Production reaction equipment and method for bacterial compound probiotic preparation

By using a stirring mechanism and detection mechanism in the fermentation tank, combined with the light intensity sensor and the S-shaped heat conduction tube, uniform mixing of probiotics and fermentation raw materials and constant temperature fermentation are achieved, solving the problems of precipitation and uneven temperature, and improving the fermentation efficiency and detection accuracy.

CN120442386AInactive Publication Date: 2025-08-08YANGZHOU UNIV
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Patent Information

Application Number
CN202510588384.1
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-08
Publication Date
2025-08-08
Estimated Expiration
Not applicable · inactive patent

AI Technical Summary

Technical Problem

Probiotics and fermentation raw materials are prone to precipitation in the fermentation tank, resulting in uneven fermentation, and the temperature inside the fermentation tank is uneven, affecting the fermentation effect of probiotics.

Method used

The mixing mechanism and the detection mechanism are used in combination. The turbidity is monitored in real time through the light intensity sensor and the arc lamp plate, and the motor rotation is controlled to achieve stirring. Combined with the S-shaped heat conduction pipe and constant temperature heating, it ensures that the probiotics and fermentation raw materials are evenly mixed and fermented in a constant temperature.

Benefits of technology

The uniform mixing of probiotics and fermentation raw materials and constant temperature fermentation are achieved, precipitation phenomenon is avoided, the bacterial proliferation rate and product synthesis efficiency are improved, and the real-time and accuracy of the detection signal are ensured.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses a bacterial composite probiotic preparation production reaction device and method, the device comprises a fermentation tank, the fermentation tank is provided with support legs, a feed pipe and a discharge pipe, a stirring mechanism used for mixing and stirring probiotics and fermentation raw materials and a detection mechanism used for detecting the turbidity of a mixture in the fermentation tank are arranged in the fermentation tank, and during use, the turbidity in the fermentation tank is detected in real time through matched use of an illumination intensity sensor and an arc-shaped lamp panel; when the turbidity in the fermentation tank is relatively low, a motor is started to stir the interior of the fermentation tank, so that probiotics and fermentation raw materials are uniformly mixed, and uniform distribution of thalli in a fermentation substrate is ensured; constant-temperature water flows on the first heat conduction pipe and the S-shaped heat conduction pipe, and the first heat conduction pipe and the S-shaped heat conduction pipe can enable probiotics and fermentation raw materials in the fermentation tank to keep constant temperature, so that the constant fermentation temperature is increased for the probiotics, and the fermentation efficiency of the probiotics is improved.
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Description

Technical Field

[0001] The present invention relates to the technical field of probiotic preparation production, and in particular to a bacterial composite probiotic preparation production reaction device and method. Background Art

[0002] Probiotics are active microorganisms that colonize the human body and alter the composition of the host's microbial flora. They promote nutrient absorption and maintain intestinal health by regulating the host's mucosal and systemic immune functions or by adjusting the balance of intestinal flora, thereby producing single microorganisms or a defined mixture of microorganisms that have beneficial health effects.

[0003] During the fermentation production of probiotic preparations, probiotics and fermentation raw materials tend to settle to the bottom of the fermentation tank, affecting the contact between the probiotics and the fermentation raw materials, which is not conducive to the fermentation of the probiotics. At the same time, since the heating equipment of the fermentation tank is mostly installed on the side wall of the fermentation tank, it is easy to cause uneven temperature inside the fermentation tank, which in turn leads to uneven fermentation and affects the fermentation of probiotics.

[0004] In view of the above problems, an improved bacterial composite probiotic preparation production reaction equipment and method are now designed. Summary of the Invention

[0005] In view of the deficiencies in the prior art, the present invention discloses a bacterial composite probiotic preparation production reaction device and method to solve the problems raised in the above background technology.

[0006] To achieve the above-mentioned objectives, the present invention provides the following technical solutions: a bacterial composite probiotic preparation production reaction equipment, comprising a fermentation tank, wherein the lower end of the fermentation tank is equipped with a support leg for supporting the fermentation tank, a feed pipe is installed on the side wall of the fermentation tank, and a discharge pipe is installed at the center position of the bottom of the fermentation tank. A stirring mechanism for mixing and stirring probiotics and fermentation raw materials is provided inside the fermentation tank, and a detection mechanism for detecting the turbidity of the mixture inside the fermentation tank is provided inside the fermentation tank.

