] As Figures 1 to 8As shown in the figure, a textile dehydration device provided as an embodiment of the present invention includes a dehydration tank 1, a base 3, and a top seat 5. The upper and lower ends of the dehydration tank 1 are fixedly connected to the base 3 and the top seat 5 respectively. A drain pipe 31 is installed on the base 3, and legs 4 are distributed at the bottom of the base 3. An annular water storage plate 10 and fixing blocks 11 are fixedly arranged on the inner wall of the dehydration tank 1. A water outlet pipe 12 that penetrates the fixing block 11 and is connected to the base 3 is fixed on the water storage plate 10. A box door 2 for the staff to take in and out textiles is rotatably installed on the outer wall of the dehydration tank 1. It further includes:

[0056] An inner cylinder assembly 7 is arranged in the dehydration tank 1, and both ends of the inner cylinder assembly 7 are rotatably connected to the fixing blocks 11 through bearings 13. A fixing mechanism 9 for fixing textiles on the surface of the inner cylinder assembly 7 is distributed on the surface of the inner cylinder assembly 7;

[0057] A rotating mechanism 6, one end of the rotating mechanism 6 is installed on the outer wall of the top seat 5, and the other end of the rotating mechanism 6 extends into the dehydration tank 1 and is connected to one end of the inner cylinder assembly 7;

[0058] An intermittent beating mechanism 8 includes a connecting component 81, a driving and controlling component 82, a beating plate 83, and an intermittent limiting component 84. The connecting component 81 includes a fixed seat 811, a fixed shaft 812, a connecting seat 813, and an arc-shaped chute 814. The fixed seat 811 is fixed on the inner wall of the base 3. A fixed shaft 812 extending into the dehydration tank 1 is fixed on the fixed seat 811. One end of the fixed shaft 812 is rotatably installed with a connecting seat 813. Arc-shaped chutes 814 that are eccentric to the connecting seat 813 are circumferentially and equidistantly distributed on the connecting seat 813. The arc-shaped chutes 814 are slidably matched with a driving and controlling component 82 installed on the inner wall of the inner cylinder assembly 7. One end of the driving and controlling component 82 is installed with a beating plate 83. The bottom of the connecting seat 813 is matched with an intermittent limiting component 84 installed on the fixed seat 811;

[0059] The fixed seat 811, the fixed shaft 812, the connecting seat 813, the inner cylinder assembly 7, the fixing blocks 11, the water storage plate 10, and the dehydration tank 1 are all concentric.

[0060] In this embodiment, the fixing mechanism 9 fixes the textile on the outer wall of the inner cylinder assembly 7. The rotating mechanism 6 drives the inner cylinder assembly 7 to rotate on the fixing block 11. The inner cylinder assembly 7 simultaneously drives the textile and the driving and controlling assembly 82 to rotate. The centrifugal force generated when the inner cylinder assembly 7 rotates can throw the water in the textile onto the inner wall of the dehydration tank 1, thereby realizing the dehydration of the textile. The use of rotational centrifugal force can effectively remove the moisture in the textile, thereby improving the dehydration efficiency and quality of the textile. The water collecting plate 10 collects the water flowing down from the inner wall of the dehydration tank 1 and discharges it into the base 3 through the water outlet pipe 12;

[0061] In the initial state, the intermittent limiting component 84 does not limit the connecting seat 813, and the connecting seat 813 is in a freely rotating state. The driving and controlling assembly 82 drives the beating plate 83 to rotate and move horizontally simultaneously by rotating. The beating plate 83 beats the textile fixed on the inner cylinder assembly 7 by moving. At the same time, the driving and controlling assembly 82 drives the connecting seat 813 to rotate on the fixed shaft 812;

[0062] When the connecting seat 813 rotates to a position where it cooperates with the intermittent limiting component 84, the intermittent limiting component 84 restricts the connecting seat 813 from continuing to rotate and makes it stationary. At this time, the resistance of the intermittent limiting component 84 to the connecting seat 813 is greater than the rotational centrifugal force of the beating plate 83, so that one end of the driving and controlling assembly 82 in the rotating state slides along the track of the arc-shaped chute 814. The driving and controlling assembly 82 in the rotating state drives the beating plate 83 in the synchronous rotating state to move towards the direction close to the fixed shaft 812, so that it separates from the textile;

