Printing and dyeing drying system

By introducing a combination of drying plates, drying pipes and scrapers into the printing and dyeing system, combined with hot air and control systems, the problems of low and uneven drying efficiency in printing and dyeing are solved, efficient and uniform drying effects are achieved, and production efficiency and product quality are improved.

CN223314665UActive Publication Date: 2025-09-09INNER MONGOLIA ERDOS RESOURCES CO LTD
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Patent Information

Application Number
CN202422998554.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-05
Publication Date
2025-09-09
Estimated Expiration
2034-12-05

AI Technical Summary

Technical Problem

The existing printing and dyeing system has low drying efficiency, resulting in long production cycles and uneven drying, which affects the color uniformity and pattern clarity of the product.

Method used

Adopt drying plate and drying pipe system, combine heating wire heating and blower to provide hot air, scraper printing is used to ensure that the dyed cloth is evenly dried, and equipped with temperature, pressure and airflow control system to achieve uniform drying.

Benefits of technology

It improves the drying efficiency and uniformity of printed and dyed fabrics, shortens the production cycle, and improves the level of production automation and the quality of finished products.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a printing and dyeing drying system which comprises a drying plate, a drying pipeline and a scraping plate, the drying plate is arranged on a supporting frame, a thermal resistance wire is arranged in the drying plate, and the drying plate is constructed to be used for drying dyed cloth; the drying pipeline is arranged in the extending direction of the drying plate and located over the drying plate, one end of the drying pipeline is of a closed structure, an air blower is arranged at the other end of the drying pipeline and used for providing an air source, and a plurality of air outlets are formed in the bottom of the drying pipeline. The airflow in the drying pipeline is constructed to flow to the dyed cloth on the drying plate from the air outlet; the scraping plate is matched with the supporting frame in a guiding mode, and the scraping plate is constructed to move in the extending direction of the drying plate so as to conduct scraping printing on the printing plate and the dyed cloth located on the drying plate. According to the printing and dyeing drying system, by arranging the drying plate and the drying pipeline, the drying efficiency of printed and dyed cloth can be improved, the drying uniformity is guaranteed, and the automation level of production is improved.
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Description

Technical Field

[0001] The present disclosure relates to the technical field of printing and dyeing, and more precisely, to a printing and dyeing drying system. Background Art

[0002] The printing and dyeing process is an important part of textile processing, covering multiple stages such as pre-treatment, dyeing, printing, finishing and drying. The printing and dyeing system plays a vital role in the entire printing and dyeing process. It is necessary to ensure that the dye is evenly attached to the fabric to improve the appearance quality and performance of the product. However, in the existing technology, the printing and dyeing system dries the printed and dyed fabrics by natural drying or simple hot air drying. The printing and dyeing efficiency is low, the time consumption is long, and the production cycle is extended. In addition, this drying method may cause some areas of the fabric to be over-dried and other areas to be under-dried, affecting the color uniformity and pattern clarity of the final product. Utility Model Content

[0003] In view of this, the embodiments of the present disclosure provide a printing and dyeing drying system to solve the technical defects existing in the prior art.

[0004] To achieve the above objectives, the present disclosure adopts the following technical solutions:

[0005] The present disclosure provides a printing and dyeing drying system, comprising:

[0006] A drying plate, the drying plate being arranged on a supporting frame, a thermal resistance wire being arranged inside the drying plate, and the drying plate being configured to dry dyed cloth;

[0007] A drying duct is provided along the extension direction of the drying plate and is located directly above the drying plate. One end of the drying duct is a closed structure, and the other end is provided with a blower. The blower is configured to provide an air source. A plurality of air outlets are provided at the bottom of the drying duct. The airflow in the drying duct is configured to flow from the air outlets to the dyed cloth located on the drying plate.

[0008] The scraper is guided by a supporting frame, and the scraper is configured to move along the extension direction of the drying plate to scrape and print the printing plate and dyed cloth on the drying plate.

