Textile fabric drying and shaping device with intelligent temperature control function

By introducing wiper, extrusion, tensioning, drying and auxiliary components into the textile fabric drying and shaping device, combined with the intelligent temperature control system, the problems of low drying efficiency and insufficient contact of existing devices are solved, and efficient and uniform fabric drying effect is achieved.

CN120488679AInactive Publication Date: 2025-08-15响水申鑫纺织有限公司
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Patent Information

Application Number
CN202510978861.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-07-16
Publication Date
2025-08-15
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

The existing equipment has low drying efficiency, cannot effectively remove moisture in the fabric, and the fabric does not come into contact with the hot air flow, which affects the drying effect.

Method used

A textile fabric drying and shaping device with intelligent temperature control is designed, including wiper components, extrusion components, tensioning components, drying components and auxiliary components. The scraper is scraped away from moisture, extruded rollers, wavy heating pipe heating and fan blowing, and precise temperature control is achieved with the microprocessor to improve the cloth drying efficiency.

Benefits of technology

It significantly improves the drying efficiency and uniformity of the fabric, shortens the drying time, and reduces energy waste and fabric damage.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a textile fabric drying and shaping device with an intelligent temperature control function, and relates to the technical field of fabric drying. A first conveying roller and a second conveying roller are rotationally arranged on the box body, the second conveying roller is located on the right side of the first conveying roller, two third conveying rollers are rotationally arranged in the box body, the two third conveying rollers are located on the right side of the second conveying roller, and cloth is conveyed on the first conveying roller, the second conveying roller and the third conveying rollers; a contact block of a rectangular block-shaped structure is fixed in the box body, the bottom end face of the contact block makes contact with the top face of the cloth, and a base block of a rectangular block-shaped structure is fixed in the box body. In the aspect of water treatment, the water scraping assembly efficiently scrapes water in the cloth through abutting of the scraping plate and the contact block, the scraped water flows into the box body and is discharged through the discharging pipe, and the subsequent drying efficiency is remarkably improved. The extrusion assembly extrudes the cloth through an extrusion roller and a second conveying roller, further drainage is achieved, and the drying degree of the cloth is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of cloth drying, and in particular to a textile cloth drying and shaping device with intelligent temperature control. Background Art

[0002] In the process of fabric processing, multiple steps are required, and drying and shaping is one of the steps. Drying is to remove moisture from the fabric.

[0003] The existing device has low drying efficiency and cannot remove moisture from the fabric before drying, which affects the drying effect of the fabric. During the drying process, the existing device cannot achieve sufficient contact between the fabric and the hot air flow, which affects the drying effect of the fabric. Summary of the Invention

[0004] The present invention relates to a textile fabric drying and shaping device with intelligent temperature control, which solves the problems that the existing device has low drying efficiency and cannot remove moisture in the fabric before drying, thereby affecting the drying effect of the fabric; and the existing device cannot achieve sufficient contact between the fabric and the hot air flow during the drying process, thereby affecting the drying effect of the fabric.

[0005] The present invention provides a textile fabric drying and shaping device with intelligent temperature control, specifically comprising: a box body; a first conveying roller and a second conveying roller are rotated on the box body, the second conveying roller is located on the right side of the first conveying roller, two third conveying rollers are rotated in the box body, the two third conveying rollers are located on the right side of the second conveying roller, and fabrics are conveyed on the first conveying roller, the second conveying roller and the third conveying roller; a contact block with a rectangular block structure is fixed in the box body, the bottom end face of the contact block contacts the top surface of the fabric, a base block with a rectangular block structure is fixed in the box body, two first hydraulic cylinders are fixed on the top surface of the base block, the protruding ends of the two first hydraulic cylinders are both fixed to the bottom end face of the box body, the box body is a rectangular box-shaped structure, a scraper is fixed on the bottom end face of the inner wall of the box body, the upper end of the scraper contacts the bottom surface of the fabric, and the scraper is aligned with the contact block.

