An Artemisia annua private bacteriostatic care solution production device and its process

Through the linkage mechanism and ratchet mechanism, the filter bacteria membrane is automatically replaced, combined with the backwashing of the cleaning mechanism, the problem of filter bacteria membrane blockage is solved, the gas circulation and fermentation efficiency of the fermentation device is improved, and labor costs are reduced.

CN118813407BActive Publication Date: 2025-07-18CHONGQING WANYUANJIA PHARM CO LTD
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Patent Information

Application Number
CN202410984937.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-07-22
Publication Date
2025-07-18
Estimated Expiration
2044-07-22

AI Technical Summary

Technical Problem

The long-term use of the filter bacteria membrane in existing microbial fermentation devices will lead to excessive adhesion of bacteria and large particles of impurities in the filter bacteria membrane, resulting in blockage of the filter bacteria membrane and affecting air circulation.

Method used

A private antibacterial care liquid production device of Artemisia annua has been designed, using a linkage mechanism and a ratchet mechanism to automatically replace the filter bacteria membrane, combined with a cleaning mechanism to backwash the filter bacteria membrane through sterile gas to prevent clogging, and improve the material mixing efficiency through the stirring mechanism.

Benefits of technology

Automatic replacement and cleaning of filter bacteria membranes is realized, preventing blockage, ensuring gas circulation during the fermentation process, improving fermentation efficiency and reducing labor costs.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The present invention belongs to the technical field of intimate care, and specifically relates to a production device and process for an artemisia annua intimate antibacterial care solution. The fermentation device includes: a tank body: the tank body is provided with an air outlet, an air inlet pipe, a discharge port and a feed port; a bacteria filtering membrane: the bacteria filtering membrane is arranged in the air inlet pipe; an air pump: the air pump is communicated with the air inlet; a stirring mechanism: the stirring mechanism is used for stirring the composite bacteria in the tank body; a linkage mechanism: the linkage mechanism includes: a linkage mechanism: the linkage mechanism is used for driving the turntable to rotate, a turntable: the turntable is hermetically and rotationally connected to the air inlet pipe, the turntable is matched with the air inlet pipe, there are two bacteria filtering membranes, and the bacteria filtering membranes are arranged mirror-symmetrically on the turntable, and the turntable is matched with the linkage mechanism. This solution solves the problem that excessive bacteria and large particle impurities will adhere to the bacteria filtering membrane after long-term use.
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Description

Technical Field

[0001] The present invention belongs to the technical field of intimate care, and particularly relates to a production device and process for an artemisia annua intimate bacteriostatic care solution. Background Art

[0002] With the increasing attention of consumers to personal hygiene and intimate health, the market demand for high-quality and targeted intimate care products is also increasing. Enterprises continuously optimize their products through market research and user feedback to meet the specific needs of different groups. Considering the sensitivity of the intimate area, the formula of the bacteriostatic solution needs to be extremely mild, avoiding irritating ingredients to ensure safe use and suitability for daily cleaning and maintenance. The production of the bacteriostatic solution involves the fermentation of complex bacteria, and fermentation is an extremely important process.

[0003] Currently, the microbial fermentation device with the publication number CN108285862A on the market includes a fermentation bottle and a strain culture bottle connected to the fermentation bottle, and also includes an air pipe. The air pipe can introduce gas into the bottom of the fermentation bottle and the strain culture bottle, and also includes a disinfection unit connected to the fermentation bottle and the strain culture bottle. The microbial fermentation device provided by this invention includes a fermentation bottle and a strain culture bottle connected to the fermentation bottle, and also includes an air pipe. The air pipe can introduce gas into the bottom of the fermentation bottle and the strain culture bottle. Through the fermentation bottle and the strain culture bottle, on-site microbial strain fermentation can be realized, which is convenient for transportation to local areas or fields for use. At the same time, the air pipe can supply the oxygen required for the growth of the supplied strains of the fermented product, improving the fermentation and culture speed of the strains. The production of bacterial agents can be realized in a simple place, with the advantages of local use, high biological activity of the bacterial agents, and low cost.

