Hydrophilic polyester fiber cloth dyeing machine

By using a mixed-flow rotating disc and exhaust pipe structure driven by airflow in the fabric dyeing machine, the problems of cumbersome, time-consuming and fiber damage in the prior art are solved, and the rapid and uniform dyeing and shaping of the fabric is achieved, and solution waste and pollution are reduced.

CN120174568AInactive Publication Date: 2025-06-20王立民
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Patent Information

Application Number
CN202510636608.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-17
Publication Date
2025-06-20
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing fabric dyeing machines are used to cause problems such as cumbersome coloring processing, time-consuming, resulting in reduced comfort and softness of fiber fabrics, and overflow and waste of dyeing pigment solutions.

Method used

A hydrophilic polyester fiber fabric dyeing machine is designed, using a mixed flow rotating disc and exhaust pipe structure driven by airflow. The mixed flow rotating disc and exhaust pipe are driven by high-pressure airflow to improve the mixing efficiency of the dyeing solution, and the liquid level height of the dyeing solution is controlled through the lifting and lowering motion of the flow blocking plate to ensure that the fabric is completely dyed and the residual solution is cleaned.

Benefits of technology

It realizes rapid coloring and processing of fabrics, reduces operating time, avoids damage to fiber tissue, improves dyeing and shaping effect, and facilitates cleaning of residual solutions, reducing waste and pollution.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention discloses a hydrophilic polyester fiber cloth dyeing machine, comprising: a machine body, the bottom of which is provided with a fixing frame; the air inlet pipeline is connected to the outer wall of the upper end of the rotating frame through a sealing bearing, a mixed flow rotating disc is fixed to the lower end of the rotating frame, and exhaust pipes are fixed to the outer wall of the side of the mixed flow rotating disc at equal intervals; the liquid storage cavity is fixed to the bottom of the machine body, liquid discharging pipes are installed on the left side and the right side of the liquid storage cavity in a penetrating mode, and a flow blocking valve is arranged at the penetrating connection position of the liquid storage cavity and the liquid discharging pipes; and the middle cavity is fixed to the middle of the bottom of the machine body in a penetrating mode, a supporting rod is movably installed in the middle of the top of the middle cavity in a penetrating mode, a rotating ring is movably installed at the upper end of the supporting rod, and a height limiting frame is fixed to the bottom of the rotating ring. According to the hydrophilic polyester fiber cloth dyeing machine, the cloth coloring and shaping effect can be effectively improved, fiber tissues are prevented from being damaged in the dyeing process, and a residual solution on the cloth can be conveniently cleaned and discharged.
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Description

Technical Field

[0001] The present invention relates to the technical field of fabric dyeing machines, and particularly to a hydrophilic polyester fiber fabric dyeing machine. Background Art

[0002] Hydrophilic polyester fiber fabric is a safety material containing hydrophilic groups. Different from conventional polyester fibers, through the use of hydrophilic groups on the main chain of fiber macromolecules, the fabric has good water permeability and water absorption effect during use, etc. It is not easy to generate static electricity during use and is more comfortable to wear. During the production and preparation of the fabric, in order to improve the aesthetic appearance of the fabric, it is necessary to use equipment such as a dyeing machine to carry out coloring and processing on it.

[0003] However, the existing fabric dyeing machines have the following problems when in use: Since conventional polyester fiber fabrics have good hydrophobicity, poor water absorption, and are not easy to color and shape, when carrying out dyeing processing on them, it is necessary to repeat coloring, the operation is cumbersome, and it is necessary to use a stirring member to fully hammer the fabric and the dyeing machine so that the pigment is colored and shaped on the fabric; Its operation time-consuming is large, and due to repeatedly hammering the fabric, it will cause damage to the fabric itself, or directly cause local fracture of the fiber molecular chain of the fabric, directly affecting the stability of the warp and weft of the fiber fabric, thereby reducing the comfort and softness of the fiber fabric during use; At the same time, the functionality is single. After dyeing processing, it is not convenient to wring out the excess color solution adhered to the fabric, resulting in the overflow and waste of the pigment solution and the pollution of the surrounding environment.

[0004] In view of the above problems, there is an urgent need to innovate and design on the basis of the original fabric dyeing machine. Summary of the Invention

[0005] The purpose of the present invention is to provide a hydrophilic polyester fiber fabric dyeing machine to solve the problems in the above background art that the existing fabric dyeing machine has cumbersome coloring processing hammering, long dyeing operation time, resulting in reduced comfort and softness of the fiber fabric during use, and at the same time causing overflow and waste of the dyeing pigment solution.

