Serum protein active water film vacuum fresh-keeping glass bottle packaging device
The vacuum-sealed and sandwich-designed serum protein active water film vacuum preservation glass bottle packaging device solves the problems of easy oxidation and light-induced deterioration of serum protein active water film, achieving product stability and safety, and improving user experience and cost-effectiveness.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NEW FEIZI (SHANDONG) BIOTECHNOLOGY CO LTD
- Filing Date
- 2025-05-14
- Publication Date
- 2026-05-05
AI Technical Summary
Existing serum protein active water film packaging is prone to oxidation and deterioration when exposed to light, and ordinary bottle caps have poor sealing properties, which can easily lead to air ingress and contamination.
Design a vacuum preservation glass bottle packaging device for serum protein active water film, including a vacuum-sealed storage component, a pumping component, and a coating component. The device uses opaque glass bottles and combines a sandwich design, quantitative pumping, and sealing components to reduce the risk of oxidation and contamination, and ensure product stability and safe use.
It effectively prevents oxidation and light-induced deterioration, reduces the risk of contamination, extends shelf life, improves user experience and safety, and ensures even application and economical use of the product.
Smart Images

Figure CN224198201U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of cosmetic packaging, and in particular to a vacuum preservation glass bottle packaging device for serum protein active water film. Background Technology
[0002] Serum protein active water film is a product with bioactive and moisturizing functions. Its main component is serum protein, which has the following characteristics: easy to oxidize. Serum protein active water film contains a variety of active ingredients, which are prone to oxidation when exposed to air. Oxidation not only reduces the efficacy of the product, but may also cause the product to deteriorate. It is not sensitive to light. Some active ingredients in serum protein active water film are extremely sensitive to light. Ultraviolet rays and strong light will accelerate the decomposition of active ingredients and reduce their activity. Therefore, protecting the product from the effects of light is the key to ensuring its quality and efficacy.
[0003] Currently, serum protein active water films on the market are usually packaged in ordinary plastic or glass bottles. Ordinary bottle caps have poor sealing properties, which can easily allow air to enter the bottle and promote oxidation. Existing packaging materials have limited effect on blocking oxygen and cannot fully protect the product. Transparent or semi-transparent packaging materials cannot effectively block light, especially ultraviolet rays. During use, users frequently open the bottle cap, which can lead to fingers touching the bottle opening and increase the risk of contamination. After repeated use, bacteria or other contaminants may accumulate at the bottle opening and inside the bottle, affecting the hygiene and safety of the product. Utility Model Content
[0004] To address the issues of easy oxidation and light-induced deterioration of serum protein active water films and to reduce the entry of external contaminants into the packaging, this invention provides a vacuum preservation glass bottle packaging device for serum protein active water films.
[0005] The present invention provides a vacuum preservation glass bottle packaging device for serum protein active water film, which adopts the following technical solution:
[0006] A vacuum preservation glass bottle packaging device for serum protein active water film includes a storage component and a pumping component. The pumping component is connected to the storage component and extracts the contents stored in the storage component. The pumping component is externally connected to a coating component. A sealing component is installed on the storage component and the coating component, and the sealing component controls the opening and closing of the bottle.
[0007] The storage component is designed to be vacuum-sealed, significantly reducing the contact between airborne oxygen and the serum protein active water film, lowering the risk of oxidation, and extending the product's shelf life. The pumping component can precisely control the dosage extracted each time, avoiding waste and ensuring consistent dosage each time. The pumping mechanism reduces the chance of users' fingers directly touching the product, reducing the risk of contamination and ensuring product hygiene. The external application component is designed for direct use, reducing intermediate operation steps and allowing users to easily apply the product while avoiding contact between fingers and the inside of the bottle, reducing contamination and improving the user experience.
[0008] Furthermore, the storage component includes a bottle body and an inner liner, the inner liner being installed inside the bottle body, and a sandwich layer being provided between the bottle body and the inner liner.
[0009] The interlayer design increases the overall structural strength of the bottle, helps prevent breakage and leakage, improves the durability of the packaging, absorbs external vibrations and impacts, reduces the impact on the inner liner, protects the stability of the contents, and can be designed to have heat preservation or insulation functions to help keep the product in a suitable temperature range for use, thus improving the user experience.
[0010] Furthermore, a filling layer is provided in the interlayer between the bottle body and the inner liner, and a base is provided at the bottom of the bottle body.
