Fermentation tank for producing fishbone probiotic calcium based on probiotic fermentation

By improving the pretreatment, feeding, and detection components of the fermenter, the problem of insufficient convenience of existing fermenters has been solved, the stability and controllability of the fermentation process have been achieved, and the sealing and operational flexibility of the fermenter have been ensured.

CN223535078UActive Publication Date: 2025-11-11HAINAN TROPICAL OCEAN UNIV
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Patent Information

Application Number
CN202422972887.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-12-03
Publication Date
2025-11-11
Estimated Expiration
2034-12-03

AI Technical Summary

Technical Problem

Existing fermenters are not convenient enough for pH testing and adding fermentation broth, which affects the stability and controllability of the fermentation process.

Method used

An improved fermenter was designed, comprising a pretreatment component, a feeding component, and a detection component. The pretreatment component filters and preheats the air, the feeding component enables the addition of solution in a sealed manner, and the detection component facilitates the detection of the fermentation broth, ensuring the airtightness and ease of operation of the fermenter.

Benefits of technology

It enables convenient testing and solution addition in the fermenter, improves the stability and controllability of the fermentation process, and ensures the sealing and operational flexibility of the fermenter.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a fermentation tank, in particular to a fermentation tank for producing probiotic calcium by promoting dissolution of calcium in fishbone based on probiotic fermentation. The utility model provides an improved fermentation tank for producing fishbone probiotic calcium based on probiotic fermentation. The device comprises a fermentation tank body, a pretreatment assembly, a feeding assembly, a detection assembly and the like, the pretreatment assembly used for filtering and preheating entering air is connected between an air inlet pipe and the fermentation tank body, and the feeding assembly and the detection assembly are respectively arranged at the top of the fermentation tank body. The introduced air can be filtered and preheated through the pretreatment assembly, so that harmful bacteria in the air can be filtered completely, and the fermentation quality of the raw materials can be guaranteed; through cooperation of the feeding assembly and the detection assembly, the sealing performance of the fermentation tank body can be effectively guaranteed, meanwhile, a solution can be conveniently added into the fermentation tank body or detection can be conveniently carried out, and use is flexible and convenient.
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Description

Technical Field

[0001] This utility model relates to a fermentation tank, specifically a fermentation tank for producing fish bone probiotic calcium based on probiotic fermentation. Background Technology

[0002] During the fermentation process of fish bone probiotic calcium, it is necessary to monitor key parameters such as the temperature, pH value, and aeration rate of the fermentation broth in real time to ensure the stability and controllability of the fermentation process.

[0003] A utility model patent entitled "A Fermentation Tank" has been published on the China Patent Website, with the authorization announcement number CN219385158U. This device cannot conveniently detect pH value and add corresponding fermentation liquid while ensuring the fermentation tank is sealed, thus it is not convenient enough in use and has room for further improvement.

[0004] Based on this, an improved fermenter for producing probiotic calcium from fish bones based on probiotic fermentation is proposed to solve the above-mentioned technical problems. Utility Model Content

[0005] In order to overcome the shortcomings of existing fermenters that are not convenient to use, the technical problem of this utility model is to provide an improved fermenter for the production of probiotic calcium from fish bones based on probiotic fermentation.

[0006] The technical solution is as follows: A fermenter for producing probiotic calcium from fish bones based on probiotic fermentation, comprising a fermenter body, a sealing cover, a drive motor, a stirring rack, an exhaust pipe, and an air inlet pipe. The upper part of the fermenter body has an openable sealing cover embedded in it. The top of the fermenter body is mounted on a fixed frame with the drive motor. The output shaft of the drive motor passes through the fermenter body and is connected to the stirring rack. The upper part of the fermenter body is connected to and communicates with the exhaust pipe and the air inlet pipe. It also includes a pretreatment component, a feeding component, and a detection component. The air inlet pipe is connected to the fermenter body via a pretreatment component for filtering and preheating the incoming air. The top of the fermenter body is respectively provided with the feeding component and the detection component. The detection component includes a detection tube, a connecting sleeve, a seal, and a cover. The top of the fermenter body near the drive motor is connected to and communicates with the detection tube. The connecting sleeve is sleeved inside the detection tube, and a seal is connected to the middle of the connecting sleeve. The top of the detection tube is rotatably connected to the cover.

