A special cutting device for moisture-absorbing and heat-generating fabric

CN224754805UActive Publication Date: 2026-09-15NINGBO TONGFU TEXTILE&GARMENT TECH CO LTD
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Patent Information

Application Number
CN202522283672.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-10-29
Publication Date
2026-09-15
Estimated Expiration
2035-10-29

AI Technical Summary

Benefits of technology

(1)本申请通过第一抚平机构和第二抚平机构共同作用,采用非接触式的气流抚平方式,彻底避免了传统抚平板与蓬松面料直接摩擦所产生静电的问题,从根本上解决了因静电导致的卷边和起皱现象,保证了抚平质量,特别适用于吸湿发热类易产生静电的面料。

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Abstract

The application discloses a special cutting device for moisture-absorbing and heat-generating fabric, which comprises a base, a cutting table, a first flattening mechanism, a second flattening mechanism and a cutting mechanism. The cutting table is fixedly arranged on the base and is provided with an array of air outlets. The first flattening mechanism is fixedly arranged in the base and is located below the cutting table. The first flattening mechanism comprises a plurality of first flattening assemblies arranged along the left-right direction. The first flattening assemblies are connected with the array of air outlets. Each first flattening assembly is provided with an electric contact element. The second flattening mechanism is slidably arranged on the base along the left-right direction. The second flattening mechanism is provided with a touch plate. During the fabric flattening process, the touch plate is configured to be sequentially communicated with the electric contact elements of the first first flattening assembly located in the first position in the moving direction of the second flattening mechanism, so as to trigger the corresponding first flattening assembly to run. The cutting mechanism is arranged on the cutting table and is configured to cut the fabric laid on the cutting table along the front-back direction after the fabric is flattened.
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Description

Technical Field

[0001] This application relates to the field of fabric cutting technology, and in particular discloses a special cutting device for moisture-absorbing and heat-generating fabrics. Background Technology

[0002] Moisture-wicking and heat-generating fabrics are functional textiles that absorb water vapor emitted by the human body and convert it into heat energy through fiber materials. They are widely used in thermal clothing, sportswear, and medical care. These fabrics are usually made of porous fibers, hydrophilic modified fibers, or special blending processes, which give them high moisture absorption and bulkiness.

[0003] However, this type of fabric presents certain challenges in cutting: on the one hand, its fiber structure is loose and its texture is soft, making it prone to static electricity due to friction during the laying and smoothing process before cutting, which can cause the fabric to curl and wrinkle; on the other hand, the surface of this type of fabric is relatively slippery, making it easy to shift when smoothing it on a flat cutting table. Smoothing with a smoothing board usually requires multiple operations, which is inefficient, so improvements are needed. Utility Model Content

[0004] The purpose of this application is to provide a dedicated cutting device for moisture-absorbing and heat-generating fabrics.

[0005] To achieve the above objectives, the technical solution adopted in this application is as follows: a dedicated cutting device for moisture-absorbing and heat-generating fabric, comprising: a base; a cutting table, the cutting table being fixedly mounted on the base, the cutting table being provided with an array of air outlets; a first smoothing mechanism, the first smoothing mechanism being fixedly mounted in the base and located below the cutting table, the first smoothing mechanism comprising a plurality of first smoothing components arranged in a left-right direction, the first smoothing components being connected to the array of air outlets, each of the first smoothing components being provided with an electrical contact element; a second smoothing mechanism, the second smoothing mechanism being slidably mounted on the base in a left-right direction, the second smoothing mechanism being provided with a touch plate, the touch plate being configured to sequentially communicate with the electrical contact element on the first first smoothing component located in the moving direction of the second smoothing mechanism, thereby triggering the operation of the corresponding first smoothing component; and a cutting mechanism, the cutting mechanism being mounted on the cutting table, the cutting mechanism being configured to cut the fabric laid on the cutting table in a front-back direction after the fabric has been smoothed.