[0011] The base provides more stable support, increases the stability of the bottle, prevents tipping, and improves safety. The base design allows users to place the bottle stably on any surface, enhancing ease of use. The combination of the filling layer and the base makes the overall structure of the bottle more robust and durable, reducing the risk of damage and extending its service life.
[0012] Furthermore, the pumping assembly includes a pump pipe, a pump body, a pump head, and a nozzle. The pump pipe is disposed within the storage assembly and is connected to the nozzle through the pump body. A pressurization extraction assembly is disposed within the pump body, and the pump head is mechanically connected to the pump body. The pump head is connected to and controls the pressurization extraction assembly.
[0013] Furthermore, a check valve is installed inside the pump pipe, and the check valve is a quantitative bidirectional check valve body.
[0014] The check valve's bidirectional nature effectively prevents ambient air and contaminants from entering the storage components, protecting the purity and activity of the contents. The metered pump ensures that the amount of liquid used each time is appropriate, reducing unnecessary waste and saving product usage.
[0015] Furthermore, a permeation groove is connected to the nozzle, and a baffle plate is movably disposed at the port of the nozzle.
[0016] The permeation channel helps the liquid distribute evenly after spraying, ensuring uniform coverage of the target surface with each use and improving product effectiveness. The barrier helps the nozzle evenly disperse the sprayed material. The movable barrier can effectively prevent liquid leakage when not in use, improving safety. Especially during transportation or storage, the barrier can close the nozzle after use to prevent external contaminants from entering the nozzle, maintaining the purity of the liquid and the hygiene of the nozzle.
[0017] Furthermore, the coating component includes a penetrating layer and a coating layer, the penetrating layer being connected and disposed within the penetrating groove, and the penetrating layer and the coating layer being pressed and rubbed together.
[0018] When the liquid passes through the penetrating layer and enters the coating layer, the coating layer applies the liquid evenly to the target surface through friction and compression with the penetrating layer. This ensures a smoother and more uniform coating process and avoids uneven distribution of the liquid on the surface.
[0019] Furthermore, the coating layer is wrapped around a roller, which is rotatably mounted in a groove. The roller is connected to a pressing block, which controls the roller to squeeze and extend toward the coating layer.
[0020] The coating layer is wrapped around the roller, which applies pressure evenly to the coating surface by rolling, ensuring uniform coating and avoiding problems such as uneven coating or missed areas. The roller's rolling and the precise control of the pressing block work together to achieve uniform coating in a short time, greatly improving coating efficiency.
[0021] Furthermore, the sealing assembly includes a bottle cap, which is controlled to open and close and is installed on the outside of the application assembly. A sealing strip is provided on one side of the bottle cap, and a scraper is provided on the other side.
[0022] The sealing strip ensures a tight seal between the cap and the applicator, preventing leakage of the liquid during storage or transportation. The sealing strip effectively prevents air from entering, maintaining the quality and stability of the applicator liquid. The tight seal isolates the liquid from the external environment, preventing oxidation or contamination and extending the liquid's lifespan. The scraper on one side of the cap effectively removes excess liquid from the applicator surface after use, keeping the applicator clean and reducing waste.
[0023] Furthermore, the bottle cap is connected to the outside of the application assembly via a latch for control of opening and closing.
[0024] In summary, this utility model has the following beneficial technical effects:
[0025] 1. The interlayer and filling layer between the bottle body and the inner liner help to insulate and protect the contents, enhance the preservation effect, ensure the stability of the serum protein active water film and long-term preservation, and vacuum preservation: the vacuum design prevents oxygen from entering, slows down the oxidation process, and maintains the freshness and activity of the product.
[0026] 2. The combination of pump pipe, pump body, pump head and nozzle makes the extraction process efficient and precise. The pressurized extraction component ensures that the contents are evenly pumped to the application component. The quantitative two-way check valve body ensures that the extraction process is smooth, avoids liquid backflow or leakage, and improves the efficiency of use.
[0027] 3. The frictional connection between the penetrating layer and the coating layer ensures uniform liquid application. The design of the roller and the pressing block allows users to adjust the pressure to achieve the best coating effect. The rolling function of the roller makes the coating process smooth and even, improving the user experience.
[0028] 4. The design of the bottle cap and sealing strip ensures a good seal, preventing liquid leakage and evaporation, maintaining product quality and efficacy. The bottle cap is controlled by a latch, providing a simple and quick user experience and making it convenient for users to operate.
[0029] 5. The scraper effectively removes excess liquid, keeps the application components clean, reduces waste, and protects the application components and contents from external environmental influences through a sealed and sandwich design, extending service life.
