Antibacterial modified polyester blended fabric spinning device
By combining titanium dioxide spraying and ultraviolet light irradiation in the polyester blended fabric weaving device, the problem that the existing device cannot form lasting antibacterial properties is solved, the continuous antibacterial effect of the fabric is achieved, and bacterial growth is inhibited.
Patent Information
- Application Number
- CN202422468690.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-10-12
- Publication Date
- 2025-09-12
- Estimated Expiration
- 2034-10-12
AI Technical Summary
Existing antibacterial modified polyester blended fabric weaving devices can only sterilize the fabric by ultraviolet irradiation, which cannot form a lasting antibacterial effect. Once the fabric is exposed to the environment, new bacteria will quickly attach.
An antibacterial modified polyester blended fabric weaving device is designed. An antibacterial mechanism is set in a protective box, and a combination of titanium dioxide suspension spraying and ultraviolet light irradiation is used to form a long-lasting antibacterial effect.
By spraying titanium dioxide and irradiating it with ultraviolet light, active oxygen is generated to form a protective film that continuously inhibits the growth of bacteria and microorganisms, keeping the fabric clean and hygienic for a long time.
Smart Images

Figure CN223329535U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of polyester blended fabrics, in particular to an antibacterial modified polyester blended fabric weaving device. Background Art
[0002] Blended fabrics are made by mixing chemical fibers with other natural fibers, such as cotton, wool, silk, and linen. These products combine the characteristics of polyester with the advantages of cotton, such as polyester-cotton and polyester-wool gabardine. Blended fabrics can be categorized as wool-viscose, sheep-and-rabbit blends, and composite fabrics.
[0003] For example, the patent with national authorized patent announcement number CN211446077U discloses a weaving device for antibacterial modified polyester blended fabric, including a textile body and a sealing shell. The front of the material collection shaft is glued with a sticky cloth patch for fixing the fabric head. When the fabric starts to be rolled up, the rolled cloth can be ensured to be tight. The surface of the curved block is polished, which can reduce the friction between the textile thread and the mechanical edges due to the shaking of the device, reduce the risk of wire breakage, ensure the normal operation of the device, and improve the production efficiency of the device. The shaft body and the fixed ring are made of metal iron and magnets respectively, so that the wire-paying shaft can not only place different textile threads, but also move the retaining ring simply and conveniently. The length of the sterilization device is equal to the distance between the wire-paying shaft and the sealing shell and the distance between the material collection shaft and the sealing shell, and it is ultraviolet sterilization. The textile thread and air are sterilized before weaving to eliminate the bacteria at the source. The finished fabric is sterilized after weaving. Double sterilization greatly reduces the bacteria inside the finished fabric body and improves the antibacterial properties of the finished fabric.
[0004] However, the aforementioned antibacterial modified polyester blended fabric weaving device can only sterilize the blended fabric by ultraviolet irradiation, but cannot form a lasting antibacterial effect. It can only temporarily sterilize bacteria on the surface of the fabric, but cannot provide lasting antibacterial protection. Once the fabric is exposed to the environment, new bacteria will quickly reattach to the fabric surface. Utility Model Content
[0005] The purpose of the present utility model is to provide an antibacterial modified polyester blended fabric weaving device to solve the problem proposed in the above-mentioned background technology that the polyester blended fabric can only be sterilized by ultraviolet irradiation, but cannot form a lasting antibacterial effect. Once the fabric is exposed to the environment, new bacteria will quickly re-attach to the surface of the fabric.
[0006] To achieve the above objectives, the present invention provides the following technical solutions:
[0007] A device for weaving antibacterial modified polyester blended fabrics comprises: a support frame, a first transmission column and a second transmission column being rotatably mounted on one end of the support frame, a protective box being arranged between the first transmission column and the second transmission column, so that the polyester blended fabric transmitted between the first transmission column and the second transmission column passes through the protective box and is connected to a winding drum, the winding drum being rotatably mounted on one end of the support frame, the protective box being fixedly mounted on one end of the support frame, an antibacterial mechanism being fixedly mounted inside the protective box, so that the antibacterial mechanism can apply antibacterial liquid to the polyester blended fabric passing through the protective box.
[0008] Preferably, a window panel is detachably mounted at one end of the protective box.
[0009] Preferably, the first transmission column and the second transmission column are vertical, so that they can be horizontal when transmitting the polyester blended fabric into the protective box.
[0010] Preferably, a reduction motor is fixedly mounted on one end of the support frame, and the outer surfaces of the output shaft of the reduction motor, the winding drum, the second transmission column and the first transmission column are all covered with transmission belts.