[0009] In one embodiment of the present disclosure, the drying pipe includes a first pipe section, a second pipe section and a connecting pipe section, the diameter of the first pipe section is larger than the diameter of the second pipe section, the connecting pipe section is arranged between the first pipe section and the second pipe section, and the diameter of the connecting pipe section gradually decreases in the direction from the first pipe section to the second pipe section.

[0010] In one embodiment of the present disclosure, an adjustable air outlet blade is provided at the air outlet, and the air outlet blade includes a thin-sheet blade body and a rotating shaft rotatable around an axis. The blade body is connected to the air outlet through the rotating shaft, and the rotating shaft is connected to a driving mechanism, and the driving mechanism is constructed to adjust the swing angle of the blade body.

[0011] In one embodiment of the present disclosure, the blower is a hot blower comprising a heating element configured to preheat air before blowing.

[0012] In one embodiment of the present disclosure, the drying duct is further provided with a temperature sensor, and the temperature sensor is configured to monitor temperature changes in the drying duct.

[0013] In one embodiment of the present disclosure, a lighting assembly is provided between two adjacent air outlets, and the lighting assembly includes an LED light strip extending along the length direction of the drying duct.

[0014] In one embodiment of the present disclosure, a filter is provided at the air outlet of the air outlet, and the filter is configured to filter impurities in the air.

[0015] In one embodiment of the present disclosure, a pressure sensor is provided in the drying duct, and the pressure sensor is configured to monitor changes in air pressure in the drying duct.

[0016] In one embodiment of the present disclosure, a pressure strip made of soft material is provided at the bottom of the scraper, and the pressure strip is configured to smoothly contact the printing plate and scrape the printed cloth during movement.

[0017] In one embodiment of the present disclosure, guide rails are provided on both sides of the drying plate, and sliders matching the guide rails are provided at both ends of the scraper, and the sliders are configured to drive the scraper to move on the guide rails.

[0018] The printing and dyeing drying system provided by the present disclosure can improve the drying efficiency of printed and dyed fabrics by providing drying plates and drying pipes, ensure the uniformity of drying, and improve the level of production automation.

[0019] Other features and advantages of the present disclosure will become apparent from the following detailed description of exemplary embodiments of the present disclosure with reference to the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 This is a structural diagram of a printing and dyeing drying system provided by an embodiment of the present disclosure;

[0021] Figure 2yes Figure 1 Enlarged schematic diagram of the circle;

[0022] Figure 3 It is a structural schematic diagram of a printing and dyeing drying system provided in one embodiment of the present disclosure.

[0023] 1-drying plate; 2-drying pipe; 21-first pipe section; 22-connecting pipe section; 23-second pipe section; 3-blower; 4-air outlet; 5-scraper; 6-air outlet blade; 7-lighting component; 8-guide rail; 9-slider. DETAILED DESCRIPTION

[0024] Various exemplary embodiments of the present disclosure will now be described in detail with reference to the accompanying drawings. It should be noted that unless otherwise specifically stated, the relative arrangement of components and steps, numerical expressions and numerical values ​​set forth in these embodiments do not limit the scope of the present disclosure.

[0025] The following description of at least one exemplary embodiment is merely illustrative in nature and is in no way intended to limit the present disclosure, its application, or uses.

[0026] Technologies, methods, and equipment known to ordinary technicians in the relevant art may not be discussed in detail, but where appropriate, the technologies, methods, and equipment should be considered part of the specification.

[0027] It should be noted that like reference numerals and letters refer to like items in the following figures, and therefore, once an item is defined in one figure, it need not be further discussed in subsequent figures.

[0028] The specific embodiments of the present disclosure are described below with reference to the accompanying drawings.

[0029] In this document, “upper”, “lower”, “front”, “back”, “left”, “right”, etc. are only used to indicate the relative position relationship between related parts, rather than to limit the absolute positions of these related parts.

[0030] In this article, "first", "second", etc. are only used to distinguish each other, and do not indicate the importance and order, or the prerequisite for each other's existence.

[0031] In this document, “equal”, “same”, etc. are not strictly limited in a mathematical and / or geometric sense, but also include errors that can be understood by those skilled in the art and are allowed in manufacturing or use.

