Bacterial incubator with adjustable internal structure for bacterial detection

By incorporating humidity control and structural adjustment components into the bacterial incubator, the problems of humidity control and environmental isolation in the culture dish are solved, enabling precise adjustment of the culture dish environment to meet the growth needs of different bacteria.

CN223879746UActive Publication Date: 2026-02-06QINGDAO JIAOZHOU CENT HOSPITAL
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Patent Information

Application Number
CN202520304207.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-25
Publication Date
2026-02-06
Estimated Expiration
2035-02-25

AI Technical Summary

Technical Problem

Existing bacterial incubators make it difficult to separate different culture dishes to create different culture environments, and it is also difficult to control the humidity of each culture dish inside the incubator.

Method used

A humidity control component is installed, including a humidity sensor, a PLC controller, an ultrasonic nebulizer, and a fan. It detects the ambient humidity of the culture dish and controls humidification or dehumidification. At the same time, the position of the culture dish is adjusted by the structural adjustment component to facilitate humidification or dehumidification operations.

Benefits of technology

It enables precise control of the humidity in different culture dishes, providing diverse culture conditions to meet the growth needs of different bacteria.

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Abstract

The utility model discloses a bacterial incubator with an adjustable internal framework for bacterial detection, which belongs to the field of bacterial incubators and comprises a bacterial incubator body, a framework adjusting component is arranged in the bacterial incubator body, the upper end of the bacterial incubator body is in threaded connection with a sealing cover, and the lower end of the bacterial incubator body is in threaded connection with the framework adjusting component. According to the key points of the technical scheme, the humidity adjusting assembly is arranged, the humidity in the sleeve is detected through a humidity sensor, the humidity of the environment where different culture dishes are located can be detected, a signal is transmitted to a PLC, and when humidification is needed, the PLC can control the humidity of the environment where the culture dishes are located. When the bacteria culture dish is placed in the culture dish placing rack, the PLC is operated to turn on the ultrasonic nebulizer, and spray enters the culture dish placing rack from the communicating pipe and the flow guide pipe, so that the environment where the bacteria culture dish is located can be humidified, and when dehumidification is needed, the interior of the sleeve is subjected to air drying and dehumidification, and then the humidity in the environment where different culture dishes are located can be controlled.
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Description

TECHNICAL FIELD

[0001] The utility model relates to the field of bacterial incubator, especially in bacterial detection with internal framework adjustable bacterial incubator. BACKGROUND

[0002] Bacterial incubator is a kind of laboratory equipment for culturing and breeding bacteria, can provide suitable growth environment for bacteria;

[0003] In the patent of application number: CN202221675863.5, a kind of bacterial incubator is disclosed, when using, bacterial culture dish is placed in the upper portion of support net board, and make that stirring vane extends into bacterial culture dish, open start switch and start drive motor, drive motor is driven under the action to drive stirring vane to rotate, play the role of stirring bacteria liquid, after stirring, bacterial culture dish is clamped in bacterial culture dish card seat;

[0004] But in the above bacterial incubator, multiple culture dishes are in the same space, different culture dishes are difficult to separate to create different culture environment, and the humidity of each culture dish in the existing bacterial incubator is difficult to control, and better environment is created for bacterial culture, for this purpose, a kind of bacterial detection with internal framework adjustable bacterial incubator is provided. Utility model content

[0005] In order to overcome the deficiencies of prior art, the utility model provides a kind of bacterial detection with internal framework adjustable bacterial incubator, by setting humidity adjusting component, humidity sensor detects the humidity in sleeve pipe, i.e. the environmental humidity where different culture dishes are located, and signal is transmitted to PLC controller, when needing humidification, then operate PLC controller to open ultrasonic atomizer, let spray enter culture dish rack from communication pipe and flow guide pipe, so that the environment of bacterial culture dish can be humidified, when needing to extract moisture, then operate PLC controller to open electromagnetic valve one and electromagnetic valve two, operate PLC controller to open fan, and fan air enters sleeve pipe, airflow is discharged from flow guide pipe and communication pipe, so that sleeve pipe can be air-dried and dehumidified, and then the humidity in the environment where different culture dishes are located can be controlled.