[0004] However, there is also a problem: the long-term use of the filter membrane in this solution will cause the filter membrane to adhere to too many bacteria and large particle impurities, resulting in the blockage of the filter membrane and the non-circulation of air in the tank body. Summary of the Invention

[0005] This solution provides a production device for an artemisia annua intimate bacteriostatic care solution to solve the problem that the long-term use of the filter membrane will cause the filter membrane to adhere to too many bacteria and large particle impurities.

[0006] This solution provides a production device for artemisia annua private bacteriostatic care solution, including a screening device: the screening device is used to screen out impurities in the raw materials; a crushing device: the crushing device is used to crush the raw materials; a fermentation device: the fermentation device includes: a tank body: the tank body is provided with an air outlet, an air inlet pipe, a discharge port and a feed port, a bacteria filtering membrane: the bacteria filtering membrane is arranged in the air inlet pipe; an air pump: the air pump is communicated with the air inlet; a stirring mechanism: the stirring mechanism is used to stir the composite bacteria in the tank body; a pressure filtration device: the pressure filtration device is used for solid-liquid separation after fermentation; a chelating tank: the chelating tank is used for aging and ripening; the screening device, the crushing device, the fermentation device, the pressure filtration device and the chelating tank are connected in sequence; it further includes a turntable: the turntable is hermetically and rotatably connected with the air inlet pipe, the turntable is matched with the air inlet pipe, there are two bacteria filtering membranes, and the bacteria filtering membranes are arranged mirror-symmetrically on the turntable, and the turntable is matched with a linkage mechanism.

[0007] The principle of this solution is as follows: The operator screens artemisia annua, ginger, ginkgo leaves, osmanthus flowers, lemons, roselle, honeysuckle, houttuynia cordata, dandelion and optionally mugwort leaves through the screening device to remove large-particle stones inside; then adds them to the fermentation device, adds warm water to soften them, then adds composite enzyme to the feed port of the fermentation device, the operator starts the stirring mechanism to stir evenly, enzymatically hydrolyzes for a period of time to obtain an enzymolysis solution, then adds composite bacteria to the feed port, starts the air pump to ventilate, the gas enters from the air inlet pipe and exits from the air outlet to carry out fermentation.

[0008] During the fermentation process, the bacteria filtering membrane in the air inlet pipe will be blocked due to large-particle impurities and excessive bacteria. The turntable is larger than the air inlet pipe, and half of the turntable is inserted into the air inlet pipe and the other half is located outside the air inlet pipe. At this time, the operator controls the linkage mechanism to make the turntable rotate, rotates the clean bacteria filtering membrane below to the upper part, and replaces the blocked bacteria filtering membrane.

[0009] After fermentation is completed, the fermentation mixture is obtained from the discharge port. At this time, the operator separates the fermentation substrate through the pressure filtration device, and then filters and collects the filtrate. Finally, the filtrate is transferred to the aging and chelating tank for aging and ripening to obtain the fermented stock solution and the finished product.

[0010] The beneficial effect of this solution is that: when the bacteria filtering membrane is blocked, this solution will automatically replace the bacteria filtering membrane to prevent poor ventilation caused by the blockage of the bacteria filtering membrane.

[0011] Furthermore, it further includes a linkage mechanism, and the linkage mechanism includes: an upper chamber, a connecting rod, an upper piston, a rotating rod and a gear. The upper chamber is communicated with the air inlet pipe, and the upper chamber is located on the left side of the bacteria filtering membrane. The upper piston is hermetically and slidably connected with the upper chamber. One end of the connecting rod is fixedly connected with the upper piston, and the other end is located outside the air inlet pipe and is hermetically and slidably connected with the air inlet pipe. The rotating rod is fixedly connected with the turntable coaxially. There is a rack on the connecting rod, the rack meshes with the gear, and the gear is fixedly connected with the rotating rod.

[0012] When the bacteria filter membrane is blocked, the connecting rod will move upward. At this time, the connecting rod will drive the rack to move upward. The upward movement of the rack will cause the gear to rotate. The gear will drive the rotating rod to rotate, and the rotating rod will drive the turntable to rotate, completing the replacement of the bacteria filter membrane. This mechanism realizes the automatic replacement of the bacteria filter membrane without manual control, saving costs.

