Temperature and Humidity Control System for a High-Temperature Treatment Equipment in Textile Printing and Dyeing

By designing a temperature and humidity control system for textile printing and dyeing high-temperature processing equipment, the problem of insufficient temperature and humidity detection accuracy and stability in the prior art is solved, and more stable printing and dyeing effects and higher efficiency are achieved.

CN115729286BActive Publication Date: 2025-06-10SHAOXING SANQIANG ELECTROMECHANICAL TECH CO LTD
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Patent Information

Application Number
CN202211170321.7
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-09-26
Publication Date
2025-06-10
Estimated Expiration
2042-09-26

AI Technical Summary

Technical Problem

During the existing high-temperature printing and dyeing process of textiles, due to the high working temperature and insufficient parameter measurement accuracy and stability of temperature and humidity detection, the process state is affected.

Method used

A temperature and humidity control system for textile printing and dyeing high-temperature processing equipment is designed, including heating module, feed module and temperature and humidity control module. The temperature and humidity control module adopts the backpropagation three-layer neural network model structure and particle swarm optimization algorithm. Combined with humidity and temperature regulator, the heating module and temperature and humidity control mechanism are controlled through the controller to achieve accurate adjustment of the temperature and humidity in the box.

Benefits of technology

It improves the reliability and accuracy of temperature and humidity detection, stabilizes the printing and dyeing effect, reduces energy consumption, and improves the printing and dyeing efficiency and the versatility of the equipment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The present invention relates to the field of printing and dyeing technology, and specifically relates to a temperature and humidity control system for a high-temperature treatment device for textile printing and dyeing, including a heating module, a feeding module, and a temperature and humidity control module; the temperature and humidity control module includes a controller, and the controller is electrically connected to a humidity regulator and a temperature regulator; the controller is electrically connected to a heating module and a temperature and humidity control mechanism; the heating module and the temperature and humidity control mechanism are jointly electrically connected to a temperature sensor and a humidity sensor; the humidity regulator includes a humidity setter, a first detection unit, and a first setting unit, the humidity setter is electrically connected to the first detection unit and the first setting unit, the first detection unit is electrically connected to the first setting unit, the first detection unit is electrically connected to the humidity sensor, and the first setting unit is electrically connected to the controller.
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Description

Technical Field

[0001] The present invention relates to the field of printing and dyeing technology, and particularly to a temperature and humidity control system for a high-temperature treatment device for textile printing and dyeing. Background Art

[0002] At present, in the printing and dyeing factory, the printing and dyeing treatment of fabrics involves high-temperature operation equipment, including a stenter and a steaming machine. The function of the steaming machine is to transfer the dyes in the color paste to the inside of the fiber through steam evaporation to achieve the color fixation effect. The main process parameters affecting the steaming effect are temperature, humidity, and steaming time, which vary to a certain extent with the types of fibers and dyes. The precise control of the steaming conditions during the steaming process is the basis and guarantee for the formation of high-quality fabrics. In the existing textile high-temperature printing and dyeing process, due to the high working temperature in the steaming machine, the measurement accuracy and stability of the temperature and humidity detection parameters are insufficient, affecting the process state.

[0003] Therefore, a temperature and humidity control system for a high-temperature treatment device for textile printing and dyeing is needed to solve the above problems. Summary of the Invention

[0004] In order to solve the above existing problems, that is, to solve the problem that in the existing textile high-temperature printing and dyeing process, due to the high working temperature, the measurement accuracy and stability of the temperature and humidity detection parameters are insufficient, affecting the process state, the present invention provides a temperature and humidity control system for a high-temperature treatment device for textile printing and dyeing, including a heating module, a feeding module, and a temperature and humidity control module;

[0005] The temperature and humidity control module includes a controller, and the controller is electrically connected to a humidity regulator and a temperature regulator;

[0006] The controller is electrically connected to a heating module and a temperature and humidity control mechanism;

[0007] The heating module and the temperature and humidity control mechanism are jointly electrically connected to a temperature sensor and a humidity sensor;

[0008] The humidity regulator includes a humidity setter, a first detection unit, and a first setting unit. The humidity setter is electrically connected to the first detection unit and the first setting unit. The first detection unit is electrically connected to the first setting unit. The first detection unit is electrically connected to the humidity sensor. The first setting unit is electrically connected to the controller;

[0009] The temperature regulator includes a temperature setter, a second detection unit, and a second setting unit. The temperature setter is electrically connected to the second detector and the second setting unit. The second detection unit is electrically connected to the second setting unit. The second detection unit is electrically connected to the temperature sensor. The second setting unit is electrically connected to the controller.