[0006] As a preferred embodiment, the electrical contact element includes a connecting terminal disposed at one end of the first smoothing component and a conductive connecting strip disposed at the other end and electrically connected to the adjacent first smoothing component. The contact plate includes a first guide plate and a second guide plate respectively disposed on both sides of the second smoothing mechanism. During the fabric smoothing process, the first guide plate is adapted to connect the connecting terminal in sequence, and the second guide plate is always connected to the conductive connecting strip, thereby enabling the first smoothing components to run in sequence, and the first smoothing component in the running state is located in front of the movement path of the second smoothing mechanism.

[0007] As a preferred embodiment, the air outlet array includes several row units, each row unit including several air outlets. The axes of the air outlets are all inclined towards the direction of fabric feeding. From the center to both sides, the angle between the projection of the axis of several air outlets on the cutting table and the traveling direction of the second smoothing mechanism gradually increases, thereby making the airflow guiding the fabric through the row units trapezoidal.

[0008] As a preferred embodiment, the base is provided with a first air pump and an air guide pipe. The air outlet of the first air pump is connected to the air guide pipe. The air guide pipe is provided with several branch pipes, which are respectively connected to the corresponding first smoothing components. When the touch plate is connected to the electrical contact element on any of the first smoothing components, the first air pump introduces air into the corresponding first smoothing component through the air guide pipe, and guides the airflow to the fabric through the corresponding row unit on the air outlet array.

[0009] Further preferably, the first smoothing component includes a first air chamber, an air outlet pipe, and a connecting plate. The first air chamber is fixedly disposed in the base. A plurality of air outlet pipes are disposed at the upper end of the first air chamber. The air outlet pipes are fixedly connected to the connecting plate. The connecting plate is fixedly connected to the base. One end of the connecting plate is provided with the connecting terminal, and the other end is fixedly connected to the conductive connecting strip. A plurality of the first smoothing components are connected in parallel through the conductive connecting strip.

[0010] As a preferred embodiment, the second smoothing mechanism includes a moving component and a second smoothing component. The moving component is disposed on the base and adapted to move in the left-right direction. The second smoothing component is fixedly disposed on the moving component. The moving component includes a sliding frame, a sliding base, a guide rail, a slider, a lead screw, and a drive motor. The guide rail is fixedly disposed on the front and rear sides of the base. A sliding base is slidably connected to the guide rail. The sliding frame spans the cutting table, and both ends are fixedly connected to the sliding base. A slider is also fixedly connected to one end of the sliding frame. The lead screw is disposed on the base, and the slider is connected to the lead screw. One end of the lead screw is connected to the drive motor, which is fixedly installed inside the base. The operation of the drive motor drives the lead screw to rotate, thereby driving the slider to slide in the left-right direction, and thus driving the sliding frame to move.

[0011] Further preferably, the second smoothing component includes a second air pump, a second air chamber, and an air outlet. The second air chamber is fixedly installed on the sliding frame, the second air pump is fixedly installed on the side of the sliding frame and its air outlet communicates with the second air chamber, and the air outlet is located on the side of the second air chamber facing the fabric feeding direction, and the air outlet is inclined downward.

[0012] Further preferably, the length of the opening side of the air outlet is greater than the length of the side connecting to the second air chamber, so that the airflow guiding the fabric through the air outlet is trapezoidal.

[0013] As a preferred embodiment, the two ends of the cutting table are respectively provided with a support assembly and a pressure plate. The support assembly includes a stand, a first roller and a second roller. The stand is fixedly installed at one end of the cutting table. The first roller is located on the upper part of the stand and is used for unwinding. The second roller is located on the lower part of the stand. The pressure plate is hinged to the other end of the cutting table and is adapted to press down one end of the fabric to cooperate with the first smoothing mechanism and the second smoothing mechanism to smooth the fabric.

[0014] As a preferred embodiment, the cutting mechanism includes a pressure block, a cutting blade, and a cutting track. The cutting track is disposed on the cutting table and flush with the upper surface of the cutting table. The cutting blade is slidably disposed on the cutting track. The pressure block is fixedly disposed on the cutting blade. The front end of the pressure block protrudes from the cutting blade and is provided with an inclined surface. When cutting the fabric, the cutting blade moves, and the pressure block first presses down on the fabric located in front of the cutting blade in the direction of travel, forming the area to be cut. Subsequently, the cutting blade completes the cutting of the area to be cut.

