Probiotic anti-pollution packaging device
By setting up anti-fouling cover assembly and ultraviolet sterilization lamp in the probiotic packaging device, the pollution problem during the probiotic packaging process is solved, and efficient packaging is achieved in a sterile environment.
Patent Information
- Application Number
- CN202422193882.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-09
- Publication Date
- 2025-07-08
- Estimated Expiration
- 2034-09-09
AI Technical Summary
The existing packaging devices are susceptible to air pollution by miscellaneous bacteria during the packaging of probiotics, resulting in pollution problems.
A probiotic anti-pollution packaging device is designed, including a feeding assembly and a packaging assembly. An anti-fouling cover assembly is provided on one side of the feeding assembly and a packaging assembly is provided inside. The packaging assembly includes a raw material roller, a guide roller and a sterilizer. An ultraviolet sterilization lamp is provided at the end of the sterilizer away from the hopper. The anti-fouling cover assembly forms a sterile environment, and the packaging film is sterilized and disinfected by using an ultraviolet sterilization lamp.
It effectively avoids contamination of probiotics during the packaging process, and further sterilizes the packaging film through ultraviolet sterilization lamps to ensure the sterile environment of the packaging process, and achieves efficient anti-pollution packaging of probiotics.
Smart Images

Figure CN223072879U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of probiotic encapsulation, in particular to a probiotic anti-pollution encapsulation device. Background Technique
[0002] An encapsulation device refers to a device or system used to enclose a certain substance or product in a protective outer shell or container. The design purpose of the encapsulation device is to protect the internal substance from the influence of the external environment, such as preventing the intrusion of pollutants such as moisture, oxygen, dust, and microorganisms, and at the same time, it can also provide certain physical protection, such as shock resistance and anti-drop.
[0003] Based on the above, the inventor of the present utility model found the following problems: The current encapsulation device is prone to being contaminated by miscellaneous bacteria in the air during the encapsulation process of probiotics, which is not convenient for use.
[0004] Therefore, in view of this, research and improvement are carried out on the existing structure and deficiencies, and a probiotic anti-pollution encapsulation device is provided, with the expectation of achieving a more practical value. Content of the Utility Model
[0005] The purpose of the present utility model is to provide a probiotic anti-pollution encapsulation device to solve the problems raised in the above background technique.
[0006] A probiotic anti-pollution encapsulation device includes a feeding component. One side of the feeding component is provided with an anti-pollution cover component. An encapsulation component is arranged inside the anti-pollution cover component. The encapsulation component is fixedly installed on one side of the feeding component. The feeding component includes a hopper. One end of the bottom of the hopper is fixedly installed with a support frame. The other end of the bottom of the hopper is fixedly installed with a vertical plate. One side of the bottom of the vertical plate is fixedly installed with a support plate. The encapsulation component includes a raw material roller. A guide roller is arranged at the bottom of the raw material roller. A sterilizer is arranged at the bottom of the guide roller. One ends of the raw material roller, the guide roller and the sterilizer are all fixedly connected to one side of the hopper. An inlet slot is opened at one end of the sterilizer away from the hopper. An ultraviolet sterilization lamp is arranged inside the inlet slot.
[0007] By adopting the above technical solution, since an anti-pollution cover component is arranged on one side of the feeding component, it is convenient for the anti-pollution cover component to enclose a sterile environment and avoid the contamination of probiotics during the encapsulation process. Through the arrangement of the encapsulation component, it is convenient to encapsulate the quantitatively fed probiotics. Since a guide roller is arranged at the bottom of the raw material roller and a sterilizer is arranged at the bottom of the guide roller, it is convenient for the raw material roller to place and release the packaging film, and the guide roller guides the packaging film to enter the sterilizer. Since an inlet slot is opened at one end of the sterilizer away from the hopper and an ultraviolet sterilization lamp is arranged inside the inlet slot, it is convenient for the packaging film to pass through the inlet slot, and the ultraviolet sterilization lamp irradiates and sterilizes both sides of the packaging film, further sterilizing and disinfecting the packaging film for packaging probiotics, and fully playing the role of anti-pollution.