[0013] Furthermore, it also includes a cleaning mechanism. The cleaning mechanism includes a lower chamber, a storage chamber, and a lower piston. The lower chamber is fixedly connected to the air inlet pipe. The upper chamber and the lower chamber are symmetrically arranged with respect to the air inlet pipe. The lower piston is hermetically and slidably connected to the lower chamber. The other end of the connecting rod is fixedly connected to the lower piston. The lower chamber is provided with a sterile gas inlet and an air outlet pipe. Both the sterile gas inlet and the air outlet pipe are provided with one-way valves. The storage chamber is filled with sterile gas. The sterile gas inlet is communicated with the storage chamber. The air outlet pipe is matched with the turntable.

[0014] Although the linkage mechanism can replace the bacteria filter membrane, the dirty bacteria filter membrane cannot be used continuously without being cleaned. In this solution, when the bacteria filter membrane is blocked, the pressure on the left side of the air inlet pipe becomes larger. At this time, the upper piston will move upward under the action of the pressure. The upward movement of the upper piston will drive the connecting rod to move upward. The upward movement of the connecting rod will drive the lower piston to move upward. The upward movement of the lower piston causes the lower chamber to form a negative pressure. The lower chamber sucks the sterile gas in the storage chamber. Then, when the new bacteria filter membrane rotates to the upper part, at this time, the pressure of the air inlet pipe returns to normal. The upper piston falls due to gravity, causing the connecting rod to fall. The falling of the connecting rod causes the lower piston to move downward. The downward movement of the lower piston causes the sterile gas in the lower chamber to be squeezed out and sprayed out from the air outlet pipe. The air outlet pipe is aligned with the bacteria filter membrane of the turntable for backwashing to blow off the blocked bacteria filter membrane, facilitating the next use.

[0015] Furthermore, the ratchet replaces the gear. The connecting rod and the ratchet are provided with spring teeth. The connecting rod is matched with the ratchet. When the bacteria filter membrane is blocked, the connecting rod will move upward. At this time, the spring teeth on the connecting rod will engage with the spring teeth on the ratchet, causing the ratchet to rotate. The ratchet will drive the rotating rod to rotate, and the rotating rod will drive the turntable to rotate, completing the replacement of the bacteria filter membrane. After the bacteria filter membrane is replaced, the pressure in the air inlet pipe returns to normal, and the upper piston moves downward, causing the connecting rod to move downward. When the connecting rod moves downward, the spring teeth will contract inward, and the ratchet will not rotate. This allows the bacteria filter membrane that has been flushed by the air to wait below and be replaced after another bacteria filter membrane is blocked. This mechanism prevents the problem that the blocked bacteria filter membrane is immediately replaced after being backwashed through the characteristics of the ratchet.

[0016] Furthermore, a limiting block is arranged inside the upper chamber. The limiting block is used to limit the stroke of the upper piston. The limiting block can ensure the traveling path of the upper piston.

[0017] Further, it also includes an impurity removal chamber which is fixedly connected to the intake pipe. There is bactericidal liquid at the bottom of the impurity removal chamber, which cooperates with the turntable, and the turntable cooperates with the impurity removal chamber. The impurity removal chamber is an enclosed space. The turntable is located inside the impurity removal chamber. The liquid level of the bactericidal liquid is lower than the turntable. The bactericidal liquid is used to adsorb the dust blown off by the outlet pipe. The impurity removal chamber can ensure that the bacterium-filtering membrane in the turntable is in a sterile space, preventing bacteria and impurities in the air from contaminating the bacterium-filtering membrane.

[0018] Further, the stirring mechanism includes a motor, a main shaft and stirring rods. The shaft of the motor is fixedly connected to the main shaft. The motor is fixedly connected to the tank body. The stirring rods are fixedly connected to the main shaft, and there are multiple stirring rods which are linearly arranged with respect to the main shaft. When stirring is required, the motor is started. The motor drives the main shaft to rotate, and the main shaft drives the stirring rods to rotate. The stirring rods stir and mix the substances in the tank body. This mechanism makes the stirring and mixing of the substances more thorough through the agitation of multiple stirring rods.

[0019] Further, a valve is provided at the feed inlet, and a one-way valve for guiding the inside of the tank body to the outside is provided at the air outlet. The valve provided at the feed inlet and the one-way valve provided at the air outlet can prevent impurities and bacteria in the air from entering the tank body.