[0010] The first detection unit and the second detection unit adopt a three - layer backpropagation neural network model structure and a particle swarm optimization algorithm. The three - layer backpropagation neural network model structure includes an input layer, a hidden layer, and an output layer. The parameters of the input layer include the real - time monitored temperature value and humidity value. The hidden layer includes multi - parameter operations, comparisons, and decisions. The output layer is the voltage value corresponding to the temperature and humidity.

[0011] Preferably, the heating module includes a box body, which is connected to a steam source mechanism. The feeding module includes two cloth box mechanisms symmetrically arranged on both sides of the box body.

[0012] The cloth box mechanism is slidably connected to the box body, and the two cloth box mechanisms alternately enter the box body.

[0013] The temperature and humidity control module includes a controller and a temperature and humidity control mechanism arranged in the box body. A temperature and humidity control mechanism is connected between each cloth box mechanism and the box body. The temperature and humidity control mechanism includes a fan, which is electrically connected to the controller. The fan can bring the high - temperature steam in the box body into the cloth box mechanism.

[0014] Preferably, an opening is provided at the connection between the box body and the cloth box mechanism. The cloth box mechanism includes two fixed plates symmetrically arranged vertically, which are fixedly connected to the box body. It also includes two moving plates symmetrically arranged horizontally and making linear motions. A closing plate is fixedly connected between the ends of the two moving plates close to the box body, and a feeding plate is fixedly connected between the ends of the two moving plates far from the box body. The fixed plates, the moving plates, the closing plate, and the feeding plate close the opening.

[0015] Preferably, the temperature and humidity control mechanism is connected to the fixed plate.

[0016] Preferably, the inner wall of the opening is provided with a sealing material.

[0017] Preferably, the cloth box mechanism further includes a feeding port and a discharging port symmetrically arranged up and down and penetrating through the feeding plate. Two closing members are symmetrically arranged up and down between the feeding port and the discharging port. The closing members can close the feeding port and the discharging port.

[0018] Preferably, the closing member includes a plugging plate slidably arranged on the feeding plate. The plugging plate makes a reciprocating linear motion from the side of the feeding port close to the horizontal central axis of the box body to the side far from the horizontal central axis of the box body. A baffle is fixedly arranged on the upper side of the feeding port. When the plugging plate abuts against the baffle, it can close the feeding port.

[0019] Preferably, an evaporation mechanism is provided at the bottom of the box body. The evaporation mechanism includes a funnel-shaped liquid collecting plate. The lower end opening of the liquid collecting plate is communicated with a filtering member, and the filtering member is communicated with a waste discharge pipe. A heating member is provided at the bottom of the box body, and a plurality of mesh holes are formed in the liquid collecting plate.

[0020] Preferably, a reflux mechanism is provided between the lower movable plate and the closing plate. The reflux mechanism includes a liquid collecting groove provided on the lower movable plate. The liquid collecting groove is communicated with a reflux groove. The reflux groove penetrates through the lower movable plate and the closing plate. The opening of the reflux groove faces downward, and the lower opening of the reflux groove abuts against the lower side wall of the opening.

[0021] The beneficial effects of the present invention are as follows:

[0022] 1. Through the setting of the temperature and humidity control module, the reliability and accuracy of temperature and humidity detection are improved, and the temperature and humidity in the execution device are controlled according to the reliable and accurate temperature and humidity detection values, making the printing and dyeing effect more stable.

[0023] 2. By starting the steam source mechanism or the fan to adjust the temperature and humidity inside the box body, it is prevented that the fabric is not fully printed or dyed too heavily. And when the fan is used for adjustment, the high-temperature steam can be conveyed to the cloth box mechanism that has not entered the box body to preheat the fabric in the cloth box mechanism, reducing energy consumption. At the same time, the two cloth box mechanisms move alternately, improving the printing and dyeing efficiency and being able to print and dye different types of fabrics, enhancing the versatility of the equipment.