[0063] When one end of the driving and controlling component 82 slides to the limit position of the arc-shaped chute 814, at this time, the driving and controlling component 82 can transmit the rotational force on the inner cylinder component 7 to the connecting seat 813, and the transmitted rotational force is greater than the resistance of the intermittent limiting component 84 to the connecting seat 813, so that the driving and controlling component 82 drives the connecting seat 813 to separate from the intermittent limiting component 84 in a manner of cooperating with the inner cylinder component 7, making the connecting seat 813 return to the free state again. At this time, the centrifugal force generated by the rotation of the flapping plate 83 drives the driving and controlling component 82 to slide reversely in the arc-shaped chute 814. At the same time, it also moves rapidly towards the direction close to the textile again, so as to realize the flapping of the textile. The intermittent flapping mechanism 8 can realize the intermittent flapping of the textile by cooperating with the rotating mechanism 6 and the inner cylinder component 7. This can not only help to break the surface tension of the water flow inside the textile, making the water more easily thrown out under the action of rotational centrifugal force, accelerating the dehydration rate of the textile, so that a larger number of textiles can be dehydrated quickly at the same time, but also make the rotating textile vibrate by flapping, further promoting the discharge of water, greatly reducing the dehydration time of a larger number of textiles, improving the working efficiency of the dehydration device. At the same time, by flapping, the wrinkles formed by the textile during rotation can also be reduced, ensuring the flatness and beauty of the textile after dehydration, and improving the practicability of the dehydration device.

[0064] In a preferred embodiment, both the fixed seat 811 and the connecting seat 813 preferably adopt a circular block structure, and the distribution track of the arc-shaped chute 814 is designed from far to near to the axis of the connecting seat 813. In this way, the driving and controlling component 82 can drive the flapping plate 83 to move towards the direction close to the fixed shaft 812 by sliding on the arc-shaped chute 814.

[0065] As Figures 2 to 8 shown, as a preferred embodiment of the present invention, the driving and controlling component 82 includes a first connecting piece 821, a sliding piece 822, a fixing column 823, a second connecting piece 824, a connecting frame 825, a connecting column 826 and a first spring 827. The fixing columns 823 are circumferentially distributed on the inner wall of the inner cylinder component 7. The sliding piece 822 is slidably installed on the fixing column 823. A first spring 827 is installed between one end of the sliding piece 822 and the inner cylinder component 7. The other end of the sliding piece 822 is rotatably connected to one end of the first connecting piece 821. The other end of the first connecting piece 821 is slidably installed in the arc-shaped chute 814. The second connecting pieces 824 are rotatably installed on both sides of the sliding piece 822. Adjacent two of the second connecting pieces 824 are rotatably connected, and a connecting frame 825 is installed at the connection of the adjacent two second connecting pieces 824. One side of the connecting frame 825 is fixed with a connecting column 826 fixedly connected to the inner wall of the flapping plate 83.

[0066] In this embodiment, when the connecting seat 813 rotates to a position where it cooperates with the intermittent limiting component 84, the intermittent limiting component 84 restricts the continuous rotation of the connecting seat 813 and makes it in a stationary state. At this time, the resistance of the intermittent limiting component 84 to the connecting seat 813 is greater than the rotational centrifugal force of the flapping plate 83. At this time, the driving and controlling component 82 continues to rotate with the inner cylinder component 7, so that one end of the first connecting piece 821 slides in the arc-shaped chute 814 in the direction close to the fixed shaft 812. The first connecting piece 821 drives the sliding piece 822 to slide on the fixed column 823. The sliding piece 822 drives the connecting frame 825 and the connecting column 826 to move in the direction close to the fixed shaft 812 through the second connecting piece 824. The connecting column 826 drives the flapping plate 83 to move in the direction close to the fixed shaft 812, thereby realizing the separation of the flapping plate 83 from the textile;

[0067] When one end of the first connecting piece 821 slides to the limit position of the arc-shaped chute 814, at this time, the first connecting piece 821 can directly transfer the rotational force on the inner cylinder component 7 to the connecting seat 813, so that the driving force received by the connecting seat 813 at this time is the rotational force transmitted by the rotating mechanism 6, and the transmitted rotational force is greater than the resistance of the intermittent limiting component 84 to the connecting seat 813. The first connecting piece 821 drives the connecting seat 813 to separate from the intermittent limiting component 84 through the rotational force, so that the connecting seat 813 returns to the free state again. At the same time, the first connecting piece 821 will not be affected by the resistance of the intermittent limiting component 84. At this time, the centrifugal force generated by the rotation of the flapping plate 83 drives the first connecting piece 821 to slide reversely in the arc-shaped chute 814. At the same time, it also moves rapidly in the direction close to the textile under the action of its own rotational centrifugal force, thereby realizing the flapping of the textile. By repeating this process, the intermittent flapping of the textile can be realized.