[0015] Compared with the prior art, the beneficial effects of this application are as follows: (1) This application uses a non-contact airflow smoothing method through the combined action of the first smoothing mechanism and the second smoothing mechanism, which completely avoids the problem of static electricity generated by direct friction between the traditional smoothing plate and the fluffy fabric. It fundamentally solves the problem of curling and wrinkling caused by static electricity, and ensures the smoothing quality. It is especially suitable for moisture-absorbing and heat-generating fabrics that are prone to static electricity.

[0016] (2) This application realizes a step-by-step smoothing strategy by setting up multiple first smoothing components that can be triggered sequentially by the second smoothing mechanism. The first smoothing component in front of the second smoothing mechanism moves in advance to smooth the front area of ​​the fabric initially. The second smoothing mechanism then performs the final smoothing. This dynamic smoothing method overcomes the problem that the traditional smoothing method, which uses a smoothing plate, is prone to fabric displacement due to the slippery fabric surface. It can smoothly smooth wide fabrics in one go, thus improving production efficiency. Attached Figure Description

[0017] Figure 1 This is a three-dimensional structural diagram of the working state of this utility model.

[0018] Figure 2 This is a three-dimensional structural diagram of the working state of this utility model.

[0019] Figure 3 This is a three-dimensional structural diagram of the present invention.

[0020] Figure 4 This is a three-dimensional structural cross-sectional view of the present invention.

[0021] Figure 5 This is a schematic diagram of the internal three-dimensional structure of this utility model.

[0022] Figure 6 This is a schematic diagram of the internal three-dimensional structure of this utility model.

[0023] Figure 7 This is a schematic diagram of the cutting table and air outlet array of this utility model.

[0024] Figure 8 This is a schematic diagram of the contact plate and electrical contact element of this utility model in a coordinated state.

[0025] Figure 9 This is a three-dimensional structural diagram of the cutting mechanism of this utility model.

[0026] In the diagram: 1. Base; 2. Cutting table; 21. Air outlet array; 211. Row unit; 22. Pressure plate; 23. Support assembly; 231. Stand; 232. First roller; 233. Second roller; 3. First smoothing mechanism; 31. First air pump; 32. Air guide pipe; 33. First smoothing assembly; 331. First air chamber; 332. Air outlet pipe; 333. Connecting plate; 334. Connecting terminal; 335. Conductive connecting strip; 4. 41. Second smoothing mechanism; 41. Moving component; 411. Sliding frame; 412. Slide block; 413. Guide rail; 414. Slider; 415. Lead screw; 416. Drive motor; 417. First guide plate; 418. Second guide plate; 42. Second smoothing component; 421. Second air pump; 422. Second air chamber; 423. Air outlet; 5. Cutting mechanism; 51. Pressing block; 511. Inclined surface; 52. Cutting knife; 53. Cutting track. Detailed Implementation

[0027] The present application will be further described below with reference to specific embodiments. It should be noted that, without conflict, the various embodiments or technical features described below can be arbitrarily combined to form new embodiments.

[0028] In the description of this application, it should be noted that the terms "center", "lateral", "longitudinal", "length", "width", "thickness", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", "clockwise", "counterclockwise", etc., which indicate the orientation and positional relationship based on the orientation or positional relationship shown in the accompanying drawings, are only for the convenience of describing this application and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation, and should not be construed as limiting the specific protection scope of this application.

[0029] It should be noted that the terms "first," "second," etc., in the specification and claims of this application are used to distinguish similar objects and are not necessarily used to describe a specific order or sequence.

[0030] The terms “comprising” and “having”, and any variations thereof, in the specification and claims of this application are intended to cover non-exclusive inclusion, for example, a process, method, system, product, or device that includes a series of steps or units is not necessarily limited to those steps or units that are explicitly listed, but may include other steps or units that are not explicitly listed or that are inherent to such process, method, product, or device.