[0007] Preferably, the stirring mechanism includes a rotating frame, which is arranged inside the fermentation tank above the feed pipe, and a rotating seat is horizontally installed on the inner wall of the fermentation tank close to the rotating frame, and a rotating ring used in conjunction with the rotating seat is installed on the side wall of the rotating frame, and the rotating ring is rotatably connected to the inner wall of the rotating seat, and a first heat conducting pipe is vertically arranged below the center position of the rotating frame, and a plurality of S-shaped heat conducting pipes are installed at the lower end of the first heat conducting pipe, and the end of the S-shaped heat conducting pipe away from the first heat conducting pipe is installed at the bottom of the rotating frame.

[0008] Preferably, a driving assembly for driving the rotating frame to rotate is provided on the top of the fermentation tank, and the driving assembly includes a gear ring, which is installed on the upper end of the side wall of the rotating frame. A motor is installed on the top of the fermentation tank, and a gear is installed on the output end of the motor, and the gear and the gear ring are engaged with each other.

[0009] Preferably, the rotating frame is provided with a heating assembly for constant temperature heating of the first heat conducting pipe and the S-shaped heat conducting pipe, the heating assembly includes a fixed frame and a rotating joint, the center position of the bottom of the rotating frame is rotatably and sealedly connected to a fixed disk, water is filled in the fixed frame and the rotating frame, the fixed frame is rotatably connected to the upper end of the rotating frame, the upper end of the fixed frame is installed with a connecting block, the upper end of the connecting block is installed on the top of the fermentation tank, a heater for heating water is installed at the bottom of the fixed frame, an overflow pipe for overflowing the water inside the fixed frame is installed on the side wall of the fixed frame near the top of the rotating frame, a fixed pipe is vertically installed at the center position of the bottom of the fixed frame, the lower end of the fixed pipe passes through the fixed disk and is connected to the input end of the first heat conducting pipe through a rotating joint, the fixed disk and the fixed pipe are fixedly connected together, a water pump is installed on the side wall of the fixed pipe, and a water supply pipe for filling water into the fixed frame is vertically installed on the upper end of the fixed frame, and the upper end of the water supply pipe passes through the fermentation tank and is arranged above the fermentation tank.

[0010] Preferably, the detection mechanism includes a plurality of arc-shaped light panels, which are arranged in a circular array around the fixed tube and the first heat-conducting tube, the arc-shaped light panels are vertically mounted on the fixed plate, and the upper end of the arc-shaped light panel is mounted on the lower end of the fixed frame. A plurality of light intensity sensors for detecting turbidity in conjunction with the arc-shaped light panels are mounted on the inner wall of the fermentation tank, and the plurality of light intensity sensors are evenly divided into a plurality of vertical columns and mounted in a circular array on the inner wall of the fermentation tank.

[0011] Preferably, the S-shaped heat pipe is provided with a cleaning assembly for cleaning the arc lamp panel and the light intensity sensor, and the cleaning assembly includes a plurality of fixing rods, and the fixing rods are vertically arranged on the S-shaped heat pipe near the light intensity sensor and the arc lamp panel, and a plurality of connecting rods are installed at one end of the fixing rod close to the S-shaped heat pipe, and the end of the connecting rod away from the fixing rod is installed on the side wall of the S-shaped heat pipe, and a cleaning block for cleaning the arc lamp panel and the light intensity sensor is installed at one end of the fixing rod close to the corresponding arc lamp panel and the light intensity sensor.

[0012] Preferably, a plurality of heat conducting plates are installed on the side wall of the S-shaped heat conducting pipe to facilitate temperature transfer.

[0013] Preferably, a ball bearing is installed on the inner wall of the rotating seat to facilitate the rotation of the rotating ring.

[0014] Preferably, a conical block is installed at the bottom of the fermentation tank to facilitate the collection of probiotics fermented inside the fermentation tank onto the discharge pipe.