[0008] Further, a quantitative feeder is fixedly installed in the middle of the bottom end of the hopper. The output end of the quantitative feeder is fixedly installed with a feeding pipe, and the feeding pipe is arranged at the bottom of the sterilizer.
[0009] By adopting the above technical solution, since the output end of the quantitative feeder is fixedly installed with a feeding pipe, and the feeding pipe is arranged at the bottom of the sterilizer, it is convenient for the quantitative feeder to quantitatively control the probiotics to be thrown out from the feeding pipe.
[0010] Further, a guide is fixedly installed at the bottom of the sterilizer, and the bottom end of the guide covers the outside of the feeding pipe.
[0011] By adopting the above technical solution, since a guide is fixedly installed at the bottom of the sterilizer, and the bottom end of the guide covers the outside of the feeding pipe, it is convenient for the guide to guide the packaging film so that the packaging film covers the outside of the feeding pipe.
[0012] Further, a first heat sealer is arranged at the bottom of the feeding pipe, a conveying roller is arranged at the bottom of the first heat sealer, and one end of the first heat sealer and the conveying roller is fixedly connected to the vertical plate.
[0013] By adopting the above technical solution, since one end of the first heat sealer and the conveying roller is fixedly connected to the vertical plate, it is convenient for the first heat sealer to heat-seal the side surface of the packaging film covering the outside of the feeding pipe, so that the packaging film forms a tubular structure, which is convenient for packaging the probiotics. The conveying roller is convenient for tightening and maintaining the tension of the packaging film and conveying it downward.
[0014] Further, a second heat sealer is arranged at the bottom of the conveying roller, a discharge hole is formed in the middle of the support plate, and the second heat sealer is arranged inside the discharge hole.
[0015] By adopting the above technical solution, since a discharge hole is formed in the middle of the support plate and the second heat sealer is arranged inside the discharge hole, it is convenient for the second heat sealer to perform transverse heat sealing on the tubular packaging film with the side surface heat-sealed, which is convenient for encapsulating the probiotics inside the packaging film, and the packaged probiotics flow out from the discharge hole.
[0016] Further, a discharge chute is fixedly installed at the bottom of the support plate, and a wavy cutter is arranged in the middle of the inner side of the second heat sealer.
[0017] By adopting the above technical solution, since a discharge chute is fixedly installed at the bottom of the support plate and a wavy cutter is arranged in the middle of the inner side of the second heat sealer, it is convenient for the wavy cutter to cut the encapsulated probiotics from the packaging film to form independent packages, and the independently packaged probiotics slide out from the discharge chute.
[0018] Further, the anti-pollution cover assembly includes a sealing cover, one side of the sealing cover is fixedly connected to the vertical plate, and the bottom of the sealing cover is fixedly connected to the support plate.
[0019] By adopting the above technical solution, since one side of the sealing cover is fixedly connected to the vertical plate and the bottom of the sealing cover is fixedly connected to the support plate, it is convenient for the sealing cover, the vertical plate and the support plate to enclose a sterile environment, avoiding pollution during the packaging process of probiotics.
[0020] Further, an air filter is fixedly installed at the top of the sealing cover, and an intake fan is fixedly installed at the top of the air filter.
[0021] By adopting the above technical solution, since an air filter is fixedly installed at the top of the sealing cover and an intake fan is fixedly installed at the top of the air filter, it is convenient for the intake fan to blow external air into the sealing cover. The air filter filters the air entering the sealing cover, preventing external miscellaneous bacteria and dust from entering the sealing cover, allowing the air inside the sealing cover to be blown out from the discharge hole, facilitating the removal of the heat generated by the operation of the first heat sealer and the second heat sealer, and preventing external dust and miscellaneous bacteria from entering the sealing cover through the discharge hole.