[0006] Furthermore, the contact block, base block, first hydraulic cylinder, box body and scraper together constitute a wiper assembly; an extrusion assembly is installed on the box body, and the extrusion assembly consists of a first guide rod, a first base body, an extrusion roller and a second hydraulic cylinder. Two first guide rods slide on the box body, and the lower ends of the two first guide rods are welded to the first base body. An extrusion roller rotates on the first base body, and a second hydraulic cylinder is fixed to the top surface of the inner wall of the box body. The protruding end of the second hydraulic cylinder is fixed to the first base body. The extrusion roller contacts the top surface of the cloth, and the extrusion roller is arranged above the second conveying roller.

[0007] Furthermore, a tensioning assembly is installed in the box body, and the tensioning assembly includes a second guide rod, a second base body and a tensioning roller. Two second guide rods slide on the box body, and the lower ends of the two second guide rods are welded to the second base body. A tensioning roller rotates on the second base body.

[0008] Furthermore, a third hydraulic cylinder is fixed to the top surface of the inner wall of the box, the protruding end of the third hydraulic cylinder is fixed to the second base body, and the tensioning roller is located between the second conveying roller and a third conveying roller on the left side.

[0009] Furthermore, a drying assembly is installed on the box body, and the drying assembly consists of a mounting block, a heating tube and a fan. Four mounting blocks are fixed on the top end surface and the bottom end surface of the inner wall of the box body. A heating tube is fixed on the upper four mounting blocks, and a heating tube is also fixed on the lower four mounting blocks. The two heating tubes are respectively located above and below the cloth, and both heating tubes have a wavy structure.

[0010] Furthermore, a fan is fixed on the top end surface of the inner wall of the box, and the fan is located above a heating tube. A fan is also fixed on the bottom end surface of the inner wall of the box, and the fan is located below a heating tube.

[0011] Furthermore, an auxiliary component is installed in the box, which consists of a rotating shaft, an impeller and an electric motor. A rotating shaft rotates on the box, an electric motor is fixed on the rear end face of the box, the output shaft of the motor is fixed on the rotating shaft, and an impeller is fixed on the rotating shaft, and the impeller is in elastic contact with the bottom surface of the fabric.

[0012] Furthermore, a control box is fixed on the top surface of the box body, a microprocessor is installed in the control box, a temperature sensor is fixed on the top surface of the inner wall of the box body, the temperature sensor is electrically connected to the microprocessor, and the microprocessor is also electrically connected to the heating tube.

[0013] The present invention provides a textile fabric drying and shaping device with intelligent temperature control, which has the following beneficial effects: In terms of moisture management, the wiper assembly effectively removes moisture from the fabric by pressing the scraper against the contact block. The removed moisture flows into the box and is discharged through the drain pipe, significantly improving subsequent drying efficiency. The squeezing assembly uses a squeezing roller and a second conveyor roller to squeeze the fabric, further draining water and improving the dryness of the fabric.

[0014] During fabric conveying, the tensioning assembly drives the tensioning roller via a third hydraulic cylinder, keeping the fabric taut. This not only facilitates drainage but also ensures fabric stability during conveying, preventing uneven handling caused by fabric sag. The drying assembly is cleverly designed with wavy heating tubes at the top and bottom, increasing the contact area with the fabric and enhancing drying efficiency. Combined with fans positioned above and below, these heaters quickly distribute heat to the fabric, achieving rapid drying, effectively shortening drying time and improving production efficiency.

[0015] Driven by the electric motor, the impeller in the auxiliary component elastically contacts the bottom surface of the cloth and continuously moves the cloth, which increases the contact effect between the cloth and the hot air flow, further improves the drying effect of the cloth, and makes the drying more thorough.

[0016] The machine is also equipped with an intelligent temperature control system. A temperature sensor monitors the temperature inside the drying chamber in real time and transmits the signal to a microprocessor. When the temperature falls below a threshold, the microprocessor automatically switches the heating element on to continue heating; when it rises above the threshold, the power is disconnected. This precise temperature control ensures optimal drying results while preventing energy waste and fabric damage caused by overheating. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the drawings of the embodiments are briefly introduced below.

