Compound machine for carapace antibacterial anti-mite jacquard compound fabric

By designing coaxial reel linkage and filling chamber pretreatment in the composite machine, the composite gap and pressure unevenness caused by uneven surface fabrics are solved, stable composite and efficient production are achieved, and the quality of composite fabrics and antibacterial and mite-resistant performance are improved.

CN120363588APending Publication Date: 2025-07-25ZHEJIANG TEXWELL TEXTILE
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Patent Information

Application Number
CN202510824908.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-07-25

AI Technical Summary

Technical Problem

In the existing antibacterial and anti-mites jacquard composite fabric equipment, the gap caused by the uneven surface cloth and the bottom cloth when the composite is combined affects the tightness, durability and anti-bacterial and anti-mites function of the composite fabric. The round roller cannot apply pressure uniformly to affect the uniformity of the glue coating and the firmness of the composite.

Method used

A composite machine is designed to place the surface cloth reel and the base cloth reel on the same vertical plane, and use a nut ring to link it with the connecting rod to keep the position of the upper and lower fabric conveying points constant, and pretreat the surface cloth with the matte roller group and the smooth roller group in the filling chamber to ensure the flatness of the surface cloth and prevent offset by roller support.

Benefits of technology

The stable composite of the surface cloth and the base cloth is achieved, reducing the gap and pressure uneven problems, improving the quality consistency of composite fabrics and anti-bacterial and mite-proof effects, reducing equipment costs and operation complexity.

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Abstract

The invention discloses a compound machine for carapace antibacterial anti-mite jacquard compound fabric, and relates to the technical field of fabric compositing, the compound machine comprises a compound machine bin, the front side of the compound machine bin is provided with a conveying rack, the conveying rack is internally provided with a balance compound mechanism, and the balance compound mechanism is used for adjusting the conveying position of a fabric roll group; the whole conveying rack is divided into a bearing base at the bottom and movable supports on the two sides, the bearing base and the movable supports are connected in a sliding mode, a driving assembly is installed on the side wall of the conveying rack, and the shell fabric reel and the base fabric reel are designed to be on the same vertical face, close to each other initially and convey from the same vertical face starting point. As the radius of the reel is reduced due to raw material conveying, by means of linkage of the nut lantern ring and the connecting matching rod, upward linear movement of the base cloth reel and downward linear movement of the surface cloth reel are achieved, the positions of upper and lower fabric conveying points are kept constant all the time, and the problem that due to the fact that the radius of the reel changes, the fabric conveying path changes, and then tension fluctuation is caused can be effectively solved.
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Description

Technical Field

[0001] The present invention relates to the technical field of fabric compounding, and specifically relates to a compounding machine for a chitin shield antibacterial and mite-proof jacquard composite fabric. Background Art

[0002] The compounding machine for a chitin shield antibacterial and mite-proof jacquard composite fabric is an efficient and multi-functional production device designed specifically for composite fabrics. This device can accurately bond a single-shuttle single-warp fabric with a geometric jacquard texture to a flat polyester-ammonia single-sided fabric, ensuring the structural stability and functionality of the fabric.

[0003] However, the existing devices still have the following defects during specific use: 1. The chitin shield antibacterial and mite-proof jacquard composite sports fabric is composed of a surface fabric and a bottom fabric. The surface fabric is a geometric jacquard single-shuttle single-warp fabric, and the geometric pattern is formed by the jacquard texture, which results in an uneven surface of the surface fabric. The bottom fabric is an ordinary polyester-ammonia single-sided fabric with a flat texture. When the two are bonded, the unevenness of the surface fabric conflicts with the flatness of the bottom fabric, inevitably causing gaps between them. Physically, the gaps destroy the tightness of the overall structure of the composite fabric. During daily use and sports stretching, the fabric is unevenly stressed, easily causing local wear and delamination, greatly affecting durability. In terms of the use experience, the gaps make the fabric feel rough, significantly reducing the comfort during wearing. Moreover, the gaps will also become a hiding place for dirt and dust, providing a breeding ground for bacteria and mites, seriously weakening the original antibacterial and mite-proof functions of the fabric.