[0068] In a preferred embodiment, the first connecting piece 821 and the second connecting piece 824 are preferably both of a connecting rod structure;

[0069] The sliding piece 822 is preferably of a circular sleeve structure, and ear plates rotatably connected to the second connecting piece 824 are fixed on both sides thereof.

[0070] As Figures 2 to 8 shown, as a preferred embodiment of the present invention, the intermittent limiting component 84 includes an eccentric shaft 841, a limiting member 842, a V-shaped elastic piece 843 and a stop block 844. The eccentric shaft 841 is eccentrically fixed at the bottom of the connecting seat 813. One end of the eccentric shaft 841 is intermittently matched with the limiting member 842 rotatably installed on the fixed seat 811. One side of the limiting member 842 abuts against one side of the V-shaped elastic piece 843 installed on the fixed seat 811. The V-shaped elastic piece 843 abuts against the other side of the stop block 844 fixed on the fixed seat 811.

[0071] In this embodiment, in the initial state, the eccentric shaft 841 and the limiting member 842 are in an uncooperated state, and the connecting seat 813 is in a freely rotatable state. When the connecting seat 813 drives the eccentric shaft 841 to rotate to a position where it cooperates with the limiting member 842, at this time, the elastic force of the V-shaped elastic piece 843 is greater than the rotational centrifugal force of the flapping plate 83, so that the limiting member 842 can limit the continuous rotation of the eccentric shaft 841, and further limit the continuous rotation of the connecting seat 813 and make it in a static state;

[0072] When one end of the first connecting member 821 slides to the limit position of the arc-shaped chute 814, at this time, the first connecting member 821 can directly transfer the rotational force on the inner cylinder assembly 7 to the connecting seat 813, so that the driving force received by the connecting seat 813 at this time is the rotational force transmitted by the rotating mechanism 6. The connecting seat 813 transfers the rotational force to the limiting member 842 through the eccentric shaft 841. At this time, the transmitted rotational force is greater than the elastic force of the V-shaped elastic piece 843, so that while the connecting seat 813 rotates with the first connecting member 821, it also drives the eccentric shaft 841 to rotate. The eccentric shaft 841 drives the limiting member 842 to rotate, so that the V-shaped elastic piece 843 is in a compressed state;

[0073] When the eccentric shaft 841 rotates to be separated from the limiting member 842, the connecting seat 813 returns to the free state again, so that the flapping plate 83 can move rapidly towards the direction close to the textile again under the action of the rotational centrifugal force, thereby realizing the flapping of the textile. Repeating this process can realize the intermittent flapping of the textile.

[0074] In a preferred embodiment, the limiting member 842 preferably adopts a block structure, and in the initial state, the limiting member 842 is on the path of the eccentric shaft 841 revolving with the connecting seat 813, so that the limiting member 842 can effectively limit the rotational movement of the eccentric shaft 841.

[0075] As Figures 2 to 8 shown, as a preferred embodiment of the present invention, the inner cylinder assembly 7 includes an annular edge seat 71 and vertical rib plates 72. There are two annular edge seats 71, and the two annular edge seats 71 are symmetrically arranged at the upper and lower ends inside the dehydration tank 1. The outer walls of the two annular edge seats 71 are respectively rotatably connected to two fixing blocks 11 on the inner wall of the dehydration tank 1 through bearings 13. The vertical rib plates 72 fixedly connected to the two annular edge seats 71 are circumferentially equidistantly distributed therebetween. The inner wall of one annular edge seat 71 is fixedly connected to the rotating mechanism 6, and a fixing column 823 is fixedly connected to the inner wall of the vertical rib plate 72.

[0076] As Figures 2 to 4As shown, as a preferred embodiment of the present invention, the rotating mechanism 6 includes a rotating motor 61, a spur gear 62 and an internal gear 63. The rotating motor 61 is fixed on the outer wall of the top seat 5. The output end of the rotating motor 61 extends into the dehydration tank 1 and is concentrically and fixedly connected with the spur gear 62. The spur gear 62 meshes with the internal gear 63 fixed on the inner wall of the annular edge seat 71.