[0007] Furthermore, the pretreatment assembly includes a heating cylinder, a filter tank, a connecting pipe, a temperature sensor, and a gas sensor. The filter tank is connected to the mounting bracket. The air inlet of the filter tank is connected to the connecting pipe, and the air outlet of the filter tank is connected to the heating cylinder. The heating cylinder is connected to and communicates with the air inlet pipe. The upper part of the inner wall of the fermentation tank is respectively provided with a temperature sensor and a gas sensor, and both the temperature sensor and the gas sensor are electrically connected to the controller on the fermentation tank.

[0008] Furthermore, the feeding assembly includes a feeding pipe, an elastic element, a plug, and a cover plate. The top of the fermentation tank is connected to and communicates with the feeding pipe on the side opposite to the detection pipe. A groove is opened on the inner side of the feeding pipe, and a plug is slidably fitted in the groove. An elastic element is connected to the bottom of the groove and the upper part of the plug. A cover plate that can be adapted to the feeding pipe is connected to the top of the plug.

[0009] Furthermore, the sealing cap is made of transparent acrylic sheet material.

[0010] Furthermore, it also includes a scraper rod, which is connected to the stirring rack, and the outer side of the scraper rod is in contact with the inner wall of the fermentation tank.

[0011] Furthermore, the fermentation tank is equipped with casters at the bottom.

[0012] Compared with the prior art, the present invention has the following advantages: the pretreatment component can filter and preheat the incoming air to remove harmful bacteria in the air, thereby ensuring the quality of raw material fermentation; the combination of the feeding component and the detection component can effectively ensure the sealing of the fermentation tank while conveniently adding solutions or conducting tests, making it flexible and convenient to use. Attached Figure Description

[0013] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0014] Figure 2 This is a cross-sectional view of the present invention.

[0015] Figure 3 This is a schematic diagram of the connection structure of the drive motor, stirring frame and scraper rod of this utility model.

[0016] Figure 4 This is a structural separation diagram of the feeding component of this utility model.

[0017] Figure 5 This is a structural separation diagram of the detection component of this utility model.

[0018] The above-mentioned attached drawings include the following reference numerals: 1. Fermentation tank body, 2. Sealing cover, 3. Drive motor, 4. Stirring rack, 5. Scraper bar, 6. Exhaust pipe, 7. Inlet pipe, 8. Heating cylinder, 9. Filter tank, 10. Connecting pipe, 11. Temperature sensor, 12. Gas sensor, 13. Feeding pipe, 14. Slide groove, 15. Elastic element, 16. Block, 17. Cover plate, 18. Detection tube, 19. Connecting sleeve, 20. Sealing element, 21. Baffle. Detailed Implementation

[0019] The following description is only a preferred embodiment of the present invention and does not limit the scope of protection of the present invention.

[0020] Example: This utility model provides a fermenter for producing probiotic calcium from fish bones based on probiotic fermentation. (See attached document.) Figures 1 to 5 As shown, the device includes a fermentation tank 1, a sealing cover 2, a drive motor 3, a stirring rack 4, an exhaust pipe 6, an air inlet pipe 7, a pretreatment component, a feeding component, and a detection component. The fermentation tank 1 is equipped with four casters at the bottom for easy and flexible movement. An openable sealing cover 2, made of transparent acrylic, is embedded in the upper part of the fermentation tank 1, allowing for real-time monitoring of the fermentation process. The drive motor 3 is mounted on the top of the fermentation tank 1 via a mounting bracket. The output shaft of the drive motor 3 passes through the fermentation tank 1 and is connected to the stirring rack 4. The upper part of the fermentation tank 1 is connected to and connected to the exhaust pipe 6 and the air inlet pipe 7. A pretreatment component is connected between the air inlet pipe 7 and the fermentation tank 1. The pretreatment component can filter and preheat the air introduced into the fermentation tank 1. A feeding component and a detection component are respectively set on the top of the fermentation tank 1. The detection component includes a detection tube 18, a connecting sleeve 19, a sealing element 20, and a cover 21. The detection tube 18 is connected and communicated at the top of the fermentation tank 1 near the drive motor 3. The connecting sleeve 19 is sleeved inside the detection tube 18. The sealing element 20 is connected in the middle of the connecting sleeve 19. The sealing element 20 is made of multiple pieces of elastic rubber material spliced ​​together, which can ensure the sealing of the fermentation tank 1 when the detection rod is inserted. The cover 21 is rotatably connected to the top of the detection tube 18.