[0006] To achieve the above purpose, the present invention provides the following technical solution: A hydrophilic polyester fiber fabric dyeing machine, comprising: A machine body, which is provided with a fixed frame at the bottom, and a rotating frame is installed on the bearing at the middle position of the top of the machine body. And a fabric turning roller is movably installed on the inner side wall of the machine body, and stirring blades are fixed in the middle of the rotating frame; It further includes: The intake pipe is connected to the outer wall of the upper end of the rotating frame through a sealed bearing, and a mixed-flow rotating disc is fixed to the lower end of the rotating frame. Exhaust pipes are equally spaced and fixed on the outer side wall of the mixed-flow rotating disc. The liquid storage cavity is fixed to the bottom of the body. Drain pipes are installed through the left and right sides of the liquid storage cavity, and a flow-blocking valve is provided at the through-connection of the two. The middle cavity is fixedly installed through the middle position of the bottom of the body. A support rod is movably installed through the middle of the top of the middle cavity. A rotating ring is movably installed at the upper end of the support rod. A height-limiting frame is fixed to the bottom of the rotating ring. The height-limiting frame is connected to the outer wall of the support rod. A synchronous rotation adjustment member is provided between the rotating ring and the mixed-flow rotating disc, and there are two types of the synchronous rotation adjustment members.

[0007] With the above technical solutions, rapid coloring processing of the fabric is achieved, and the operation is convenient.

[0008] Preferably, the rotating frame is hollow inside. The outer wall of the upper end of the rotating frame located inside the intake pipe is in a hollowed-out structure. The rotating frame communicates with the inside of the mixed-flow rotating disc. A turbine is fixed inside the middle section of the rotating frame above the liquid level inside the body.

[0009] With the above technical solutions, driven by air flow, the coloring processing effect and rate of dyeing are improved.

[0010] Preferably, the exhaust pipes are evenly distributed at equal angles on the outer wall of the mixed-flow rotating disc. An air outlet is opened on the outer wall of the same side of the exhaust pipe. The air outlet is obliquely cut on the exhaust pipe, and the oblique cut opening is distributed obliquely downward.

[0011] With the above technical solutions, the mixed-flow efficiency of the solution during fabric dyeing is improved, enabling it to be quickly colored.

[0012] Preferably, the rotating frame, the mixed-flow rotating disc, and the support rod are vertically coaxially distributed. The outer wall of the upper half of the support rod is in the shape of a reciprocating lead screw groove. The upper half of the support rod is threadedly connected to the inner wall of the height-limiting frame. A mixed-flow blade is provided at the edge of the rotating ring, and a shaped groove is also provided at its top.

[0013] With the above technical solutions, it is convenient to adjust the height of the rotating ring. When it moves, it can drive the solution to mix, improving the fabric dyeing efficiency.

[0014] Preferably, the first type of synchronous rotation adjustment member includes first permanent magnets on the mixed-flow rotating disc and the support rod, and the height-limiting frame fixed to the bottom of the rotating ring. Among them, the two first permanent magnets are respectively fixed at the center of the bottom of the mixed-flow rotating disc and the upper end of the support rod. The two first permanent magnets are magnetically adsorbed to each other. A limiting vertical rod is fixed to the bottom of the rotating ring, and the lower ends of the limiting vertical rod and the support rod are slidably connected through the top of the middle cavity.

[0015] With the above technical solution, the rotational movement of the mixed-flow rotating disk drives the rotating ring to perform synchronous movement.

[0016] Preferably, the second synchronous rotation adjusting member includes second permanent magnets on the mixed-flow rotating disk and the rotating ring. The second permanent magnets are evenly distributed at equal angles at the bottom of the mixed-flow rotating disk and the top of the rotating ring, and the second permanent magnets on both of them correspond to each other one by one and are magnetically adsorbed and arranged.

[0017] With the above technical solution, the rotational movement of the mixed-flow rotating disk drives the rotating ring to perform synchronous movement.

[0018] Preferably, a threaded lifting rod is rotatably installed through the side of the liquid storage cavity. The threaded lifting rod is connected to a motor chain belt assembly fixed at the bottom of the liquid storage cavity. A flow blocking plate is threadedly connected to the outer wall of the threaded lifting rod located inside the liquid storage cavity. At the same time, the outer edge and the middle position of the flow blocking plate are in sealed sliding connection with the inner wall of the liquid storage cavity and the outer wall of the middle cavity.

[0019] With the above technical solution, it is convenient to adjust the positioning height of the flow blocking plate and change the height of the liquid level inside the machine body.

[0020] Preferably, a liquid storage bladder and a corrugated liquid bladder are respectively fixed on the outer side and the inner side of the bottom of the middle cavity. The two are internally connected. The elastic strength of the corrugated liquid bladder is greater than that of the liquid storage bladder. A lifting frame is also fixed between the tops of the corrugated liquid bladders. The lifting frame is arranged through the middle pipe. The middle pipe is fixed at the middle position inside the middle cavity. At the same time, the middle part of the middle pipe is in through sliding connection with the support rod.

[0021] With the above technical solution, the pressure solution in the liquid storage bladder and the corrugated liquid bladder can be conductively stored, and the installation height of the support rod can be changed.

[0022] Preferably, the support rod forms a through relative telescopic structure with both the middle cavity and the middle pipe, and the lower end of the support rod forms a through bearing connection relative rotation structure with the middle part of the lifting frame.

[0023] With the above technical solution, when the support rod rotates, the connection between it and the lifting frame will not be broken.

[0024] Preferably, the support rod forms a through relative telescopic structure with both the middle cavity and the middle pipe, and a fixed connection is provided between the lower end of the support rod and the middle part of the lifting frame.

[0025] With the above technical solution, it is convenient for the support rod and the lifting frame to move synchronously.