[0011] Preferably, the antibacterial mechanism includes a compressor, which is fixedly installed at one end of the protective box, and the air pipe of the compressor is connected to the air port of the antibacterial liquid spray gun. The antibacterial liquid spray gun is fixed on both sides of the protective box, and the liquid spray port of the antibacterial liquid spray gun is connected to the liquid discharge port of the storage tank through a hose. The outer surface of the storage tank is provided with a locking ring, and the locking ring is fixedly installed at one end of the protective box.
[0012] Preferably, the storage tank stores a suspension, and the suspension in the storage tank is formed by mixing titanium dioxide and water.
[0013] Preferably, a trapezoidal frame is fixedly installed on both sides of the protective box, and an ultraviolet lamp is laid on one end of the trapezoidal frame so that the ultraviolet lamp can reduce the distance between it and the polyester blended fabric through the convex pad of the trapezoidal frame.
[0014] Compared with the prior art, the beneficial effects of the present invention are:
[0015] 1. Through the design of the first transmission column, the second transmission column, the winding drum, the protective box and the antibacterial mechanism, when winding the polyester blended fabric, the transmission belt on the outer surface of the output shaft of the reduction motor can be started to drive the second transmission column, the first transmission column and the winding drum to rotate synchronously in the same direction, so that the first transmission column and the second transmission column can transfer the polyester blended fabric to the protective box and make it horizontal. At the same time, the polyester blended fabric in the protective box is also at the center of the antibacterial mechanism and is pulled out by the winding drum. When the polyester blended fabric is transferred to the protective box, The antibacterial mechanism in the protective box will continuously spray titanium dioxide on both sides of the polyester blended fabric, and after spraying, the antibacterial mechanism at the lower end of the protective box will also irradiate the polyester blended fabric sprayed with titanium dioxide with ultraviolet light. Titanium dioxide will produce active oxygen under the irradiation of ultraviolet light, thereby achieving an antibacterial effect, making the polyester blended fabric have antibacterial properties, and can permanently inhibit the growth of bacteria and microorganisms, thereby maintaining the long-term cleanliness and hygiene of the polyester blended fabric. The polyester blended fabric after antibacterial application can be wound up by the winding drum.
[0016] 2. Through the design of the compressor, storage tank, ultraviolet lamp and antibacterial liquid spray gun, after the first transmission column and the second transmission column transmit the polyester blended fabric that has not been treated with antibacterial agents into the protective box, the compressor can be started to inhale and compress the air in the atmosphere to generate high-pressure compressed air and supply it to the antibacterial liquid spray gun. The antibacterial liquid spray gun will use the power of this compressed air to spray the titanium dioxide in the storage tank onto the surface of the polyester blended fabric. The part of the polyester blended fabric sprayed with titanium dioxide will enter the lower half of the protective box with the transmission of the first transmission column and the second transmission column. Ultraviolet lamps are provided on both sides of the lower half of the protective box, so that the polyester blended fabric sprayed with titanium dioxide can be irradiated and transmitted between the ultraviolet lamps. The polyester blended fabric sprayed with titanium dioxide will produce active oxygen after being irradiated by ultraviolet light, which can make the polyester blended fabric have a sustained antibacterial effect. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 This is a schematic diagram of the overall structure of the antibacterial modified polyester blended fabric weaving device of the utility model;
[0018] Figure 2 This is a structural diagram of the winding drum of the present invention;
[0019] Figure 3 This is a schematic structural diagram of the reduction motor, the first transmission belt, and the second transmission belt of the utility model;
[0020] Figure 4 This is a schematic diagram of the structure of the first transmission column and the second transmission column of the utility model transmitting the polyester blended fabric in a horizontal shape in the protective box;
[0021] Figure 5 This is a schematic structural diagram of the antibacterial mechanism of the present invention.
[0022] In the figure: 1. Support frame; 101. First transmission column; 102. Second transmission column; 103. Winding drum; 104. Transmission belt; 105. Window panel; 106. Protective box; 2. Reducer motor; 3. Antibacterial mechanism; 301. Compressor; 302. Storage tank; 303. Locking ring; 304. Trapezoidal frame; 305. Ultraviolet lamp; 306. Antibacterial liquid spray gun. DETAILED DESCRIPTION
[0023] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0024] See also Figure 1-Figure 5 , this embodiment provides the following technical solutions:
[0025] like Figure 1-Figure 3 As shown, an antibacterial modified polyester blended fabric weaving device includes: a support frame 1, a first transmission column 101 and a second transmission column 102 are rotatably installed at one end of the support frame 1, a protection box 106 is arranged between the first transmission column 101 and the second transmission column 102, so that the polyester blended fabric transmitted between the first transmission column 101 and the second transmission column 102 passes through the protection box 106 and is connected to the winding drum 103, the winding drum 103 is rotatably installed at one end of the support frame 1, the protection box 106 is fixedly installed at one end of the support frame 1, and an antibacterial mechanism 3 is fixedly installed in the protection box 106, so that the antibacterial mechanism 3 can apply antibacterial liquid to the polyester blended fabric passing through the protection box 106.