[0020] This solution also provides a production process for artemisia private bacteriostatic nursing liquid, including the following steps:

[0021] Step S10: Screen artemisia annua, ginger, ginkgo leaves, osmanthus, lemon, rosa roxbunghii tratt, honeysuckle, houttuynia cordata, dandelion and mugwort through a screening device to remove the impurities inside;

[0022] Step S20: Add the materials in Step S10 to a crushing device to be crushed and screened respectively, weigh them according to the proportion and mix them evenly;

[0023] Step S30: Add the materials in Step S20 to a fermentation device, and then add warm water to soften them;

[0024] Step S40: Then add a complex enzyme to the fermentation device, stir evenly, and enzymolyze for a set time to obtain an enzymolyzed liquid;

[0025] Step S50: Add complex bacteria to the fermentation device, start the air pump to ventilate, and carry out fermentation;

[0026] Step S60: Separate the fermentation substrate through a pressure filtration device, and then filter and collect the filtrate;

[0027] Step S70: Transfer the filtrate to a ripening and chelating tank for ripening and aging to obtain artemisia private bacteriostatic nursing liquid.

[0028] This process improves the gas circulation inside the tank body through the ventilation of the air pump, and can effectively improve the fermentation efficiency. Brief Description of the Drawings

[0029] Figure 1 It is a state diagram of the fermentation device of an artemisia annua intimate bacteriostatic care solution production device where the bacteria-filtering membrane is not blocked.

[0030] Figure 2 It is a state diagram of the fermentation device of an artemisia annua intimate bacteriostatic care solution production device where the bacteria-filtering membrane is blocked.

[0031] Figure 3 It is an enlarged view of the air inlet pipe of the fermentation device of an artemisia annua intimate bacteriostatic care solution production device.

[0032] Figure 4 It is a structural diagram of the connecting rod and ratchet of the fermentation device of an artemisia annua intimate bacteriostatic care solution production device.

[0033] Reference numerals in the drawings of the specification include: 1, tank body; 2, motor; 3, main shaft; 4, stirring rod; 5, base; 6, discharge port; 7, air outlet; 8, feed inlet; 9, air inlet pipe; 10, bacteria-filtering membrane; 11, linkage mechanism; 12, cleaning mechanism; 13, upper chamber; 14, limit block; 15, turntable; 16, rotating rod; 17, connecting rod; 18, lower piston; 19, sterile gas inlet; 20, lower chamber; 21, impurity removal chamber; 22, air outlet pipe; 23, upper piston; 24, ratchet; 25, spring teeth. Detailed Implementation Modes

[0034] Basically as shown in the attached Figure 1 figures:

[0035] This solution provides an artemisia annua intimate bacteriostatic care solution production device, including a screening device, a crushing device, a fermentation device, a pressure filtration device, and a chelating tank. The screening device is used to screen out impurities in the raw materials, and an existing medicinal material screening machine is selected. The crushing device is used to crush the raw materials, and an existing medicinal material crusher is selected, and the size after crushing is 12 - 65 mesh. The pressure filtration device is used for solid-liquid separation after fermentation, and the chelating tank is used for aging and ripening.

[0036] The fermentation device includes: a tank body 1, a bacteria-filtering membrane 10, a stirring mechanism, and an air pump. The tank body 1 is provided with an air outlet 7, an air inlet pipe 9, a discharge port 6, and a feed inlet 8. The air outlet 7 is provided with a one-way valve that conducts from the inside of the tank body 1 to the outside. The feed inlet 8 is provided with a valve. The feed inlet 8 being provided with a valve and the air outlet 7 being provided with a one-way valve can prevent impurities and bacteria in the air from entering the tank body 1. The bacteria-filtering membrane 10 is arranged in the air inlet pipe 9; the air pump is communicated with the air inlet, and the bottom of the tank body 1 is provided with a base 5, and the base 5 is used to fix the tank body 1.