[0022] Compared with the prior art, the beneficial effects of the present utility model are as follows: By providing an anti-pollution cover assembly on one side of the feeding assembly, it is convenient for the anti-pollution cover assembly to enclose a sterile environment, avoiding contamination of probiotics during the packaging process. Through the setting of the packaging assembly, it is convenient to package the quantitatively fed probiotics. By providing a guide roller at the bottom of the raw material roller and a sterilizer at the bottom of the guide roller, it is convenient for the raw material roller to place and release the packaging film, and the guide roller guides the packaging film to enter the sterilizer. By providing a feeding slot at one end of the sterilizer away from the hopper and an ultraviolet sterilization lamp inside the feeding slot, it is convenient for the packaging film to pass through the feeding slot, and the ultraviolet sterilization lamp irradiates and sterilizes both sides of the packaging film, further sterilizing and disinfecting the packaging film for packaging probiotics, fully playing the role of anti-pollution. Description of the Drawings
[0023] Figure 1 is a three-dimensional structural diagram of a probiotic anti-pollution packaging device of the present utility model;
[0024] Figure 2 is an exploded view of a probiotic anti-pollution packaging device of the present utility model;
[0025] Figure 3 is a three-dimensional structural diagram of the sterilizer of the present utility model;
[0026] Figure 4 is a three-dimensional structural diagram of the support plate of the present utility model;
[0027] Figure 5This is a three-dimensional structural schematic diagram of the hopper of the present utility model.
[0028] In the figure: 101, feeding component; 10101, hopper; 10102, support frame; 10103, vertical plate; 10104, quantitative feeder; 10105, feeding pipe; 10106, support plate; 10107, discharge chute; 10108, discharge hole; 102, anti-pollution cover component; 10201, sealing cover; 10202, air filter; 10203, intake fan; 103, encapsulation component; 10301, raw material roller; 10302, guiding roller; 10303, sterilizer; 10304, guide; 10305, first heat sealer; 10306, conveying roller; 10307, second heat sealer; 10308, feeding trough. Detailed implementation manners
[0029] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the accompanying 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. All other embodiments obtained by those of ordinary skill in the art based on the embodiments of the present utility model without creative efforts shall fall within the protection scope of the present utility model.
[0030] Please refer to Figures 1 - 5, the present utility model provides a technical solution: a probiotic anti-pollution packaging device, which includes a feeding component 101. A pollution prevention cover component 102 is arranged on one side of the feeding component 101. By arranging the pollution prevention cover component 102 on one side of the feeding component 101, it is convenient for the pollution prevention cover component 102 to enclose a sterile environment and avoid the probiotics being polluted during the packaging process. An encapsulation component 103 is arranged inside the pollution prevention cover component 102. The encapsulation component 103 is fixedly installed on one side of the feeding component 101. Through the setting of the encapsulation component 103, it is convenient to package the quantitatively fed probiotics. The feeding component 101 includes a hopper 10101. One end of the bottom of the hopper 10101 is fixedly installed with a support frame 10102. The other end of the bottom of the hopper 10101 is fixedly installed with a vertical plate 10103. One side of the bottom of the vertical plate 10103 is fixedly installed with a support plate 10106. The encapsulation component 103 includes a raw material roller 10301. A guiding roller 10302 is arranged at the bottom of the raw material roller 10301. A sterilizer 10303 is arranged at the bottom of the guiding roller 10302. By arranging the guiding roller 10302 at the bottom of the raw material roller 10301 and the sterilizer 10303 at the bottom of the guiding roller 10302, it is convenient for the raw material roller 10301 to place and release the packaging film, and the guiding roller 10302 guides the packaging film to make the packaging film enter the sterilizer 10303. One end of the raw material roller 10301, the guiding roller 10302 and the sterilizer 10303 are all fixedly connected to one side of the hopper 10101. An inlet slot 10308 is opened at one end of the sterilizer 10303 away from the hopper 10101. An ultraviolet sterilization lamp is arranged inside the inlet slot 10308. By opening the inlet slot 10308 at one end of the sterilizer 10303 away from the hopper 10101 and arranging the ultraviolet sterilization lamp inside the inlet slot 10308, it is convenient for the packaging film to pass through the inlet slot 10308, and the ultraviolet sterilization lamp irradiates and sterilizes both sides of the packaging film, further sterilizing and disinfecting the packaging film for packaging the probiotics, and fully playing the role of anti-pollution.