[0031] A preferred embodiment of this application, such as Figures 1 to 9As shown, a special cutting device for moisture-absorbing and heat-generating fabric includes: a base 1; a cutting table 2, fixedly mounted on the base 1, with an array of air outlets 21 on the cutting table 2; a first smoothing mechanism 3, fixedly mounted inside the base 1 and located below the cutting table 2, the first smoothing mechanism 3 including a plurality of first smoothing components 33 arranged in a left-right direction, the first smoothing components 33 being connected to the array of air outlets 21, and each first smoothing component 33 being provided with an electrical contact element; and a second smoothing mechanism. The second smoothing mechanism 4 is slidably mounted on the base 1 in the left-right direction. The second smoothing mechanism 4 is provided with a touch plate. During the fabric smoothing process, the touch plate is configured to connect sequentially with the electrical contact element on the first smoothing component 33 located in the moving direction of the second smoothing mechanism 4, thereby triggering the operation of the corresponding first smoothing component 33. The cutting mechanism 5 is mounted on the cutting table 2. The cutting mechanism 5 is configured to cut the fabric laid on the cutting table 2 in the front-back direction after the fabric is smoothed.

[0032] This application utilizes a non-contact airflow smoothing method through the combined action of the first smoothing mechanism 3 and the second smoothing mechanism 4. This completely avoids the static electricity problem caused by direct friction between traditional smoothing plates and fluffy fabrics, fundamentally solving the curling and wrinkling phenomena caused by static electricity, and ensuring smoothing quality. It is particularly suitable for moisture-absorbing and heat-generating fabrics that are prone to static electricity. By setting multiple first smoothing components 33 that can be triggered sequentially by the second smoothing mechanism 4, a zoned relay-style gradual smoothing strategy is realized. The first smoothing components 33 in front of the second smoothing mechanism 4 are pre-operated to initially smooth the front area of ​​the fabric, and the second smoothing mechanism 4 then performs the final smoothing. This dynamic smoothing method overcomes the problem of fabric displacement caused by the slippery surface when smoothing with smoothing plates in traditional methods. It can efficiently smooth wide fabrics in one go, improving production efficiency.

[0033] In this embodiment, the electrical contact element includes a connecting terminal 334 disposed at one end of the first smoothing component 33 and a conductive connecting strip 335 disposed at the other end and electrically connected to the adjacent first smoothing component 33. The contact plate includes a first guide plate 417 and a second guide plate 418 respectively disposed on both sides of the second smoothing mechanism 4. During the fabric smoothing process, the first guide plate 417 is adapted to connect the connecting terminal 334 in sequence, and the second guide plate 418 and the conductive connecting strip 335 are always connected, so that the first smoothing components 33 run in sequence, and the first smoothing component 33 in the running state is located in front of the movement path of the second smoothing mechanism 4.

[0034] Under the above configuration, all the first smoothing components 33 are connected in parallel. The operation of the corresponding first smoothing component 33 can be triggered by the connection between the touch plate and the electrical contact element. This sequential and intermittent connection realizes the partitioned relay-style gradual smoothing scheme of this application. In another embodiment, the conductive connecting strip 335 can also be set as the connecting terminal 334. However, in this scheme, an additional conductive sheet is required to connect the connecting terminal 334. The specific settings can be adjusted by those skilled in the art. At the same time, the related circuit layout can also be designed by those skilled in the art under the prior art, which will not be elaborated in this application.

[0035] In this embodiment, the air outlet array 21 includes several row units 211, and each row unit 211 includes several air outlets. The axes of the air outlets are all inclined towards the direction of fabric feeding. From the middle to both sides, the angle between the projection of the axes of the air outlets on the cutting table 2 and the traveling direction of the second smoothing mechanism 4 gradually increases, so that the airflow guiding the fabric through the row unit 211 forms a trapezoid.

[0036] By specifically designing the air outlets, two functions can be achieved: the first is to blow the fabric towards the direction of incoming material, which ensures that after the fabric ends are fixed, a force can be provided to flatten the fabric in this way; the second is to provide a force to flatten the fabric in the forward and backward direction. Since the air outlets 423 on both sides are tilted outward more, the airflow takes the form of spreading to both sides and acts on the fabric, which means it has the force to initially flatten the fabric.