[0032] The present disclosure provides a printing and dyeing drying system, comprising a drying plate, a drying pipe and a scraper, wherein the drying plate is arranged on a support frame, a thermal resistance wire is arranged in the drying plate, and the drying plate is configured to dry dyed cloth; the drying pipe is arranged along the extension direction of the drying plate and is located directly above the drying plate, one end of the drying pipe is a closed structure, and the other end is provided with a blower, which is configured to provide an air source, a plurality of air outlets are provided at the bottom of the drying pipe, and the air flow in the drying pipe is configured to flow from the air outlet to the dyed cloth located on the drying plate; the scraper guide cooperates with the support frame, and the scraper is configured to move along the extension direction of the drying plate to scrape and print the printing plate and dyed cloth located on the drying plate.

[0033] The printing and dyeing drying system provided by the present disclosure can improve the drying efficiency of printed and dyed fabrics by providing drying plates and drying pipes, ensure the uniformity of drying, and improve the level of production automation.

[0034] For ease of understanding, refer to Figures 1 to 3 , the specific structure and working principle of the printing and dyeing drying system disclosed in the present invention are explained in detail with reference to an embodiment.

[0035] like Figures 1 to 3 As shown, the present disclosure relates to a printing and dyeing drying system, including a drying plate 1, a drying pipe 2 and a scraper 5. The drying plate 1 is arranged on a support frame, and a thermal resistance wire is arranged in the drying plate 1. The drying plate 1 is configured to dry dyed cloth; the drying pipe 2 is arranged along the extension direction of the drying plate 1 and is located directly above the drying plate 1. One end of the drying pipe 2 is a closed structure, and the other end is provided with a blower 3. The blower 3 is configured to provide an air source. A plurality of air outlets 4 are provided at the bottom of the drying pipe 2. The airflow in the drying pipe 2 is configured to flow from the air outlet 4 to the dyed cloth located on the drying plate 1; the scraper 5 is guided by a supporting frame, and the scraper 5 is configured to move along the extension direction of the drying plate 1 to scrape and print the printing plate and dyed cloth located on the drying plate 1.

[0036] Specifically, the drying plate 1 is mounted on a support frame and is internally embedded with thermal resistance wires. These resistance wires generate heat through electrical heating, thereby drying the dyed cloth placed on the drying plate 1. A drying duct 2 is located directly above the drying plate 1, one end of which is sealed and the other end is connected to a blower 3. The function of the blower 3 is to provide power for air flow into the drying duct 2, so that the air is blown toward the dyed cloth below through multiple air outlets 4 at the bottom of the duct, accelerating water evaporation and improving drying efficiency. The scraper 5 cooperates with the support frame guide and can move along the direction of the drying plate 1. It is mainly used to scrape the dyed cloth during the drying process, ensuring that the dyed cloth fits smoothly on the surface of the drying plate 1. It also helps to remove excess moisture or bubbles on the surface of the dyed cloth, ensuring the drying quality and the aesthetics of the finished product. By combining the direct heating of the drying plate 1 and the hot air drying of the drying duct 2, the drying speed is increased and the production cycle is shortened. The thermal resistance wires and the evenly distributed air outlets 4 ensure that every part of the cloth is exposed to the same amount of heat and air, thereby achieving uniform drying. In addition, the guided coordinated movement of the scraper 5 and the support frame helps to reduce manual intervention and improve the stability and repeatability of the production process.

[0037] In one embodiment of the present disclosure, the drying pipe 2 includes a first pipe section 21, a second pipe section 23 and a connecting pipe section 22. The diameter of the first pipe section 21 is larger than the diameter of the second pipe section 23. The connecting pipe section 22 is arranged between the first pipe section 21 and the second pipe section 23. The diameter of the connecting pipe section 22 gradually decreases in the direction from the first pipe section 21 to the second pipe section 23.