[0026] A window panel 105 is detachably mounted on one end of the protection box 106 .
[0027] The first transmission post 101 and the second transmission post 102 are vertical, so that they can be horizontal when transmitting the polyester blended fabric into the protective box 106 .
[0028] A reduction motor 2 is fixedly mounted on one end of the support frame 1 , and a transmission belt 104 is sleeved on the outer surfaces of the output shaft of the reduction motor 2 , the winding drum 103 , the second transmission column 102 and the first transmission column 101 .
[0029] Through the design of the first transmission column 101, the second transmission column 102, the winding drum 103, the protective box 106 and the antibacterial mechanism 3, when the polyester blended fabric is wound, the transmission belt 104 on the outer surface of the transmission output shaft of the reduction motor 2 can be started to drive the second transmission column 102, the first transmission column 101 and the winding drum 103 to rotate synchronously in the same direction, so that the first transmission column 101 and the second transmission column 102 can transfer the polyester blended fabric to the protective box 106 and be horizontal, and the polyester blended fabric in the protective box 106 is also at the center of the antibacterial mechanism 3 and is pulled out by the winding drum 103, and the polyester blended fabric When the textile fabric is transmitted to the protective box 106, the antibacterial mechanism 3 in the protective box 106 will continue to spray titanium dioxide on both sides of the polyester blended fabric, and after spraying, the antibacterial mechanism 3 at the lower end of the protective box 106 will also irradiate the polyester blended fabric sprayed with titanium dioxide with ultraviolet light. Titanium dioxide will produce active oxygen under the irradiation of ultraviolet light, thereby achieving an antibacterial effect, so that the polyester blended fabric has antibacterial properties, can permanently inhibit the growth of bacteria and microorganisms, thereby maintaining the long-term cleanliness and hygiene of the polyester blended fabric, and the polyester blended fabric after antibacterial application can be wound up by the winding drum 103.
[0030] like Figure 4-Figure 5 As shown, the antibacterial mechanism 3 includes a compressor 301, which is fixedly installed at one end of the protective box 106. The air pipe of the compressor 301 is connected to the air port of the antibacterial liquid spray gun 306. The antibacterial liquid spray gun 306 is fixedly installed on both sides of the protective box 106. The spray port of the antibacterial liquid spray gun 306 is connected to the discharge port of the storage tank 302 through a hose. The outer surface of the storage tank 302 is provided with a locking ring 303, which is fixedly installed at one end of the protective box 106.
[0031] The storage tank 302 stores a suspension, and the suspension in the storage tank 302 is formed by mixing titanium dioxide and water.
[0032] Trapezoidal frames 304 are fixedly installed on both sides of the protective box 106 , and an ultraviolet lamp 305 is laid on one end of the trapezoidal frame 304 so that the ultraviolet lamp 305 can reduce the distance between it and the polyester blended fabric through the convex pads of the trapezoidal frame 304 .
[0033] Through the design of the compressor 301, the storage tank 302, the ultraviolet lamp 305 and the antibacterial liquid spray gun 306, after the first transmission column 101 and the second transmission column 102 transmit the polyester blended fabric that has not been antibacterial treated to the protective box 106, the compressor 301 can be started to suck in and compress the air in the atmosphere to generate high-pressure compressed air and supply it to the antibacterial liquid spray gun 306. The antibacterial liquid spray gun 306 will use the power of this compressed air to spray the titanium dioxide in the storage tank 302 onto the polyester blended fabric. On the surface of the polyester blended fabric, the part of the polyester blended fabric sprayed with titanium dioxide will enter the lower half of the protective box 106 with the transmission of the first transmission column 101 and the second transmission column 102, and ultraviolet lamp tubes 305 are provided on both sides of the lower half of the protective box 106, so that the polyester blended fabric sprayed with titanium dioxide can be irradiated and transmitted between the ultraviolet lamp tubes 305. After being irradiated by ultraviolet light, the polyester blended fabric sprayed with titanium dioxide will produce active oxygen, which can make the polyester blended fabric have a sustained antibacterial effect.