[0026] Preferably, the flow blocking valve is composed of a worm gear assembly, an intermediate rod, a worm wheel cylinder, and a liquid seal blocking plate. The worm gear assembly and the flow blocking valve are installed through bearings. An intermediate rod is installed through the middle part of the flow blocking valve by a bracket. A worm wheel cylinder is rotatably installed at the middle position of the bracket. A blocking plate is fixed to the end of the intermediate rod facing the liquid storage cavity. The blocking plate realizes the blocking and sealing of the through connection between the liquid storage cavity and the drain pipe.

[0027] Adopting the above technical solution is convenient for the installation and positioning of the blocking plate, and realizes the blocking and sealing of the through connection between the liquid storage cavity and the drain pipe.

[0028] Preferably, the outer walls of the middle section and the right section of the intermediate rod are respectively arranged in a threaded shape and a rectangular shape. The middle section of the intermediate rod is threadedly connected to the inner wall of the worm wheel cylinder. A sliding connection with radial clamping and axial fitting is formed between the right end of the intermediate rod and the bracket. The intermediate rod and the blocking plate are fixedly installed vertically, and the worm wheel cylinder and the worm gear assembly are meshed.

[0029] Adopting the above technical solution is convenient for the position movement and adjustment of the blocking plate. When the flow blocking plate in the liquid storage cavity moves up and down, liquid leakage will not occur. At the same time, it is convenient for the discharge and introduction of the solution.

[0030] Compared with the prior art, the beneficial effects of the present invention are as follows: This hydrophilic polyester fiber fabric dyeing machine can effectively improve the coloring and shaping effect of the fabric, prevent damage to the fiber structure during the dyeing process, and facilitate the cleaning and discharge of the residual solution on it. The specific methods are as follows: 1. Only through the action of air flow, under the action of high-pressure air flow, the mixed-flow rotating disk and the exhaust pipe are driven to rotate continuously. While rotating and stirring the flow, gas is introduced into the dyeing solution to further improve the mixing effect. At the same time, under the action of mixing flow and air pressure and temperature, the coloring effect of the fabric is improved. At the same time, the continuous rotation of the mixed-flow rotating disk can drive the support rod to rotate under the action of the first permanent magnet, so that the rotating ring installed on it moves up and down continuously. The mixed flow and alternating current can also directly drive the rotating ring to rotate under the action of the second permanent magnet. Under the action of the reciprocating screw groove structure on the outer wall of the support rod, the up-and-down rotation movement of the rotating ring is achieved, and rapid mixing is carried out, accelerating the coloring rate of the fabric, and preventing the fiber structure of the fabric from breaking due to external force during the coloring process, making the colored and shaped fabric more comfortable to wear. 2. Under the action of the threaded lifting rod and the baffle plate inside the liquid storage cavity and the motor assembly, it is convenient to drive the vertical lifting of the baffle plate. Its lifting movement can cause the dyeing solution in the machine body to be introduced into the liquid storage cavity for storage, changing the liquid level height in the machine body so that the whole fabric is above the liquid level. During the lifting process of the baffle plate, the liquid seal baffle plate in the flow blocking valve directly blocks and seals the connection between the drain pipe and the liquid storage cavity, so that the dyeing solution will not be discharged through the drain pipe and will not flow into the bottom of the liquid storage cavity. Moreover, the lifting of the baffle plate in the liquid storage cavity will directly press the liquid storage bag due to its gravity, causing the pressure solutions inside the liquid storage bag and the corrugated liquid bag to communicate with each other. When the corrugated liquid bag expands, it can drive the overall lifting of the support rod structure, making the rotating ring on it closer to the mixed-flow rotating disk. When the mixed-flow rotating disk rotates and discharges gas, the rotating ring makes continuous lifting movements or continuous reciprocating rotary lifting movements, exerting extrusion or external force pressing and twisting effects on the colored and shaped fabric while jittering the gas, so as to further discharge the residual solution on the colored fabric. BRIEF DESCRIPTION OF THE DRAWINGS

[0031] Figure 1 is a front structural schematic diagram of the present invention; Figure 2 is a connection structural schematic diagram of the rotating frame and the intake pipe of the present invention; Figure 3 is a distribution structural schematic diagram of the first permanent magnet on the mixed-flow rotating disk in the first embodiment of the present invention; Figure 4 is a structural schematic diagram of the rotating ring in the first embodiment of the present invention; Figure 5 is a mounting structural schematic diagram of the rotating ring in the first embodiment of the present invention; Figure 6 is a structural schematic diagram of the interior of the liquid storage cavity of the present invention; Figure 7 is a distribution structural schematic diagram of the second permanent magnet on the mixed-flow rotating disk in the second embodiment of the present invention; Figure 8 is a distribution structural schematic diagram of the second permanent magnet on the rotating ring in the second embodiment of the present invention; Figure 9 is a mounting structural schematic diagram of the rotating ring in the second embodiment of the present invention; Figure 10 is a front cross-sectional structural schematic diagram of the interior of the flow blocking valve of the present invention; Figure 11 is a side cross-sectional structural schematic diagram of the interior of the flow blocking valve of the present invention.