[0038] Specifically, the first pipe section 21 has a larger pipe diameter and is usually located on the side close to the blower 3. The larger pipe diameter helps to reduce the resistance of the incoming air flow, so that the air flow provided by the blower 3 can enter the pipeline system more smoothly, thereby ensuring sufficient air supply. The second pipe section 23 has a relatively small pipe diameter and is located on the side away from the blower 3. The smaller pipe diameter can enable the air flow to maintain a certain speed after being transmitted over a long distance, which helps to improve the drying effect in the remote area. The connecting pipe section 22 is located between the first pipe section 21 and the second pipe section 23, and its pipe diameter gradually decreases from the first pipe section 21 to the second pipe section 23. This tapered design is conducive to the formation of a Venturi effect, that is, when the fluid passes through a gradually shrinking space, the flow rate increases and the pressure decreases, which helps to form a locally accelerated airflow at the connecting pipe section 22, thereby improving the airflow uniformity and drying efficiency of the entire pipeline system.

[0039] like Figures 1 to 2As shown, in one embodiment of the present disclosure, an adjustable air outlet blade 6 is provided at the air outlet 4, and the air outlet blade 6 includes a thin-sheet blade body and a rotating shaft rotatable around an axis. The blade body is connected to the air outlet 4 through the rotating shaft, and the rotating shaft is connected to a driving mechanism, and the driving mechanism is constructed to adjust the swing angle of the blade body.

[0040] Specifically, the blade body is in the shape of a thin sheet and is used to guide and adjust the direction of the airflow. The blade body is connected to the air outlet 4 by a rotating shaft. The rotating shaft allows the blade body to rotate around its axis, so that the direction and speed of the airflow can be controlled by adjusting the angle of the blade. The driving mechanism is connected to the rotating shaft and is used to adjust the swing angle of the blade body. The driving mechanism can be an electric motor, a cylinder or other types of actuators, which are not limited here. By adjusting the angle of the air outlet blade 6, the direction and speed of the airflow can be accurately controlled to ensure that the airflow is evenly distributed on the dyed cloth and avoid certain areas from being too dry or too wet. Different dyed cloth materials and thicknesses may require different airflow conditions. By adjusting the air outlet blade 6, various drying requirements can be flexibly adapted. Reasonable adjustment of the airflow can reduce unnecessary energy waste and improve the energy efficiency of the overall drying system. In addition, by accurately controlling the airflow, it can be ensured that the moisture on the surface of the dyed cloth evaporates evenly, improving the drying quality and the appearance of the finished product.

[0041] In one embodiment of the present disclosure, the blower 3 is a hot blower 3 , which includes a heating element configured to preheat air before blowing.

[0042] Specifically, the blower 3 is used to provide airflow power, sucking air from one end and transporting it to the other end through the pipe. The heating element is installed near the air inlet or outlet of the blower 3, and is used to preheat the air before it enters the pipe. The heating element can be an electric heating wire, a heating tube or other forms of heating devices. In actual operation, after the blower 3 is started, cold air is sucked in from the outside; the sucked cold air passes through the heating element and is heated to the required temperature; the heated hot air is sent into the drying pipe 2 by the blower 3; the hot air is evenly distributed to the surface of the dyed cloth on the drying plate 1 through multiple air outlets 4 at the bottom of the pipe, accelerating the evaporation of moisture. The preheated air can directly act on the surface of the dyed cloth, accelerate the evaporation rate of moisture, shorten the drying time, and reduce the workload of the thermal resistance wire inside the drying plate 1, thereby reducing energy consumption. As an embodiment of the present disclosure, an overheating protection device can also be provided to prevent the heating element from being damaged due to excessive temperature.

[0043] In one embodiment of the present disclosure, the drying duct 2 is further provided with a temperature sensor, which is configured to monitor temperature changes in the drying duct 2 .