[0015] The present invention also provides a method for using a bacterial composite probiotic preparation production reaction device, comprising the following steps:

[0016] S1. Before use, water is added to the fixed frame and the rotating frame through the water adding pipe, and then the heater is started to heat the water inside the fixed frame. Then, the water pump is started to make the water flow through the S-shaped heat conducting pipe, the first heat conducting pipe, the fixed pipe, the fixed frame, the overflow pipe, and the rotating frame in sequence, so that the hot water inside the fixed frame circulates through the first heat conducting pipe and the S-shaped heat conducting pipe, completing the constant temperature heating preparation, so that the first heat conducting pipe and the S-shaped heat conducting pipe can heat the probiotics and fermentation raw materials inside the fermentation tank at a constant temperature;

[0017] S2. Start the arc light panel, detect the light intensity in real time through the light intensity sensor, and transmit the data information to the controller for analysis. When the light intensity detected by the light intensity sensor is less than the set value, it means that the inside of the fermentation tank is relatively turbid, and the controller controls the motor to rotate at a low speed. Otherwise, the controller controls the motor to rotate at a high speed.

[0018] S3. After starting the motor, the output end of the motor drives the gear to rotate, the gear drives the gear ring to rotate, the gear ring drives the rotating frame to rotate, and the rotating frame drives the S-shaped heat pipe and the first heat pipe to rotate, so that the first heat pipe and the S-shaped heat pipe stir and mix the probiotics and fermentation raw materials inside the fermentation tank; at the same time, when the S-shaped heat pipe rotates, the S-shaped heat pipe drives the connecting rod to rotate, the connecting rod drives the fixed rod to rotate, and the fixed rod drives the cleaning block to rotate, and the cleaning block cleans the arc light panel and the light intensity sensor.

[0019] Compared with the prior art, the present invention has the following beneficial effects:

[0020] 1. The present invention realizes intelligent turbidity monitoring and dynamic stirring control. Through the coordinated use of a light intensity sensor and an arc light panel, the transmittance changes in different areas of the fermentation tank can be captured in real time. When the light intensity detected by the light intensity sensor is greater than the set value, it indicates that the turbidity inside the fermentation tank is low, and the sedimentation risk of the mixture is determined. The controller is triggered to start the motor to stir the inside of the fermentation tank, so that the probiotics and the fermentation raw materials are evenly mixed, preventing the probiotics and the fermentation raw materials from sinking to the bottom of the fermentation tank, effectively preventing the stratification phenomenon caused by the density difference between the bacterial community and the raw materials, ensuring the uniform distribution of the bacteria in the fermentation matrix, and providing a stable reaction environment for the metabolic activities of the bacterial community.

[0021] 2. The present invention forms a mechanical linkage mechanism by using a rigid connecting rod between the S-shaped heat pipe and the cleaning block. While the S-shaped heat pipe is stirring, the S-shaped heat pipe drives the cleaning block to clean the arc light board and the light intensity sensor, thereby preventing powder from adhering to the arc light board and the light intensity sensor, significantly reducing the risk of detection signal attenuation, ensuring the real-time and accuracy of turbidity data, and improving the detection efficiency of the arc light board and the light intensity sensor.

[0022] 3. The present invention extends the heat exchange time of the medium by allowing constant temperature water to flow through the first heat pipe and the S-shaped heat pipe. The first heat pipe and the S-shaped heat pipe can maintain a constant temperature for the probiotics and fermentation raw materials inside the fermentation tank, thereby increasing the constant fermentation temperature for the probiotics and significantly improving the bacterial proliferation rate and product synthesis efficiency. BRIEF DESCRIPTION OF THE DRAWINGS

[0023] The accompanying drawings are used to provide further understanding of the present invention and constitute a part of the specification. They are used to explain the present invention together with the embodiments of the present invention and do not constitute a limitation of the present invention.

[0024] In the attached figure:

[0025] Figure 1 This is a schematic diagram of the overall structure of the bacterial composite probiotic preparation production reaction equipment of the present invention;

[0026] Figure 2 This is a schematic cross-sectional view of a reaction device for producing a bacterial composite probiotic preparation according to the present invention;

[0027] Figure 3 It is a structural schematic diagram of the arc light panel of the present invention;

[0028] Figure 4 It is a schematic structural diagram of the cleaning component of the present invention;

[0029] Numbers in the figure: 1. Fermentation tank; 2. Fixed plate; 3. Conical block; 4. Support leg; 5. Arc-shaped lamp panel; 6. Discharge pipe; 7. Connecting rod; 8. Fixed rod; 9. Fixed pipe; 10. Gear; 11. Motor; 12. Controller; 13. Fixed frame; 14. Connecting block; 15. Heater; 16. Rotating frame; 17. Gear ring; 18. Rotating seat; 19. Rotating ring; 20. Feed pipe; 21. Rotary joint; 22. First heat pipe; 23. S-shaped heat pipe; 24. Overflow pipe; 25. Water pump; 26. Cleaning block; 27. Light intensity sensor. DETAILED DESCRIPTION

[0030] The preferred embodiments of the present invention are described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are only used to illustrate and explain the present invention, and are not used to limit the present invention.