[0004] 2. When the fabric is conveyed on the compounding machine, the tension roller will come into direct contact with the fabric surface and apply a certain pressure. When the fabric tension changes, the pressure felt by the roller will also change accordingly. For example, when the fabric tension increases, the pressure on the roller increases, and at this time, the friction force of the roller on the fabric changes to adjust the fabric tension. Conversely, when the fabric tension decreases, a similar feedback mechanism is also used to adjust the function of the roller to maintain the tension stability. However, since the surface fabric is a geometric jacquard single-shuttle single-warp fabric with an uneven surface, the roller cannot apply uniform pressure to the surface fabric and the bottom fabric during contact. At the raised parts of the surface fabric, the roller pressure is large, while at the concave parts, the pressure is relatively small. This will cause inconsistent pressures on the surface fabric and the bottom fabric during the compounding process, thus affecting the uniformity of glue coating and the firmness of compounding, resulting in different compounding effects in different parts of the compounded fabric, and thus problems such as local delamination or loose compounding occur.

[0005] Therefore, in view of this, the present invention proposes a compounding machine for a chitin shield antibacterial and mite-proof jacquard composite fabric to make up for and improve the deficiencies of the existing technology. Summary of the Invention

[0006] To solve the above technical problems, the present invention provides a compounding machine for a chitin shield antibacterial and mite-proof jacquard composite fabric to solve the technical problems raised in the above background art.

[0007] To achieve the above object, the technical solution adopted by the present invention is as follows: A compounding machine for a chitin shield antibacterial and mite-proof jacquard composite fabric, which is used for compounding the fabric on the fabric roll group, includes a compounding machine chamber. A conveying rack is installed on the front side of the compounding machine chamber. A balance compounding mechanism is arranged inside the conveying rack. The balance compounding mechanism is used to adjust the conveying position of the fabric roll group. The balance compounding mechanism includes a driving shaft installed inside the conveying rack. Active bevel gears are symmetrically installed at both ends of the driving shaft. Threaded shafts are installed inside the side walls of the conveying rack. Driven bevel gears are installed on the lower surfaces of the threaded shafts. Nut sleeves are installed outside the threaded shafts.

[0008] Furthermore, the whole conveying rack is divided into a bottom bearing base and two side movable brackets. The bearing base and the movable brackets are slidably connected. A driving component is installed on the side wall of the conveying rack. The output shaft end of the motor in the driving component is in transmission connection with the driving shaft.

[0009] Furthermore, the whole fabric roll group is composed of a surface fabric roll below and a bottom fabric roll above. The surface fabric is a geometric jacquard single brush and single swing fabric, and a geometric pattern effect is presented on the surface through the jacquard weave. The bottom fabric is an ordinary polyester-ammonia single-sided fabric. The centers of the surface fabric roll, the bottom fabric roll and the driving shaft in the fabric roll group are all in the same vertical plane.

[0010] By adopting the above technical solution, it is ensured that the driving forces received by each roll are uniform and consistent.

[0011] Furthermore, the driven bevel gear is located on the rotation path of the active bevel gear, and the diameter ratio of the active bevel gear to the driven bevel gear is 1:3.

[0012] By adopting the above technical solution, the rotation speed of the driven bevel gear is reduced, realizing a speed reduction transmission effect, which is more in line with the actual use process of the structure.

[0013] Furthermore, the nut sleeve is located at the threaded position on the outer wall of the threaded shaft. The threaded shaft and the nut sleeve form a ball screw structure. Connecting rods are fixedly connected to the outer walls of the nut sleeves. Installation slots are opened at the positions corresponding to the connecting rods on the surface fabric roll and the bottom fabric roll in the fabric roll group.

[0014] By adopting the above technical solution, the installation and disassembly operations of the rolls are facilitated, saving the operation time of the staff.

[0015] Further, a filling bin is installed on the side wall of the conveying frame. A partition plate is fixedly connected inside the filling bin. The partition plate symmetrically divides the inside of the filling bin into upper and lower layers. Baffles are uniformly and fixedly connected inside the upper half layer of the partition plate, and elastic fiber floc layers are placed inside the upper half layer of the partition plate.

[0016] By adopting the above technical solution, the through groove communicates with the lower half layer, ensuring that the abrasive roller shafts in the lower half layer can continuously obtain elastic fiber floc layer supplements from the upper layer.

[0017] Further, through grooves are uniformly formed on the surface of the partition plate, and the upper half layer and the lower half layer inside the filling bin are kept in communication through the through grooves.

[0018] Further, an abrasive roller group and a smooth roller group are installed inside the lower half layer of the filling bin. The abrasive roller group is integrally composed of three abrasive roller shafts combined, and the smooth roller group is integrally composed of three smooth roller shafts combined.