[0037] Meanwhile, a first air pump 31 and an air guide pipe 32 are installed inside the base 1. The air outlet of the first air pump 31 is connected to the air guide pipe 32. Several branch pipes are installed on the air guide pipe 32 and are respectively connected to the corresponding first smoothing components 33. When the touch plate is connected to the electrical contact element on any of the first smoothing components 33, the first air pump 31 introduces air into the corresponding first smoothing component 33 through the air guide pipe 32, and guides the airflow to the fabric through the corresponding row unit 211 on the air outlet array 21. Component 33 includes a first air chamber 331, an air outlet pipe 332, and a connecting plate 333. The first air chamber 331 is fixedly installed in the base 1. Several air outlet pipes 332 are provided at the upper end of the first air chamber 331. The air outlet pipes 332 are fixedly connected to the connecting plate 333. The connecting plate 333 is fixedly connected to the base 1. One end of the connecting plate 333 is provided with a connecting terminal 334, and the other end is fixedly connected to a conductive connecting strip 335. Several first smoothing components 33 are connected in parallel through the conductive connecting strip 335.

[0038] The first smoothing components 33 are connected in a relay manner, and airflow is discharged through the corresponding air outlet. This can blow up the fabric and provide a force to flatten the fabric. Since the fabric is separated from the cutting table 2, there is no mutual friction and no static electricity is generated. This can achieve the effect of gradually smoothing the fabric. Automatic pre-smoothing can be achieved after the fabric is laid out to ensure the final smoothing effect of the subsequent second smoothing mechanism 4.

[0039] The second smoothing mechanism 4 includes a moving component 41 and a second smoothing component 42. The moving component 41 is mounted on the base 1 and is adapted to move in the left-right direction. The second smoothing component 42 is fixedly mounted on the moving component 41. The moving component 41 includes a sliding frame 411, a sliding block 412, a guide rail 413, a slider 414, a lead screw 415, and a drive motor 416. The guide rail 413 is fixedly mounted on the front and rear sides of the base 1. The sliding block 412 is slidably connected to the guide rail 413. The sliding frame 411 spans the cutting table 2, and its two ends are fixedly connected to the sliding block 412. The slider 414 is also fixedly connected to one end of the sliding frame 411. The lead screw 415 is mounted on the base 1. The slider 414 is connected to the lead screw 415. One end of the lead screw 415 is connected to the drive motor 416. The motor 416 is fixedly installed in the base 1. The drive motor 416 rotates and drives the lead screw 415 to rotate, thereby driving the slider 414 to slide in the left and right direction, and then driving the sliding frame 411 to move. The second smoothing component 42 includes a second air pump 421, a second air chamber 422 and an air outlet 423. The second air chamber 422 is fixedly installed on the sliding frame 411. The second air pump 421 is fixedly installed on the side of the sliding frame 411 and its air outlet is connected to the second air chamber 422. The air outlet 423 is located on the side of the second air chamber 422 facing the direction of the fabric, and the air outlet 423 is inclined downward. The length of the opening side of the air outlet 423 is greater than the length of the side connected to the second air chamber 422, so that the airflow guiding the fabric through the air outlet 423 is trapezoidal.

[0040] The second smoothing mechanism 4 performs the final smoothing of the pre-processed fabric. It can be understood that the first smoothing mechanism 3 blows air upward to remove the fabric from the cutting table 2 and complete the pre-processing, while the second smoothing mechanism 4 blows air downward to flatten the fabric on the cutting table 2. Through the cooperation of the first smoothing mechanism 3 and the second smoothing mechanism 4, the fabric achieves complete flattening from the end to the area to be cut.

[0041] Of course, it is necessary to set the airflow intensity of the second smoothing mechanism 4 to be greater than that of the first smoothing mechanism 3, so as to ensure that the fabric is finally laid flat on the cutting table 2 and avoid the fabric being suspended in the air, which would cause more serious wrinkles.