[0077] In this embodiment, the rotating motor 61 drives the spur gear 62 to rotate. The spur gear 62 drives an annular edge seat 71 to rotate through the internal gear 63. One annular edge seat 71 drives another annular edge seat 71 to rotate synchronously through the vertical rib plate 72. The annular edge seat 71 and the vertical rib plate 72 can, by rotating, throw the water in a relatively large number of textiles fixed thereon to the inner wall of the dehydration tank 1, thereby realizing the dehydration of the textiles.

[0078] At the same time, the vertical rib plate 72 drives the second connecting member 824, the connecting frame 825 and the first connecting member 821 to rotate through the fixing column 823. The connecting frame 825 rotates through the connecting column 826. The connecting column 826 drives the beating plate 83 to rotate. When the centrifugal force generated when the beating plate 83 rotates is greater than the elastic force of the first spring 827, the beating plate 83 can move towards the direction close to the textiles, thereby realizing the beating of the textiles. The beating plate 83 drives the two adjacent second connecting members 824 to cross-rotate through the connecting frame 825 and the connecting column 826. The two second connecting members 824 drive their respective sliding members 822 to move towards the direction close to the textiles. The sliding member 822 drives the first connecting member 821 to slide in the arc-shaped chute 814, so that the first connecting member 821 slides to one end of the arc-shaped chute 814 far from the fixed shaft 812, and further enables the first connecting member 821 to drive the connecting seat 813 to rotate synchronously through the arc-shaped chute 814. The connecting seat 813 drives the eccentric shaft 841 to rotate synchronously. In this way, it can cooperate with the intermittent limiting component 84 to realize the intermittent beating of the beating plate 83 on the textiles, thereby accelerating the dehydration rate of the textiles.

[0079] In a preferred embodiment, there is a certain space between two adjacent vertical rib plates 72. The existing space can facilitate the beating plate 83 to extend out thereof and beat the textiles, thereby accelerating the dehydration rate of the textiles.

[0080] As Figures 2 to 9 As shown, as a preferred embodiment of the present invention, an annular installation groove 73 is opened at one end of the annular edge seat 71 close to the vertical rib plate 72. The vertical rib plate 72 is vertically provided with a linear installation groove 73. The two installation grooves 73 communicate with each other. And a fixing mechanism 9 for fixing the textiles is slidably distributed in the two installation grooves 73. And the installation groove 73 preferably adopts a groove body with a convex-shaped cross-section.

[0081] As Figures 2 to 9 shown, as a preferred embodiment of the present invention, the fixing mechanism 9 includes a first slider 91, a second slider 92, a connecting shaft 93, a clamping block 94, a pull ring 95 and a second spring 96. The first slider 91 and the second slider 92 are both slidably installed in the installation groove 73. A second spring 96 is installed between the end faces of the first slider 91 and the second slider 92 that are close to each other. A connecting shaft 93 passing through the second slider 92 is fixed on the first slider 91. One end of the connecting shaft 93 extends outside the installation groove 73 and is fixedly connected to the clamping block 94. A pull ring 95 is fixed on the top of the clamping block 94.

[0082] In this embodiment, in the initial state, the second spring 96 drives the first slider 91 and the second slider 92 to move in opposite directions through its own elastic force, so that both the first slider 91 and the second slider 92 are in close contact with the inner wall of the installation groove 73. In this way, its overall structure can be fixed at a specific position in the installation groove 73. Even when the inner cylinder assembly 7 rotates, it will not displace, thereby ensuring the stability of the textile on the inner cylinder assembly 7, and further improving the dehydration quality of the textile;

[0083] When it is necessary to fix the textile on the outer wall of the inner cylinder assembly 7, the pull ring 95 drives the clamping block 94 to separate from the inner cylinder assembly 7. The clamping block 94 drives the first slider 91 to separate from the inner wall of the installation groove 73 through the connecting shaft 93, so that the second slider 92 can slide in the installation groove 73 under the action of an external force, thereby changing the position of the clamping block 94, enabling it to move to the required position and effectively fix the textile, ensuring the stability of the textile on the inner cylinder assembly 7.