[0024] 3. Through the setting of the movable plate and the fixed plate, before the cloth box mechanism moves, the movable plate, the fixed plate, the closing plate, and the feeding plate surround the roller member, so that when the high-temperature steam enters the cloth box mechanism, it can fully preheat the fabric. And during the process of the movable plate entering the box body, due to the setting of the fixed plate, the water vapor in the box body does not dissipate outward. And due to the setting of the upper movable plate, it can also block the condensed water at the top of the box body from falling on the fabric when in the box body, affecting the printing and dyeing quality of the fabric.

[0025] 4. Through the setting of the filtering member and the heating member, the condensed water can be filtered, and through the heating of the heating member, water vapor is formed and re-enters the box body, improving the utilization efficiency of water.

[0026] 5. Through the setting of the liquid collecting groove, the condensed water in the cloth box mechanism is concentrated in the liquid collecting groove. Then, during the movement of the cloth box mechanism, the lower opening of the reflux groove no longer abuts against the lower side wall of the opening, and the condensed water re-enters the liquid collecting plate through the reflux groove and is evaporated again by the evaporation mechanism. Description of the Drawings

[0027] Figure 1 It is a schematic structural diagram of a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing;

[0028] Figure 2 It is a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing Figure 1 A partial enlarged view of the position A in it;

[0029] Figure 3 It is a front view of a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing;

[0030] Figure 4 It is a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing Figure 3 An isometric sectional view taken along the line B - B in it;

[0031] Figure 5 It is a right view of a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing;

[0032] Figure 6 It is a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing Figure 5 An isometric sectional view taken along the line C - C in it;

[0033] Figure 7 It is a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing Figure 5 An isometric sectional view taken along the line D - D in it;

[0034] Figure 8 It is a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing Figure 6 A partial enlarged view of the position E in it;

[0035] Figure 9 It is a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing Figure 5 A partial enlarged view of the position F in it;

[0036] Figure 10 It is a flow block diagram of a temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing.

[0037] In the figure:

[0038] 1. Box body; 11. Opening;

[0039] 2. Steam source mechanism;

[0040] 3. Cloth box mechanism; 31. Fixed plate; 32. Movable plate; 33. Sealing plate; 34. Feeding plate; 35. Feeding port; 36. Discharge port; 37. Sealing member; 371. Plugging plate; 372. Hinge rod; 373. Baffle; 38. Driving member; 381. Electromagnetic slide rail; 382. Reinforcing plate; 383. Electromagnetic slider; 384. Connecting rod; 39. Roller member; 391. Mounting plate; 392. First rotating shaft; 393. First roller; 394. Second rotating shaft; 395. Second roller;

[0041] 4. Controller;

[0042] 5. Temperature and humidity control mechanism; 51. Fan; 511. Cross mounting bracket; 512. Motor; 513. Fan blade; 52. Connecting pipe;

[0043] 6. Evaporation mechanism; 61. Liquid collecting plate; 62. Filter device; 63. Waste discharge pipe; 64. Heating element;

[0044] 7. Reflux mechanism; 71. Liquid collecting tank; 72. Reflux tank;

[0045] 8. Heating pipeline; 9. Double - acting electric push rod. Specific embodiments

[0046] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. Those skilled in the art should understand that these embodiments are only used to explain the technical principle of the present invention and are not intended to limit the protection scope of the present invention.

[0047] See Figures 1 to 10 , the embodiment of the present invention discloses a temperature and humidity control system for a textile printing and dyeing high - temperature treatment device, including a heating module, a feeding module, and a temperature and humidity control module;

[0048] The temperature and humidity control module includes a controller, and the controller is electrically connected to a humidity setter and a temperature setter;

[0049] The controller is electrically connected to a heating module and a temperature and humidity control mechanism (5);

[0050] The heating module and the temperature and humidity control mechanism (5) are jointly electrically connected to a temperature sensor and a humidity sensor;

[0051] The humidity regulator includes a humidity setter, a first detection unit, and a first setting unit. The humidity setter is electrically connected to the first detection unit and the first setting unit. The first detection unit is electrically connected to the first setting unit. The first detection unit is electrically connected to the humidity sensor, and the first setting unit is electrically connected to the controller;

[0052] The temperature regulator includes a temperature setter, a second detection unit, and a second setting unit. The temperature setter is electrically connected to the second detector and the second setting unit. The second detection unit is electrically connected to the second setting unit. The second detection unit is electrically connected to the temperature sensor, and the second setting unit is electrically connected to the controller.

