Mint viscose fiber mask cloth structure
By employing a three-layer structure design consisting of an ice silk fiber layer, a mint fiber composite layer, and a meltblown sealing layer, the problems of non-woven fabric masks in terms of user experience and antibacterial performance are solved, achieving an improvement in both cooling comfort and antibacterial effects.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- 杭州恒邦实业有限公司
- Filing Date
- 2025-04-15
- Publication Date
- 2026-04-28
AI Technical Summary
Existing non-woven fabric masks do not perform well in terms of user experience and antibacterial properties, and their functions are relatively limited.
It adopts a three-layer structure design, consisting of an ice silk fiber layer, a peppermint fiber composite layer, and a meltblown sealing layer. The ice silk fiber layer provides a cooling sensation and moisture absorption, the peppermint fiber layer provides a cooling and antibacterial effect, and the meltblown sealing layer seals the peppermint fiber particles to reduce the evaporation of the essence.
It achieves a cool and refreshing user experience and a good antibacterial effect, while reducing the evaporation of the essence and improving the overall performance of the mask.
Smart Images

Figure CN224166612U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of facial mask fabric technology, and in particular to a menthol ice silk fiber facial mask fabric structure. Background Technology
[0002] Facial mask sheets are typically made of non-woven fabric, also known as non-woven cloth. Non-woven fabric is composed of oriented or randomly arranged fibers and is called cloth because it resembles fabric in appearance and possesses some of its properties. Non-woven fabrics offer numerous advantages, including moisture resistance, breathability, flexibility, lightweight, non-flammability, easy decomposition, non-toxicity, non-irritation, a wide range of colors, low price, and recyclability. They are simple to manufacture, inexpensive, and widely used.
[0003] Non-woven fabrics have a wide range of applications, commonly used in face masks, wet wipes, mask base materials, and clothing linings. When used in face mask sheets, non-woven fabrics have strong requirements for water absorption and moisture retention. However, for face mask sheets, ordinary non-woven fabrics have relatively limited functionality, performing poorly in terms of user comfort and antibacterial properties. Utility Model Content
[0004] In order to solve the above-mentioned problems in the prior art, the present invention provides a menthol ice silk fiber facial mask fabric structure that is cool, refreshing, and has good antibacterial effect.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A menthol ice silk fiber facial mask fabric structure includes an ice silk fiber layer, a menthol fiber composite layer, and a meltblown sealing layer arranged sequentially. The menthol fiber composite layer includes a viscose fiber layer and menthol fiber microparticles. The viscose fiber layer has a plurality of arrayed cavities on the side facing the meltblown sealing layer. The menthol fiber microparticles fill the cavities, and the opening ends of the cavities are sealed by the meltblown sealing layer. The ice silk fiber layer, the menthol fiber composite layer, and the meltblown sealing layer are hydroentangled.
[0007] By employing the above technical solution: when the mask sheet is used with water or essence, the ice silk fiber layer directly contacts the skin, providing a basic cooling sensation and moisture absorption and breathability, reducing the chance of breakouts; the mint fiber microparticles provide a continuous cooling and refreshing sensation, while also slowly releasing menthol, resulting in good antibacterial and bacteriostatic effects; the outermost layer uses a meltblown sealing layer to enclose the mint fiber microparticles within concave cavities, and because the fiber structure of the meltblown sealing layer is denser, the mask essence is less likely to evaporate. Through the three-layer gradient design of the ice silk fiber layer, the mint fiber composite layer, and the meltblown sealing layer, a synergistic effect of moisture absorption, slow release, and sealing is achieved.
[0008] Preferably, the outer surface of the ice silk fiber layer has S-shaped grooves. The S-shaped grooves of the ice silk fiber layer enhance surface adhesion and elasticity, while the drainage holes promote the directional penetration of the essence.
[0009] Preferably, the ice silk fiber layer has an array of channeling holes. These holes increase breathability and enhance the flow and interaction between the essence and the skin.
[0010] Preferably, the ice silk fiber layer is made of Lyocell ice silk fiber, and the weight of the ice silk fiber layer is configured as 5-12 g / m². Lyocell ice silk fiber has a better skin-friendly feel, and this type of fiber also has good antibacterial effects.