[0034] According to the above technical solution, the working steps of this solution are summarized and sorted out: in the process of winding the polyester blended fabric, the transmission belt 104 on the outer surface of the transmission output shaft of the reduction motor 2 is started to drive the second transmission column 102, the first transmission column 101 and the winding drum 103 to rotate synchronously in the same direction, so that the first transmission column 101 and the second transmission column 102 can transfer the polyester blended fabric to the protective box 106 and present it in a horizontal shape, and the polyester blended fabric in the protective box 106 is also between the antibacterial liquid spray gun 306 at the same time, and the antibacterial liquid spray gun 306 can suck in and compress the air in the atmosphere through the compressor 301 to generate high-pressure compressed air and supply it to the antibacterial liquid spray gun 306, so that the antibacterial liquid spray gun 30 6 The titanium dioxide in the storage tank 302 is sprayed onto the surface of the polyester blended fabric using the power of compressed air, and the portion of the polyester blended fabric sprayed with titanium dioxide will enter the lower half of the protective box 106 as the first transmission column 101 and the second transmission column 102 are driven, and ultraviolet lamps 305 are provided on both sides of the lower half of the protective box 106, so that the polyester blended fabric sprayed with titanium dioxide can be irradiated and transmitted between the ultraviolet lamps 305, and the polyester blended fabric sprayed with titanium dioxide will produce active oxygen after being irradiated by ultraviolet light, so that the polyester blended fabric can have a sustained antibacterial effect, and the polyester blended fabric after antibacterial application can be wound up by the winding drum 103.
[0035] In summary: By spraying titanium dioxide and generating active oxygen through ultraviolet light irradiation, polyester blended fabrics can have a sustained antibacterial effect. This antibacterial mechanism can form a protective film on the surface of the fabric, which can continuously kill bacteria, effectively reduce bacterial growth, and improve the hygiene level of the fabric.
[0036] Any portion not described in the present invention is the same as the prior art or can be implemented using the prior art. Although the embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions, and variations may 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. An antibacterial modified polyester blended fabric weaving device, characterized in that: include: A support frame (1) is provided, wherein a first transmission column (101) and a second transmission column (102) are rotatably mounted on one end of the support frame (1), a protection box (106) is provided between the first transmission column (101) and the second transmission column (102), so that the polyester blended fabric transmitted between the first transmission column (101) and the second transmission column (102) passes through the protection box (106) and is connected to a winding drum (103), the winding drum (103) is rotatably mounted on one end of the support frame (1), the protection box (106) is fixedly mounted on one end of the support frame (1), an antibacterial mechanism (3) is fixedly mounted in the protection box (106), and the antibacterial mechanism (3) is capable of applying antibacterial liquid to the polyester blended fabric passing through the protection box (106).
2. The antibacterial modified polyester blended fabric weaving device according to claim 1, characterized in that: A window panel (105) is detachably mounted on one end of the protection box (106).
3. The antibacterial modified polyester blended fabric weaving device according to claim 2, characterized in that: The first transmission column (101) and the second transmission column (102) are vertical, so that they can be horizontal when transmitting the polyester blended fabric into the protection box (106).
4. The antibacterial modified polyester blended fabric weaving device according to claim 3, characterized in that: A reduction motor (2) is fixedly mounted on one end of the support frame (1); and a transmission belt (104) is mounted on the outer surfaces of the output shaft of the reduction motor (2), the winding drum (103), the second transmission column (102), and the first transmission column (101).
5. The antibacterial modified polyester blended fabric weaving device according to claim 4, characterized in that: The antibacterial mechanism (3) includes a compressor (301), the compressor (301) is fixedly mounted on one end of the protective box (106), the air pipe of the compressor (301) is connected to the air port of the antibacterial liquid spray gun (306), the antibacterial liquid spray gun (306) is fixedly mounted on both sides of the protective box (106), the liquid spray port of the antibacterial liquid spray gun (306) is connected to the liquid discharge port of the storage tank (302) through a hose, and a locking ring (303) is mounted on the outer surface of the storage tank (302), and the locking ring (303) is fixedly mounted on one end of the protective box (106).
6. The antibacterial modified polyester blended fabric weaving device according to any one of claims 1 to 5, characterized in that: Trapezoidal frames (304) are fixedly installed on both sides of the protection box (106), and an ultraviolet lamp tube (305) is laid on one end of the trapezoidal frame (304). The ultraviolet lamp tube (305) can reduce the distance between the ultraviolet lamp tube (305) and the polyester blended fabric through the convex pad of the trapezoidal frame (304).
Citation Information
Patent Citations
Spinning device for antibacterial modified polyester blended fabric
CN211446077U