[0019] Further, the filling bin is installed in an inclined manner as a whole and is parallel to the surface of the face cloth fabric in the fabric roll group. The outer walls of the abrasive roller shafts and the smooth roller shafts in the abrasive roller group and the smooth roller group are all in contact with the face cloth fabric.

[0020] By adopting the above technical solution, it is ensured that all the depressions on the face cloth can be filled, making the surface of the face cloth smoother.

[0021] Further, support chassis are uniformly installed at the positions corresponding to the smooth roller group on the side wall of the filling bin. A number of rollers are uniformly installed on the surface of the support chassis, and the rollers in the support chassis are all in contact with the surface of the face cloth fabric.

[0022] By adopting the above technical solution, it is prevented that the face cloth sags or shifts due to pressure or friction when passing through the smooth roller group.

[0023] Compared with the prior art, the beneficial effects of the present invention are as follows: (1) In this device, the face cloth reel and the bottom cloth reel are designed on the same vertical plane and are initially close to each other and conveyed from the starting point on the same vertical plane. As the radii of the reels become smaller due to raw material conveyance, with the linkage of the nut sleeve and the connecting rod, the linear movement of the bottom cloth reel upward and the face cloth reel downward is realized, and the positions of the upper and lower fabric conveying points are always kept constant. This can effectively avoid the problem of tension fluctuation caused by the change of the fabric conveying path due to the change of the reel radius. Through this stable-tension conveyance, it can be ensured that the fabric will not be slack or over-stretched during the conveyance process, providing a stable material basis for the subsequent composite process; Compared with the prior art, the key point of this device is to stabilize the tension by keeping the conveying point position unchanged, which reduces the composite quality problems caused by unstable tension during the conveying process from the source. Even if the surface of the face cloth is uneven, the stable tension enables subsequent composite processes (such as glue coating) to be carried out under a relatively stable material state, thereby improving the quality consistency of the overall composite fabric.

[0024] Among them, the conveying frame is composed of a bottom bearing base and two side movable brackets connected by sliding. The above design greatly facilitates the installation and disassembly operations of the reels. When replacing the face cloth or bottom cloth reels of different specifications, the staff can easily take out the old reel and install the new reel by sliding the movable bracket, saving operation time. And the upper and lower reels are installed on the nut collar through the connecting rod, forming an integrated structure, which greatly simplifies the overall structure of the equipment, reduces the number of components, lowers the equipment cost, and at the same time makes the equipment layout more compact, improving the space utilization rate of the equipment.

[0025] Among them, the centers of the face cloth reel, the bottom cloth reel and the driving shaft in the fabric roll group are all in the same vertical plane. This design ensures that during the power transmission process, the driving forces received by each reel are uniform and consistent, thus ensuring that the conveying speeds of the face cloth and the bottom cloth are exactly the same during the conveying process, avoiding problems such as fabric wrinkling, stretching deformation or composite misalignment caused by inconsistent conveying speeds.

[0026] (2) Aiming at the core problem that intermittent sticking occurs due to the unevenness of the face cloth and the difficulty in fitting with the bottom cloth, this device pre-treats the unevenness characteristics of the face cloth by setting a filling bin on the face cloth conveying path, and installing a grinding roller group and a smooth roller group in the bin. First, the grinding roller shaft carries the elastic fiber floc layer and embeds it into the concave part of the face cloth, directly filling the uneven positions on the surface of the face cloth fabric, reducing the possibility of gaps generated during the composite of the face cloth and the bottom cloth from the root. Secondly, multiple grinding roller shafts can prevent omission and ensure that all the concave parts of the face cloth can be filled, making the surface of the face cloth smoother and facilitating subsequent fitting with the bottom cloth. And multiple smooth roller shafts perform rolling pressure treatment after the elastic fiber floc layer is embedded. On the one hand, the embedded fiber floc layer is compacted, and at the same time the face cloth pattern is combed to make the fiber floc layer and the protruding pattern tend to be in the same plane, improving the overall flatness of the face cloth. On the other hand, the excess fiber floc layer on the surface of the face cloth is cleaned to avoid affecting the composite effect.