[0021] For further details, please refer to [link / reference]. Figure 1 and Figure 2As shown, the pretreatment assembly includes a heating cylinder 8, a filter tank 9, a connecting pipe 10, a temperature sensor 11, and a gas sensor 12. The filter tank 9 is connected to the mounting bracket. The filter tank 9 can sterilize and filter impurities from the incoming air. The air inlet of the filter tank 9 is connected to the connecting pipe 10, and the air outlet of the filter tank 9 is connected to the heating cylinder 8. The heating cylinder 8 is connected to and communicates with the air inlet pipe 7. By turning on the heating cylinder 8, the filtered air can be preheated so that the hot air can enter the fermentation tank 1. The temperature sensor 11 and the gas sensor 12 are respectively installed on the upper part of the inner wall of the fermentation tank 1, and both the temperature sensor 11 and the gas sensor 12 are electrically connected to the controller on the fermentation tank 1.

[0022] For further details, please refer to [link / reference]. Figure 1 and Figure 4 As shown, the feeding assembly includes a feeding pipe 13, an elastic element 15, a plug 16, and a cover plate 17. The top of the fermentation tank 1 is connected to and communicates with the side opposite to the detection pipe 18 via the feeding pipe 13. A groove 14 is provided inside the feeding pipe 13, and the plug 16 is slidably fitted inside the groove 14. An elastic element 15 is connected between the bottom of the groove 14 and the upper part of the plug 16. The elastic element 15 is made of elastic rubber and is used to provide an upward reset function for the plug 16. The top of the plug 16 is connected to a cover plate 17 that can be adapted to the feeding pipe 13. Pressing the cover plate 17 downward can embed it into the feeding pipe 13, thereby sealing the feeding pipe 13.

[0023] In addition, see Figure 2 and Figure 3 As shown, it also includes a scraper rod 5. The scraper rod 5 is connected to the stirring rack 4, and the outer side of the scraper rod 5 is in contact with the inner wall of the fermentation tank 1, which makes it easy to scrape the raw materials attached to the inner wall of the fermentation tank 1 and avoid the problem of inconvenient subsequent cleaning.

[0024] The sealing cap 2 allows the fish bone probiotic raw material (hereinafter referred to as raw material) to be fermented to be poured into the fermentation tank 1. After the raw material is added, the sealing cap 2 is reset. The fermentation status of the raw material in the fermentation tank 1 can be observed in real time through the sealing cap 2. When it is necessary to stir the raw material in the fermentation tank 1, the drive motor 3 is started to drive the stirring rack 4 to rotate and stir the raw material evenly. At the same time, the scraper 5 can scrape off the raw material adhering to the inner wall of the fermentation tank 1, avoiding the problem of raw material adhering to the inner wall of the fermentation tank 1 and causing cleaning difficulties. The temperature sensor 11 and the gas sensor 12 can detect the fermentation status of the fermentation tank 1 in real time. When it is necessary to ventilate and heat the inside of the fermentation tank 1, the heating cylinder 8 can be turned on. When air enters from the filter tank 9, the filter tank 9 can filter the air, which is beneficial for filtering and eliminating harmful bacteria in the air. When the filtered air flows through the heating cylinder 8, the heating cylinder 8 can preheat the filtered air so that the preheated air can enter the fermentation tank. Inside the fermentation tank 1, the raw materials can be heated. When it is necessary to use a detection rod to check the fermentation status inside the fermentation tank 1, the cover 21 can be rotated and pushed open, and then the detection rod can be inserted into the fermentation tank 1 through the seal 20. The tight fit between the seal 20 and the detection rod facilitates convenient testing while ensuring the airtightness of the fermentation tank 1. After the test is completed, the detection rod can be pulled upwards and the cover 21 can be reset. When it is necessary to add a solvent to the fermentation tank 1 to adjust the pH value... When adding liquid, the corresponding solution can be poured into the feeding pipe 13, and then the cover plate 17 is pressed down so that the plug 16 can move downward and disengage from the feeding pipe 13. The added solution will flow from the feeding pipe 13 into the fermentation tank 1, while the cover plate 17 will seal the feeding pipe 13. When the cover plate 17 is released, the elastic force of the elastic element 15 can drive the plug 16 and the cover plate 17 to reset. In this way, the sealing of the fermentation tank 1 can be guaranteed while the solution can be added conveniently, making it quick and easy to use.