[0018] The drawings described below only relate to some embodiments of the present invention, but are not intended to limit the present invention.

[0019] In the attached figure: Figure 1 The figure shows an axial structural diagram of a textile fabric drying and shaping device with intelligent temperature control according to the present invention; Figure 2 The figure shows a partially cutaway axial structural diagram of a textile fabric drying and shaping device with intelligent temperature control according to the present invention; Figure 3 The figure shows a partially cutaway schematic diagram of the main structure of the textile fabric drying and shaping device with intelligent temperature control according to the present invention; Figure 4 The present invention is shown Figure 3 A schematic diagram of the enlarged structure at point A; Figure 5 The present invention is shown Figure 3 A schematic diagram of the enlarged structure at point B; Figure 6 The figure shows the axial structural schematic diagram of the wiper assembly of the present invention; Figure 7 The present invention is shown Figure 6 Schematic diagram of the enlarged structure at C; Figure 8The figure shows the axial structural diagram of the drying assembly of the present invention.

[0020] Reference Signs List 1. Box body; 101. First conveyor roller; 102. Second conveyor roller; 103. Third conveyor roller; 2. Wiper assembly; 201. Contact block; 202. Base block; 203. First hydraulic cylinder; 204. Box body; 205. Scraper; 3. Extrusion assembly; 301. First guide rod; 302. First base; 303. Extrusion roller; 304. Second hydraulic cylinder; 4. Tensioning assembly; 401. Second guide rod; 402. Second seat; 403. Tensioning roller; 404. Third hydraulic cylinder; 5. Drying assembly; 501. Mounting block; 502. Heating tube; 503. Fan; 6. Auxiliary components; 601. Rotating shaft; 602. Impeller; 603. Motor; 7. Control box; 701. Microprocessor; 702. Temperature sensor. DETAILED DESCRIPTION

[0021] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present invention without making any creative efforts shall fall within the scope of protection of the present invention.

[0022] Unless otherwise defined, all terms (including technical and scientific terms) used in the embodiments of the present invention have the same meaning as commonly understood by those skilled in the art to which the present invention belongs. It should also be understood that terms such as those defined in common dictionaries should be interpreted as having meanings consistent with their meanings in the context of the relevant technology, and should not be interpreted in an idealized or highly formal sense, unless explicitly defined in this manner in the embodiments of the present invention.

[0023] The terms "first," "second," and similar terms used in the embodiments of the present invention do not indicate any order, quantity, or importance, but are simply used to distinguish different components. Terms such as "a," "an," or "the" do not indicate a limit on quantity, but rather indicate the presence of at least one. Similarly, terms such as "include" or "comprise" mean that the element or object preceding the term encompasses the elements or objects listed after the term, and their equivalents, without excluding other elements or objects. In the following description, spatial and directional terms such as "upper," "lower," "front," "back," "top," "bottom," "vertical," and "horizontal" may be used to describe embodiments of the present invention. However, it should be understood that these terms are used solely to facilitate the description of the embodiments shown in the figures and do not require that the actual device be constructed or operated in a specific orientation. In the following description, terms such as "connect," "couple," "fixed," and "attached" may refer to a direct connection between two elements or structures without any other elements or structures between them, or an indirect connection between two elements or structures through an intermediate element or structure, unless otherwise expressly stated herein.