[0011] Preferably, the cavity is configured as an isosceles triangular cavity, with the apex angle of each isosceles triangular cavity facing the same direction. Each isosceles triangular cavity has a guide slope on its base that is inclined to connect with the surface of the viscose fiber layer, and each isosceles triangular cavity has drainage micropores on its base surface. When peppermint fiber microparticles (mixed in a dispersant) are roller-coated onto the surface of the viscose fiber layer, the cavity is configured as an isosceles triangle, and the roller coating direction is the same as the direction of the apex angle of the isosceles triangle. Therefore, during the roller coating process, the peppermint fiber microparticles will enter the isosceles triangular cavity along the guide slope and be better retained in the cavity due to the obstruction of the corresponding sidewalls of the two sides. Finally, during hydroentangling, the dispersant remaining in the peppermint fiber microparticles is washed away by the hydroentangling process.
[0012] Preferably, the weight of the mint fiber composite layer is 10-14 g / m², the weight of the meltblown sealing layer is 5-10 g / m², and the total weight of the mask fabric is 20-30 g / m². By rationally configuring the weight of each layer, breathability and shrinkage capacity are balanced.
[0013] Preferably, the meltblown sealing layer is made of polypropylene. The meltblown sealing layer made of polypropylene forms a physical barrier, slowing down the evaporation of the mask essence.
[0014] Therefore, the present invention has the beneficial effects of providing a cooling and refreshing sensation and having a good antibacterial effect. Attached Figure Description
[0015] Figure 1 This is a schematic diagram of one structure of the present utility model.
[0016] Figure 2 for Figure 1 Another perspective view.
[0017] Figure 3 for Figure 1 A sectional view.
[0018] Figure 4 for Figure 3A magnified view of a portion of point A in the middle.
[0019] Figure 5 for Figure 1 Exploded view.
[0020] Figure 6 for Figure 5 Another perspective view. Detailed Implementation
[0021] To make the technical problems to be solved, the technical solutions, and the beneficial technical effects of this invention clearer, the invention will be further described in detail below with reference to the accompanying drawings and several exemplary embodiments. It should be understood that the specific embodiments described herein are for illustrative purposes only and are not intended to limit the scope of protection of this invention.
[0022] It should be understood that the terms "first," "second," etc., used herein are for descriptive purposes only and should not be construed as indicating or implying relative importance, nor should they be construed as implicitly specifying the number of technical features indicated. Features specified as "first" or "second" may expressly or implicitly indicate that at least one of those features is included.
[0023] like Figures 1-6 The illustrated structure of a menthol ice silk fiber facial mask fabric includes, sequentially distributed layers: an ice silk fiber layer 1, a menthol fiber composite layer 2, and a meltblown sealing layer 3. The menthol fiber composite layer 2 comprises a viscose fiber layer 20 and menthol fiber microparticles 21. The viscose fiber layer 20 has a plurality of arrayed cavities 200 on the side facing the meltblown sealing layer 3. The menthol fiber microparticles 21 fill the cavities 200, and the open ends of the cavities 200 are sealed by the meltblown sealing layer 3. The ice silk fiber layer 1, the menthol fiber composite layer 2, and the meltblown sealing layer 3 are hydroentangled. The meltblown sealing layer 3 is made of polypropylene.
[0024] The outer surface of the ice silk fiber layer 1 is provided with S-shaped arrayed grooves 10, and the ice silk fiber layer 1 is provided with arrayed drainage holes 11. In some embodiments, the ice silk fiber layer 1 is made of Lyocell ice silk fiber, and the basis weight of the ice silk fiber layer 1 is 5-12 g / m², the basis weight of the mint fiber composite layer 2 is 10-14 g / m², the total basis weight of the meltblown sealing layer 3 is 5-10 g / m², and the total basis weight of the mask fabric is 20-30 g / m². For example, the basis weight of the ice silk fiber layer 1 is 8 g / m², the basis weight of the mint fiber composite layer 2 is 12 g / m², the total basis weight of the meltblown sealing layer 3 is 5 g / m², and the total basis weight of the mask fabric is 25 g / m².
[0025] like Figure 4 , Figure 5 and Figure 6As shown, the concave cavity 200 is configured as an isosceles triangular cavity 201, with the apex of each isosceles triangular cavity 201 facing the same direction. The bottom edge of each isosceles triangular cavity 201 is provided with a guide slope 202 that is inclinedly connected to the surface of the viscose fiber layer 20, and the bottom surface of each isosceles triangular cavity 201 is provided with drainage micropores 203.