[0031] Among them, a quantitative feeder 10104 is fixedly installed in the middle of the bottom end of the hopper 10101. The output end of the quantitative feeder 10104 is fixedly installed with a feeding pipe 10105. The feeding pipe 10105 is arranged at the bottom of the sterilizer 10303. By fixedly installing the feeding pipe 10105 at the output end of the quantitative feeder 10104 and arranging the feeding pipe 10105 at the bottom of the sterilizer 10303, it is convenient for the quantitative feeder 10104 to quantitatively control the probiotics to be thrown out from the feeding pipe 10105.
[0032] Among them, a guide 10304 is fixedly installed at the bottom of the sterilizer 10303. The bottom end of the guide 10304 covers the outside of the feeding pipe 10105. By fixedly installing the guide 10304 at the bottom of the sterilizer 10303 and covering the bottom end of the guide 10304 outside the feeding pipe 10105, it is convenient for the guide 10304 to guide the packaging film so that the packaging film covers the outside of the feeding pipe 10105.
[0033] Among them, a first heat sealer 10305 is provided at the bottom of the feeding pipe 10105, and a conveying roller 10306 is provided at the bottom of the first heat sealer 10305. One ends of the first heat sealer 10305 and the conveying roller 10306 are fixedly connected to the vertical plate 10103. By fixedly connecting one ends of the first heat sealer 10305 and the conveying roller 10306 to the vertical plate 10103, it is convenient for the first heat sealer 10305 to heat-seal the side of the packaging film covering the outside of the feeding pipe 10105, so that the packaging film forms a tubular structure, which is convenient for packaging probiotics. The conveying roller 10306 is convenient for tightening and maintaining the tension of the packaging film and conveying it downward.
[0034] Among them, a second heat sealer 10307 is provided at the bottom of the conveying roller 10306. A discharge hole 10108 is opened in the middle of the support plate 10106, and the second heat sealer 10307 is arranged inside the discharge hole 10108. By opening the discharge hole 10108 in the middle of the support plate 10106 and arranging the second heat sealer 10307 inside the discharge hole 10108, it is convenient for the second heat sealer 10307 to perform transverse heat sealing on the tubular packaging film whose side has been heat-sealed, which is convenient for encapsulating probiotics inside the packaging film, and the packaged probiotics flow out from the discharge hole 10108.
[0035] Among them, a discharge chute 10107 is fixedly installed at the bottom of the support plate 10106, and a wavy cutter is provided in the middle of the inner side of the second heat sealer 10307. By fixedly installing the discharge chute 10107 at the bottom of the support plate 10106 and providing a wavy cutter in the middle of the inner side of the second heat sealer 10307, it is convenient for the wavy cutter to cut the encapsulated probiotics from the packaging film to form independent packages, and the independently packaged probiotics slide out from the discharge chute 10107.
[0036] Among them, the anti-fouling cover assembly 102 includes a sealing cover 10201. One side of the sealing cover 10201 is fixedly connected to the vertical plate 10103, and the bottom of the sealing cover 10201 is fixedly connected to the support plate 10106. By fixedly connecting one side of the sealing cover 10201 to the vertical plate 10103 and fixedly connecting the bottom of the sealing cover 10201 to the support plate 10106, it is convenient for the sealing cover 10201 and the vertical plate 10103 and the support plate 10106 to enclose a sterile environment to avoid contamination during the encapsulation of probiotics.