[0053] Specifically, during use, the user sets values on the first setting unit and the second setting unit according to the required temperature and humidity for the work. Then, the controller controls the heating module and the temperature and humidity control mechanism 5 to heat and humidify the inside of the box 1. At the same time, the temperature sensor and the humidity sensor detect the temperature and humidity inside the box 1 and feed back the information to the first detection unit and the second detection unit in a timely manner. When the feedback signal is different from the set values of the first setting unit and the second setting unit, the first setting unit and the second setting unit send signals to the controller, and the controller controls the heating module and the temperature and humidity control mechanism 5 to control the temperature and humidity inside the box 1.

[0054] Through the setting of the temperature and humidity control module, the reliability and accuracy of temperature and humidity detection are improved. And based on the reliable and accurate temperature and humidity detection values, the temperature and humidity in the execution device are controlled, making the printing and dyeing effect more stable.

[0055] The first detection unit and the second detection unit adopt a backpropagation three-layer neural network model structure and a particle swarm optimization algorithm. The backpropagation three-layer neural network model structure includes an input layer, a hidden layer, and an output layer. The parameters of the input layer include the real-time monitored temperature value and humidity value. The hidden layer includes multi-parameter operations, comparisons, and decisions. The output layer is the voltage value corresponding to the temperature and humidity.

[0056] Furthermore, the calculation and optimization of the weight matrix are determined by using random initial values and PSO iterative optimization:

[0057]

[0058] Among them, 、 、 and are the parameters to be optimized. is the node activation function (optional Sigmoidal function, ) , is the input variable at time t. is the output of the hidden layer. is the estimated value of the output.

[0059] Furthermore, the heating module includes a box 1, and the box 1 is communicated with a steam source mechanism 2. The feeding module includes two cloth box mechanisms 3 symmetrically arranged on both sides of the box 1;

[0060] The cloth box mechanism 3 is slidably connected to the box body 1, and the two cloth box mechanisms 3 alternately enter the box body 1;

[0061] The temperature and humidity control module includes a controller 4 and a temperature and humidity control mechanism 5 arranged in the box body 1. A temperature and humidity control mechanism 5 is communicatively arranged between each cloth box mechanism 3 and the box body 1. The temperature and humidity control mechanism 5 includes a fan 51. The fan 51 is electrically connected to the controller 4, and the fan 51 can bring the high-temperature steam in the box body 1 into the cloth box mechanism 3.

[0062] Specifically, the steam source mechanism 2 transports high-temperature water vapor into the box body 1. When the box body 1 is filled with water vapor, that is, when the temperature and humidity in the box body 1 reach the temperature and humidity required for high-temperature printing and dyeing, the two cloth box mechanisms 3 alternately enter the box body 1, and at the same time, the controller 4 detects the temperature and humidity in the box body 1; when the controller 4 detects that the temperature and humidity in the box body 1 are lower than the required level, the steam source mechanism 2 is started, and the steam source mechanism 2 continues to supplement high-temperature water vapor into the box body 1 until the temperature and humidity in the box body 1 reach the required level and then stops; when the controller 4 detects that the greenhouse temperature in the box body 1 is higher than the required level, the fan 51 is started, and the fan 51 brings the high-temperature steam in the box body 1 into the cloth box mechanism 3 that has not entered the box body 1.

[0063] Through the setting of the temperature and humidity control module, the temperature and humidity in the box body 1 can be detected in a timely manner, so as to adjust the temperature and humidity inside the box body 1 by starting the steam source mechanism 2 or the fan 51, preventing the fabric from being inadequately printed or dyed too heavily. And when the fan 51 is adjusted, the high-temperature steam can be transported into the cloth box mechanism 3 that has not entered the box body 1 to preheat the fabric in the cloth box mechanism 3, reducing energy consumption. At the same time, the two cloth box mechanisms 3 move alternately, improving the printing and dyeing efficiency, and being able to print and dye different types of fabrics, improving the versatility of the equipment.

[0064] Furthermore, the steam source mechanism 2 is communicated with an external steam generating device.

[0065] Specifically, the steam source mechanism 2 can control the high-temperature water vapor generated by the external steam generating device to enter the box body 1.