[0044] Specifically, a temperature sensor is installed inside the drying duct 2 to monitor temperature changes within the duct in real time. In this embodiment, the temperature sensor can be a thermocouple, a resistance temperature detector (RTD), or an infrared temperature sensor, without limitation. The temperature sensor monitors the temperature within the drying duct 2 in real time, converting temperature changes into an electrical signal. This signal is transmitted to the control system via wires or a wireless module. The control system processes and analyzes the received temperature data to determine whether the current temperature meets the set value. If the temperature deviates from the set value, the control system adjusts the power of the heating element, the air volume of the blower 3, or the angle of the air outlet blades 6 to restore the temperature to the set range. Real-time temperature monitoring ensures that the temperature remains within the set range during the drying process, improving drying quality. Furthermore, the temperature sensor can promptly detect temperature anomalies, preventing equipment overheating or underheating, and extending the equipment's service life. In this embodiment, multiple temperature sensors can be installed at different locations within the drying duct 2 to achieve comprehensive temperature monitoring. Upper and lower temperature limits can be set, automatically triggering an alarm or shutting down the system if the temperature exceeds the set range, ensuring safe operation of the equipment.

[0045] like Figure 1 As shown, in one embodiment of the present disclosure, a lighting assembly 7 is provided between two adjacent air outlets 4 , and the lighting assembly 7 includes an LED light strip extending along the length direction of the drying duct 2 .

[0046] Specifically, the LED light bar extends along the length of the drying duct 2 and is installed between two adjacent air outlets 4. The LED light bar has the characteristics of small size, low power consumption, long life and high brightness, and is suitable for use at the bottom of the drying duct 2. A mounting bracket is provided at the bottom of the drying duct 2 to fix the LED light bar and ensure that it is stably installed inside the drying duct 2. The LED light bar can be turned on and off and the brightness can be adjusted by connecting it to the power supply and control system through wires. The LED light bar provides uniform lighting during the drying process, ensuring that the operator can clearly observe the state of the dyed cloth. And because the heat generated by the LED light bar is relatively low, it will not significantly affect the temperature inside the drying duct 2, ensuring the stability of the drying process. When a camera or other monitoring equipment is provided, the LED light bar can provide sufficient light to help the monitoring system capture the image of the dyed cloth more clearly, facilitating real-time monitoring and quality inspection.

[0047] In one embodiment of the present disclosure, a filter is provided at the air outlet of the air outlet 4 , and the filter is configured to filter impurities in the air.

[0048] Specifically, a filter is installed at the outlet of the air outlet 4 to filter out dust, fibers, and other impurities from the air. In this embodiment, the filter can be made of a variety of materials, such as metal mesh, nylon mesh, and non-woven fabric, without any limitation. The blower 3 draws air into the drying duct 2. As the air passes through the air outlet 4, it first passes through the filter, which captures dust, fibers, and other impurities in the air. The filtered, clean air is then evenly distributed through the air outlet 4 onto the surface of the dyed fabric on the drying plate 1, ensuring that the drying process is not affected by impurities. The filter effectively removes impurities from the air, preventing dust, fibers, and other contaminants from adhering to the surface of the dyed fabric, ensuring the cleanliness and aesthetics of the dyed fabric. It also prevents impurities from entering the drying duct 2 and drying plate 1, reducing wear and clogging of the equipment and extending its service life. The filtered, clean air improves the working environment, reduces the concentration of suspended particulate matter in the air, and enhances the comfort and health of the operator. In this embodiment, the filter is designed to be removable, allowing for easy regular replacement or cleaning to maintain a good filtration effect.

[0049] In one embodiment of the present disclosure, a pressure sensor is provided in the drying duct 2 , and the pressure sensor is configured to monitor changes in air pressure in the drying duct 2 .

[0050] Specifically, a pressure sensor is installed at a key position of the drying duct 2 to monitor the air pressure changes in the duct in real time. The pressure sensor can be a piezoresistive sensor, a capacitive sensor, a strain gauge sensor, etc., without any limitation. The pressure sensor is usually installed in the middle of the duct or near the air outlet 4 to accurately monitor the changes in the air flow. The pressure sensor monitors the air pressure changes in the drying duct 2 in real time, converts the air pressure data into an electrical signal, and transmits the electrical signal to the control system via a wire or a wireless module. The control system processes and analyzes the received air pressure data to determine whether the current air pressure meets the set value. If the air pressure deviates from the set value, the control system will restore the air pressure to the set range by adjusting the air volume of the blower 3, the angle of the air outlet blade 6, or the power of the heating element. By monitoring the air pressure changes in real time, it is ensured that the air pressure during the drying process is always within the set range, improving the drying quality, and can promptly detect air pressure anomalies, prevent problems such as pipeline blockage or blower 3 failure, and extend the service life of the equipment.