[0026] Referring to the accompanying drawings, the principle of this invention is as follows: An ice silk fiber layer 1 and a viscose fiber layer 20 are prepared separately. The surface of the ice silk fiber layer 1 is rolled to form S-shaped arrays of grooves 10 and guide holes 11. The surface of the viscose fiber layer 20 is rolled to form cavities 200. Peppermint fiber particles 21 are mixed with a dispersant and then rolled onto the cavity-shaped surface of the viscose fiber layer 20, allowing the peppermint fiber particles to enter the cavities. Then, on the cavity-shaped side of the viscose fiber layer 20, polypropylene material is melt-blown onto the surface of the viscose fiber layer 20 using a melt-blowing process to form a melt-blown sealing layer, sealing the openings of the cavities. Finally, the ice silk fiber layer 1 and the peppermint fiber composite layer 2 (with a melt-blown sealing layer 3 on its surface) are combined using a hydroentangling process. The hydroentangling process washes away the dispersant remaining in the peppermint fiber particles.
[0027] This type of mask sheet uses a three-layer gradient design consisting of an ice silk fiber layer, a mint fiber composite layer, and a meltblown sealing layer to achieve a synergistic effect of moisture absorption, slow release, and sealing: the S-shaped concave texture of the ice silk fiber layer enhances surface adhesion and elasticity, while the diversion holes promote the directional penetration of the essence; the mint fiber microparticles and ice silk fibers work together to exert a cooling and antibacterial effect; and the meltblown sealing layer reduces the evaporation loss of the essence.
[0028] In the description of this invention, it should be understood that the directions or positional relationships indicated by up, down, left, right, inner end, outer end, one end, and the other end are based on the orientation or positional relationships shown in the accompanying drawings. They are only for the purpose of more clearly describing the technical solutions of this invention, and are not intended to indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and should not be construed as limiting this invention.
[0029] Although specific embodiments of the invention have been described in detail herein, they are given for illustrative purposes only and should not be construed as limiting the scope of the invention. Various substitutions, alterations, and modifications can be conceived without departing from the spirit and scope of the invention.
Claims
1. A menthol ice silk fiber facial mask fabric structure, characterized in that, It includes an ice silk fiber layer (1), a mint fiber composite layer (2), and a meltblown sealing layer (3) distributed in sequence. The peppermint fiber composite layer (2) includes a viscose fiber layer (20) and peppermint fiber microparticles (21). The viscose fiber layer (20) has a plurality of arrayed cavities (200) on the side facing the meltblown sealing layer (3). The peppermint fiber microparticles (21) fill the cavities (200). The opening end of the cavity (200) is sealed by the meltblown sealing layer (3). The ice silk fiber layer (1), the mint fiber composite layer (2), and the meltblown sealing layer (3) are composited by hydroentanglement.
2. The peppermint ice silk fiber facial mask fabric structure according to claim 1, characterized in that, The outer surface of the ice silk fiber layer (1) is provided with grooves (10) arranged in an S-shaped array.
3. The peppermint ice silk fiber facial mask fabric structure according to claim 2, characterized in that, The ice silk fiber layer (1) is provided with an array of flow guide holes (11).
4. The peppermint ice silk fiber facial mask fabric structure according to claim 1, 2, or 3, characterized in that, The ice silk fiber layer (1) is made of Lyocell ice silk fiber, and the weight configuration of the ice silk fiber layer (1) is 5-12 g / m².
5. The peppermint ice silk fiber facial mask fabric structure according to claim 1, 2, or 3, characterized in that, The concave cavity (200) is configured as an isosceles triangular cavity (201), with the apex of each isosceles triangular cavity (201) facing the same direction. Each isosceles triangular cavity (201) has a guide slope (202) on its bottom edge that is inclined to connect with the surface of the viscose fiber layer (20), and each isosceles triangular cavity (201) has a drainage micropore (203) on its bottom surface.
6. The peppermint ice silk fiber facial mask fabric structure according to claim 4, characterized in that, The weight of the peppermint fiber composite layer (2) is 10-14 g / m², the weight of the meltblown sealing layer (3) is 5-10 g / m², and the weight of the mask fabric is 20-30 g / m².
7. The peppermint ice silk fiber facial mask fabric structure according to claim 1, characterized in that, The meltblown sealing layer (3) is made of polypropylene.