Bacteriostatic and deodorant polyester fabric
By introducing bamboo charcoal fiber deodorant tablets and ramie fiber antibacterial tablets into the polyester cloth, the breathability and air circulation are enhanced, and the problem of poor breathability of polyester cloth is solved, and the antibacterial and deodorization effects are achieved, and the clothing is kept dry and clean.
Patent Information
- Application Number
- CN202422049296.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-23
- Publication Date
- 2025-07-11
- Estimated Expiration
- 2034-08-23
AI Technical Summary
Clothing made of polyester cloth is poorly breathable when worn, easily sweating, and sweat cannot be dissipated in time, resulting in bacterial growth and odor generation.
Deodorizing sheets made of bamboo charcoal fiber and antibacterial sheets made of ramie fiber are introduced into the polyester cloth. By setting through grooves, grooves and breathable holes on the base layer, a breathable space is formed, which enhances hygroscopicity and breathableness, and improves the air circulation effect.
Effectively avoid the stuffy feeling of clothing, timely dissipate sweat, inhibit bacterial growth and odor, keep the fabric dry, and improve antibacterial and deodorizing properties.
Smart Images

Figure CN223081164U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of textiles, and more specifically, to an antibacterial and deodorant polyester fabric. Background Art
[0002] Polyester fabric is a common chemical fiber fabric in people's daily life, mainly spun from polyester fibers, and has good wrinkle resistance, wear resistance and light resistance. Therefore, polyester fabric is widely used in the fields of clothing, luggage, home textiles, outdoor supplies, etc.
[0003] However, the air permeability of polyester fibers is relatively poor, so that the clothes made of polyester fabric will produce a stuffy feeling when worn, are easy to sweat, and the sweat produced cannot be dissipated in time through good air circulation, making the clothes made easy to be wetted by sweat and stay in a warm and humid environment for a long time, which is easy to breed bacteria and generate odors, affecting the cleanliness of the clothes.
[0004] Therefore, a new solution is needed to solve the problem that the clothes made of polyester fabric are easy to stay in a sweat-wetted environment for a long time when worn, resulting in bacteria breeding and odor generation. Summary of the Utility Model
[0005] Aiming at the deficiencies of the prior art, the purpose of the present utility model is to provide an antibacterial and deodorant polyester fabric, which improves the antibacterial and deodorant properties of the polyester fabric through a new structural setting.
[0006] The above technical purpose of the present utility model is achieved through the following technical solutions: The antibacterial and deodorant polyester fabric includes a base layer, and a plurality of through grooves are symmetrically arranged along the length direction of the base layer. A plurality of deodorant sheets are arranged on both sides of the base layer, and antibacterial sheets are arranged on the adjacent deodorant sheets along the length direction of the base layer. An air-permeable space is formed between the deodorant sheets on both sides of the base layer, the antibacterial sheets on both sides of the base layer and the through grooves. A plurality of grooves communicating with the air-permeable space are opened on the side of the deodorant sheet close to the base layer, and a plurality of air-permeable holes communicating with the air-permeable space are opened on the antibacterial sheet. The hygroscopicity and air permeability of the deodorant sheet and the antibacterial sheet are greater than those of the base layer.
[0007] The present utility model is further arranged as follows: A plurality of the deodorant sheets are symmetrically arranged on both sides of the length of a plurality of through grooves along the length direction of the base layer, and the distance between the mutually remote ends of the deodorant sheets on both sides of the length of the through groove is the same as the width of the antibacterial sheet.
[0008] The present utility model is further arranged as follows: A plurality of the antibacterial sheets and a plurality of the deodorant sheets are reciprocally stitched and fixed on both sides of the base layer through antibacterial yarns. The antibacterial sheet is made by the knitting method of a through-hole structure, and a plurality of air-permeable holes arranged in an array on the antibacterial sheet are integrally formed by the knitting method of the through-hole structure.
[0009] The present utility model is further configured as follows: The antibacterial yarn is made by helically winding a first strand of yarn around a second strand of yarn. The first strand of yarn is twisted from ramie fibers, and the second strand of yarn is twisted from polyester profiled fibers with a cross-shaped cross-section.
