Anti-radiation antibacterial knitting yarn
By setting an antibacterial core layer and radiation-proof layer in the yarn, and using the combination of metal fibers and reinforced yarn, the problem of radiation-proof fabrics being susceptible to bacteria is solved, achieving a lasting radiation-proof and antibacterial effect, and enhancing the stability and strength of the yarn.
Patent Information
- Application Number
- CN202422035815.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-21
- Publication Date
- 2025-07-25
- Estimated Expiration
- 2034-08-21
AI Technical Summary
The coating of existing radiation-proof fabrics is susceptible to bacterial growth, resulting in a decrease in radiation-proof ability and failing to achieve a lasting antibacterial effect.
Antibacterial yarn is used to form an antibacterial core layer, and the radiation-proof yarn is wrapped outside to form a radiation-proof layer, and reinforcement yarn is set between the two. The antibacterial yarn is made of antibacterial polyester and nylon fibers and twisted. The radiation-proof yarn is composed of metal fiber core yarn and cotton fiber outscrubbing yarn. The reinforcement yarn is made of aramid single filament to achieve the double anti-radiation and antibacterial effect of the yarn.
It achieves a lasting radiation-proof and antibacterial effect, enhances the stability and strength of the yarn, and avoids the reduction in radiation-proof ability of the coating due to mold.
Smart Images

Figure CN223150732U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of yarns, and more specifically, it relates to an anti-radiation antibacterial knitted yarn. Background Art
[0002] Yarns are made of various fibers and are used to make various fabrics. At present, the functions of most fabrics on the market are mainly realized by the functions of the yarns.
[0003] However, the anti-radiation fabrics in the prior art still mainly achieve the effect through coating, and the anti-radiation coating on the fabric is also affected by mildew caused by bacterial growth, resulting in the damage of the coating and thus the loss of anti-radiation ability.
[0004] Therefore, a new solution needs to be proposed to solve this problem. Summary of the Utility Model
[0005] The purpose of the utility model is to provide an anti-radiation antibacterial knitted yarn to solve the above problems.
[0006] The above technical purpose of the utility model is achieved through the following technical solutions: An anti-radiation antibacterial knitted yarn includes an antibacterial core layer formed by antibacterial yarns. An anti-radiation layer is formed by winding anti-radiation yarns outside the antibacterial core layer. A reinforcing yarn is arranged between the anti-radiation layer and the antibacterial core layer. The diameter of a single anti-radiation yarn is smaller than that of a single antibacterial yarn.
[0007] The utility model is further arranged as follows: The antibacterial yarn is formed by twisting two strands of antibacterial polyester and two strands of polyamide fiber together, and the twisting directions of the polyester fiber and the polyamide fiber are opposite.
[0008] The utility model is further arranged as follows: The antibacterial core layer is formed by combining three strands of the antibacterial yarn.
[0009] The utility model is further arranged as follows: The anti-radiation yarn includes a core yarn and an outer wrapping yarn wrapped around the core yarn. The core yarn is a metal fiber, and the outer wrapping yarn is formed by twisting cotton fibers.
[0010] The utility model is further arranged as follows: The diameter of the outer wrapping yarn is smaller than that of the core yarn.
[0011] The utility model is further arranged as follows: The reinforcing yarn is formed by combining several aramid monofilaments.
[0012] In summary, the utility model has the following beneficial effects:
[0013] An antibacterial core layer is formed by antibacterial yarns, an anti-radiation layer is formed by winding anti-radiation yarns outside, and reinforcing yarns are arranged therebetween, achieving the dual effects of anti-radiation and antibacterial. The diameter of the anti-radiation yarn is smaller than that of the antibacterial yarn, making the anti-radiation effect more prominent. The twisting directions of the antibacterial polyester and nylon fibers are opposite, enhancing the stability of the yarn. The setting of the antibacterial core layer composed of three antibacterial yarns twisted together improves the strength of the knitting yarn. The core yarn made of metal fibers can achieve an efficient anti-radiation effect. Brief Description of the Drawings
[0014] Figure 1 It is a schematic structural diagram of the present utility model.
[0015] Reference numerals: 1, antibacterial yarn; 2, anti-radiation yarn; 21, core yarn; 22, outer wrapping yarn; 3, reinforcing yarn. Detailed Description of the Embodiments
[0016] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the drawings in the embodiments of the present utility model. Obviously, the described embodiments are only a part of the embodiments of the present utility model, rather than all the embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without making creative efforts shall fall within the protection scope of the present utility model.