[0066] Such as Figure 6As shown, an opening 11 is provided at the connection between the box body 1 and the cloth box mechanism 1. The cloth box mechanism 3 includes two fixed plates 31 symmetrically arranged vertically. The fixed plates 31 are fixedly connected to the box body 1. It also includes two moving plates 32 that move linearly and are symmetrically arranged horizontally. A closing plate 33 is fixedly connected between the ends of the two moving plates 32 close to the box body 1, and a feeding plate 34 is fixedly connected between the ends of the two moving plates 32 away from the box body 1. The fixed plates 31, the moving plates 32, the closing plate 33, and the feeding plate 34 close the opening 11.

[0067] Furthermore, the lower moving plate 32 is connected to a driving member 38. The driving member 38 includes two electromagnetic slide rails 381 symmetrically arranged on the lower side of the lower moving plate 32. The electromagnetic slide rails 381 are fixedly connected to the box body 1. Two reinforcing plates 382 are fixedly connected between the two electromagnetic slide rails 381. An electromagnetic slider 383 is slidably connected in each electromagnetic slide rail 381. The sliding direction of the electromagnetic slider 383 in the electromagnetic slide rail 381 is perpendicular to the box body 1. A connecting rod 384 is fixedly connected to the upper side of each electromagnetic slider 383. The connecting rod 384 is fixedly connected to the lower moving plate 32.

[0068] Furthermore, as Figure 6 、 7 shown, the cloth box mechanism 3 further includes a roller member 39 arranged between the two moving plates 32. The roller member 39 includes two mounting plates 391 symmetrically and fixedly connected between the two moving plates 32. The two mounting plates 391 are parallel to the two fixed plates 31. Four first rotating shafts 392 are arranged in a matrix between the two mounting plates 391. The first rotating shafts 392 are rotatably connected to the mounting plates 391. A first roller 393 is fixedly sleeved on each first rotating shaft 392. Three second rotating shafts 394 are distributed in a triangle between the two mounting plates 391. The three second rotating shafts 394 are located between the four first rotating shafts 392. A second roller 395 is fixedly sleeved on each second rotating shaft 394; The cloth enters the cloth box mechanism 3 through the feeding port 35. After being guided by the first roller 393 close to the feeding port 35, it is distributed in an S shape on the three second rollers 395, and then is discharged from the discharging port 36 after being guided by the other three first rollers 393.

[0069] Specifically, when the cloth box mechanism 3 needs to enter the box body 1, the electromagnetic slider 383 is started, and the electromagnetic slider 383 moves towards the box body 1 in the electromagnetic slide rail 381, so that the moving plate 32 and the closing plate 33 gradually enter the box body 1.

[0070] Through the settings of the movable plate 32 and the fixed plate 31, before the cloth box mechanism 3 moves, the movable plate 32, the fixed plate 31, the closing plate 33, and the feeding plate 34 enclose the roller member 39, so that when the high-temperature steam enters the cloth box mechanism 1, it can fully preheat the cloth. And during the process of the movable plate 32 entering the box body 1, due to the setting of the fixed plate 31, the water vapor in the box body 1 does not dissipate outward. And due to the setting of the upper movable plate 32, it can also block the condensed water on the top of the box body 1 from falling on the cloth when in the box body 1, affecting the printing and dyeing quality of the cloth.

[0071] As Figure 7 , 9 shown, the temperature and humidity control mechanism 5 is connected to the fixed plate 31.

[0072] Furthermore, a slot is opened in the mounting plate 391. The temperature and humidity control mechanism 5 includes two symmetrically arranged connecting pipes 52. The two connecting pipes 52 are distributed on both sides of the cloth box mechanism 3 in the horizontal direction. Each connecting pipe 52 penetrates through the adjacent fixed plate 31, and a fan 51 is arranged in each connecting pipe 52.

[0073] Specifically, when the fan 51 is started, the high-temperature water vapor is conveyed between the two fixed plates 31 through the connecting pipe 52, and then acts on the cloth through the slot on the mounting plate 391 to realize the preheating of the cloth.

[0074] Furthermore, the fan 51 includes a cross mounting frame 511 fixedly connected in the connecting pipe 52. A motor 512 is fixedly connected to the middle of the cross mounting frame 511. The output end of the motor 512 penetrates through the cross mounting frame 511, and a fan blade 513 is fixedly sleeved on the output end of the motor 512.

[0075] Specifically, when the fan 51 needs to work, the motor 512 is started. The output end of the motor 512 drives the fan blade 513 to rotate. The rotation of the fan blade 513 drives the flow of the water vapor, thereby pumping the water vapor into the connecting pipe 52.