[0010] The present utility model is further configured as follows: The deodorant sheet is made by weaving deodorant yarn in a plain weave pattern. A plurality of grooves on the deodorant sheet are integrally formed by a hot pressing process. The deodorant yarn is made by helically winding a third strand of yarn around the second strand of yarn. The third strand of yarn is twisted from bamboo charcoal fibers.
[0011] The present utility model is further configured as follows: The base layer is made by weaving wear-resistant yarn in a plain weave pattern. The wear-resistant yarn is twisted from multiple strands of the second strand of yarn. The moisture absorption and air permeability of the deodorant yarn and the antibacterial yarn are greater than those of the wear-resistant yarn.
[0012] The present utility model is further configured as follows: The length of the deodorant sheet is the same as that of the antibacterial sheet and less than the length of the through groove. A plurality of ventilation grooves are formed on both sides of the width of the through groove and both sides of the width of the deodorant sheet respectively.
[0013] The present utility model is further configured as follows: The antibacterial sheets on both sides of the base layer are fixed at the through groove by reciprocating stitching with antibacterial yarn.
[0014] In summary, the present utility model has the following beneficial effects: Bamboo charcoal fibers have good moisture absorption, air permeability and deodorization properties. By adding a plurality of deodorant sheets made of bamboo charcoal fibers, the odor generated by the fabric can be effectively absorbed. Ramie fibers have good moisture absorption, air permeability and antibacterial properties. By adding a plurality of antibacterial sheets made of ramie fibers, the bacteria growing in the fabric can be effectively inhibited. By making the polyester fibers profiled, they obtain larger voids and surface areas, thereby improving the moisture absorption and air permeability of the polyester fibers. The air circulation effect on both sides of the fabric is improved through a plurality of interconnected ventilation holes, through grooves and ventilation spaces, avoiding the stuffy feeling when the made clothes are worn. At the same time, the moisture dissipation performance of the fabric is improved through the good air circulation effect, and the sweat absorbed in the fabric can be dissipated in time, effectively maintaining the dryness of the fabric and the skin, and avoiding the growth of bacteria and the generation of odor due to the fabric being in a warm and humid environment for a long time. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Figure 1 is a schematic structural diagram of the present utility model;
[0016] Figure 2 is an exploded view of the present utility model;
[0017] Figure 3 is a cross-sectional view of the present utility model;
[0018] Figure 4 is Figure 3 an enlarged view of location A in
[0019] Figure 5 is Figure 2 an enlarged view of location B in
[0020] Figure 6 a sectional view of the antibacterial yarn;
[0021] Figure 7 a sectional view of the deodorant yarn;
[0022] Figure 8 a sectional view of the wear-resistant yarn.
[0023] In the figure: 1, base layer; 2, through groove; 3, deodorant sheet; 4, antibacterial sheet; 5, ventilation space; 6, groove; 7, ventilation hole; 8, antibacterial yarn; 9, first strand; 10, second strand; 11, deodorant yarn; 12, third strand; 13, wear-resistant yarn; 14, ventilation groove. Detailed implementation manners
[0024] The following combines the drawings and embodiments to describe the present utility model in detail.
[0025] Embodiment: The antibacterial and deodorant polyester fabric, as shown in Figure 1 and Figure 8 includes a base layer 1. The base layer 1 is made by feeding the wear-resistant yarn 13 into an air-jet loom and weaving it in a plain weave pattern. The wear-resistant yarn 13 is formed by twisting two second strands 10 through a twisting machine. The second strand 10 is formed by twisting polyester profiled fibers with a cross-shaped cross-section through a twisting machine. The polyester profiled fibers with a cross-shaped cross-section are spun through a spinneret. By making the polyester fibers profiled, it obtains larger voids and surface areas, thereby improving the hygroscopicity and breathability of the polyester fibers. The base layer 1 made of polyester profiled fibers with a cross-shaped cross-section has certain hygroscopicity and breathability while ensuring strength.