[0027] Among them, the partition divides the filling bin into upper and lower layers. The upper half layer places the elastic fiber floc layer, which is connected to the lower half layer through the through groove. In this way, it can be ensured that during the operation of the equipment, the grinding roller shafts in the lower half layer can continuously obtain the supplement of the elastic fiber floc layer from the upper layer without frequent manual addition, improving the production efficiency and the continuous operation ability of the equipment.

[0028] Among them, the rollers on the supporting chassis are in contact with the surface of the fabric of the face cloth, and the positions of the rollers correspond to those of the smooth roller shafts. Therefore, the rollers on the supporting chassis can not only support the face cloth, but also support the compaction process of the smooth roller shafts at the same time, thereby preventing the face cloth from sagging or shifting due to pressure or friction when passing through the smooth roller group, and ensuring the stability of the face cloth conveying path.

[0029] Among them, the hollow design can reduce the weight of the frosted roller shaft, reduce the resistance to drive its rotation when conveying the face cloth, make the rotation more flexible, better follow the movement of the face cloth, ensure that it can effectively carry the elastic fiber floc layer and embed it into the depression of the face cloth, while the solid design makes the smooth roller shaft have a certain weight and rigidity. When rolling the elastic fiber floc layer, it can provide sufficient pressure to ensure the compaction effect and the carding effect on the pattern of the face cloth.

[0030] (3) In the actual use process, the linkage between structures is reflected. Ensuring a constant fabric conveying point in the early stage and maintaining a stable fabric tension conveying is the basis for subsequent fabric filling. The stable tension enables the entire filling process to proceed efficiently and smoothly, and the constant conveying point enables each part of the face cloth to contact the frosted roller shaft in the same state, which enables the elastic fiber floc layer to be evenly embedded in the depression area of the face cloth.

[0031] At the same time, in the actual use process, the conveying direction of the face cloth is from the conveying rack to the compounding machine chamber. Therefore, when driving the frosted roller group and the smooth roller group, they are rotated counterclockwise. The inclination direction of the through groove fits with the counterclockwise rotation direction of the frosted roller group and the smooth roller group. Under the action of gravity, it can guide the elastic fiber floc layer to be replenished to each frosted roller shaft more evenly, so as to ensure the filling effect of each frosted roller shaft on the face cloth. BRIEF DESCRIPTION OF THE DRAWINGS

[0032] Figure 1 is the front view three-dimensional structure schematic diagram of the present invention; Figure 2 is the three-dimensional structure schematic diagram of the conveying rack of the present invention; Figure 3 is the three-dimensional structure schematic diagram of the balance compounding mechanism of the present invention; Figure 4 is the three-dimensional structure schematic diagram of the initial state of the fabric reel of the present invention; Figure 5 is the three-dimensional structure schematic diagram of the use state of the fabric reel of the present invention; Figure 6 is the exploded view of the positional relationship between the connecting rod and the fabric reel of the present invention; Figure 7 is the side view three-dimensional structure schematic diagram of the present invention; Figure 8 is the three-dimensional structure schematic diagram of the filling bin of the present invention; Figure 9Schematic diagram of the positional relationship between the matte roller group and the smooth roller group of the present invention; Figure 10 Schematic three-dimensional structure diagram of the support chassis of the present invention.

[0033] The reference numerals in the figure are: 1. Composite machine chamber; 11. Conveyor frame; 12. Drive assembly; 13. Fabric roll group; 2. Balanced composite mechanism; 21. Drive shaft; 22. Driving bevel gear; 23. Threaded shaft; 24. Driven bevel gear; 25. Nut collar; 26. Connecting rod; 27. Filling bin; 28. Spacer; 29. Baffle; 210. Through groove; 211. Matte roller group; 212. Smooth roller group; 213. Support chassis. Specific embodiments

[0034] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative efforts shall fall within the protection scope of the present invention; It should be noted that the structures and working principles of the above-mentioned composite machine chamber 1, conveyor frame 11, drive assembly 12, fabric roll group 13 and other devices belong to the prior art and will not be elaborated here.