[0037] Among them, an air filter 10202 is fixedly installed at the top of the sealing cover 10201, and an intake fan 10203 is fixedly installed at the top of the air filter 10202. By fixedly installing the air filter 10202 at the top of the sealing cover 10201 and fixedly installing the intake fan 10203 at the top of the air filter 10202, it is convenient for the intake fan 10203 to blow external air into the interior of the sealing cover 10201. The air filter 10202 filters the air entering the sealing cover 10201, preventing external miscellaneous bacteria and dust from entering the sealing cover 10201, causing the air inside the sealing cover 10201 to blow out from the discharge hole 10108, facilitating the removal of the heat generated by the operation of the first heat sealer 10305 and the second heat sealer 10307, and preventing external dust and miscellaneous bacteria from entering the sealing cover 10201 through the discharge hole 10108.
[0038] Specifically, the working principle of this probiotic anti-pollution packaging device: During use, one side of the sealing cover 10201 is fixedly connected to the vertical plate 10103, and the bottom of the sealing cover 10201 is fixedly connected to the support plate 10106, facilitating the formation of a sterile environment by the sealing cover 10201, the vertical plate 10103, and the support plate 10106, avoiding contamination during the packaging process of probiotics. An air filter 10202 is fixedly installed at the top of the sealing cover 10201, and an intake air fan 10203 is fixedly installed at the top of the air filter 10202, facilitating the intake air fan 10203 to blow external air into the interior of the sealing cover 10201. The air filter 10202 filters the air entering the sealing cover 10201, preventing external miscellaneous bacteria and dust from entering the sealing cover 10201, and enabling the air inside the sealing cover 10201 to be blown out from the discharge hole 10108, facilitating the removal of the heat generated by the operation of the first heat sealer 10305 and the second heat sealer 10307, and preventing external dust and miscellaneous bacteria from entering the sealing cover 10201 through the discharge hole 10108. A guide roller 10302 is provided at the bottom of the raw material roller 10301, and a sterilizer 10303 is provided at the bottom of the guide roller 10302, facilitating the raw material roller 10301 to place and release the packaging film, and the guide roller 10302 to guide the packaging film so that the packaging film enters the sterilizer 10303. An inlet chute 10308 is provided at one end of the sterilizer 10303 away from the hopper 10101, and an ultraviolet sterilization lamp is provided inside the inlet chute 10308, facilitating the packaging film to pass through the inlet chute 10308, and the ultraviolet sterilization lamp irradiates and sterilizes both sides of the packaging film, further sterilizing and disinfecting the packaging film for packaging probiotics, fully playing the role of anti-pollution. A feeding pipe 10105 is fixedly installed at the output end of the quantitative feeder 10104, and the feeding pipe 10105 is arranged at the bottom of the sterilizer 10303, facilitating the quantitative feeder 10104 to quantitatively control the discharge of probiotics from the feeding pipe 10105. A guide device 10304 is fixedly installed at the bottom of the sterilizer 10303, and the bottom end of the guide device 10304 covers the outside of the feeding pipe 10105, facilitating the guide device 10304 to guide the packaging film so that the packaging film covers the outside of the feeding pipe 10105. One end of the first heat sealer 10305 and the conveying roller 10306 is fixedly connected to the vertical plate 10103, facilitating the first heat sealer 10305 to heat-seal the side of the packaging film covering the outside of the feeding pipe 10105, forming a tubular structure for the packaging film, facilitating the packaging of probiotics. The conveying roller 10306 facilitates tightening and maintaining the tension of the packaging film and conveying it downward. An outlet hole 10108 is provided in the middle of the support plate 10106, and the second heat sealer 10307 is arranged inside the outlet hole 10108, facilitating the second heat sealer 10307 to perform transverse heat sealing on the tubular-structured packaging film with heat-sealed sides, facilitating the encapsulation of probiotics inside the packaging film, and the packaged probiotics flow out from the outlet hole 10108.A discharge chute 10107 is fixedly installed at the bottom of the support plate 10106. In the middle of the inner side of the second heat sealer 10307, there is a wavy cutter, which is convenient for the wavy cutter to cut the encapsulated probiotics from the packaging film to form independent packages. The independently packaged probiotics slide out from the discharge chute 10107.