[0017] An anti-radiation and antibacterial knitting yarn, as Figure 1 shown, includes an antibacterial core layer formed by antibacterial yarns 1. An anti-radiation layer is formed by winding anti-radiation yarns 2 outside the antibacterial core layer. The antibacterial core layer is used to support the basic structure of the yarn, enabling the yarn to have basic functions, and can also utilize its own antibacterial property inside the yarn to inhibit the growth of bacteria on the yarn, thereby playing a role in preventing mildew. The anti-radiation layer can block the radiation in daily life, thereby playing an anti-radiation role. And since the anti-radiation function is realized by the ability of the yarn fiber itself at this time, there is no need to add an anti-radiation coating, thus reducing the influence of mildew on the anti-radiation ability of the yarn and making the anti-radiation ability of the yarn more durable. Reinforcing yarns 3 are arranged between the anti-radiation layer and the antibacterial core layer. The reinforcing yarns 3 can be used to enhance the overall structural strength of the yarn. The diameter of a single anti-radiation yarn 2 is smaller than that of a single antibacterial yarn 1. This setting can enable the antibacterial ability of the antibacterial yarn 1 to be more fully transmitted to the anti-radiation yarn 2, so that the antibacterial yarn 1 can play a certain antibacterial and bacteriostatic role on the anti-radiation yarn 2.
[0018] The antibacterial yarn 1 is formed by twisting together two strands of antibacterial polyester and two strands of nylon fiber. The antibacterial polyester is obtained by improving polyester fiber with an antibacterial treatment agent, which can release antibacterial factors during use and thus play an antibacterial role. The twisting directions of the polyester fiber and the nylon fiber are opposite. The antibacterial core layer is formed by combining three antibacterial yarns 1. The above settings can make the antibacterial yarn 1 and the antibacterial core layer have higher structural strength, thereby enabling the yarn to have a longer service life.
[0019] The radiation-proof yarn 2 includes a core yarn 21 and an outer wrapping yarn 22 wrapped around the core yarn 21. By setting the yarn in the form of a wrapped yarn, the radiation-proof yarn 2 obtains a higher basic strength, thereby further extending the service life of the yarn. The core yarn 21 is a metal fiber, specifically silver fiber, which is formed by attaching nano-silver to polyester fiber. It can not only absorb radiation in daily life to achieve the radiation-proof effect, but also release a part of nano-silver during daily use, thereby enhancing the antibacterial property of the yarn. The outer wrapping yarn 22 is formed by twisting cotton fiber. The diameter of the outer wrapping yarn 22 is smaller than the diameter of the core yarn 211. This setting can make the radiation-proof yarn 2 contain more nano-silver inside, thereby making the radiation-proof and antibacterial capabilities of the yarn more persistent.
[0020] The reinforcing yarn 3 is formed by combining several aramid monofilaments. The aramid fiber has extremely high strength, which can make the strengthening effect of the reinforcing yarn 3 on the overall strength of the yarn more obvious.
[0021] The above are only the preferred embodiments of the present invention. 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 noted 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 within the protection scope of the present invention.
Claims
1. A radiation-proof antibacterial knitted yarn, characterized in that: It includes an antibacterial core layer formed by antibacterial yarns (1), a radiation protection layer is wound outside the antibacterial core layer by radiation protection yarns (2), a reinforcing yarn (3) is arranged between the radiation protection layer and the antibacterial core layer, and the diameter of a single radiation protection yarn (2) is smaller than that of a single antibacterial yarn (1); The radiation protection yarn (2) includes a core yarn (21) and an outer wrapping yarn (22) wrapped around the core yarn (21), the core yarn (21) is a metal fiber, and the outer wrapping yarn (22) is twisted from cotton fibers.
2. The anti-radiation and antibacterial knitting yarn according to claim 1, wherein: The antibacterial yarn (1) is formed by twisting two strands of antibacterial polyester and two strands of polyamide fibers together, and the twisting directions of the antibacterial polyester and the polyamide fibers are opposite.
3. The anti-radiation and antibacterial knitting yarn according to claim 1, characterized in that: The antibacterial core layer is formed by threading three of the antibacterial yarns (1) together.
4. The anti-radiation and antibacterial knitting yarn according to claim 1, wherein: The diameter of the outer wrapping yarn (22) is smaller than that of the core yarn (21).
5. The anti-radiation antibacterial knitting yarn according to claim 1, characterized in that: The reinforcing yarn (3) is formed by threading several aramid monofilaments together.