[0031] like Figure 1-Figure 4 As shown, the present invention provides a bacterial composite probiotic preparation production reaction equipment, including a fermentation tank 1, the lower end of the fermentation tank 1 is equipped with a support leg 4 for supporting the fermentation tank 1, a feed pipe 20 is installed on the side wall of the fermentation tank 1, and a discharge pipe 6 is installed at the center of the bottom of the fermentation tank 1. The bottom of the fermentation tank 1 is equipped with a conical block 3 for facilitating the collection of fermented probiotics inside the fermentation tank 1 onto the discharge pipe 6. A stirring mechanism for mixing and stirring probiotics and fermentation raw materials is provided inside the fermentation tank 1, and a detection mechanism for detecting the turbidity of the mixture inside the fermentation tank 1 is provided inside the fermentation tank 1.

[0032] The stirring mechanism includes a rotating frame 16, which is arranged inside the fermentation tank 1 above the feeding pipe 20. A rotating seat 18 is horizontally installed on the inner wall of the fermentation tank 1 near the rotating frame 16, and a rotating ring 19 used in conjunction with the rotating seat 18 is installed on the side wall of the rotating frame 16. The rotating ring 19 is rotatably connected to the inner wall of the rotating seat 18. A first heat conducting pipe 22 is vertically arranged below the center position of the rotating frame 16, and a plurality of S-shaped heat conducting pipes 23 are installed at the lower end of the first heat conducting pipe 22. The end of the S-shaped heat conducting pipe 23 away from the first heat conducting pipe 22 is installed at the bottom of the rotating frame 16. A driving assembly for driving the rotating frame 16 to rotate is provided on the top of the fermentation tank 1, and a heating assembly for constant temperature heating of the first heat conducting pipe 22 and the S-shaped heat conducting pipe 23 is provided on the rotating frame 16.

[0033] The driving assembly includes a gear ring 17 , which is mounted on the upper end of the side wall of the rotating frame 16 . A motor 11 is mounted on the top of the fermenter 1 , and a gear 10 is mounted on the output end of the motor 11 . The gear 10 and the gear ring 17 are meshed with each other.

[0034] During use, after starting the motor 11, the output end of the motor 11 drives the gear 10 to rotate, the gear 10 drives the gear ring 17 to rotate, the gear ring 17 drives the rotating frame 16 to rotate, and the rotating frame 16 drives the S-shaped heat conducting pipe 23 and the first heat conducting pipe 22 to rotate, so that the first heat conducting pipe 22 and the S-shaped heat conducting pipe 23 stir and mix the probiotics and fermentation raw materials inside the fermentation tank 1.

[0035] The heating assembly includes a fixed frame 13 and a rotary joint 21. The fixed disk 2 is rotatably sealed at the bottom center of the rotating frame 16. Water is filled in the fixed frame 13 and the rotating frame 16. The fixed frame 13 is rotatably connected to the upper end of the rotating frame 16. The upper end of the fixed frame 13 is equipped with a connecting block 14. The upper end of the connecting block 14 is installed on the top of the fermentation tank 1. A heater 15 for heating water is installed at the bottom of the fixed frame 13. The side wall of the fixed frame 13 near the top of the rotating frame 16 is equipped with a An overflow pipe 24 is used to overflow the water inside the fixed frame 13. A fixed pipe 9 is vertically installed at the center of the bottom of the fixed frame 13. The lower end of the fixed pipe 9 passes through the fixed disk 2 and is connected to the input end of the first heat conduction pipe 22 through a rotary joint 21. The fixed disk 2 and the fixed pipe 9 are fixedly connected together. A water pump 25 is installed on the side wall of the fixed pipe 9. A water adding pipe for adding water to the fixed frame 13 is vertically installed at the upper end of the fixed frame 13. The upper end of the water adding pipe passes through the fermentation tank 1 and is arranged above the fermentation tank 1.