[0037] The stirring mechanism is used to stir the composite bacteria in the tank body 1. The stirring device includes a motor 2, a main shaft 3 and stirring rods 4. The shaft of the motor 2 is fixedly connected to the main shaft 3, the motor 2 is fixedly connected to the tank body 1, the stirring rods 4 are fixedly connected to the main shaft 3, and there are multiple stirring rods 4. The stirring rods 4 are linearly arranged with respect to the main shaft 3. When stirring is required, the motor 2 is started. The motor 2 drives the main shaft 3 to rotate, the main shaft 3 drives the stirring rods 4 to rotate, and the stirring rods 4 stir and mix the substances in the tank body 1. This mechanism stirs through multiple stirring rods 4, making the stirring and mixing of substances more thorough.

[0038] As shown in the appendix Figure 2 、 Figure 3 :

[0039] The rotary disk 15 is hermetically and rotatably connected to the air inlet pipe 9. The rotary disk 15 is larger than the air inlet pipe 9, and half of the rotary disk 15 is inserted into the air inlet pipe 9, and the other half is located outside the air inlet pipe 9. There are two filter membranes 10, and the filter membranes 10 are symmetrically arranged on the rotary disk 15. The other parts of the rotary disk 15 except the filter membranes 10 are solid.

[0040] It also includes a linkage mechanism 11. There are two types of linkage mechanisms. The first type of linkage mechanism includes an upper chamber 13, a connecting rod 17, an upper piston 23, a rotating rod 16 and a gear. The upper chamber 13 is communicated with the air inlet pipe 9, and the upper chamber 13 is located on the left side of the filter membrane 10. The upper piston 23 is hermetically and slidably connected to the upper chamber 13. One end of the connecting rod 17 is fixedly connected to the upper piston 23, and the other end is located outside the air inlet pipe 9 and is hermetically and slidably connected to the air inlet pipe 9. The rotating rod 16 is fixedly connected coaxially with the rotary disk 15. There is a rack on the connecting rod 17, and the rack meshes with the gear, and the gear is fixedly connected to the rotating rod 16. This mechanism realizes the automatic replacement of the filter membrane 10 without manual control, saving costs.

[0041] As shown in the appendix Figure 1 、 Figure 4 :

[0042] The second type of linkage mechanism replaces the gear with a ratchet 24, and there are spring teeth 25 on the connecting rod 17 and the ratchet 24. The spring teeth 25 of this mechanism are teeth provided with springs, which can be squeezed inward, and can only expand outward to Figure 4 the state. When the filter membrane 10 is blocked, the connecting rod 17 will move upward. At this time, the spring teeth 25 on the connecting rod 17 will mesh with the spring teeth 25 on the ratchet 24, causing the ratchet 24 to rotate. The ratchet 24 will drive the rotating rod 16 to rotate, and the rotating rod 16 will drive the rotary disk 15 to rotate, completing the replacement of the filter membrane 10. After the filter membrane 10 is replaced, the pressure in the air inlet pipe 9 is restored, and the upper piston 23 moves downward, causing the connecting rod 17 to move downward. When the connecting rod 17 moves downward, the spring teeth 25 will contract inward, and the ratchet 24 will not rotate. Wait until another filter membrane 10 is blocked and then replace it. This mechanism prevents the problem that the blocked filter membrane 10 is immediately replaced after being washed clean through the characteristics of the ratchet 24.

[0043] It also includes a cleaning chamber 21 which is fixedly connected to the air inlet pipe 9. The part of the turntable 15 outside the air inlet pipe 9 is inside the cleaning chamber 21. The cleaning chamber 21 is an enclosed space, which is communicated with the storage chamber, and a filter screen is provided at the communicating part. The air outlet pipe 22 is provided with a distributor so that the air outlet pipe 22 can blow to each position of the bacteria filtering membrane 10. And the air outlet pipe 22 is inclined downward so that dust and impurities are blown onto the sterilizing liquid below. After the sterile gas in the air outlet pipe 22 flushes the bacteria filtering membrane 10, it returns to the storage chamber again, so that the sterile gas in the storage chamber can be reused repeatedly, ensuring that the bacteria filtering membrane 10 in the turntable 15 is in a sterile space and preventing bacteria and impurities in the air from contaminating the bacteria filtering membrane 10.