[0024] Example 1: Please refer to Figures 1 to 8 : The present invention proposes a textile fabric drying and shaping device with intelligent temperature control, comprising: a box body 1; a first conveying roller 101 and a second conveying roller 102 are rotated on the box body 1, the second conveying roller 102 is located on the right side of the first conveying roller 101, two third conveying rollers 103 are rotated in the box body 1, the two third conveying rollers 103 are located on the right side of the second conveying roller 102, and fabric is conveyed on the first conveying roller 101, the second conveying roller 102 and the third conveying roller 103; a rectangular block-shaped contact block 201 is fixed in the box body 1, the bottom end surface of the contact block 201 contacts the top surface of the fabric, a rectangular block-shaped base block 202 is fixed in the box body 1, and the top surface of the base block 202 is fixed with two first The hydraulic cylinder 203 and the protruding ends of the two first hydraulic cylinders 203 are fixed to the bottom end surface of the box body 204. The box body 204 is a rectangular box-shaped structure. A scraper 205 is fixed to the bottom end surface of the inner wall of the box body 204. The upper end of the scraper 205 contacts the bottom surface of the cloth. The scraper 205 is aligned with the contact block 201. During the cloth conveying process, the two first hydraulic cylinders 203 are driven to extend. Under the drive of the two first hydraulic cylinders 203, the scraper 205 moves upward. Under the tight action of the scraper 205 and the contact block 201, the moisture in the cloth can be scraped off. After scraping, the moisture will flow into the box body 204 and then be discharged through the discharge pipe on the box body 204. After the moisture in the cloth is scraped off, the subsequent drying efficiency of the cloth can be improved.

[0025] Among them, the contact block 201, the base block 202, the first hydraulic cylinder 203, the box body 204 and the scraper 205 together constitute the wiper assembly 2; the extrusion assembly 3 is installed on the box body 1, and the extrusion assembly 3 is composed of a first guide rod 301, a first base body 302, an extrusion roller 303 and a second hydraulic cylinder 304. Two first guide rods 301 slide on the box body 1, and the lower ends of the two first guide rods 301 are welded to the first base body 302, and an extrusion roller 303 rotates on the first base body 302. A second hydraulic cylinder 304 is fixed to the top surface of the inner wall of the box body 1, and the protruding end of the second hydraulic cylinder 304 is fixed on the first base body 302. The squeezing roller 303 is in contact with the top surface of the cloth. Under the squeezing of the squeezing roller 303, the cloth is in close contact with the second conveying roller 102. During the cloth conveying process, the two second hydraulic cylinders 304 are driven to extend. The squeezing of the cloth by the squeezing roller 303 and the second conveying roller 102 can achieve further drainage of the cloth.

[0026] A tensioning assembly 4 is installed within the box 1. The tensioning assembly 4 comprises a second guide rod 401, a second base 402, and a tensioning roller 403. Two second guide rods 401 slide on the box 1. The lower ends of the two second guide rods 401 are welded to the second base 402. A tensioning roller 403 rotates on the second base 402. A third hydraulic cylinder 404 is fixed to the top surface of the inner wall of the box 1. The extended end of the third hydraulic cylinder 404 is fixed to the second base 402. The tensioning roller 403 is located between the second conveyor roller 102 and a third conveyor roller 103 on the left. To tension the fabric, the third hydraulic cylinder 404 is driven to extend. Driven by the third hydraulic cylinder 404, the tensioning roller 403 tensions the fabric. This allows for better drainage of the fabric during tensioning.

[0027] Among them, a drying component 5 is installed on the box body 1, and the drying component 5 consists of a mounting block 501, a heating tube 502 and a fan 503. Four mounting blocks 501 are fixed on the top end surface and the bottom end surface of the inner wall of the box body 1. A heating tube 502 is fixed on the four upper mounting blocks 501, and a heating tube 502 is also fixed on the four lower mounting blocks 501. The two heating tubes 502 are respectively located above and below the cloth. Both heating tubes 502 have a wavy structure. During use, the power of the heating tube 502 is turned on, and the heat generated by the heating tube 502 can dry the cloth. The wavy structure of the heating tube 502 can improve the drying effect of the cloth.

[0028] Among them, a fan 503 is fixed on the top end surface of the inner wall of the box body 1, and the fan 503 is located above a heating tube 502 above. A fan 503 is also fixed on the bottom end surface of the inner wall of the box body 1, and the fan 503 is located below a heating tube 502 below. During use, when the power of the fan 503 is turned on, the wind force generated by the fan 503 can quickly push the heat generated by the heating tube 502 to the cloth, thereby realizing rapid drying of the cloth.