[0032] In the figure: 1, the body; 2, the rotating frame; 3, the turbulence blades; 4, the intake pipe; 5, the mixed-flow rotating disk; 6, the exhaust pipe; 7, the liquid storage cavity; 8, the drain pipe; 9, the flow-blocking valve; 901, the worm assembly; 902, the intermediate rod; 903, the worm gear cylinder; 904, the liquid-sealing baffle; 10, the intermediate cavity; 11, the support rod; 12, the rotating ring; 1201, the first permanent magnet; 1202, the limiting vertical rod; 1203, the second permanent magnet; 13, the height-limiting frame; 14, the threaded lifting rod; 15, the flow-blocking plate; 16, the liquid storage bag; 17, the corrugated liquid bag; 18, the lifting frame; 19, the intermediate pipe. Specific implementation mode

[0033] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present invention without creative efforts shall fall within the protection scope of the present invention. Embodiment 1

[0034] Please refer to Figures 1-6 and Figures 10-11 , the present invention provides a technical solution: a hydrophilic polyester fiber fabric dyeing machine, including: The body 1 is provided with a fixed frame at its bottom, and a rotating frame 2 is installed on the bearing at the middle position of the top of the body 1. And a fabric turning roller is movably installed on the inner side wall of the body 1, and turbulence blades 3 are fixed in the middle of the rotating frame 2; Adopt as Figures 1-2 shown, the intake pipe 4 is connected to the outer wall of the upper end of the rotating frame 2 through a sealed bearing, and a mixed-flow rotating disk 5 is fixed at the lower end of the rotating frame 2. The rotating frame 2 is hollow inside, and the outer wall of the upper end of the rotating frame 2 located in the intake pipe 4 is provided with a hollow structure, and the inside of the rotating frame 2 communicates with the inside of the mixed-flow rotating disk 5. A turbine is fixed in the middle section of the rotating frame 2 above the liquid level inside the body 1; through the action of the intake pipe 4, it is connected to an external gas compression component. According to needs, high-pressure gas or high-pressure and high-temperature gas introduced from the outside is connected, so that the gas is introduced into the rotating frame 2, driving the rotating frame 2 and the turbulence blades 3 and the mixed-flow rotating disk 5 on it to rotate, so as to realize the mixing and stirring or heating of the dyeing solution in the body 1, so that when the fabric moves through the body 1, it can be quickly dyed and shaped due to the action of the mixed liquid and the blowing gas; And exhaust pipes 6 are evenly fixed at equal intervals on the outer side wall of the mixed-flow rotating disk 5; the exhaust pipes 6 are evenly distributed at equal angles on the outer wall of the mixed-flow rotating disk 5, and an air outlet is opened on the outer wall of the same side of the exhaust pipes 6. The air outlet is obliquely cut on the exhaust pipes 6, and the oblique cut opening is obliquely downward distributed; Adopt as Figure 1 andFigure 3 The shown mixed-flow rotating disk 5 and exhaust pipe 6, the beveled opening on the exhaust pipe 6 can reversely push the mixed-flow rotating disk 5 to rotate when discharging gas, so as to mix the dyeing solution. At the same time, it can also use the gas to push, when the solution in the machine body 1 is discharged, shake off the residual solution on the fabric, reducing the moisture residue.