[0035] Embodiment 1: Please refer to Figures 1 to 3 As shown, a composite machine for a chitin shield antibacterial and mite-proof jacquard composite fabric is used for composite treatment of the fabric on the fabric roll group 13, including a composite machine chamber 1. A conveyor frame 11 is installed on the front side of the composite machine chamber 1, and a balanced composite mechanism 2 is arranged inside the conveyor frame 11. The balanced composite mechanism 2 is used to adjust the conveying position of the fabric roll group 13; It should be noted that the conveyor frame 11 is integrally divided into a bottom bearing base and movable brackets on both sides. The bearing base is slidably connected to the movable brackets. A drive assembly 12 is installed on the side wall of the conveyor frame 11. The output shaft end of the motor in the drive assembly 12 is in transmission connection with the drive shaft 21. The fabric roll group 13 is composed of a lower surface fabric reel and an upper bottom fabric reel. The surface fabric is a geometric jacquard single-brush single-wind cloth, and the surface has a flower pattern effect of a geometric pattern through the jacquard organization. The bottom fabric is a common polyester-ammonia single-sided cloth. The centers of the surface fabric reel, bottom fabric reel and drive shaft 21 in the fabric roll group 13 are all in the same vertical plane.

[0036] Please refer to Figures 2 to 7As shown in the figure, the balanced composite mechanism 2 includes a drive shaft 21 installed inside the conveyor frame 11. Symmetrically installed at both ends of the drive shaft 21 are driving bevel gears 22. Inside the side walls of the conveyor frame 11 are installed threaded shafts 23. Installed on the lower surfaces of the threaded shafts 23 are driven bevel gears 24. Installed outside the threaded shafts 23 are nut sleeves 25. It should be noted that the driven bevel gear 24 is located on the rotation path of the driving bevel gear 22, and the diameter ratio of the driving bevel gear 22 to the driven bevel gear 24 is 1:3. The nut sleeve 25 is located at the threaded position on the outer wall of the threaded shaft 23. The threaded shaft 23 and the nut sleeve 25 form a ball screw structure. Fixedly connected to the outer walls of the nut sleeves 25 are connecting rods 26. Installation slots are provided at the positions of the surface fabric roller and the bottom fabric roller in the fabric roll group 13 corresponding to the connecting rods 26.

[0037] Specifically, the staff installs the fabric roll group 13 by adjusting the movable bracket. After preparation, the motor in the drive assembly 12 is started. The drive shaft 21 is driven to rotate by the output shaft end of the motor. The driving bevel gears 22 symmetrically installed at both ends of the drive shaft 21 rotate synchronously with the drive shaft 21. At this time, the driven bevel gear 24 located on the rotation path of the driving bevel gear 22 starts meshing transmission. Since the diameter ratio of the driving bevel gear 22 to the driven bevel gear 24 is 1:3, the rotation speed of the driven bevel gear 24 is reduced, achieving a speed reduction transmission effect.

[0038] Since the driven bevel gear 24 is installed on the lower surface of the threaded shaft 23, the threaded shaft 23 will rotate simultaneously with the driven bevel gear 24. When the threaded shaft 23 rotates, the nut sleeve 25 that mates with the threaded position on the outer wall of the threaded shaft 23 starts to move. The threaded shaft 23 and the nut sleeve 25 form a ball screw structure, thereby efficiently converting the rotational motion of the threaded shaft 23 into the linear motion of the nut sleeve 25. The connecting rods 26 fixedly connected to the outer walls of the nut sleeves 25 will move together with the nut sleeves 25. Installation slots are provided at the positions of the surface fabric roller and the bottom fabric roller in the fabric roll group 13 corresponding to the connecting rods 26. The connecting rods 26 are connected in cooperation with the installation slots, thereby driving the surface fabric roller and the bottom fabric roller to move. During the fabric conveying process, as the fabric on the surface fabric roller and the bottom fabric roller is continuously conveyed out, the radius of the roller gradually decreases. In order to ensure that the fabric conveying point position remains constant and maintain a stable conveying tension, the nut sleeve 25 drives the connecting rod 26, causing the lower surface fabric roller to move linearly downward and the upper bottom fabric roller to move linearly upward. Such a moving method can ensure that during the entire fabric conveying process, the surface fabric and the bottom fabric are always conveyed from the same starting point in a stable state, avoiding changes in the conveying point due to changes in the roller radius, achieving precise adjustment of the fabric conveying position, and providing a stable and reliable material conveying guarantee for the subsequent composite process of the surface fabric and the bottom fabric in the composite machine chamber 1.