[0026] As shown in Figure 2 , Figure 4 and Figure 7As shown, a number of rectangular through slots 2 are symmetrically provided along the length direction of the base layer 1. A number of through slots 2 are all formed by cutting through the base layer 1 with a laser cutting machine. The air permeability of the base layer 1 is improved through a number of through slots 2. On both sides of the base layer 1, a number of rectangular deodorant sheets 3 are provided. A number of deodorant sheets 3 are symmetrically arranged along the length direction of the base layer 1 on both length sides of a number of through slots 2. The deodorant yarn 11 is fed into an air-jet loom and made into a grey fabric through a plain weave method. After a number of grooves 6 are hot-pressed on one side of the grey fabric using a hot press, a number of deodorant sheets 3 are formed by cutting with a cutting machine. The deodorant yarn 11 is made by helically winding a third strand 12 around a second strand 10 through the processing technology of ring spinning. The third strand 12 is twisted with bamboo charcoal fibers by a twisting machine. Bamboo charcoal fibers have good deodorizing properties. By adding a number of deodorant sheets 3 made of a blend of bamboo charcoal fibers and polyester profiled fibers, the odor generated inside the fabric can be effectively absorbed.
[0027] As Figure 2 and Figure 6 shown, on the side of two adjacent deodorant sheets 3 along the length direction of the base layer 1 away from the base layer 1, an antibacterial sheet 4 is provided. The antibacterial sheet 4 is made by feeding the antibacterial yarn 8 into an air-jet loom and making it into a grey fabric through a leno weave method and then cutting it with a cutting machine. The antibacterial yarn 8 is made by helically winding a first strand 9 around a second strand 10 through the processing technology of ring spinning. The first strand 9 is twisted with ramie fibers by a twisting machine. Ramie fibers have good antibacterial properties. By adding a number of antibacterial sheets 4 made of a blend of ramie fibers and polyester profiled fibers, the bacteria growing inside the fabric can be effectively inhibited, so that the fabric made after adding a number of deodorant sheets 3 and antibacterial sheets 4 has certain antibacterial and deodorizing properties.
[0028] As Figures 1-6 shown, the distance between the mutually remote ends of the deodorant sheets 3 on both length sides of the through slot 2 is the same as the width of the antibacterial sheet 4. A number of grooves 6 on one side of the deodorant sheet 3 are symmetrically arranged along the width direction of the base layer 1. After the side of the deodorant sheet 3 with grooves 6 is abutted against the base layer 1, a number of antibacterial sheets 4 and a number of deodorant sheets 3 are reciprocally sewn and fixed on both sides of the base layer 1 using the antibacterial yarn 8 with a sewing machine. A number of deodorant sheets 3 are arranged in an array on both length sides of a number of through slots 2, so that an air permeable space 5 with a triangular cross-section is formed between the deodorant sheets 3 on both sides of the base layer 1 and the antibacterial sheets 4 on both sides of the base layer 1 and the through slot 2. The air permeable space 5 is mutually communicated with a number of grooves 6. A number of air permeable holes 7 mutually communicated with the air permeable space 5 are arrayed on the antibacterial sheet 4. A number of air permeable holes 7 are integrally formed on the antibacterial sheet 4 through the leno weave method. The air circulation effect on both sides of the fabric is improved through a number of mutually communicated air permeable holes 7, grooves 6 and air permeable space 5, avoiding the stuffy feeling when the made clothes are worn.
[0029] As Figure 1 、 Figure 4and Figure 5 As shown, both ramie fiber and bamboo charcoal fiber have good hygroscopicity and air permeability, making the hygroscopicity and air permeability of the deodorant sheet 3 and the antibacterial sheet 4 greater than those of the base layer 1. This enables several deodorant sheets 3 and antibacterial sheets 4 to quickly absorb the sweat produced by the skin. The unique porous structure of ramie fiber and bamboo charcoal fiber is conducive to air circulation. After improving the air circulation effect on both sides of the fabric through several interconnected air vents 7, grooves 6 and air spaces 5, the deodorant sheet 3 and the antibacterial sheet 4 can timely disperse the absorbed moisture, effectively maintaining the dryness of the fabric and the skin, thereby avoiding the growth of bacteria and the generation of odors when the fabric is in a warm and humid environment for a long time, and further improving the antibacterial and deodorant properties of the fabric.