[0042] In this embodiment, a support assembly 23 and a pressure plate 22 are respectively provided at both ends of the cutting table 2. The support assembly 23 includes a stand 231, a first roller 232 and a second roller 233. The stand 231 is fixedly installed at one end of the cutting table 2. The first roller 232 is placed on the upper part of the stand 231 and is used for unwinding. The second roller 233 is placed on the lower part of the stand 231. The pressure plate 22 is hinged to the other end of the cutting table 2 and is suitable for pressing one end of the fabric to cooperate with the first smoothing mechanism 3 and the second smoothing mechanism 4 to smooth the fabric.

[0043] It is important to note that due to the inherent characteristics of moisture-absorbing and heat-generating fabrics, the rolled fabric cannot be directly flattened. It is sensitive to humidity. Before cutting, the rolled fabric must be laid out in the cutting workshop and left to stand for at least 24 hours to allow it to reach equilibrium with the temperature and humidity of the environment. This releases the internal stress generated during the winding and transportation of the fabric, preventing the cut pieces from deforming, shrinking, or twisting due to stress release after cutting. After relaxation, the fabric is rolled into a low-stress roll on the first roller 232 and then placed on the stand 231.

[0044] In specific settings, a motor can be set to drive the first roller 232 for feeding, which can ensure that the fabric is not stretched additionally and avoid deformation of the cut pieces after cutting.

[0045] In this application, the cutting mechanism 5 includes a pressure block 51, a cutting blade 52, and a cutting track 53. The cutting track 53 is set on the cutting table 2 and is flush with the upper surface of the cutting table 2. The cutting blade 52 is slidably set on the cutting track 53. The pressure block 51 is fixedly set on the cutting blade 52. The front end of the pressure block 51 protrudes from the cutting blade 52 and is provided with an inclined surface 511. When cutting the fabric, the cutting blade 52 moves, and the pressure block 51 first presses down on the fabric located in front of the cutting blade 52 in the direction of travel to form a cutting area. Then the cutting blade 52 completes the cutting of the cutting area.

[0046] Since the fabric is extremely prone to deformation, the pressure block 51 is used to fix a small area of ​​the fabric before cutting, which avoids pulling on a large area of ​​fabric during cutting and can ensure the accuracy of cutting. By setting the inclined surface 511, the fabric can be smoothly fixed by the pressure block 51, avoiding the pushing of the fabric during the cutting process and the resulting wrinkles.

[0047] The basic principles, main features, and advantages of this application have been described above. Those skilled in the art should understand that this application is not limited to the above embodiments. The embodiments and descriptions in the specification are merely the principles of this application. Various changes and modifications can be made to this application without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection claimed by this application is defined by the appended claims and their equivalents.

Claims

1. A special cutting device for moisture-absorbing and heat-generating fabrics, characterized in that, include: Base; Cutting table, the cutting table being fixed on the base, the cutting table being provided with an array of air outlets; First smoothing mechanism, the first smoothing mechanism being fixed inside the base and located below the cutting table, the first smoothing mechanism including a plurality of first smoothing components arranged in the left-right direction, the first smoothing components being connected to the array of air outlets, each of the first smoothing components being provided with an electrical contact element; A second smoothing mechanism is slidably mounted on the base in a left-right direction. The second smoothing mechanism is equipped with a touch plate. During fabric smoothing, the touch plate is configured to sequentially communicate with the electrical contact element on the first first smoothing component located in the moving direction of the second smoothing mechanism, thereby triggering the operation of the corresponding first smoothing component. A cutting mechanism is mounted on the cutting table and configured to cut the fabric laid on the cutting table in a front-back direction after the fabric has been smoothed.

2. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 1, characterized in that, The electrical contact element includes a connecting terminal disposed at one end of the first smoothing component and a conductive connecting strip disposed at the other end and electrically connected to the adjacent first smoothing component. The contact plate includes a first guide plate and a second guide plate respectively disposed on both sides of the second smoothing mechanism. During the fabric smoothing process, the first guide plate is adapted to connect the connecting terminal in sequence, and the second guide plate is always connected to the conductive connecting strip, so that the first smoothing components run in sequence, and the first smoothing component in the running state is located in front of the movement path of the second smoothing mechanism.

3. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 1, characterized in that, The air outlet array includes several row units, and each row unit includes several air outlets. The axes of the air outlets are all inclined towards the direction of fabric inflow. From the center to both sides, the angle between the projection of the axis of several air outlets on the cutting table and the direction of travel of the second smoothing mechanism gradually increases, thereby making the airflow guiding the fabric through the row unit trapezoidal.

4. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 3, characterized in that, The base is provided with a first air pump and an air guide pipe. The air outlet of the first air pump is connected to the air guide pipe. The air guide pipe is provided with a number of branch pipes, which are respectively connected to the corresponding first smoothing components. When the touch plate is connected to the electrical contact element on any of the first smoothing components, the first air pump introduces air into the corresponding first smoothing component through the air guide pipe, and guides the airflow to the fabric through the row unit on the air outlet array.

5. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 2, characterized in that, The first smoothing component includes a first air chamber, an air outlet pipe, and a connecting plate. The first air chamber is fixedly disposed in the base. A plurality of air outlet pipes are disposed at the upper end of the first air chamber. The air outlet pipes are fixedly connected to the connecting plate. The connecting plate is fixedly connected to the base. One end of the connecting plate is provided with the connecting terminal, and the other end is fixedly connected to the conductive connecting strip. A plurality of the first smoothing components are connected in parallel through the conductive connecting strip.

6. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 1, characterized in that, The second smoothing mechanism includes a moving component and a second smoothing component. The moving component is disposed on the base and adapted to move in the left-right direction. The second smoothing component is fixedly disposed on the moving component. The moving component includes a sliding frame, a sliding base, a guide rail, a slider, a lead screw, and a drive motor. The guide rail is fixedly disposed on the front and rear sides of the base. The sliding base is slidably connected to the guide rail. The sliding frame spans the cutting table, and its two ends are fixedly connected to the sliding base. A slider is also fixedly connected to one end of the sliding frame. The lead screw is disposed on the base. The slider is connected to the lead screw. One end of the lead screw is connected to the drive motor. The drive motor is fixedly installed inside the base. The operation of the drive motor drives the lead screw to rotate, thereby driving the slider to slide in the left-right direction, and thus driving the sliding frame to move.

7. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 6, characterized in that, The second smoothing component includes a second air pump, a second air chamber, and an air outlet. The second air chamber is fixedly installed on the sliding frame. The second air pump is fixedly installed on the side of the sliding frame and its air outlet communicates with the second air chamber. The air outlet is located on the side of the second air chamber facing the fabric feeding direction and is inclined downward.

8. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 7, characterized in that, The length of the opening side of the air outlet is greater than the length of the side connected to the second air chamber, thereby causing the airflow guiding the fabric through the air outlet to form a trapezoidal shape.

9. The special cutting equipment for moisture-absorbing and heat-generating fabric as described in claim 1, characterized in that, The cutting table is provided with a support assembly and a pressure plate at both ends. The support assembly includes a stand, a first roller and a second roller. The stand is fixedly installed at one end of the cutting table. The first roller is located on the upper part of the stand and is used for unwinding. The second roller is located on the lower part of the stand. The pressure plate is hinged to the other end of the cutting table and is adapted to press down one end of the fabric to cooperate with the first smoothing mechanism and the second smoothing mechanism to smooth the fabric.

10. A special cutting device for moisture-absorbing and heat-generating fabric as described in claim 1, characterized in that, The cutting mechanism includes a pressure block, a cutting blade, and a cutting track. The cutting track is disposed on the cutting table and is flush with the upper surface of the cutting table. The cutting blade is slidably disposed on the cutting track. The pressure block is fixedly disposed on the cutting blade. The front end of the pressure block protrudes from the cutting blade and is provided with an inclined surface. When cutting the fabric, the cutting blade moves, and the pressure block first presses down on the fabric located in front of the cutting blade in the direction of travel to form a cutting area. Subsequently, the cutting blade completes the cutting of the cutting area.