[0035] As Figure 6 and Figures 10-11 As shown, the liquid storage cavity 7 is fixed to the bottom of the machine body 1, and drain pipes 8 are installed through both the left and right sides of the liquid storage cavity 7, and a flow control valve 9 is arranged at the through connection between the two; the use of the liquid storage cavity 7 can change the height of the dyeing solution level inside the machine body 1 through the lifting movement of its internal components, so as to realize the coloring process of the fabric and the cleaning of the residual solution on the fabric when there is no dyeing solution. A threaded lifting rod 14 is rotationally installed through the side of the liquid storage cavity 7, and the threaded lifting rod 14 is connected to the motor chain belt assembly fixed to the bottom of the liquid storage cavity 7. A flow control plate 15 is threadedly connected to the outer wall of the threaded lifting rod 14 located inside the liquid storage cavity 7. At the same time, the outer edge and the middle position of the flow control plate 15 are in a sealed and sliding connection with the inner wall of the liquid storage cavity 7 and the outer wall of the middle cavity 10. A liquid storage bladder 16 and a corrugated liquid bladder 17 are respectively fixed to the outer and inner sides of the bottom of the middle cavity 10. The two are internally connected. And the elastic strength of the corrugated liquid bladder 17 is greater than that of the liquid storage bladder 16. And a lifting frame 18 is fixed between the tops of the corrugated liquid bladders 17. The lifting frame 18 is arranged through the middle pipe 19. And the middle pipe 19 is fixed to the middle position inside the middle cavity 10. At the same time, the middle part of the middle pipe 19 and the support rod 11 form a through sliding connection. When the threaded lifting rod 14 rotates due to the start of the motor, it drives the flow control plate 15 to move up and down, so that the dyeing solution in the machine body 1 is introduced into the inside of the liquid storage cavity 7 due to gravity. And the movement of the flow control plate 15 will directly compress the liquid storage bladder 16, so that the pressure solution inside it is introduced into the corrugated liquid bladder 17, achieving the purpose of changing the height of the lifting frame 18 and the support rod 11, so that the support rod 11 and the rotating ring 12 on it are closer to the mixed-flow rotating disk 5, facilitating the subsequent cleaning of the residual solution on the fabric. At the same time, the support rod 11 forms a through relative telescopic structure with both the middle cavity 10 and the middle pipe 19, and the lower end of the support rod 11 and the middle part of the lifting frame 18 form a through bearing connection relative rotation structure. The connection between the support rod 11 and the lifting frame 18 at this place makes it impossible to damage the connection between the support rod 11 and the lifting frame 18 when the support rod 11 rotates. Adopt as Figures 10-11In the technical solution shown, the flow blocking valve 9 is composed of a worm assembly 901, an intermediate rod 902, a worm wheel cylinder 903, and a liquid seal blocking plate 904. The worm assembly 901 and the flow blocking valve 9 are installed through bearings. The intermediate rod 902 is installed through the middle of the flow blocking valve 9 by means of a bracket. A worm wheel cylinder 903 is rotatably installed in the middle of the bracket. The end of the intermediate rod 902 facing the liquid storage cavity 7 is fixed with a blocking plate 904, and the blocking plate 904 realizes the blocking and sealing of the through connection between the liquid storage cavity 7 and the drain pipe 8. The middle section and the right section of the outer wall of the intermediate rod 902 are respectively arranged in a threaded shape and a rectangular shape. The middle section of the intermediate rod 902 is threadedly connected to the inner wall of the worm wheel cylinder 903. A sliding connection with radial engagement and axial fit is formed between the right end of the intermediate rod 902 and the bracket. The intermediate rod 902 and the blocking plate 904 are fixedly installed perpendicularly, and the worm wheel cylinder 903 and the worm assembly 901 are meshed with each other; When the blocking plate 904 is installed, it can block and seal the through connection between the liquid storage cavity 7 and the drain pipe 8. At the same time, when the flow blocking plate 15 in the liquid storage cavity 7 moves up and down, the solution above the flow blocking plate 15 will not leak from the position of the drain pipe 8 from top to bottom. At the same time, by using the meshing between the worm wheel cylinder 903 and the worm assembly 901, the lateral movement of the intermediate rod 902 and the flow blocking plate 15 is controlled to achieve the sealing and blocking effect of the through connection between the liquid storage cavity 7 and the drain pipe 8.

[0036] Adopt as Figure 1 and Figures 4-6 In the technical solution shown, the rotating frame 2, the mixing rotating disk 5, and the support rod 11 are vertically coaxially distributed. The outer wall of the upper half of the support rod 11 is arranged in a reciprocating screw groove shape, and the upper half of the support rod 11 is threadedly connected to the inner wall of the height limiting frame 13. The edge of the rotating ring 12 is provided with mixing vanes, and a shaped groove is also provided at the top thereof; The middle cavity 10 is fixedly installed through the middle position of the bottom of the machine body 1. The support rod 11 is movably installed through the middle of the top of the middle cavity 10. The upper end of the support rod 11 is movably installed with a rotating ring 12. The bottom of the rotating ring 12 is fixed with a height limiting frame 13. The height limiting frame 13 is connected to the outer wall of the support rod 11. A synchronous rotation adjustment member is provided on the rotating ring 12 and the mixing rotating disk 5, and there are two types of synchronous rotation adjustment members; The first type of synchronous rotation adjustment member includes the first permanent magnets 1201 on the mixing rotating disk 5 and the support rod 11, and the height limiting frame 13 fixed to the bottom of the rotating ring 12. Two first permanent magnets 1201 are respectively fixed at the center of the bottom of the mixing rotating disk 5 and the upper end of the support rod 11. The two first permanent magnets 1201 are magnetically adsorbed to each other. A limiting vertical rod 1202 is fixed to the bottom of the rotating ring 12, and a through sliding connection is provided between the limiting vertical rod 1202 and the lower end of the support rod 11 and the top of the middle cavity 10; By installing and using the first permanent magnet 1201, when coloring the fabric, through the rotation of the rotating frame 2, it can directly drive the mixed-flow rotating disk 5 to perform a rotational motion. During the rotation process, the first permanent magnet 1201 on it is magnetically adsorbed and connected to the first permanent magnet 1201 at the upper end of the support rod 11, causing the support rod 11 to perform a synchronous rotational motion. And since the limiting vertical rod 1202 penetrates the middle cavity 10, when the support rod 11 rotates, through the reciprocating screw groove structure on it being threadedly connected to the rotating ring 12, the rotating ring 12 performs a continuous lifting and lowering motion, driving the mixed flow of the dyeing solution below the interior of the machine body 1, improving the coloring and shaping effect of the fabric; and when adjacent splicing of the machine bodies 1 is carried out to clean the residual solution on the colored fabric, when the solution in the machine body 1 is discharged due to the internal components of the liquid storage cavity 7, the support rod 11 and its upper structure are lifted as a whole, getting closer to the mixed-flow rotating disk 5. At the same time, with the start of the above-mentioned mixed-flow rotating disk 5, the rotating ring 12 performs a continuous lifting and lowering motion. During the reciprocating lifting and lowering process, the fabric is continuously blown by air flow and squeezed at the same time, discharging the residual moisture in it, thereby improving the water drainage effect of the fabric. Embodiment 2