[0039] The above are only the preferred embodiments of the present invention and are not intended to limit the present invention. For those skilled in the art, the present invention can have various changes and modifications. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present invention shall be included within the protection scope of the present invention.
Claims
1. A probiotic anti-pollution encapsulation device, characterized in that, It includes a feeding component (101), on one side of the feeding component (101) there is an anti-fouling cover component (102), inside the anti-fouling cover component (102) there is a packaging component (103), the packaging component (103) is fixedly installed on one side of the feeding component (101), the feeding component (101) includes a hopper (10101), at one end of the bottom of the hopper (10101) there is a support frame (10102) fixedly installed, at the other end of the bottom of the hopper (10101) there is a vertical plate (10103) fixedly installed, on one side of the bottom of the vertical plate (10103) there is a support plate (10106) fixedly installed, the packaging component (103) includes a raw material roll (10301), at the bottom of the raw material roll (10301) there is a material guiding roll (10302), at the bottom of the material guiding roll (10302) there is a sterilizer (10303), one end of the raw material roll (10301), the material guiding roll (10302) and the sterilizer (10303) are all fixedly connected to one side of the hopper (10101), at one end of the sterilizer (10303) away from the hopper (10101) there is a feed slot (10308), and inside the feed slot (10308) there is an ultraviolet sterilization lamp.
2. The probiotic anti-pollution encapsulation device according to claim 1, characterized in that, In the middle of the bottom end of the hopper (10101) there is a quantitative feeder (10104) fixedly installed, at the output end of the quantitative feeder (10104) there is a feeding pipe (10105) fixedly installed, and the feeding pipe (10105) is arranged at the bottom of the sterilizer (10303).
3. A probiotic anti-pollution encapsulation device according to claim 2, characterized in that, At the bottom of the sterilizer (10303) there is a guide (10304) fixedly installed, and the bottom end of the guide (10304) covers the outside of the feeding pipe (10105).
4. The probiotic anti-pollution encapsulation device according to claim 3, wherein At the bottom of the feeding pipe (10105) there is a first heat sealer (10305), at the bottom of the first heat sealer (10305) there is a conveying roller (10306), and one end of the first heat sealer (10305) and the conveying roller (10306) are fixedly connected to the vertical plate (10103).
5. A probiotic anti-pollution encapsulation device according to claim 4, wherein At the bottom of the conveying roller (10306) there is a second heat sealer (10307), in the middle of the support plate (10106) there is a discharge hole (10108) opened, and the second heat sealer (10307) is arranged inside the discharge hole (10108).
6. The probiotic anti-pollution encapsulation device according to claim 5, characterized in that, At the bottom of the support plate (10106) there is a discharge slideway (10107) fixedly installed, and in the middle of the inner side of the second heat sealer (10307) there is a wavy cutter.
7. The probiotic anti-pollution encapsulation device according to claim 1, characterized in that, The anti-fouling cover component (102) includes a sealing cover (10201), one side of the sealing cover (10201) is fixedly connected to the vertical plate (10103), and the bottom of the sealing cover (10201) is fixedly connected to the support plate (10106).
8. A probiotic anti-pollution encapsulation device according to claim 7, characterized in that, At the top of the sealing cover (10201) there is an air filter (10202) fixedly installed, and at the top of the air filter (10202) there is an intake fan (10203) fixedly installed.