[0039] Example 2: On the basis of Example 1, please refer to Figures 7 to 10 As shown, a filling bin 27 is installed on the side wall of the conveying frame 11. A partition plate 28 is fixedly connected inside the filling bin 27. The partition plate 28 symmetrically divides the inside of the filling bin 27 into upper and lower layers. Elastic fiber floc layers are uniformly and fixedly connected inside the upper half of the partition plate 28, and elastic fiber floc layers are placed inside the upper half of the partition plate 28. Through grooves 210 are uniformly formed on the surface of the partition plate 28. The upper half and the lower half inside the filling bin 27 are kept in communication through the through grooves 210. A grinding roller group 211 and a smooth roller group 212 are installed inside the lower half of the filling bin 27. The grinding roller group 211 is integrally composed of three grinding roller shafts, and the smooth roller group 212 is integrally composed of three smooth roller shafts. The filling bin 27 is installed in an inclined manner and is parallel to the surface of the face fabric in the fabric roll group 13. The outer walls of the grinding roller shafts and the smooth roller shafts in the grinding roller group 211 and the smooth roller group 212 are all in contact with the face fabric. Support chassis 213 are uniformly installed at the positions corresponding to the smooth roller group 212 on the side wall of the filling bin 27. A number of rollers are uniformly installed on the surface of the support chassis 213. The rollers in the support chassis 213 are all in contact with the surface of the face fabric.

[0040] Specifically, as Figure 8 shown, the filling bin 27 is installed in an inclined manner and is parallel to the surface of the face fabric. As Figure 9 shown, the face fabric is moved and conveyed from the conveying frame 11 towards the compounding machine bin 1. Therefore, when the face fabric comes into contact with the grinding roller shafts during the conveying process, since the outer wall of the grinding roller shaft is in contact with the face fabric, the movement of the face fabric will drive the grinding roller shaft to rotate counterclockwise. An elastic fiber floc layer is filled in the rotation space of the grinding roller shaft. The rotating surface of the grinding roller shaft will carry these elastic filling materials. Since the face fabric is a geometric jacquard single-brush single-roll cloth and there are depressions on the surface, the carried elastic fiber floc layer will be embedded into the depressed parts of the face fabric, and the design of multiple grinding roller shafts can prevent omission areas and ensure that the depressions on the face fabric are filled as fully as possible.

[0041] During the process of the abrasive roller continuously consuming the internal elastic fiber floc layer, due to the inclination direction of the through groove 210 being consistent with the rotation direction of the abrasive roller, under the action of gravity and the guidance of the side wall of the through groove 210, the elastic fiber floc layer in the upper half of the filling bin 27 will continuously supplement into the lower half of the abrasive roller through the through groove 210, ensuring that the abrasive roller always has enough material for filling work. When the elastic fiber floc layer is embedded in the surface of the face cloth, the face cloth continues to be conveyed to the smooth roller group 212. The smooth roller is also in contact with the face cloth fabric and will perform roller pressing on the face cloth. On the one hand, it compacts the embedded elastic fiber floc layer, making the fiber floc layer more tightly fixed in the recesses of the face cloth. On the other hand, while compacting the fiber floc layer, the smooth roller can also synchronously comb the patterns on the face cloth, making the fiber floc layer tend to be on the same plane as the protruding patterns. In addition, the smooth roller will also clean the extra fiber floc layer remaining on the surface of the face cloth to prevent these redundant fiber floc layers from affecting the subsequent lamination process.

[0042] In addition, a support chassis 213 is installed on the side wall of the filling bin 27 corresponding to the position of the smooth roller group 212. The rollers on its surface are in contact with the surface of the face cloth fabric. During the entire filling process, the rollers play a role in supporting the face cloth, ensuring that the face cloth maintains a stable conveying state when passing through the smooth roller group 212, and at the same time reducing the friction between the face cloth and the support structure, making the face cloth conveying more smooth. The face cloth after filling treatment continues to be conveyed to the lamination machine bin 1 and is laminated with the base cloth. Since the surface of the face cloth is smoother after filling treatment, the lamination effect with the base cloth will be better, which can effectively reduce the gaps generated due to the unevenness of the face cloth when laminating with the base cloth and improve the quality of the laminated fabric.

[0043] Although the embodiments of the present invention have been shown and described, for those of ordinary skill in the art, it can be understood that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.