[0037] Please refer to Figures 1-6 and Figures 10-11 , the present invention also provides another technical solution: a hydrophilic polyester fiber fabric dyeing machine, including: The machine body 1, its bottom is provided with a fixed frame, and a rotating frame 2 is installed on the bearing at the middle position of the top of the machine body 1. And a fabric turning roller is movably installed on the inner side wall of the machine body 1, and a stirring blade 3 is fixed in the middle of the rotating frame 2; Adopt as Figures 1-2 shown, the air inlet pipe 4 is connected to the outer wall of the upper end of the rotating frame 2 through a sealed bearing, and a mixed-flow rotating disk 5 is fixed at the lower end of the rotating frame 2. The rotating frame 2 is hollow inside, and the outer wall of the upper end of the rotating frame 2 located in the air inlet pipe 4 is provided with a hollow structure, and the inside of the rotating frame 2 communicates with the inside of the mixed-flow rotating disk 5. A turbine is fixed in the middle section of the rotating frame 2 above the liquid level inside the machine body 1; through the action of the air inlet pipe 4, it is connected to an external gas compression component, and according to needs, high-pressure gas or high-pressure and high-temperature gas introduced from the outside is connected, so that the gas is introduced into the rotating frame 2, driving the rotating frame 2 and the stirring blade 3 and the mixed-flow rotating disk 5 on it to rotate, thereby realizing the mixing and stirring or heating of the dyeing solution in the machine body 1, so that when the fabric moves through the machine body 1, it can be quickly dyed and shaped due to the action of the mixed-flow liquid and the blown gas; And exhaust pipes 6 are evenly fixed at equal intervals on the outer side wall of the mixed-flow rotating disk 5; the exhaust pipes 6 are evenly distributed at equal angles on the outer wall of the mixed-flow rotating disk 5, and an air outlet is opened on the outer wall of the same side of the exhaust pipes 6. The air outlet is obliquely cut on the exhaust pipes 6, and the oblique cut opening is obliquely downward distributed; Adopt asFigure 1 and Figure 3 As shown in Figure 3 , the mixed-flow rotating disk 5 and the exhaust pipe 6. The beveled opening on the exhaust pipe 6 can reversely push the mixed-flow rotating disk 5 to rotate when discharging gas, so as to mix the dyeing solution. At the same time, it can also be driven by the gas to shake off the residual solution on the fabric when the solution in the machine body 1 is discharged, reducing the water residue.

[0038] such as Figure 6 and Figures 10-11 As shown in Figure 6 and Figures 10-11 , the liquid storage cavity 7 is fixed at the bottom of the machine body 1, and drain pipes 8 are installed through both the left and right sides of the liquid storage cavity 7, and a flow control valve 9 is provided at the through connection between the two; the use of the liquid storage cavity 7 can change the height of the dyeing solution level inside the machine body 1 through the lifting movement of its internal components, so as to realize the coloring process of the fabric and the cleaning of the residual solution on the fabric when there is no dyeing solution; A threaded lifting rod 14 is rotatably installed through the side of the liquid storage cavity 7. The threaded lifting rod 14 is connected to the motor chain belt assembly fixed at the bottom of the liquid storage cavity 7. A flow control plate 15 is threadedly connected to the outer wall of the threaded lifting rod 14 located inside the liquid storage cavity 7. At the same time, the outer edge and the middle position of the flow control plate 15 are in a sealed and sliding connection with the inner wall of the liquid storage cavity 7 and the outer wall of the middle cavity 10. A liquid storage bladder 16 and a corrugated liquid bladder 17 are respectively fixed on the outer and inner sides of the bottom of the middle cavity 10. The two are internally connected. The elastic strength of the corrugated liquid bladder 17 is greater than that of the liquid storage bladder 16. A lifting frame 18 is fixed between the tops of the corrugated liquid bladders 17. The lifting frame 18 is arranged through the middle pipe 19. The middle pipe 19 is fixed at the middle position inside the middle cavity 10. At the same time, the middle part of the middle pipe 19 and the support rod 11 form a through sliding connection; When the threaded lifting rod 14 rotates due to the start of the motor, it drives the flow control plate 15 to move up and down, so that the dyeing solution in the machine body 1 is introduced into the interior of the liquid storage cavity 7 due to gravity. The movement of the flow control plate 15 will also directly compress the liquid storage bladder 16, so that the pressure solution inside it is introduced into the corrugated liquid bladder 17, achieving the purpose of changing the height of the lifting frame 18 and the support rod 11, so that the support rod 11 and the rotating ring 12 on it are closer to the mixed-flow rotating disk 5, facilitating the subsequent cleaning of the residual solution on the fabric. At the same time, the support rod 11 forms a through relative telescopic structure with both the middle cavity 10 and the middle pipe 19. A fixed connection is provided between the lower end of the support rod 11 and the middle part of the lifting frame 18. The connection between the support rod 11 and the lifting frame 18 at this place facilitates the lifting frame 18 to lift the support rod 11 and change the positioning and installation height of the support rod 11; Adopt such as Figures 10-11In the technical solution shown, the flow blocking valve 9 is composed of a worm assembly 901, an intermediate rod 902, a worm wheel cylinder 903 and a liquid seal blocking plate 904. The worm assembly 901 and the flow blocking valve 9 are installed through bearings. The intermediate rod 902 is installed through the middle of the flow blocking valve 9 by a bracket. A worm wheel cylinder 903 is rotatably installed at the middle position of the bracket. A blocking plate 904 is fixed to the end of the intermediate rod 902 facing the liquid storage cavity 7. The blocking plate 904 realizes the blocking and sealing of the through connection between the liquid storage cavity 7 and the drain pipe 8. The middle section and the right section of the outer wall of the intermediate rod 902 are respectively provided with a threaded structure and a rectangular structure. The middle section of the intermediate rod 902 is threadedly connected to the inner wall of the worm wheel cylinder 903. A sliding connection with radial engagement and axial fitting is formed between the right end of the intermediate rod 902 and the bracket. The intermediate rod 902 and the blocking plate 904 are fixedly installed vertically, and the worm wheel cylinder 903 and the worm assembly 901 are meshed with each other. When the blocking plate 904 is installed, it can block and seal the through connection between the liquid storage cavity 7 and the drain pipe 8. At the same time, when the flow blocking plate 15 in the liquid storage cavity 7 moves up and down, the solution above the flow blocking plate 15 will not leak from the position of the drain pipe 8 from top to bottom. At the same time, by using the meshing between the worm wheel cylinder 903 and the worm assembly 901, the lateral movement of the intermediate rod 902 and the flow blocking plate 15 is controlled to achieve the sealing and blocking effect of the through connection between the liquid storage cavity 7 and the drain pipe 8.