[0036] During use, water is added to the fixed frame 13 and the rotating frame 16 through the water adding pipe, and then the heater 15 is started to heat the water inside the fixed frame 13. Then, the water pump 25 is started to make the water flow through the S-shaped heat conducting pipe 23, the first heat conducting pipe 22, the fixed pipe 9, the fixed frame 13, the overflow pipe 24, and the rotating frame 16 in sequence, so that the hot water inside the fixed frame 13 circulates through the first heat conducting pipe 22 and the S-shaped heat conducting pipe 23, so that the first heat conducting pipe 22 and the S-shaped heat conducting pipe 23 heat the probiotics and fermentation raw materials inside the fermentation tank 1 at a constant temperature.

[0037] The detection mechanism includes a plurality of arc-shaped lamp panels 5, which are arranged in a circular array around the fixed tube 9 and the first heat conducting tube 22. The arc-shaped lamp panels 5 are vertically mounted on the fixed plate 2, and the upper end of the arc-shaped lamp panel 5 is mounted on the lower end of the fixed frame 13. A plurality of light intensity sensors 27 for detecting turbidity in conjunction with the arc-shaped lamp panels 5 are mounted on the inner wall of the fermentation tank 1. The plurality of light intensity sensors 27 are evenly divided into a plurality of vertical columns and are mounted in a circular array on the inner wall of the fermentation tank 1. A cleaning component for cleaning the arc-shaped lamp panel 5 and the light intensity sensor 27 is provided on the S-shaped heat conducting tube 23.

[0038] The cleaning assembly includes several fixing rods 8, which are vertically arranged on the S-shaped heat pipe 23 near the light intensity sensor 27 and the arc lamp board 5. Several connecting rods 7 are installed on one end of the fixing rod 8 close to the S-shaped heat pipe 23, and the end of the connecting rod 7 away from the fixing rod 8 is installed on the side wall of the S-shaped heat pipe 23. A cleaning block 26 for cleaning the arc lamp board 5 and the light intensity sensor 27 is installed on the end of the fixing rod 8 close to the corresponding arc lamp board 5 and the light intensity sensor 27.

[0039] When in use, the arc light panel 5 is started, and the light intensity is detected in real time by the light intensity sensor 27, and the data information is transmitted to the controller 12 for analysis. When the light intensity detected by the light intensity sensor 27 is less than the set value, it means that the inside of the fermentation tank 1 is relatively turbid, and the controller 12 controls the motor 11 to rotate at a low speed. Otherwise, the controller 12 controls the motor 11 to rotate at a high speed.

[0040] At the same time, when the S-shaped heat pipe 23 rotates, the S-shaped heat pipe 23 will drive the connecting rod 7 to rotate, the connecting rod 7 will drive the fixing rod 8 to rotate, and the fixing rod 8 will drive the cleaning block 26 to rotate. The cleaning block 26 cleans the arc lamp panel 5 and the light intensity sensor 27.

[0041] The specific working principle of the present invention is:

[0042] Before use, water is added to the fixed frame 13 and the rotating frame 16 through the water adding pipe, and then the heater 15 is started to heat the water inside the fixed frame 13. Then, the water pump 25 is started to make the water flow through the S-shaped heat conducting pipe 23, the first heat conducting pipe 22, the fixed pipe 9, the fixed frame 13, the overflow pipe 24, and the rotating frame 16 in sequence, so that the hot water inside the fixed frame 13 circulates through the first heat conducting pipe 22 and the S-shaped heat conducting pipe 23, completing the constant temperature heating preparation, so that the first heat conducting pipe 22 and the S-shaped heat conducting pipe 23 can heat the probiotics and fermentation raw materials inside the fermentation tank 1 at a constant temperature.

[0043] When in use, the arc light panel 5 is started, and the light intensity is detected in real time by the light intensity sensor 27, and the data information is transmitted to the controller 12 for analysis. When the light intensity detected by the light intensity sensor 27 is less than the set value, it means that the inside of the fermentation tank 1 is relatively turbid, and the controller 12 controls the motor 11 to rotate at a low speed. Otherwise, the controller 12 controls the motor 11 to rotate at a high speed.

[0044] After starting the motor 11, the output end of the motor 11 drives the gear 10 to rotate, the gear 10 drives the gear ring 17 to rotate, the gear ring 17 drives the rotating frame 16 to rotate, and the rotating frame 16 drives the S-shaped heat conducting pipe 23 and the first heat conducting pipe 22 to rotate, so that the first heat conducting pipe 22 and the S-shaped heat conducting pipe 23 stir and mix the probiotics and fermentation raw materials inside the fermentation tank 1.