[0044] It also includes a cleaning mechanism 12 which includes a lower chamber 20, a storage chamber and a lower piston 18. The lower chamber 20 is fixedly connected to the air inlet pipe 9. The upper chamber 13 and the lower chamber 20 are symmetrically arranged with the air inlet pipe 9 as the axis. The lower piston 18 is hermetically and slidably connected to the lower chamber 20. The other end of the connecting rod 17 is fixedly connected to the lower piston 18. The lower chamber 20 is provided with a sterile gas inlet 19 and an air outlet pipe 22. Both the sterile gas inlet 19 and the air outlet pipe 22 are provided with one-way valves. The storage chamber is provided with sterile gas. The sterile gas inlet 19 is communicated with the storage chamber, and the air outlet pipe 22 is aligned with the bacteria filtering membrane below the turntable 15.

[0045] As shown in the attached Figure 1 、 Figure 2 、 Figure 3 、 Figure 4 figures:

[0046] The principle of this solution is as follows: The operator screens Artemisia annua, ginger, ginkgo leaves, osmanthus, lemon, Rosa roxburghii, honeysuckle, Houttuynia cordata, dandelion and optionally Artemisia argyi through a screening device; then adds them to a fermentation device, adds warm water to soften them, then adds a complex enzyme to the feed inlet 8 of the fermentation device. The operator starts the stirring mechanism to stir evenly, enzymatically hydrolyzes for a period of time to obtain an enzymolysis solution, then adds a complex bacterium to the feed inlet 8, starts the air pump to ventilate, the gas enters from the air inlet pipe 9, and exits from the air outlet 7 for fermentation.

[0047] During the fermentation process, the bacteria-filtering membrane 10 in the air inlet pipe 9 may be blocked by large particle impurities and excessive bacteria. When the bacteria-filtering membrane 10 is blocked, the pressure on the left side of the air inlet pipe 9 increases. At this time, the upper piston 23 will move upward under the action of the pressure. The upward movement of the upper piston 23 will drive the connecting rod 17 to move upward, and the upward movement of the connecting rod 17 will drive the lower piston 18 to move upward. The upward movement of the lower piston 18 causes the lower chamber 20 to form a negative pressure, and the lower chamber 20 sucks the sterile gas in the storage chamber. At the same time, when the connecting rod 17 moves upward, the spring teeth 25 on the connecting rod 17 will engage with the spring teeth 25 on the ratchet wheel 24, causing the ratchet wheel 24 to rotate. The ratchet wheel 24 will drive the rotating rod 16 to rotate, and the rotating rod 16 drives the turntable 15 to rotate, completing the replacement of the bacteria-filtering membrane 10, so that the blocked bacteria-filtering membrane 10 is located in the impurity removal chamber 21. When the turntable 15 rotates, the solid part of the turntable 15 will be inserted into the air inlet pipe 9, causing the pressure on the left side of the air inlet pipe 9 to continue to increase. The increased pressure can play a positive feedback role, making it easier for the turntable 15 to rotate past, and preventing the problem that the bacteria-filtering membrane 10 stops when it comes up partway, causing the bacteria-filtering membrane 10 to get stuck in the middle. When the positive feedback is too large, the limit block 14 will block the upper piston 23 to prevent the upper piston 23 from displacing too much, resulting in the turntable 15 rotating too much.

[0048] Then when the new bacteria-filtering membrane rotates to the upper part, at this time the pressure in the air inlet pipe 9 returns to normal, and the upper piston 23 falls due to gravity, causing the connecting rod 17 to fall. The downward movement of the connecting rod 17 causes the lower piston 18 to move downward. The downward movement of the lower piston 18 causes the sterile gas in the lower chamber 20 to be squeezed out and ejected from the air outlet pipe 22. The air outlet pipe 22 is aligned with the bacteria-filtering membrane 10 of the turntable 15 for backwashing to flush the blocked bacteria-filtering membrane 10 clean for the next use. At the same time, when the pressure in the air inlet pipe 9 returns to normal and the connecting rod 17 moves downward, the spring teeth 25 will contract inward and the ratchet wheel 24 will not rotate. Wait until another bacteria-filtering membrane 10 is blocked and then replace it. This mechanism prevents the problem that the blocked bacteria-filtering membrane 10 is replaced immediately after being flushed clean through the characteristics of the ratchet wheel 24.