[0030] 6. The overall design simplifies the operation process, making users feel comfortable and convenient during use, and saving resources: precise extraction and application avoid excessive material waste and improve economic efficiency. Attached Figure Description
[0031] Figure 1 This is a schematic diagram of the external structure of this utility model;
[0032] Figure 2 for Figure 1 Another perspective on the structure of the land;
[0033] Figure 3 This is a cross-sectional view of the center plane of this utility model.
[0034] Figure 4 This is a side view of the central plane of the present invention.
[0035] Explanation of reference numerals in the attached figures:
[0036] 1. Storage component; 11. Bottle body; 111. Base; 12. Inner liner; 13. Filling layer; 2. Pumping component; 21. Pump pipe; 211. Check valve; 22. Pump body; 23. Pump head; 24. Nozzle; 241. Permeation tank; 242. Barrier plate; 3. Coating component; 31. Permeation layer; 32. Coating layer; 321. Roller; 33. Roller groove; 34. Pressing block; 4. Sealing component; 41. Bottle cap; 42. Sealing strip; 43. Scraper strip; 44. Locking buckle. Detailed Implementation
[0037] The following will be combined with the appendix Figures 1-4 The technical solutions in the embodiments of this utility model are clearly and completely described herein. Obviously, the described embodiments are only some embodiments of this utility model, and not all embodiments. Based on the embodiments of this utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of this utility model.
[0038] In the description of this utility model, it should be understood that the terms "longitudinal", "lateral", "up", "down", "front", "back", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0039] Example 1:
[0040] This utility model discloses a vacuum preservation glass bottle packaging device with serum protein active water film, referring to... Figure 1 It includes a storage component 1 and a pumping component 2. The pumping component 2 is connected to the storage component 1 and extracts the memory from the storage component 1. The pumping component 2 is externally connected to an applicator 3. A sealing component 4 is installed on the storage component 1 and the applicator 3. The sealing component 4 controls the opening and closing of the device.
[0041] Storage component 1 is designed to be vacuum sealed, using an opaque glass bottle, or with a light-blocking coating applied to the outer layer of the glass bottle to protect the contents from light and maintain the stability of the active ingredients.
[0042] Example 2:
[0043] Based on Example 1, the following is added:
[0044] Reference Figure 3 and Figure 4The storage component 1 includes a bottle body 11 and an inner liner 12. The inner liner 12 is installed inside the bottle body 11, and a sandwich layer is provided between the bottle body 11 and the inner liner 12.
[0045] The interlayer can act as a buffer zone, further isolating the products inside the liner from the external environment, effectively reducing oxygen infiltration and lowering the risk of oxidation.
[0046] The interlayer can be designed as a vacuum layer, which can significantly enhance antioxidant properties and ensure that the product maintains the integrity of its active ingredients during storage.
[0047] The interlayer can be selectively filled with light-blocking materials or designed as an opaque layer to provide additional light protection and improve the overall light-blocking effect.
[0048] The sandwich design also helps to insulate against external heat, stabilize the internal temperature, and further protect the quality of the product.
[0049] Reference Figure 3 and Figure 4 A filling layer 13 is provided in the interlayer between the bottle body 11 and the inner liner 12, and a base 111 is provided at the bottom of the bottle body 11.
[0050] The filler layer 13 is made of a semi-transparent material, which effectively isolates light and enhances the aesthetics of the packaging.
[0051] The filler layer 13 uses a material with a large specific heat capacity, which facilitates freezing and preservation, and extends the product's shelf life.
[0052] Reference Figure 3 and Figure 4 The pumping assembly 2 includes a pump pipe 21, a pump body 22, a pump head 23, and a nozzle 24. The pump pipe 21 is disposed in the storage assembly 1. The pump pipe 21 is connected to the nozzle 24 through the pump body 22. A pressurized extraction assembly is disposed in the pump body 22. The pump head 23 is mechanically connected to the pump body 22. The pump head 23 is connected to and controls the pressurized extraction assembly.
[0053] Reference Figure 3 and Figure 4 The pump pipe 21 is equipped with a check valve 211, which is a quantitative bidirectional check valve body.
[0054] The check valve 211 includes a tube body and a floating ball. The density of the floating ball is slightly greater than that of the contents. The tube body has narrow openings at both ends, and the diameter of the narrow openings is smaller than that of the floating ball.