Claims

1. A compounding machine for a chitin shield antibacterial and mite-proof jacquard composite fabric, which is used for compounding the fabric on a fabric roll group (13), including a compounding machine chamber (1), and is characterized in that: A conveying frame (11) is installed on the front side of the composite machine chamber (1). A balance composite mechanism (2) is arranged inside the conveying frame (11), and the balance composite mechanism (2) is used to adjust the conveying position of the fabric roll group (13). The balance composite mechanism (2) includes a driving shaft (21) installed inside the conveying frame (11). Active bevel gears (22) are symmetrically installed at both ends of the driving shaft (21). Threaded shafts (23) are installed inside the side walls of the conveying frame (11). Driven bevel gears (24) are installed on the lower surfaces of the threaded shafts (23). Nut sleeves (25) are installed outside the threaded shafts (23).

2. The compounding machine for a compound fabric of carapace shield antibacterial and mite-proof jacquard according to claim 1, characterized in that: The whole conveying frame (11) is divided into a bearing base at the bottom and movable brackets on both sides. The bearing base and the movable brackets are in sliding connection. A driving component (12) is installed on the side wall of the conveying frame (11). The output shaft end of the motor in the driving component (12) is in transmission connection with the driving shaft (21).

3. The compounding machine for a chitin shield antibacterial and mite-proof jacquard composite fabric according to claim 1, characterized in that: The fabric roll group (13) is composed of a face fabric roll shaft below and a bottom fabric roll shaft above. The face fabric is a geometric jacquard single-brush single-roll fabric, and its surface has a flower pattern effect of a geometric pattern through the jacquard organization. The bottom fabric is an ordinary polyester-ammonia single-sided fabric. The centers of the face fabric roll shaft, the bottom fabric roll shaft and the driving shaft (21) in the fabric roll group (13) are all in the same vertical plane.

4. The compounding machine for a compound fabric of carapace shield antibacterial and mite-proof jacquard according to claim 1, characterized in that: The driven bevel gear (24) is located on the rotation path of the active bevel gear (22), and the diameter ratio of the active bevel gear (22) to the driven bevel gear (24) is 1:

3.

5. The compounding machine for a compound fabric of carapace shield antibacterial and mite-proof jacquard according to claim 1, characterized in that: The nut sleeve (25) is located at the threaded position on the outer wall of the threaded shaft (23). The threaded shaft (23) and the nut sleeve (25) form a ball screw structure. Connecting rods (26) are fixedly connected to the outer walls of the nut sleeves (25). Installation slots are provided at the positions of the face fabric roll shaft and the bottom fabric roll shaft in the fabric roll group (13) corresponding to the connecting rods (26).

6. The compounding machine for a compound fabric of carapace shield antibacterial and mite-proof jacquard according to claim 1, characterized in that: A filling bin (27) is installed on the side wall of the conveying frame (11). A partition plate (28) is fixedly connected inside the filling bin (27). The partition plate (28) symmetrically divides the inside of the filling bin (27) into upper and lower layers. Baffles (29) are uniformly fixedly connected inside the upper half layer of the partition plate (28), and elastic fiber floc layers are placed inside the upper half layer of the partition plate (28).

7. The compounding machine for a compound fabric of carapace shield antibacterial and mite-proof jacquard according to claim 6, characterized in that: Through grooves (210) are uniformly formed on the surface of the partition plate (28). The upper half layer and the lower half layer inside the filling bin (27) are kept in communication through the through grooves (210).

8. The compounding machine for a compound fabric of carapace shield antibacterial and mite-proof jacquard according to claim 6, characterized in that: A grinding roller group (211) and a smooth roller group (212) are installed inside the lower half layer of the filling bin (27). The grinding roller group (211) is composed of a combination of three grinding roller shafts. The smooth roller group (212) is composed of a combination of three smooth roller shafts. The grinding roller shafts are all designed with hollow structures, and the smooth roller shafts are all designed with solid structures.

9. The compounding machine for a compound fabric of carapace shield antibacterial and mite-proof jacquard according to claim 8, characterized in that: The filling bin (27) is installed in an overall inclined manner and is parallel to the surface of the face fabric in the fabric roll group (13). The outer walls of the abrasive rollers and the smooth rollers in the abrasive roller group (211) and the smooth roller group (212) are all in contact with the face fabric.

10. The compound machine for a compound fabric of a carapace shield antibacterial and mite-proof jacquard, according to claim 6, is characterized in that: Support chassis (213) are evenly installed at positions on the side wall of the filling bin (27) corresponding to the smooth roller group (212). A number of rollers are evenly installed on the surface of the support chassis (213), and the rollers in the support chassis (213) are all in a state of being in contact with the surface of the face fabric.