[0051] like Figure 3 As shown, in one embodiment of the present disclosure, a pressure strip made of soft material is provided at the bottom of the scraper 5, and the pressure strip is constructed to be able to smoothly contact the printing plate and scrape the printed cloth during movement.

[0052] Specifically, as mentioned above, the scraper 5 guides and cooperates with the support frame, which can move in the extension direction of the drying plate 1 and is used to scrape and print the printing plate and dyed cloth located on the drying plate 1. The pressure strip is installed at the bottom of the scraper 5 and is made of soft material. It is used to smoothly contact the printing plate and scrape and print the dyed cloth during movement. The pressure strip material can be selected from rubber, silicone, sponge, etc. These materials have good flexibility and elasticity and can provide uniform pressure when contacting the printing plate and dyed cloth, while avoiding scratching or damaging the printing plate and dyed cloth. In addition, in this embodiment, the edge of the pressure strip is made into a V shape. The V-shaped design can ensure that a tighter seal is formed when the pressure strip contacts the surface of the printing plate. This helps prevent ink or other dyes from leaking from the edge of the scraper during the scraping process, ensuring the clarity of the pattern and the printing quality. In addition, the V-shaped edge can adapt to slightly uneven surfaces better than a straight edge. When the pressure strip moves across the printing plate, the V-shaped design can automatically adjust to fit the surface contour and provide uniform pressure distribution. Furthermore, the V-shaped edge helps to better remove excess ink or dye from the printing plate, as it more effectively cuts into the ink layer and pushes it away from the plate surface. During operation, the scraper 5, driven by a motor or manually, moves along the extension of the drying plate 1. During this movement, the pressure strip smoothly contacts the printing plate and the dyed fabric, ensuring that the fabric adheres tightly to the drying plate 1 and avoiding bubbles and wrinkles. The soft material pressure strip provides even pressure, ensuring a smooth surface for the dyed fabric, improving the drying quality and aesthetics of the finished product.

[0053] like Figure 3 As shown, in one embodiment of the present disclosure, guide rails 8 are provided on both sides of the drying plate 1, and sliders 9 matching the guide rails 8 are provided at both ends of the scraper 5, and the sliders 9 are configured to drive the scraper 5 to move on the guide rails 8.

[0054] Specifically, the guide rails 8 are installed on both sides of the drying plate 1 to guide and support the movement of the scraper 5. The guide rails 8 can be made of metal, plastic and other materials, and have high rigidity and wear resistance. The sliders 9 are installed at both ends of the scraper 5 and match the guide rails 8 to drive the scraper 5 to move on the guide rails 8. The sliders 9 can be in the form of rolling bearings, sliding bearings and the like to ensure low friction and high-precision movement. The design of the guide rails 8 and the sliders 9 ensures the stability of the scraper 5 during movement, avoids shaking and deviation, ensures that the scraper 5 moves on a predetermined path, and improves the positioning accuracy of the scraper 5. The sliders 9 are made of low-friction materials or bearings, which reduces friction during movement, reduces energy consumption, and extends the service life of the equipment. The design of the guide rails 8 and the sliders 9 can adapt to drying plates 1 of different lengths and widths, and has high versatility and flexibility.

[0055] The printing and dyeing drying system provided by the present disclosure can improve the drying efficiency of printed and dyed fabrics by providing drying plates and drying pipes, ensure the uniformity of drying, and improve the level of production automation.