[0045] At the same time, when the S-shaped heat pipe 23 rotates, the S-shaped heat pipe 23 will drive the connecting rod 7 to rotate, the connecting rod 7 will drive the fixing rod 8 to rotate, and the fixing rod 8 will drive the cleaning block 26 to rotate. The cleaning block 26 cleans the arc lamp panel 5 and the light intensity sensor 27.

[0046] Finally, it should be noted that the above description is merely a preferred embodiment of the present invention and is not intended to limit the present invention. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art will be able to modify the technical solutions described in the aforementioned embodiments or substitute equivalents for some of the technical features. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present invention shall be included within the scope of protection of the present invention.

Claims

1. A bacterial composite probiotic preparation production reaction equipment, characterized by: The fermentation tank (1) comprises a fermentation tank (1), wherein a support leg (4) for supporting the fermentation tank (1) is installed at the lower end of the fermentation tank (1), a feed pipe (20) is installed on the side wall of the fermentation tank (1), and a discharge pipe (6) is installed at the center position of the bottom of the fermentation tank (1); The fermentation tank (1) is provided with a stirring mechanism for mixing and stirring the probiotics and the fermentation raw materials, and the fermentation tank (1) is provided with a detection mechanism for detecting the turbidity of the mixture inside the fermentation tank (1).

2. The bacterial composite probiotic preparation production reaction equipment according to claim 1, characterized in that: The stirring mechanism comprises a rotating frame (16), the rotating frame (16) being arranged inside the fermentation tank (1) above the feeding pipe (20), a rotating seat (18) being horizontally mounted around the inner wall of the fermentation tank (1) near the rotating frame (16), a rotating ring (19) being mounted on the side wall of the rotating frame (16) for use in conjunction with the rotating seat (18), the rotating ring (19) being rotatably connected to the inner wall of the rotating seat (18), a first heat conducting pipe (22) being vertically mounted below the center position of the rotating frame (16), a plurality of S-shaped heat conducting pipes (23) being mounted at the lower end of the first heat conducting pipe (22), and an end of the S-shaped heat conducting pipe (23) being mounted at the bottom of the rotating frame (16) away from the first heat conducting pipe (22).

3. The bacterial composite probiotic preparation production reaction equipment according to claim 2, characterized in that: A driving assembly for driving the rotating frame (16) to rotate is provided on the top of the fermentation tank (1), and the driving assembly includes a gear ring (17). The gear ring (17) is installed on the upper end of the side wall of the rotating frame (16). A motor (11) is installed on the top of the fermentation tank (1), and a gear (10) is installed at the output end of the motor (11). The gear (10) and the gear ring (17) are meshed with each other.

4. The bacterial composite probiotic preparation production reaction equipment according to claim 2, characterized in that: The rotating frame (16) is provided with a heating assembly for performing constant temperature heating on the first heat conducting pipe (22) and the S-shaped heat conducting pipe (23), the heating assembly comprises a fixed frame (13) and a rotary joint (21), the bottom center position of the rotating frame (16) is rotatably sealed and connected to a fixed disk (2), the interiors of the fixed frame (13) and the rotating frame (16) are both filled with water, the fixed frame (13) is rotatably connected to the upper end of the rotating frame (16), the upper end of the fixed frame (13) is installed with a connecting block (14), the upper end of the connecting block (14) is installed on the top of the fermentation tank (1), the bottom of the fixed frame (13) is installed with a heater (15) for heating water, the An overflow pipe (24) for overflowing water from the fixed frame (13) is installed on the side wall of the fixed frame (13) near the top of the rotating frame (16). A fixed pipe (9) is vertically installed at the center of the bottom of the fixed frame (13). The lower end of the fixed pipe (9) passes through the fixed disk (2) and is connected to the input end of the first heat conducting pipe (22) through a rotating joint (21). The fixed disk (2) and the fixed pipe (9) are fixedly connected together. A water pump (25) is installed on the side wall of the fixed pipe (9). A water supply pipe for adding water to the fixed frame (13) is vertically installed at the upper end of the fixed frame (13). The upper end of the water supply pipe passes through the fermentation tank (1) and is arranged above the fermentation tank (1).