[0084] The working principle of the present invention is:

[0085] In the initial state, the second spring 96 drives the first slider 91 and the second slider 92 to move in opposite directions through its own elastic force, so that both the first slider 91 and the second slider 92 are in close contact with the inner wall of the installation groove 73. In this way, its overall structure can be fixed at a specific position in the installation groove 73. Even when the inner cylinder assembly 7 rotates, it will not displace; when it is necessary to fix the textile on the outer wall of the inner cylinder assembly 7, the pull ring 95 drives the clamping block 94 to separate from the inner cylinder assembly 7. The clamping block 94 drives the first slider 91 to separate from the inner wall of the installation groove 73 through the connecting shaft 93, so that the second slider 92 can slide in the installation groove 73 under the action of an external force, thereby changing the position of the clamping block 94, enabling it to move to the required position and effectively fix the textile, ensuring the stability of the textile on the inner cylinder assembly 7;

[0086] The rotating motor 61 drives the spur gear 62 to rotate. The spur gear 62 drives a ring-shaped side seat 71 to rotate through an internal gear 63. One ring-shaped side seat 71 drives another ring-shaped side seat 71 to rotate synchronously through a vertical rib plate 72. The ring-shaped side seat 71 and the vertical rib plate 72 can, by rotating, throw the water in a relatively large number of textiles fixed thereon onto the inner wall of the dehydration tank 1, thereby realizing the dehydration of the textiles.

[0087] At the same time, the vertical rib plate 72 drives the second connecting piece 824, the connecting frame 825 and the first connecting piece 821 to rotate through the fixed column 823. The connecting frame 825 rotates through the connecting column 826. The connecting column 826 drives the beating plate 83 to rotate. When the centrifugal force generated when the beating plate 83 rotates is greater than the elastic force of the first spring 827, the beating plate 83 can move towards the direction close to the textiles, thereby realizing the beating of the textiles. The beating plate 83 drives the two adjacent second connecting pieces 824 to cross-rotate through the connecting frame 825 and the connecting column 826. The two second connecting pieces 824 drive their respective sliding pieces 822 to move towards the direction close to the textiles. The sliding piece 822 drives the first connecting piece 821 to slide in the arc-shaped chute 814, so that the first connecting piece 821 slides to one end of the arc-shaped chute 814 far from the fixed shaft 812, and further enables the first connecting piece 821 to drive the connecting seat 813 to rotate synchronously through the arc-shaped chute 814. The connecting seat 813 drives the eccentric shaft 841 to rotate synchronously.

[0088] In the initial state, the eccentric shaft 841 and the limiting member 842 are in an uncooperated state, and the connecting seat 813 is in a freely rotatable state. When the connecting seat 813 drives the eccentric shaft 841 to rotate to a position where it cooperates with the limiting member 842, at this time, the elastic force of the V-shaped elastic piece 843 is greater than the rotational centrifugal force of the beating plate 83, so that the limiting member 842 can limit the further rotation of the eccentric shaft 841, and further limit the further rotation of the connecting seat 813 and make it in a static state.

[0089] When one end of the first connecting piece 821 slides to the limit position of the arc-shaped chute 814, at this time, the first connecting piece 821 can directly transmit the rotational force on the inner cylinder assembly 7 to the connecting seat 813, so that the driving force received by the connecting seat 813 at this time is the rotational force transmitted by the rotating mechanism 6. The connecting seat 813 transmits the rotational force to the limiting member 842 through the eccentric shaft 841. At this time, the transmitted rotational force is greater than the elastic force of the V-shaped elastic piece 843, so that the connecting seat 813 drives the eccentric shaft 841 to rotate while rotating with the first connecting piece 821. The eccentric shaft 841 drives the limiting member 842 to rotate, so that the V-shaped elastic piece 843 is in a compressed state.

[0090] After the eccentric shaft 841 rotates away from the limiting member 842, the connecting seat 813 returns to the free state again, so that the flapping plate 83 can move rapidly towards the textile again under the action of the rotational centrifugal force, thereby realizing the flapping of the textile. Repeating this process can achieve the intermittent flapping of the textile;

[0091] The above is the working principle of the textile dehydration device.

[0092] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. Any modifications, equivalent replacements, and improvements made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.