[0049] At this time, the operator controls the linkage mechanism to rotate the turntable 15, rotating the clean bacteria-filtering membrane 10 below to the upper part and replacing the blocked bacteria-filtering membrane 10.

[0050] After fermentation is completed, the fermentation mixture is obtained from the discharge port 6. At this time, the operator separates the fermentation substrate through the pressure filtration device and then filters and collects the filtrate. Finally, the filtrate is transferred to the aging and chelating tank for aging and aging to obtain the fermentation stock solution and the finished product.

[0051] The beneficial effects of this solution are as follows: 1. When the bacteria-filtering membrane 10 is blocked, this solution will automatically replace the bacteria-filtering membrane 10 to prevent poor ventilation caused by the blockage of the bacteria-filtering membrane 10. 2. After replacing the bacteria-filtering membrane 10, this mechanism will automatically impact the blocked bacteria-filtering membrane 10, thereby realizing recycling. 3. This mechanism prevents the problem that the blocked bacteria-filtering membrane 10 is immediately replaced after being impacted by the characteristics of the ratchet 24.

[0052] This solution also provides a production process for artemisia annua private bacteriostatic nursing solution, including the following steps: pulverize artemisia annua, ginger, ginkgo biloba leaves, osmanthus, lemon, roselle, honeysuckle, houttuynia cordata, dandelion and optionally mugwort leaves to 12-65 meshes and sieve them, weigh and mix them in proportion, and add warm water to soften for 5-12 hours; then add complex enzyme thereto, and make up water to 4-7 times the weight of the raw materials, stir evenly, and carry out enzymatic hydrolysis for 6-8 days at 37.5±1°C to obtain an enzymatic hydrolysate; add complex bacteria to the enzymatic hydrolysate, carry out fermentation at 37.5±1°C, after 3-4 months of fermentation, separate the fermentation substrate through a pressure filtration device, then filter and collect the filtrate, transfer the filtrate to a ripening and chelating tank for ripening and aging, and the chelating time is 5-8 months to obtain a fermentation stock solution. This process improves the gas circulation inside the tank body 1 through air pump ventilation, and can effectively improve the fermentation efficiency.

[0053] The above are only the embodiments of the present invention. Common knowledge such as specific structures and characteristics known in the solution is not described in detail here. It should be pointed out that for those skilled in the art, without departing from the structure of the present invention, several deformations and improvements can be made, which should also be regarded as the protection scope of the present invention, and these will not affect the implementation effect of the present invention and the practicability of the patent. The protection scope required by this application should be based on the content of its claims, and the specific implementation manners and the like recorded in the specification can be used to interpret the content of the claims.

