Biological fermentation tank capable of monitoring internal temperature
By adjusting the height and spacing of the temperature measuring modules through a lifting and adjustment mechanism, the problems of dust clogging and large temperature differences in temperature measuring devices in bio-fermentation tanks are solved, thereby improving the accuracy of temperature measurement and fermentation efficiency.
Patent Information
- Application Number
- CN202520180256.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-05
- Publication Date
- 2026-02-03
- Estimated Expiration
- 2035-02-05
AI Technical Summary
The temperature measuring devices in existing bio-fermentation tanks are easily blocked by dust, making it difficult for the thermometer to rise and fall, affecting the accuracy of temperature measurement. In addition, the large temperature difference between material layers affects the fermentation efficiency.
Employing lifting and adjusting mechanisms, the temperature measurement modules are adjusted in height and spacing via components such as the instrument panel, threaded rod, aluminum alloy column, and slider. This ensures flexible movement and positioning of the temperature measurement modules within the material, prevents wire harness breakage, and improves temperature measurement accuracy and ease of separation.
This effectively avoids wire breakage in the temperature sensing module, improves the module's sensing capability in materials at different depths, reduces the impact of temperature differences, and enhances the efficiency of fermentation processing and the accuracy of temperature measurement.
Smart Images

Figure CN223866671U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of biological fermentation, specifically to a biological fermentation tank capable of monitoring internal temperature. Background Technology
[0002] Bio-fermentation engineering is an important component of bioengineering. Microorganisms use carbohydrates to ferment and produce various industrial solvents and chemical raw materials. It is a technology that utilizes certain functions of organisms (mainly microorganisms) and active isolated enzymes to produce useful biological products for humans, or directly uses microorganisms to participate in the control of certain industrial production processes.
[0003] Existing temperature measuring devices use pneumatic lifting to move the thermometer from the bottom of the tank to a corresponding position to insert it into the tank for temperature measurement. This requires an air source. Since there is a lot of dust at the bottom of the tank, it is easy to block the lifting track, which can hinder the movement of the thermometer probe. Furthermore, a single temperature sensing module can affect the accuracy of the sensing, and when there is a lot of material, it can lead to a larger temperature difference between layers, which affects the efficiency of fermentation. Summary of the Invention
[0004] The purpose of this invention is to provide a bio-fermentation tank that can monitor internal temperature, so as to solve the above-mentioned defects caused by the prior art.
[0005] A bio-fermentation tank capable of monitoring internal temperature includes a storage tank and a temperature measuring module. A drain pipe is connected through the bottom of the storage tank. A drive motor is installed directly above the storage tank. A lifting mechanism is installed inside the storage tank to adjust the height of the temperature measuring module or move it out of the material, thereby improving the convenience of storing and separating the temperature measuring module. An adjustment mechanism is installed directly below the lifting mechanism to adjust the spacing between multiple sets of temperature measuring modules. The spacing of the temperature measuring modules is adjusted according to the amount of fermentation material to meet the temperature detection of materials at different depths and to detect temperature differences between different layers of materials.
[0006] Preferably, the lifting mechanism includes an instrument plate, a display screen, a feeding tube, a wire harness, a threaded rod, and an aluminum alloy column. The display screen is located directly above the instrument plate. A storage tank is connected through the bottom end of the feeding tube. A threaded rod is located directly below the instrument plate. An aluminum alloy column is connected to the outer side of the threaded rod. One end of the wire harness is connected to the output end of the display screen.
[0007] Preferably, the aluminum alloy column is connected to the slider through a guide groove on its outer side.
[0008] Preferably, the adjustment mechanism includes a microcontroller, a temperature measuring module, a slider, a guide groove, and positioning holes. The temperature measuring module is connected through to the outside of the slider. The outside of the slider is connected to the guide groove, which is located on the outside of the aluminum alloy column. The output end of the microcontroller is connected to the other end of a wire harness. The microcontroller is installed directly below the instrument panel. The positioning holes are equally spaced and pass through to one side of the aluminum alloy column.
[0009] Preferably, the microcontroller is connected to the display screen via a wiring harness connected to its output terminal.
[0010] Preferably, the instrument disc is connected to the interior of the aluminum alloy column via a threaded rod at its bottom end.
[0011] Compared with the prior art, the present invention has the following advantages:
[0012] 1. Adjust the spacing of multiple temperature measuring modules by pulling the slider. On the one hand, the slider positions one side of the temperature measuring module to prevent the wiring harness connected to the side of the temperature measuring module from breaking or being damaged. On the other hand, according to the usage requirements of multiple temperature measuring modules, the multiple temperature measuring modules sense different depths of the material, thereby sensing the temperature difference of the material and avoiding excessive temperature difference from affecting the fermentation effect of the material.