[0029] Among them, an auxiliary component 6 is installed in the box body 1, and the auxiliary component 6 consists of a rotating shaft 601, an impeller 602 and a motor 603. A rotating shaft 601 rotates on the box body 1, and a motor 603 is fixed to the rear end face of the box body 1. The output shaft of the motor 603 is fixed on the rotating shaft 601, and an impeller 602 is fixed on the rotating shaft 601. The impeller 602 is in elastic contact with the bottom surface of the cloth. During use, the motor 603 is driven to rotate. Under the drive of the motor 603, the rotating shaft 601 and the impeller 602 can be rotated. Under the continuous stirring of the impeller 602 on the cloth, the contact effect between the cloth and the hot air flow can be improved, thereby improving the drying effect of the cloth.

[0030] Example 2, based on Example 1, Figures 1-8 As shown, a control box 7 is fixed to the top surface of the box 1, and a microprocessor 701 is installed in the control box 7. A temperature sensor 702 is fixed to the top surface of the inner wall of the box 1. The temperature sensor 702 is electrically connected to the microprocessor 701, and the microprocessor 701 is also electrically connected to the heating tube 502. During use, the temperature sensor 702 transmits the temperature signal in the box 1 to the microprocessor 701. When the temperature value is lower than the threshold value in the microprocessor 701, the microprocessor 701 turns on the power of the heating tube 502, and the fabric can continue to be heated through the heating tube 502. When the value transmitted to the microprocessor 701 by the temperature sensor 702 is higher than the threshold value in the microprocessor 701, the microprocessor 701 turns off the power of the heating tube 502.

[0031] The working principle of this embodiment is as follows: the cloth is conveyed to the right by the first conveying roller 101, the second conveying roller 102 and the third conveying roller 103. During the cloth conveying process, the two first hydraulic cylinders 203 are driven to extend. Under the drive of the two first hydraulic cylinders 203, the scraper 205 moves upward. Under the pressing action of the scraper 205 and the contact block 201, the moisture in the cloth can be scraped off. After scraping, the moisture will flow into the box body 204 and then be discharged through the discharge pipe on the box body 204. At the same time, the two second hydraulic cylinders 304 are driven to extend, and the cloth is squeezed and drained by the squeezing roller 303 and the second conveying roller 102; at the same time, the third hydraulic cylinder 404 is driven to extend, and the tensioning roller 403 completes the tensioning of the cloth under the drive of the third hydraulic cylinder 404. In the process of tensioning the cloth, the drainage of the cloth can be better achieved; at the same time, the power of the heating pipe 502 is turned on, and the heating pipe 502 is heated. 02 can dry the fabric; at the same time, the power of the fan 503 is turned on, and the wind force generated by the fan 503 can quickly push the heat generated by the heating tube 502 to the fabric; at the same time, the motor 603 is driven to rotate, and the rotation of the rotating shaft 601 and the impeller 602 can be realized under the drive of the motor 603. Under the continuous stirring of the impeller 602 on the fabric, the contact effect between the fabric and the hot air flow can be improved; during drying, the temperature sensor 702 transmits the temperature signal in the box 1 to the microprocessor 701. When the temperature value is lower than the threshold value in the microprocessor 701, the microprocessor 701 turns on the power of the heating tube 502, and the fabric can continue to be heated through the heating tube 502. When the value transmitted to the microprocessor 701 by the temperature sensor 702 is higher than the threshold value in the microprocessor 701, the microprocessor 701 turns off the power of the heating tube 502.

Claims

1. A textile fabric drying and shaping device with intelligent temperature control, characterized in that: include: A box body (1); a first conveying roller (101) and a second conveying roller (102) are rotated on the box body (1), the second conveying roller (102) is located on the right side of the first conveying roller (101), two third conveying rollers (103) are rotated in the box body (1), the two third conveying rollers (103) are located on the right side of the second conveying roller (102), and cloth is conveyed on the first conveying roller (101), the second conveying roller (102) and the third conveying roller (103); a rectangular block-shaped contact block (201) is fixed in the box body (1) ), the bottom end surface of the contact block (201) contacts the top surface of the cloth, a rectangular block-shaped base block (202) is fixed in the box body (1), two first hydraulic cylinders (203) are fixed on the top surface of the base block (202), and the extended ends of the two first hydraulic cylinders (203) are fixed to the bottom end surface of the box body (204). The box body (204) is a rectangular box-shaped structure, and a scraper (205) is fixed to the bottom end surface of the inner wall of the box body (204). The upper end of the scraper (205) contacts the bottom surface of the cloth, and the scraper (205) is aligned with the contact block (201).