[0054] ​

Claims

1. A production device for Artemisia annua private bacteriostatic nursing solution, comprising: A screening device: The screening device is used to screen out impurities in the raw materials; A crushing device: The crushing device is used to crush the raw materials; A fermentation device: The fermentation device includes: A tank body (1): The tank body (1) is provided with an air outlet (7), an air inlet pipe (9), a discharge port (6) and a feed port (8), A bacteria filtering membrane (10): The bacteria filtering membrane (10) is arranged in the air inlet pipe (9); An air pump: The air pump is communicated with the air inlet; A stirring mechanism: The stirring mechanism is used to stir the composite bacteria in the tank body (1); A pressure filtration device: The pressure filtration device is used for solid-liquid separation after fermentation; An aging tank: The aging tank is used for aging and aging; The screening device, the crushing device, the fermentation device, the pressure filtration device and the aging tank are connected in sequence; It is characterized in that it further includes: A turntable (15): The turntable (15) is hermetically and rotatably connected to the air inlet pipe (9). The turntable (15) is provided with two mounting ports. There are two bacteria filtering membranes (10). The bacteria filtering membranes (10) are arranged on the mounting ports, and the bacteria filtering membranes (10) are arranged in a 180-degree circular array with the turntable (15) and are mirror-set on the turntable (15). A linkage mechanism is also included, and the turntable (15) cooperates with the linkage mechanism; The linkage mechanism includes: an upper chamber (13), a connecting rod (17), an upper piston (23), a rotating rod (16) and a gear. The upper chamber (13) is communicated with the air inlet pipe (9), and the upper chamber (13) is located on the left side of the bacteria filtering membrane (10). The upper piston (23) is hermetically and slidably connected to the upper chamber (13). One end of the connecting rod (17) is fixedly connected to the upper piston (23), and the other end is located outside the air inlet pipe (9) and is hermetically and slidably connected to the air inlet pipe (9). The rotating rod (16) is fixedly connected to the turntable (15) coaxially. The connecting rod (17) is provided with a rack, and the rack meshes with the gear. The gear is fixedly connected to the rotating rod (16); It further includes a cleaning mechanism (12). The cleaning mechanism (12) includes a lower chamber (20), a storage chamber and a lower piston (18). The lower chamber (20) is fixedly connected to the air inlet pipe (9). The upper chamber (13) and the lower chamber (20) are symmetrically arranged with respect to the air inlet pipe (9). The lower piston (18) is hermetically and slidably connected to the lower chamber (20). The other end of the connecting rod (17) is fixedly connected to the lower piston (18). The lower chamber (20) is provided with a sterile air inlet (19) and an air outlet pipe (22). The storage chamber is provided with sterile gas. The sterile air inlet (19) and the air outlet pipe (22) are both provided with one-way valves. The sterile air inlet (19) is communicated with the storage chamber, and the air outlet pipe (22) cooperates with the turntable (15); The ratchet wheel (24) replaces the gear, and the connecting rod (17) and the ratchet wheel (24) are provided with elastic teeth (25), and the connecting rod (17) cooperates with the ratchet wheel (24); A limiting block (14) is arranged inside the upper chamber (13), and the limiting block (14) is used to limit the stroke of the upper piston (23); It further includes a impurity removal chamber (21), the impurity removal chamber (21) is fixedly connected to the air inlet pipe (9), a bactericidal liquid is provided at the bottom of the impurity removal chamber (21), the bactericidal liquid is matched with the turntable, and the turntable (15) is matched with the impurity removal chamber (21).

2. The production device of an artemisia annua private bacteriostatic care solution according to claim 1, characterized in that, The stirring mechanism includes a motor (2), a main shaft (3) and stirring rods (4). The shaft of the motor (2) is fixedly connected to the main shaft (3), the motor (2) is fixedly connected to the tank body (1), the stirring rods (4) are fixedly connected to the main shaft (3), and there are multiple stirring rods (4). The stirring rods (4) are linearly arranged with the main shaft (3).

3. The production device of an artemisia annua private bacteriostatic care solution according to claim 1, characterized in that, A valve is provided at the feed inlet (8), and a one-way valve for conducting from the inside of the tank body (1) to the outside is provided at the air outlet (7).

4. A production process of an artemisia annua intimate bacteriostatic care solution, which uses a production device for an artemisia annua intimate bacteriostatic care solution as described in any one of claims 1-3, characterized in that, It includes the following steps: Step S10: Screen Artemisia annua, ginger, ginkgo leaves, osmanthus, lemon, Rosa roxburghii, honeysuckle, Houttuynia cordata, dandelion and mugwort through a screening device to remove the impurities inside; Step S20: Add the materials in Step S10 into a crushing device to be crushed and screened respectively, weigh and mix them according to the proportion; Step S30: Add the materials in Step S20 into a fermentation device, and then add warm water to soften them; Step S40: Add a complex enzyme into the fermentation device, stir evenly, and enzymolyze for a set time to obtain an enzymolysis solution; Step S50: Add a complex bacterium into the fermentation device, start the air pump to conduct ventilation, and carry out fermentation; Step S60: Separate the fermentation substrate through a pressure filtration device, and then filter and collect the filtrate; Step S70: Transfer the filtrate to a ripening and chelating tank for ripening and aging to obtain the Artemisia annua private bacteriostatic nursing solution.

5. According to the production process of an artemisia annua private antibacterial care solution described in claim 4, using a production device for an artemisia annua private antibacterial care solution described in any one of claims 1-3, characterized in that, The complex enzyme is a mixture of cellulase, amylase and pectinase, and the complex bacterium is a mixture of Lactobacillus casei, Lactobacillus acidophilus and Lactobacillus rhamnosus.

Citation Information

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