[0013] 2. When it is necessary to vertically raise or lower the aluminum alloy column, the height of the aluminum alloy column can be adjusted by holding the aluminum alloy column on the outside of the threaded rod and rotating it. This allows for dynamic adjustment of the height of the aluminum alloy column and the temperature measuring module. At the same time, the aluminum alloy column and the threaded rod can be disassembled and separated, improving the efficiency of temperature measuring module maintenance. Attached Figure Description
[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.
[0015] Figure 2 This is a schematic diagram of the orthographic structure of the instrument disc in this utility model.
[0016] Figure 3 This is a schematic diagram of the structure of the aluminum alloy column in this utility model.
[0017] Figure 4 This is a top view schematic diagram of the aluminum alloy column structure in this utility model.
[0018] Figure 5 This is a schematic diagram of the cross-sectional structure of the storage tank in this utility model.
[0019] in:
[0020] 1. Storage tank; 2. Drainage pipe fittings; 3. Instrument tray; 4. Display screen; 5. Drive motor; 6. Feeding pipe; 7. Lifting mechanism; 8. Microcontroller; 9. Wiring harness; 10. Threaded rod; 11. Aluminum alloy column; 12. Slider; 13. Guide groove; 14. Temperature measuring module; 15. Adjustment mechanism; 16. Positioning hole. Detailed Implementation
[0021] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0022] like Figures 1 to 5 As shown, a bio-fermentation tank capable of monitoring internal temperature includes a storage tank 1 and a temperature measuring module 14. A drain pipe 2 is connected through the bottom of the storage tank 1. A drive motor 5 is installed directly above the storage tank 1. A lifting mechanism 7 is installed inside the storage tank 1. The lifting mechanism 7 adjusts the height of the temperature measuring module 14 or moves it out of the material, thereby improving the convenience of storing and separating the temperature measuring module 14. An adjustment mechanism 15 is installed directly below the lifting mechanism 7. The adjustment mechanism 15 adjusts the spacing of multiple sets of temperature measuring modules 14 according to the amount of fermentation material, thereby meeting the requirements of temperature detection at different depths and temperature difference detection at different levels of material.
[0023] In this embodiment, the lifting mechanism 7 includes an instrument plate 3, a display screen 4, a feeding tube 6, a wire harness 9, a threaded rod 10, and an aluminum alloy column 11. The display screen 4 is located directly above the instrument plate 3. The bottom end of the feeding tube 6 is connected to a storage tank 1. The threaded rod 10 is located directly below the instrument plate 3. The outer side of the threaded rod 10 is connected to the aluminum alloy column 11. The output end of the display screen 4 is connected to one end of the wire harness 9.
[0024] In this embodiment, the aluminum alloy column 11 is connected to the slider 12 through the guide groove 13 on the outside. The guide groove 13 is used to position the slider 12, which facilitates the positioning and adjustment of the temperature measuring module 14.
[0025] In this embodiment, the adjustment mechanism 15 includes a microcontroller 8, a temperature measuring module 14, a slider 12, a guide groove 13, and positioning holes 16. The temperature measuring module 14 is connected through to the outside of the slider 12. The guide groove 13 is connected to the outside of the slider 12 and is located on the outside of the aluminum alloy column 11. The output end of the microcontroller 8 is connected to the other end of the wire harness 9. The microcontroller 8 is installed directly below the instrument panel 3. The positioning holes 16 are equally spaced through to one side of the aluminum alloy column 11.
[0026] In this embodiment, the microcontroller 8 is connected to the display screen 4 via the wiring harness 9 connected to the output terminal. The microcontroller 8 transmits the sensed data and displays it on the display screen 4.
[0027] In this embodiment, the instrument disc 3 is connected to the interior of the aluminum alloy column 11 via a threaded rod 10 at its bottom end. The position of the aluminum alloy column 11 is adjusted by connecting the threaded rod 10 to the aluminum alloy column 11.
[0028] In practical applications, this type of bio-fermentation tank, which can monitor internal temperature, includes the following tasks:
[0029] Step 1: The operator first injects the material directly through the feeding pipe 6 opened at the top of the storage tank 1. The mixing rod is driven by the drive motor 5 to rotate, thereby mixing the material. The liquid is discharged directly through the drain pipe 2 set on one side. At the same time, the threaded rod 10 set at the bottom of the instrument plate 3 is threadedly connected to the aluminum alloy column 11.