[0030] As Figures 1-4 shown, the length of the deodorant sheet 3 is the same as that of the antibacterial sheet 4 and less than the length of the through groove 2, so that two rectangular cross-section air vents 14 are formed on both sides of the width of the through groove 2 and the width of the deodorant sheet 3 respectively. The air permeability of the fabric is further improved through several air vents 14. After the parts of the antibacterial sheets 4 on both sides of the base layer 1 at the through groove 2 are reciprocally stitched and fixed by antibacterial yarns 8, the antibacterial sheets 4 on both sides of the base layer 1 are deformed and bent in the direction of approaching each other. By several bent antibacterial sheets 4, the contact area between the fabric and the skin during wearing is reduced, thereby increasing the gap between the fabric and the skin and further improving the air permeability feeling of the fabric during wearing.
[0031] The above is only the preferred embodiment of the present invention, and the protection scope of the present invention is not limited to the above embodiments. All technical solutions falling within the idea of the present invention belong to the protection scope of the present invention. It should be pointed out that for those of ordinary skill in the art, without departing from the principle of the present invention, several improvements and refinements should also be regarded as the protection scope of the present invention.
Claims
1. Antibacterial and deodorant polyester fabric, comprising a base layer (1), characterized in that: The base layer (1) is symmetrically provided with a plurality of through grooves (2) along its length direction. A plurality of deodorant tablets (3) are arranged on both sides of the base layer (1). Bacteriostatic tablets (4) are arranged on the adjacent deodorant tablets (3) along the length direction of the base layer (1). An air-permeable space (5) is formed between the deodorant tablets (3) on both sides of the base layer (1), the bacteriostatic tablets (4) on both sides of the base layer (1), and the through grooves (2). A plurality of grooves (6) communicating with the air-permeable space (5) are formed on one side of the deodorant tablet (3) close to the base layer (1). A plurality of air-permeable holes (7) communicating with the air-permeable space (5) are formed on the bacteriostatic tablet (4). The hygroscopicity and air permeability of the deodorant tablet (3) and the bacteriostatic tablet (4) are greater than those of the base layer (1).
2. The antibacterial and deodorant polyester fabric according to claim 1, wherein: A plurality of the deodorant tablets (3) are symmetrically arranged on both length sides of the plurality of through grooves (2) along the length direction of the base layer (1). The distance between the mutually remote ends of the deodorant tablets (3) on both length sides of the through groove (2) is the same as the width of the bacteriostatic tablet (4).
3. The antibacterial and deodorant polyester fabric according to claim 1, wherein: A plurality of the bacteriostatic tablets (4) and a plurality of the deodorant tablets (3) are reciprocally stitched and fixed on both sides of the base layer (1) through bacteriostatic yarns (8). The bacteriostatic tablet (4) is made by knitting through-hole tissues with the bacteriostatic yarns (8). A plurality of air-permeable holes (7) arranged in an array on the bacteriostatic tablet (4) are integrally formed by knitting through-hole tissues.
4. The antibacterial and deodorant polyester fabric according to claim 3, characterized in that: The bacteriostatic yarn (8) is made by helically winding a first strand (9) around a second strand (10). The first strand (9) is twisted from ramie fibers. The second strand (10) is twisted from a polyester profiled fiber with a cross section in the shape of a cross.
5. The antibacterial and deodorant polyester fabric according to claim 4, wherein: The deodorant tablet (3) is made by knitting plain tissues with a deodorant yarn (11). A plurality of grooves (6) on the deodorant tablet (3) are integrally formed by a hot pressing process. The deodorant yarn (11) is made by helically winding a third strand (12) around the second strand (10). The third strand (12) is twisted from bamboo charcoal fibers.
6. The antibacterial and deodorant polyester fabric according to claim 5, wherein: The base layer (1) is made by knitting plain tissues with wear-resistant yarns (13). The wear-resistant yarn (13) is twisted from a plurality of second strands (10). The hygroscopicity and air permeability of the deodorant yarn (11) and the bacteriostatic yarn (8) are greater than those of the wear-resistant yarn (13).
7. The antibacterial and deodorant polyester fabric according to claim 1, characterized in that: The length of the deodorant tablet (3) is the same as that of the bacteriostatic tablet (4) and less than the length of the through groove (2). A plurality of air-permeable grooves (14) are formed respectively between the width sides of the through groove (2) and the width sides of the deodorant tablet (3).