[0039] Adopt as Figure 1 and Figures 6-9 In the technical solution shown, the rotating frame 2, the mixing flow rotating disk 5 and the support rod 11 are vertically coaxially distributed. The outer wall of the upper half of the support rod 11 is provided with a reciprocating lead screw groove shape, and the upper half of the support rod 11 is threadedly connected to the inner wall of the height limiting frame 13. The edge of the rotating ring 12 is provided with mixing flow vanes, and a shaped groove is also provided at the top thereof. The middle cavity 10 is fixedly installed through the middle position of the bottom of the machine body 1. The support rod 11 is movably installed through the middle of the top of the middle cavity 10. The upper end of the support rod 11 is movably installed with a rotating ring 12. The bottom of the rotating ring 12 is fixed with a height limiting frame 13. The height limiting frame 13 is connected to the outer wall of the support rod 11. Synchronous rotation adjusting members are provided on the rotating ring 12 and the mixing flow rotating disk 5, and there are two types of synchronous rotation adjusting members. The second type of synchronous rotation adjusting member includes second permanent magnets 1203 on the mixing flow rotating disk 5 and the rotating ring 12. The second permanent magnets 1203 are evenly distributed at equal angles at the bottom of the mixing flow rotating disk 5 and the top of the rotating ring 12, and the second permanent magnets 1203 on both of them correspond to each other and are magnetically adsorbed. By installing and using the second permanent magnet 1203, when coloring the fabric, through the rotation of the rotating frame 2, it can directly drive the mixed-flow rotating disk 5 to rotate. During the rotation process, the second permanent magnet 1203 on it is magnetically adsorbed and connected to the second permanent magnet 1203 at the upper end of the rotating ring 12, causing the rotating ring 12 to perform synchronous rotational motion. And during the rotation of the rotating ring 12, the support rod 11 remains relatively stationary, so that the rotating ring 12 undergoes rotational lifting motion through the reciprocating screw groove on the support rod 11 during rotation, driving the mixed flow of the dyeing solution below the interior of the machine body 1 and improving the coloring and shaping effect of the fabric; when adjacent splicing between the machine bodies 1 is carried out to clean the residual solution on the colored fabric, when the solution in the machine body 1 is discharged due to the internal components of the liquid storage cavity 7, the support rod 11 and its upper structure are lifted as a whole, getting closer to the mixed-flow rotating disk 5. At the same time, with the start of the above-mentioned mixed-flow rotating disk 5, the rotating ring 12 undergoes continuous lifting and rotational motion. Due to the lack of the buoyancy effect of the dyeing solution, the fabric will be in a downward form. At this time, the rotating and lifting rotating ring 12 will perform a twisting motion on the fabric, wringing out and discharging the residual moisture on the fabric. At the same time, the exhaust pipe 6 on the mixed-flow rotating disk 5 continuously blows air and squeezes the fabric, discharging the residual moisture inside it, thereby improving the water drainage effect of the fabric.

[0040] Although the present invention has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present invention shall be included in the protection scope of the present invention.