[0030] Step 2: When it is necessary to vertically raise and lower the aluminum alloy column 11, the height of the aluminum alloy column 11 is adjusted by holding the aluminum alloy column 11 and rotating it on the outside of the threaded rod 10. This makes it easier to insert the temperature measuring module 14 set on one side of the aluminum alloy column 11 into the material, thereby sensing the fermentation temperature of the material and controlling the fermentation temperature of the material.
[0031] Step 3: When multiple sets of DS18B20 temperature measuring modules 14 need to be installed and their spacing adjusted, the operator connects the temperature measuring module 14 to one side of the slider 12 and inserts the power supply and data transmission harness 9 into the interior of the aluminum alloy column 11. The operator adjusts the spacing of the multiple sets of temperature measuring modules 14 by pulling the slider 12. The operator positions the slider 12 and one side of the aluminum alloy column 11 by inserting screws into the positioning holes 16 to prevent the slider 12 and the temperature measuring modules 14 connected to one side from shaking.
[0032] Step 4: Connect the power supply pin of the DS18B20 temperature measurement module 14 to the positive terminal of the corresponding microcontroller 8 or development board (e.g., the 5V / VCC pin on the Arduino board), connect the ground pin to the negative terminal (GND), connect the output / data pin to the designated IO port of the microcontroller 8 or development board, and connect the wire harness 9 connected to one side of the microcontroller 8 to the input terminal of the display screen 4. After the temperature is detected by the temperature measurement module 14, the display screen 4 displays the data of multiple sets of temperature measurement modules 14.
[0033] Therefore, the above-disclosed embodiments are merely illustrative in all respects and are not the only ones. All modifications within the scope of this utility model or its equivalents are included in this utility model.
Claims
1. A bio-fermentation tank capable of monitoring internal temperature, characterized in that: The system includes a storage tank (1) and a temperature measuring module (14). A drain pipe (2) is connected to the bottom of the storage tank (1). A drive motor (5) is installed directly above the storage tank (1). A lifting mechanism (7) is installed inside the storage tank (1). The lifting mechanism (7) adjusts the height of the temperature measuring module (14) or moves it out of the material, thereby improving the ease of storage and separation of the temperature measuring module (14). An adjustment mechanism (15) is installed directly below the lifting mechanism (7). The adjustment mechanism (15) adjusts the spacing between multiple sets of temperature measuring modules (14). The spacing of the temperature measuring modules (14) is adjusted according to the amount of fermentation material, thereby meeting the temperature detection of materials at different depths and detecting the temperature difference of materials at different levels.
2. A bio-fermentation tank capable of monitoring internal temperature according to claim 1, characterized in that: The lifting mechanism (7) includes an instrument plate (3), a display screen (4), a feeding tube (6), a wire harness (9), a threaded rod (10), and an aluminum alloy column (11). The display screen (4) is located directly above the instrument plate (3). The bottom end of the feeding tube (6) is connected to a storage tank (1). The threaded rod (10) is located directly below the instrument plate (3). The outer side of the threaded rod (10) is connected to the aluminum alloy column (11). The output end of the display screen (4) is connected to one end of the wire harness (9).
3. A bio-fermentation tank capable of monitoring internal temperature according to claim 2, characterized in that: The aluminum alloy column (11) is connected to the slider (12) through the guide groove (13) opened on the outside.
4. A bio-fermentation tank capable of monitoring internal temperature according to claim 1, characterized in that: The adjustment mechanism (15) includes a microcontroller (8), a temperature measuring module (14), a slider (12), a guide groove (13), and a positioning hole (16). The temperature measuring module (14) is connected through to the outside of the slider (12). The outside of the slider (12) is connected to the guide groove (13). The guide groove (13) is opened on the outside of the aluminum alloy column (11). The output end of the microcontroller (8) is connected to the other end of the wire harness (9). The microcontroller (8) is installed directly below the instrument panel (3). The positioning hole (16) is opened through to the side of the aluminum alloy column (11) at equal intervals.
5. A bio-fermentation tank capable of monitoring internal temperature according to claim 4, characterized in that: The microcontroller (8) is connected to the display screen (4) via a wire harness (9) connected to its output terminal.
6. A bio-fermentation tank capable of monitoring internal temperature according to claim 2, characterized in that: The instrument disc (3) is connected to the interior of the aluminum alloy column (11) via a threaded rod (10) at the bottom.