[0055] By pressing the pump head 23 to extract the contents, the small ball moves and presses against the upper end of the tube during the flow of the contents, limiting the pumping volume. After the pumping stops, the small ball falls back to the lower end of the tube, reducing backflow.
[0056] Reference Figure 3 A permeation groove 241 is connected to the nozzle 24, and a baffle plate 242 is movably disposed at the port of the nozzle 24.
[0057] After being sprayed from the nozzle 24, the coating is blocked by the barrier plate 242 and then dispersed into the penetration tank 241, improving the uniformity of the coating.
[0058] Reference Figure 3 and Figure 4 The coating component 3 includes a penetrating layer 31 and a coating layer 32. The penetrating layer 31 is connected to and disposed in the penetrating groove 241. The penetrating layer 31 and the coating layer 32 are pressed and contacted with each other and are rubbed together.
[0059] The penetrating layer 31 and the coating layer 32 are made of sponge material or nano-absorbent material.
[0060] Reference Figure 2 The coating layer 32 is wrapped around the roller 321, which is rotatably installed in the roller groove 33. The roller 321 is connected to a pressing block 34, which controls the roller 321 to squeeze and extend toward the coating layer 32.
[0061] The roller 321 is spring-loaded and has a undulating roller at one end.
[0062] Reference Figure 2 The sealing assembly 4 includes a bottle cap 41, which is installed on the outside of the applicator 3 to control opening and closing. A sealing strip 42 is provided on one side of the bottle cap 41, and a scraper 43 is provided on the other side.
[0063] The bottle cap 41 is hinged to the roller groove 33 and swings open and closes.
[0064] Reference Figure 2 and Figure 4 The bottle cap 41 is connected to the outside of the application component 3 by means of a latch 44.
[0065] The above description is merely an example and illustration of the structure of this utility model. Those skilled in the art can make various modifications or additions to the specific embodiments described or use similar methods to replace them, as long as they do not deviate from the structure of the utility model or exceed the scope defined in the claims, they should all fall within the protection scope of this utility model.
Claims
1. A vacuum preservation glass bottle packaging device for serum protein active water film, comprising a storage component (1) and a pumping component (2), wherein the pumping component (2) is connected to the storage component (1) and extracts the contents stored in the storage component (1), characterized in that: The pumping assembly (2) is externally connected to the coating assembly (3); A sealing component (4) is installed on the storage component (1) and the application component (3), and the sealing component (4) controls the opening and closing of the installation.
2. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 1, characterized in that: The storage component (1) includes a bottle body (11) and an inner liner (12), the inner liner (12) being installed inside the bottle body (11), and a sandwich layer being provided between the bottle body (11) and the inner liner (12).
3. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 2, characterized in that: A filling layer (13) is provided in the interlayer between the bottle body (11) and the inner liner (12), and a base (111) is provided at the bottom of the bottle body (11).
4. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 1, characterized in that: The pumping assembly (2) includes a pump pipe (21), a pump body (22), a pump head (23), and a nozzle (24). The pump pipe (21) is disposed in the storage assembly (1). The pump pipe (21) is connected to the nozzle (24) through the pump body (22). A pressurized extraction assembly is disposed in the pump body (22). The pump body (22) is mechanically connected to the pump head (23). The pump head (23) is connected to and controls the pressurized extraction assembly.
5. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 4, characterized in that: The pump pipe (21) is equipped with a check valve (211), which is a quantitative bidirectional check valve body.
6. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 5, characterized in that: A permeation groove (241) is connected to the nozzle (24), and a baffle plate (242) is movably disposed at the port of the nozzle (24).
7. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 6, characterized in that: The coating component (3) includes a penetrating layer (31) and a coating layer (32). The penetrating layer (31) is connected to and disposed in the penetrating groove (241). The penetrating layer (31) and the coating layer (32) are pressed and contacted with each other and rubbed together.
8. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 7, characterized in that: The coating layer (32) is wrapped around the roller (321), which is rotatably mounted in the roller groove (33). The roller (321) is connected to a pressing block (34), which controls the roller (321) to squeeze and stretch toward the coating layer (32).
9. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 1, characterized in that: The sealing assembly (4) includes a bottle cap (41), which is installed on the outside of the applicator (3) to control the opening and closing. A sealing strip (42) is provided on one side of the bottle cap (41), and a scraper (43) is provided on the other side.
10. The vacuum preservation glass bottle packaging device for serum protein active water film according to claim 9, characterized in that: The bottle cap (41) is connected to the outside of the application assembly (3) by means of a latch (44) to control its opening and closing.