2. The textile fabric drying and shaping device with intelligent temperature control according to claim 1, characterized in that: The contact block (201), the base block (202), the first hydraulic cylinder (203), the box body (204) and the scraper (205) together constitute a wiper assembly (2); an extrusion assembly (3) is installed on the box body (1), and the extrusion assembly (3) is composed of a first guide rod (301), a first base body (302), an extrusion roller (303) and a second hydraulic cylinder (304); two first guide rods (301) slide on the box body (1), and the lower ends of the two first guide rods (301) are welded to the first base body (302); an extrusion roller (303) rotates on the first base body (302); a second hydraulic cylinder (304) is fixed to the top surface of the inner wall of the box body (1), and the protruding end of the second hydraulic cylinder (304) is fixed to the first base body (302); the extrusion roller (303) contacts the top surface of the cloth, and the extrusion roller (303) is arranged above the second conveying roller (102).

3. The textile fabric drying and shaping device with intelligent temperature control according to claim 1, characterized in that: A tensioning assembly (4) is installed in the box body (1), and the tensioning assembly (4) comprises a second guide rod (401), a second base body (402) and a tensioning roller (403). Two second guide rods (401) slide on the box body (1), and the lower ends of the two second guide rods (401) are welded to the second base body (402). A tensioning roller (403) rotates on the second base body (402).

4. The textile fabric drying and shaping device with intelligent temperature control according to claim 3, characterized in that: A third hydraulic cylinder (404) is fixed to the top end of the inner wall of the box body (1), and the protruding end of the third hydraulic cylinder (404) is fixed to the second base body (402). The tensioning roller (403) is located between the second conveying roller (102) and a third conveying roller (103) on the left side.

5. The textile fabric drying and shaping device with intelligent temperature control according to claim 1, characterized in that: A drying assembly (5) is installed on the box body (1), and the drying assembly (5) is composed of a mounting block (501), a heating tube (502) and a fan (503). Four mounting blocks (501) are fixed to the top end surface and the bottom end surface of the inner wall of the box body (1). A heating tube (502) is fixed to each of the four upper mounting blocks (501), and a heating tube (502) is also fixed to each of the four lower mounting blocks (501). The two heating tubes (502) are respectively located above and below the cloth, and both heating tubes (502) have a wavy structure.

6. The textile fabric drying and shaping device with intelligent temperature control according to claim 5, characterized in that: A fan (503) is fixed on the top end surface of the inner wall of the box body (1), and the fan (503) is located above a heating tube (502) above. A fan (503) is also fixed on the bottom end surface of the inner wall of the box body (1), and the fan (503) is located below a heating tube (502) below.

7. The textile fabric drying and shaping device with intelligent temperature control according to claim 1, characterized in that: An auxiliary component (6) is installed in the box (1), and the auxiliary component (6) is composed of a rotating shaft (601), an impeller (602) and a motor (603). A rotating shaft (601) rotates on the box (1), and a motor (603) is fixed to the rear end surface of the box (1). The output shaft of the motor (603) is fixed to the rotating shaft (601), and an impeller (602) is fixed to the rotating shaft (601). The impeller (602) is in elastic contact with the bottom surface of the fabric.

8. The textile fabric drying and shaping device with intelligent temperature control according to claim 5, characterized in that: A control box (7) is fixed on the top surface of the box (1), and a microprocessor (701) is installed in the control box (7). A temperature sensor (702) is fixed on the top surface of the inner wall of the box (1), and the temperature sensor (702) is electrically connected to the microprocessor (701). The microprocessor (701) is also electrically connected to the heating tube (502).