[0056] It should be noted that for the aforementioned method embodiments, for ease of description, they are all expressed as a series of action combinations, but those skilled in the art should be aware that the present disclosure is not limited by the order of the actions described, because according to the present disclosure, certain steps can be performed in other orders or simultaneously. Secondly, those skilled in the art should also be aware that the embodiments described in the specification are all preferred embodiments, and the actions and modules involved are not necessarily required by the present disclosure.

[0057] In the above embodiments, the description of each embodiment has its own focus. For parts that are not described in detail in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.

[0058] The preferred embodiments of the present disclosure disclosed above are intended only to help illustrate the present disclosure. The optional embodiments do not describe all details in detail, nor do they limit the invention to the specific embodiments described. Obviously, many modifications and variations can be made based on the content of the present disclosure. The present disclosure selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present disclosure, so that those skilled in the art can better understand and utilize the present disclosure. The present disclosure is limited only by the claims and their full scope and equivalents.

Claims

1. A printing and dyeing drying system, characterized in that: include: A drying plate (1), the drying plate (1) being arranged on a support frame, a thermal resistance wire being arranged inside the drying plate (1), and the drying plate (1) being configured to dry dyed cloth; A drying duct (2), the drying duct (2) being arranged along the extension direction of the drying plate (1) and being located directly above the drying plate (1); one end of the drying duct (2) being a closed structure; and a blower (3) being arranged at the other end; the blower (3) being configured to provide an air source; and a plurality of air outlets (4) being arranged at the bottom of the drying duct (2); and the airflow in the drying duct (2) being configured to flow from the air outlets (4) to the dyed cloth located on the drying plate (1); A scraper (5) is guided by a matching support frame, and the scraper (5) is configured to move along the extension direction of the drying plate (1) to scrape and print the printing plate and dyed cloth located on the drying plate (1).

2. The printing and dyeing drying system according to claim 1, characterized in that: The drying pipe (2) comprises a first pipe section (21), a second pipe section (23) and a connecting pipe section (22); the diameter of the first pipe section (21) is larger than the diameter of the second pipe section (23); the connecting pipe section (22) is arranged between the first pipe section (21) and the second pipe section (23); the diameter of the connecting pipe section (22) gradually decreases in a direction from the first pipe section (21) to the second pipe section (23).

3. The printing and dyeing drying system according to claim 1, characterized in that: An adjustable air outlet blade (6) is provided at the air outlet (4), and the air outlet blade (6) comprises a sheet-shaped blade body and a rotating shaft rotatable around an axis, the blade body is connected to the air outlet (4) via the rotating shaft, and the rotating shaft is connected to a driving mechanism, and the driving mechanism is configured to adjust the swing angle of the blade body.

4. The printing and dyeing drying system according to claim 1, characterized in that: The blower (3) is a hot blower (3), and the hot blower (3) comprises a heating element, and the heating element is configured to preheat the air before blowing.

5. The printing and dyeing drying system according to claim 4, characterized in that: The drying duct (2) is further provided with a temperature sensor, which is configured to monitor temperature changes within the drying duct (2).

6. The printing and dyeing drying system according to claim 1, characterized in that: A lighting assembly (7) is provided between two adjacent air outlets (4), and the lighting assembly (7) comprises an LED light strip extending along the length direction of the drying duct (2).

7. The printing and dyeing drying system according to claim 1, characterized in that: A filter is provided at the air outlet of the air outlet (4), and the filter is configured to filter impurities in the air.

8. The printing and dyeing drying system according to claim 1, characterized in that: A pressure sensor is provided in the drying duct (2), and the pressure sensor is configured to monitor changes in air pressure in the drying duct (2).

9. The printing and dyeing drying system according to claim 1, characterized in that: A pressure strip made of soft material is provided at the bottom of the scraper (5), and the pressure strip is constructed so as to be able to smoothly contact the printing plate and scrape the printed cloth during movement.

10. The printing and dyeing drying system according to claim 1, characterized in that: Guide rails (8) are provided on both sides of the drying plate (1), and sliders (9) matching the guide rails (8) are provided at both ends of the scraper (5), and the sliders (9) are configured to drive the scraper (5) to move on the guide rails (8).