5. The bacterial composite probiotic preparation production reaction equipment according to claim 2, characterized in that: The detection mechanism comprises a plurality of arc-shaped light panels (5), the arc-shaped light panels (5) being arranged in a circular array around the fixed tube (9) and the first heat-conducting tube (22), the arc-shaped light panels (5) being vertically mounted on the fixed disk (2), the upper end of the arc-shaped light panels (5) being mounted on the lower end of the fixed frame (13), the inner wall of the fermentation tank (1) being mounted with a plurality of light intensity sensors (27) for detecting turbidity in conjunction with the arc-shaped light panels (5), the plurality of light intensity sensors (27) being evenly divided into a plurality of vertical rows and mounted in a circular array on the inner wall of the fermentation tank (1).

6. The bacterial composite probiotic preparation production reaction equipment according to claim 5, characterized in that: The S-shaped heat conducting pipe (23) is provided with a cleaning assembly for cleaning the arc-shaped lamp panel (5) and the light intensity sensor (27), and the cleaning assembly comprises a plurality of fixing rods (8), the fixing rods (8) being vertically arranged on the S-shaped heat conducting pipe (23) near the light intensity sensor (27) and the arc-shaped lamp panel (5), a plurality of connecting rods (7) being installed at one end of the fixing rod (8) near the S-shaped heat conducting pipe (23), the ends of the connecting rods (7) being away from the fixing rods (8) being installed on the side wall of the S-shaped heat conducting pipe (23), and a cleaning block (26) for cleaning the arc-shaped lamp panel (5) and the light intensity sensor (27) being installed at one end of the fixing rod (8) near the corresponding arc-shaped lamp panel (5) and the light intensity sensor (27).

7. The bacterial composite probiotic preparation production reaction equipment according to claim 6, characterized in that: A plurality of heat conducting sheets for facilitating temperature transfer are installed on the side wall of the S-shaped heat conducting pipe (23).

8. The bacterial composite probiotic preparation production reaction equipment according to claim 2, characterized in that: Balls are installed on the inner wall of the rotating seat (18) to facilitate the rotation of the rotating ring (19).

9. The bacterial composite probiotic preparation production reaction equipment according to claim 1, characterized in that: The bottom of the fermentation tank (1) is provided with a conical block (3) for facilitating the collection of probiotics fermented inside the fermentation tank (1) onto the discharge pipe (6).

10. A method for using the bacterial composite probiotic preparation production reaction equipment according to any one of claims 1 to 9, characterized in that: The following steps are involved: S1. First, water is added to the interior of the fixed frame (13) and the rotating frame (16) through the water adding pipe, and then the heater (15) is started to heat the water inside the fixed frame (13), and then the water pump (25) is started to make the water flow through the S-shaped heat conducting pipe (23), the first heat conducting pipe (22), the fixed pipe (9), the fixed frame (13), the overflow pipe (24) and the rotating frame (16) in sequence, so that the hot water inside the fixed frame (13) circulates through the first heat conducting pipe (22) and the S-shaped heat conducting pipe (23), completing the constant temperature heating preparation, so that the first heat conducting pipe (22) and the S-shaped heat conducting pipe (23) heat the probiotics and fermentation raw materials inside the fermentation tank (1) at a constant temperature; S2, start the arc light board (5), detect the light intensity in real time through the light intensity sensor (27), and transmit the data information to the controller (12) for analysis. When the light intensity detected by the light intensity sensor (27) is less than the set value, it means that the inside of the fermentation tank (1) is relatively turbid, and the controller (12) controls the motor (11) to rotate at a low speed. Otherwise, the controller (12) controls the motor (11) to rotate at a high speed. S3. After the motor (11) is started, the output end of the motor (11) drives the gear (10) to rotate, the gear (10) drives the gear ring (17) to rotate, the gear ring (17) drives the rotating frame (16) to rotate, and the rotating frame (16) drives the S-shaped heat conducting pipe (23) and the first heat conducting pipe (22) to rotate, so that the first heat conducting pipe (22) and the S-shaped heat conducting pipe (23) stir and mix the probiotics and fermentation raw materials inside the fermentation tank (1); at the same time, when the S-shaped heat conducting pipe (23) rotates, the S-shaped heat conducting pipe (23) drives the connecting rod (7) to rotate, the connecting rod (7) drives the fixed rod (8) to rotate, and the fixed rod (8) drives the cleaning block (26) to rotate, and the cleaning block (26) cleans the arc lamp panel (5) and the light intensity sensor (27).