Claims

1. A textile dehydration device, comprising a dehydration tank, a base and a top seat. The upper and lower ends of the dehydration tank are respectively fixedly connected to the base and the top seat. A drain pipe is installed on the base, and legs are distributed at the bottom of the base. An annular water storage plate and a fixed block are respectively fixed on the inner wall of the dehydration tank. A water outlet pipe that penetrates the fixed block and is communicated with the base is fixed on the water storage plate. A door of the box is rotatably installed on the outer wall of the dehydration tank, and it is characterized in that, It further includes: An inner cylinder assembly, which is arranged in the dehydration tank, and both ends of the inner cylinder assembly are rotatably connected to the fixed blocks through bearings, and a fixing mechanism is distributed on the surface of the inner cylinder assembly; A rotating mechanism, one end of which is installed on the outer wall of the top seat, and the other end of the rotating mechanism extends into the dehydration tank and is connected to one end of the inner cylinder assembly; An intermittent beating mechanism, which includes a connecting component, a driving and controlling component, a beating plate and an intermittent limiting component. The connecting component includes a fixed seat, a fixed shaft, a connecting seat and an arc-shaped sliding groove. The fixed seat is fixed on the inner wall of the base, and a fixed shaft extending into the dehydration tank is fixed on the fixed seat. One end of the fixed shaft is rotatably installed with a connecting seat, and arc-shaped sliding grooves eccentric to it are circumferentially and equidistantly distributed on the connecting seat. The arc-shaped sliding groove is slidably matched with the driving and controlling component installed on the inner wall of the inner cylinder assembly. One end of the driving and controlling component is installed with a beating plate, and the bottom of the connecting seat is matched with the intermittent limiting component installed on the fixed seat. The fixed seat, the fixed shaft, the connecting seat, the inner cylinder assembly, the fixed block, the water storage plate and the dehydration tank are all concentric; The fixing mechanism fixes the textile on the outer wall of the inner cylinder assembly. The rotating mechanism drives the inner cylinder assembly to rotate on the fixed block. The inner cylinder assembly simultaneously drives the textile and the driving and controlling component to rotate. The inner cylinder assembly realizes dehydration of the textile by driving the textile on it to rotate synchronously. The intermittent beating mechanism realizes intermittent beating of the textile by cooperating with the rotating mechanism and the inner cylinder assembly; The driving and controlling component includes: Fixed columns circumferentially distributed on the inner wall of the inner cylinder assembly; Sliding members slidably installed on the fixed columns, and a first spring is installed between one end of the sliding member and the inner cylinder assembly; A first connecting member with one end rotatably connected to the other end of the sliding member, and the other end of the first connecting member is slidably installed in the arc-shaped sliding groove; Second connecting members rotatably installed on both sides of the sliding member, and adjacent two of the second connecting members are rotatably connected to each other; A connecting frame installed at the connection of adjacent two second connecting members; A connecting column fixedly connected to one side of the connecting frame, and the connecting column is fixedly connected to the inner wall of the beating plate; The intermittent limiting component includes: An eccentric shaft eccentrically fixed to the bottom of the connecting seat; A limiting member rotatably installed on the fixed seat, and the limiting member is intermittently matched with the eccentric shaft; A V-shaped elastic sheet installed on the fixed seat, and one side of the V-shaped elastic sheet abuts against one side of the limiting member; A stop block fixed on the fixed seat, and the stop block abuts against the other side of the V-shaped elastic sheet.

2. The textile dehydration device according to claim 1, characterized in that, The inner cylinder assembly includes: Two annular edge seats symmetrically arranged at the upper and lower ends in the dehydration tank, and the outer walls of the two annular edge seats are rotatably connected to two fixed blocks on the inner wall of the dehydration tank through bearings respectively. The inner wall of one of the annular edge seats is fixedly connected to the rotating mechanism; Vertical rib plates circumferentially distributed between the two annular edge seats and fixedly connected to both of them, and fixed columns are fixedly connected to the inner walls of the vertical rib plates.

3. The textile dehydration device according to claim 2, characterized in that, One end of the annular side seat close to the vertical rib plate is provided with an annular installation groove, the vertical rib plate is vertically provided with a linear installation groove, the two installation grooves communicate with each other, and a fixing mechanism for fixing textiles is slidably distributed in the two installation grooves, and the installation groove is a groove body with a convex-shaped cross section.

4. The textile dehydration device according to claim 2, wherein The rotation mechanism includes: A rotation motor fixed on the outer wall of the top seat, and one end of the rotation motor extends into the dehydration tank; A spur gear located in the dehydration tank and fixedly connected to the output end of the rotation motor; An internal gear fixed on the inner wall of the annular side seat, and the internal gear meshes with the spur gear.

5. The textile dehydration device according to claim 3, characterized in that The fixing mechanism includes: A first slider slidably installed in the installation groove; A second slider slidably installed in the installation groove, and a second spring is installed between the end faces of the first slider and the second slider close to each other; A connecting shaft fixed on the first slider and passing through the second slider, and one end of the connecting shaft extends outside the installation groove; A clamping block fixedly connected to one end of the connecting shaft, and a pull ring is fixed on the top of the clamping block.

Citation Information

Patent Citations

  • Dehydrator

    CN208829923U

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    CN208949555U