[0025] Those skilled in the art should understand that the above embodiments do not limit the present invention in any way, and all technical solutions obtained by means of equivalent substitution or equivalent transformation fall within the protection scope of the present invention.

Claims

1. A fermenter for producing probiotic calcium from fish bones based on probiotic fermentation, comprising a fermenter body (1), a sealing cover (2), a drive motor (3), a stirring rack (4), an exhaust pipe (6), and an air inlet pipe (7), wherein the upper part of the fermenter body (1) is fitted with an openable sealing cover (2), the top of the fermenter body (1) is fitted with a drive motor (3) via a fixing frame, the output shaft of the drive motor (3) passes through the fermenter body (1) and is connected to the stirring rack (4), and the upper part of the fermenter body (1) is connected and communicates with the exhaust pipe (6) and the air inlet pipe (7), characterized in that: It also includes a pretreatment component, a feeding component, and a detection component. The air inlet pipe (7) is connected to the fermentation tank (1) by a pretreatment component for filtering and preheating the incoming air. The top of the fermentation tank (1) is provided with a feeding component and a detection component. The detection component includes a detection tube (18), a connecting sleeve (19), a sealing element (20), and a cover (21). The top of the fermentation tank (1) is connected to and communicates with the detection tube (18) near the drive motor (3). The connecting sleeve (19) is sleeved inside the detection tube (18). The sealing element (20) is connected in the middle of the connecting sleeve (19). The cover (21) is rotatably connected to the top of the detection tube (18).

2. The fermenter for producing probiotic calcium from fish bones based on probiotic fermentation according to claim 1, characterized in that: The pretreatment assembly includes a heating cylinder (8), a filter tank (9), a connecting pipe (10), a temperature sensor (11), and a gas sensor (12). The filter tank (9) is connected to the mounting bracket. The air inlet of the filter tank (9) is connected to the connecting pipe (10), and the exhaust end of the filter tank (9) is connected to the heating cylinder (8). The heating cylinder (8) is connected to and communicates with the air inlet pipe (7). The upper part of the inner wall of the fermentation tank (1) is respectively provided with a temperature sensor (11) and a gas sensor (12), and both the temperature sensor (11) and the gas sensor (12) are electrically connected to the controller on the fermentation tank (1).

3. The fermenter for producing probiotic calcium from fish bones based on probiotic fermentation according to claim 1, characterized in that: The feeding assembly includes a feeding pipe (13), an elastic element (15), a plug (16), and a cover plate (17). The top of the fermentation tank (1) is connected to the side opposite to the detection pipe (18) and is connected to the feeding pipe (13). A groove (14) is provided inside the feeding pipe (13). The plug (16) is slidably fitted inside the groove (14). The bottom of the groove (14) is connected to the upper part of the plug (16) with an elastic element (15). The top of the plug (16) is connected to a cover plate (17) that can be adapted to the feeding pipe (13).

4. The fermenter for producing probiotic calcium from fish bones based on probiotic fermentation according to claim 1, characterized in that: The sealing cap (2) is made of transparent acrylic sheet material.

5. A fermenter for producing probiotic calcium from fish bones based on probiotic fermentation according to claim 1, characterized in that: It also includes a scraper rod (5), which is connected to the stirring rack (4), and the outer side of the scraper rod (5) is in contact with the inner wall of the fermentation tank (1).

6. A fermenter for producing probiotic calcium from fish bones based on probiotic fermentation according to claim 1, characterized in that: The fermentation tank (1) is equipped with casters at the bottom.

Citation Information

Patent Citations

  • Fermentation tank

    CN219385158U