[0076] Furthermore, a sealing material is provided on the inner wall of the opening 11.

[0077] Furthermore, the sealing material is a soft corrosion-resistant material such as rubber.

[0078] Through the setting of the sealing material, when the movable plate 32 moves, it prevents the high-temperature water vapor from flowing out through the gap between the movable plate 32 and the opening 11, causing energy loss.

[0079] As Figure 6As shown, the cloth box mechanism 3 further includes a feed inlet 35 and a discharge outlet 36 that are symmetrically arranged up and down and penetrate through the feed plate 34. Between the feed inlet 35 and the discharge outlet 36, two closing members 37 are symmetrically arranged up and down. The closing member 37 can close the feed inlet 35 and the discharge outlet 36.

[0080] Specifically, the cloth enters from the feed inlet 36 and is discharged from the discharge outlet 37. And when the cloth box mechanism 3 enters the box body 1, the closing member 37 is started, and the closing member 37 closes the feed inlet 35 and the discharge outlet 36.

[0081] Through the arrangement of the closing member 37, when the cloth box mechanism 3 enters the box body 1, the feed inlet 35 and the discharge outlet 36 are closed, preventing the high-temperature water vapor in the box body 1 from escaping through the feed inlet 35 and the discharge outlet 36, thus causing energy loss.

[0082] As Figure 2 、 5 shown, the closing member 37 includes a plugging plate 371 slidably arranged on the feed plate 34. The plugging plate 371 makes a reciprocating linear motion from the side of the feed inlet 35 close to the horizontal central axis of the box body 1 to the side away from the horizontal central axis of the box body 1. A baffle 32 is fixedly arranged on the upper side of the feed inlet 35. When the plugging plate 371 abuts against the baffle 373, the feed inlet 35 can be closed.

[0083] Furthermore, the baffle 373 is 3 - 5 cm away from the edge of the feed inlet 35.

[0084] Specifically, when the closing member 37 needs to be closed, the closing member 37 is started, so that the plugging plate 371 makes a linear motion from the side of the feed inlet 35 close to the horizontal central axis of the box body 1 to the side away from the horizontal central axis of the box body 1 until the movement of the plugging plate 371 stops when it abuts against the baffle 373.

[0085] Through the arrangement of the plugging plate 371 and the baffle 373, the plugging plate 371 and the baffle 373 can close the feed inlet 35. At the same time, the setting of the distance between the baffle 373 and the feed inlet 35 can bend the cloth at the feed inlet 35, making the closing effect better.

[0086] Furthermore, as Figure 2 shown, the closing member 37 further includes two hinge rods 372 hinged to the bottom of the plugging plate 371. The two hinge rods 372 are arranged in an X shape. A double - acting electric push rod 9 is arranged between the two closing members 37. The end parts of the two hinge rods 372 are respectively hinged to the output ends of the double - acting electric push rod 9. The double - acting electric push rod 9 is fixedly connected to the feed plate 34.

[0087] Specifically, when the blocking plate 371 needs to move, the bidirectional electric push rod 9 is activated. The output end of the bidirectional electric push rod 9 contracts, causing the inclination angles of the two hinge rods 372 to decrease, thereby driving the blocking plate 371 to close the feed inlet 35.

[0088] Furthermore, the blocking plate 371 and the feed plate 34 are slidably connected by a T-shaped chute-slider structure.

[0089] It should be noted that the T-shaped chute-slider is a prior art and will not be elaborated here.

[0090] Through the setting of the T-shaped chute-slider, when the blocking plate 371 closes the storage port 35, it fits more closely and tightly with the closing plate 34, reducing the loss of high-temperature water vapor.

[0091] As Figure 4 、 6 shown, an evaporation mechanism 6 is provided at the bottom of the box body 1. The evaporation mechanism 6 includes a funnel-shaped liquid collecting plate 61. The lower end opening of the liquid collecting plate 61 is connected to a filtering member 62 in a communicating manner. The filtering member 62 is connected to a waste discharge pipe 63. A heating member 64 is provided at the bottom of the box body 1. A plurality of mesh holes are formed in the liquid collecting plate 61, and one-way valves are arranged in the mesh holes. Gas and liquid can only enter the upper side of the liquid collecting plate 61 from the lower side of the liquid collecting plate 61 through the one-way valves.

[0092] Furthermore, the waste discharge pipe 63 penetrates through the box body 1 and communicates with the outside.