Claims

1. A hydrophilic polyester fiber cloth dyeing machine, comprising: A machine body (1) is provided with a fixed frame at the bottom, a rotating frame (2) is mounted on a bearing at the middle position of the top of the machine body (1), a cloth turning roller is movably mounted on the inner side wall of the machine body (1), and a stirring blade (3) is fixed in the middle of the rotating frame (2); It is characterized by further comprising: An air intake pipe (4) is connected to the upper outer wall of the rotating frame (2) via a sealing bearing, a mixed flow rotating disk (5) is fixed at the lower end of the rotating frame (2), and exhaust pipes (6) are fixed at equal intervals on the side outer walls of the mixed flow rotating disk (5); A liquid storage chamber (7) is fixed to the bottom of the machine body (1), and liquid discharge pipes (8) are installed through the left and right sides of the liquid storage chamber (7), and a flow control valve (9) is provided at the connecting point between the two. The intermediate chamber (10) is fixed in a through-type manner at the middle position of the bottom of the machine body (1), and a support rod (11) is movably installed through the middle of the top of the intermediate chamber (10), and a rotating ring (12) is movably installed on the upper end of the support rod (11), a limited height frame (13) is fixed at the bottom of the rotating ring (12), the limited height frame (13) and the outer wall of the support rod (11) are connected to each other, and synchronous rotation adjustment components are provided on the rotating ring (12) and the mixed flow rotating disk (5).

2. The hydrophilic polyester fiber cloth dyeing machine according to claim 1, characterized in that: The rotating frame (2) is hollow as a whole, and the upper outer wall of the rotating frame (2) is located in the air intake pipe (4) and has a hollow structure. The rotating frame (2) is connected to the interior of the mixed flow rotating disk (5), and a turbine is fixed inside the middle section of the rotating frame (2) located above the liquid level inside the machine body (1).

3. The hydrophilic polyester fiber cloth dyeing machine according to claim 2, characterized in that: The exhaust pipes (6) are evenly distributed at equal angles on the outer wall of the mixed flow rotating disk (5), and an air outlet is opened on the outer wall on the same side of the exhaust pipes (6). The air outlet is opened obliquely on the exhaust pipes (6), and the oblique opening is distributed obliquely downward.

4. The hydrophilic polyester fiber cloth dyeing machine according to claim 1, characterized in that: The rotating frame (2), the mixed flow rotating disk (5) and the support rod (11) are vertically coaxially distributed, and the outer wall of the upper half of the support rod (11) is arranged in the shape of a reciprocating screw rod groove, and the upper half of the support rod (11) is threadedly connected to the inner wall of the height limiting frame (13), and the edge of the rotating ring (12) is provided with a mixed flow sheet, and the top thereof is also provided with a groove.

5. The hydrophilic polyester fiber cloth dyeing machine according to claim 4, characterized in that: The first type of synchronous rotation regulating member comprises a first permanent magnet (1201) on a mixed flow rotating disk (5) and a support rod (11), and a height limiting frame (13) fixed to the bottom of a rotating ring (12), wherein two first permanent magnets (1201) are distributed and fixed at the bottom center of the mixed flow rotating disk (5) and the upper end of the support rod (11), and a magnetic adsorption arrangement is arranged between the two first permanent magnets (1201), a limiting vertical rod (1202) is fixed to the bottom of the rotating ring (12), and the lower ends of the limiting vertical rod (1202) and the support rod (11) are provided with a penetrating sliding connection with the top of the intermediate cavity (10).

6. The hydrophilic polyester fiber cloth dyeing machine according to claim 4, characterized in that: The second type of synchronous rotation regulating component comprises second permanent magnets (1203) on the mixed flow rotating disk (5) and the rotating ring (12), wherein the second permanent magnets (1203) are evenly distributed at equal angles at the bottom of the mixed flow rotating disk (5) and the top of the rotating ring (12), and the second permanent magnets (1203) on the two are in one-to-one correspondence and are arranged by magnetic adsorption.

7. The hydrophilic polyester fiber cloth dyeing machine according to claim 1, characterized in that: A threaded lifting rod (14) is rotatably installed on the side of the liquid storage chamber (7), the threaded lifting rod (14) is connected to a motor chain belt assembly fixed at the bottom of the liquid storage chamber (7), and a baffle (15) is threadedly connected to the outer wall of the threaded lifting rod (14) located in the liquid storage chamber (7), and the outer edge and middle position of the baffle (15) are in sealing and fitting sliding connection with the inner wall of the liquid storage chamber (7) and the outer wall of the intermediate chamber (10).

8. The hydrophilic polyester fiber cloth dyeing machine according to claim 7, characterized in that: A liquid storage bag (16) and a pleated liquid bag (17) are fixed to the outer side and the inner side of the bottom of the middle cavity (10), respectively. The two are connected to each other, and the elastic strength of the pleated liquid bag (17) is greater than the elastic strength of the liquid storage bag (16). A lifting frame (18) is fixed between the tops of the pleated liquid bag (17). The lifting frame (18) and the middle tube (19) are arranged to penetrate each other, and the middle tube (19) is fixed to the middle position inside the middle cavity (10). At the same time, the middle part of the middle tube (19) forms a penetrating sliding connection with the support rod (11).

9. The hydrophilic polyester fiber cloth dyeing machine according to claim 5, characterized in that: The support rod (11) and the intermediate cavity (10) and the intermediate tube (19) all form a through-going relative telescopic structure, and the lower end of the support rod (11) and the middle part of the lifting frame (18) form a through-going relative rotation structure connected by a bearing.

10. The hydrophilic polyester fiber cloth dyeing machine according to claim 6, characterized in that: The support rod (11), the middle cavity (10) and the middle tube (19) all form a penetrating relatively telescopic structure, and the lower end of the support rod (11) is fixedly connected to the middle part of the lifting frame (18).