[0093] Specifically, during the use of high-temperature water vapor, water flow will accumulate at the bottom of the box body. Through the setting of the liquid collecting plate 61, the water flow converges and enters the filtering member 62. The filtering member 62 filters the water flow, discharges the oily substances therein into the waste discharge pipe 63, and the remaining water stays on the lower side of the liquid collecting plate 61. Through the heating of the heating member 64, it is re-formed into water vapor and enters the box body 1 through the mesh holes to perform high-temperature printing on the fabric.

[0094] Through the setting of the filtering member 62 and the heating member 64, the condensed water can be filtered, and through the heating of the heating member 64, it is formed into water vapor and re-enters the box body 1, improving the utilization efficiency of water.

[0095] As Figure 8 shown, a reflux mechanism 7 is provided between the lower movable plate 32 and the closing plate 33. The reflux mechanism 7 includes a liquid collecting groove 71 provided on the lower movable plate 32. The liquid collecting groove 71 is communicated with a reflux groove 72. The reflux groove 72 penetrates through the lower movable plate 32 and the closing plate 33. The opening of the reflux groove 72 faces downward, and the lower side opening of the reflux groove 72 abuts against the lower side wall of the opening 11.

[0096] Through the setting of the liquid collecting tank 71, the condensed water in the cloth box mechanism 3 is concentrated in the liquid collecting tank 71. Then, during the movement of the cloth box mechanism 3, the lower opening of the return flow tank 72 no longer abuts against the lower side wall of the opening 11, and the condensed water re-enters the liquid collecting plate 61 through the return flow tank 72 and is evaporated again by the evaporation mechanism 6.

[0097] As Figure 4 shown, a heating pipeline 8 is provided at the top of the box body 1.

[0098] Through the setting of the heating pipeline 8, a large amount of water vapor condensation at the top of the box body 1 is prevented, which affects the quality of cloth printing and dyeing.

[0099] It should be noted that in the description of the present invention, the terms indicating directions or positional relationships such as "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc. are based on the directions or positional relationships shown in the drawings. This is only for the convenience of description and does not indicate or imply that the device or element must have a specific orientation, be constructed and operated in a specific orientation. Therefore, it cannot be understood as a limitation to the present invention. In addition, the terms "first", "second", "third" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0100] In addition, it should also be noted that in the description of the present invention, unless otherwise clearly specified and limited, the terms "installation", "connection", "connection" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be directly connected or indirectly connected through an intermediate medium, and it can be the communication inside two elements. For those skilled in the art, the specific meanings of the above terms in the present invention can be understood according to specific situations.

[0101] The term "including" or any other similar term is intended to cover non-exclusive inclusion, so that a process, article, or device / equipment including a series of elements not only includes those elements, but also includes other elements not explicitly listed, or also includes the elements inherent in these processes, articles, or devices / equipment.

[0102] So far, the technical solution of the present invention has been described in combination with the preferred embodiments shown in the drawings. However, it is easy for those skilled in the art to understand that the protection scope of the present invention is obviously not limited to these specific embodiments. Without departing from the principle of the present invention, those skilled in the art can make equivalent changes or substitutions to the relevant technical features, and the technical solutions after these changes or substitutions will all fall within the protection scope of the present invention.

Claims

1. A temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing, characterized in that, it includes a heating module, a feeding module, and a temperature and humidity control module; the temperature and humidity control module includes a controller, and the controller is electrically connected to a humidity regulator and a temperature regulator; the controller is electrically connected to a heating module and a temperature and humidity control mechanism (5); the heating module and the temperature and humidity control mechanism (5) are jointly electrically connected to a temperature sensor and a humidity sensor; the humidity regulator includes a humidity setter, a first detection unit, and a first setting unit. The humidity setter is electrically connected to the first detection unit and the first setting unit. The first detection unit is electrically connected to the first setting unit. The first detection unit is electrically connected to the humidity sensor. The first setting unit is electrically connected to the controller; the temperature regulator includes a temperature setter, a second detection unit, and a second setting unit. The temperature setter is electrically connected to the second detector and the second setting unit. The second detection unit is electrically connected to the second setting unit. The second detection unit is electrically connected to the temperature sensor. The second setting unit is electrically connected to the controller; the first detection unit and the second detection unit adopt a backpropagation three-layer neural network model structure and a particle swarm optimization algorithm. The backpropagation three-layer neural network model structure includes an input layer, a hidden layer, and an output layer. The input layer parameters include the temperature value and humidity value monitored in real time. The hidden layer includes multi-parameter operations, comparisons, and decisions. The output layer is the voltage value corresponding to the temperature and humidity; the heating module includes a box body (1), and the box body (1) is communicated with a steam source mechanism (2). The feeding module includes two cloth box mechanisms (3) symmetrically arranged on both sides of the box body (1); the cloth box mechanism (3) is slidably connected to the box body (1), and the two cloth box mechanisms (3) alternately enter the box body (1); the temperature and humidity control module includes a temperature and humidity sensor and a temperature and humidity control mechanism (5) arranged in the box body (1). A temperature and humidity control mechanism (5) is communicated between each cloth box mechanism (3) and the box body (1). The temperature and humidity control mechanism (5) includes a fan (51), and the fan (51) is electrically connected to the controller (4). The fan (51) can bring the high-temperature steam in the box body (1) into the cloth box mechanism (3).

2. The temperature and humidity control system for a high-temperature treatment device in textile printing and dyeing according to claim 1, characterized in that, An opening (11) is provided at the connection between the box body (1) and the cloth box mechanism (3). The cloth box mechanism (3) includes two fixed plates (31) symmetrically arranged vertically. The fixed plates (31) are fixedly connected to the box body (1). It further includes two moving plates (32) symmetrically arranged horizontally and performing linear motion. A closing plate (33) is fixedly connected between the ends of the two moving plates (32) close to the box body (1). A feeding plate (34) is fixedly connected between the ends of the two moving plates (32) far from the box body (1). The fixed plates (31), the moving plates (32), the closing plate (33), and the feeding plate (34) close the opening (11).

3. The temperature and humidity control system of a textile printing and dyeing high-temperature treatment device according to claim 2, characterized in that, the temperature and humidity control mechanism (5) is connected to the fixed plate (31).

4. The temperature and humidity control system of a textile printing and dyeing high-temperature treatment device according to claim 2 or 3, characterized in that, sealing materials are provided on the inner walls of the opening (11).

5. The temperature and humidity control system of a textile printing and dyeing high-temperature treatment device according to claim 4, characterized in that, the cloth box mechanism (3) further includes a feeding port (35) and a discharging port (36) symmetrically penetrating through the feeding plate (34) up and down. Two closing members (37) are symmetrically arranged up and down between the feeding port (35) and the discharging port (36). The closing members (37) can close the feeding port (35) and the discharging port (36).

6. The temperature and humidity control system of a textile printing and dyeing high-temperature treatment device according to claim 5, characterized in that, the closing member (37) includes a plugging plate (371) slidably arranged on the feeding plate (34). The plugging plate (371) performs reciprocating linear motion from one side of the feeding port (35) close to the horizontal central axis of the box body (1) to the side far from the horizontal central axis of the box body (1). A baffle (373) is fixedly arranged on the upper side of the feeding port (35). When the plugging plate (371) abuts against the baffle (373), the feeding port (35) can be closed.

7. The temperature and humidity control system of a textile printing and dyeing high-temperature treatment device according to claim 6, characterized in that, an evaporation mechanism (6) is provided at the bottom of the box body (1). The evaporation mechanism (6) includes a funnel-shaped liquid collecting plate (61). The lower opening of the liquid collecting plate (61) is communicated with a filtering member (62). The filtering member (62) is communicated with a waste discharge pipe (63). A heating member (64) is provided at the bottom of the box body (1). A plurality of mesh holes are provided on the liquid collecting plate (61).

8. The temperature and humidity control system of a textile printing and dyeing high-temperature treatment device according to claim 7, characterized in that, A reflux mechanism (7) is provided between the lower movable plate (32) and the closing plate (33). The reflux mechanism (7) includes a liquid collecting tank (71) provided on the lower movable plate (32). The liquid collecting tank (71) is communicated with a reflux tank (72). The reflux tank (72) penetrates through the lower movable plate (32) and the closing plate (33). The opening of the reflux tank (72) faces downward, and the lower opening of the reflux tank (72) abuts against the lower side wall of the opening (11).

Citation Information

Patent Citations

  • High temperature and humidity self control energy saving device for setting machine and processing method thereof

    CN108803750A

  • Fabric printing and dyeing steaming device

    CN202298170U