[0006] The above technical purpose of the utility model is realized by the following technical scheme:

[0007] A kind of bacterial detection with internal framework adjustable bacterial incubator, including bacterial incubator body, the inside of bacterial incubator body is provided with framework adjusting component, the upper end of bacterial incubator body is connected with sealing cover with screw thread, the upper end of sealing cover is connected with humidity adjusting component, the outside of bacterial incubator body is connected with sealing assembly;

[0008] The humidity adjusting assembly comprises a fan fixedly connected to the upper end of the sealing cover, an air blowing pipe fixedly connected to the outside of the fan, a connecting pipe detachably connected to the outside of the air blowing pipe, the connecting pipe penetrating through the sealing cover and detachably connected to the sealing cover, an electromagnetic valve one fixedly connected to the outside of the connecting pipe, a communicating pipe fixedly connected to the bottom of the bacterial incubator, an electromagnetic valve two fixedly connected to the outside of the communicating pipe, an ultrasonic atomizer fixedly connected to the bottom of the bacterial incubator, a pipeline fixedly connected to the outside of the ultrasonic atomizer and the communicating pipe, a plurality of sleeve pipes fixedly connected to the lower end of the sealing cover, the sleeve pipes being equidistantly arranged, a humidity sensor fixedly connected to the inner wall of each of the sleeve pipes, a battery box fixedly connected to the upper end of the sealing cover, and a PLC controller fixedly connected to the front end of the battery box.

[0009] The humidity adjusting assembly is provided, the humidity sensor detects the humidity in the sleeve pipe, that is, the environmental humidity of different culture dishes, and transmits a signal to the PLC controller, when humidification is needed, the PLC controller is operated to open the ultrasonic atomizer, the spray enters the culture dish rack from the communicating pipe and the flow guide pipe, so that the environment of the bacterial culture dish can be humidified, when dehumidification is needed, the PLC controller is operated to open the electromagnetic valve one and the electromagnetic valve two, and the PLC controller is operated to open the fan, the fan sends air into the sleeve pipe, the airflow is discharged from the flow guide pipe and the communicating pipe, so that the sleeve pipe can be air-dried and dehumidified, and the humidity in the environment of different culture dishes can be controlled.

[0010] The frame adjusting assembly comprises a hand wheel rotatably arranged below the bacterial incubator, a damping rotating shaft fixedly connected to the upper end of the hand wheel, the damping rotating shaft extending into the inside of the bacterial incubator, the damping rotating shaft being rotatably connected, a plurality of connecting frames fixedly connected to the outside of the damping rotating shaft, a culture dish rack fixedly connected to the outside of each of the connecting frames, and a flow guide pipe fixedly and communicatively connected to the lower end of each of the culture dish racks.

[0011] The hand wheel is provided, the hand wheel is rotated, the damping rotating shaft and the connecting frame are driven to rotate, the culture dish rack is driven to rotate, the position of the culture dish rack and the culture dish can be adjusted, different culture dishes can be conveniently adjusted to the sleeve pipe below the fan for dehumidification or humidification operation.

[0012] Further, a magnetic sleeve one is fixedly connected to the lower end of each of the sleeve pipes, the magnetic sleeve one is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, a magnetic sleeve two is fixedly connected to the upper end of the flow guide pipe, the magnetic sleeve two is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve one is adapted to the magnetic sleeve two, and the magnetic sleeve one and the magnetic sleeve two are magnetically connected.

[0013] Further, the upper end of the communication pipe is fixedly connected with a magnetic sleeve three, the magnetic sleeve three is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve three is inlaidly connected with the bottom of the bacterial culture box body, the lower end of the flow guide pipe is fixedly connected with a magnetic sleeve four, the magnetic sleeve four is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve three and the magnetic sleeve four are matched, and the magnetic sleeve three and the magnetic sleeve four are magnetically connected.

[0014] Further, the inner wall of the sleeve pipe is fixedly connected with a temperature sensor, the inside of the sleeve pipe is fixedly connected with an electric heating plate, the lower end of the sealing cover is fixedly connected with an illuminating lamp, and the illuminating lamp is located in the inside of the sleeve pipe.

[0015] Further, the sealing assembly comprises a slot, the slot is fixedly connected outside the bacterial culture box body, and the outside of the slot is hingedly connected with a sealing door.

[0016] Further, the front end of the slot is fixedly connected with a magnetic sleeve five, and the magnetic sleeve five is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring.

[0017] Further, the rear end of the sealing door is fixedly connected with a magnetic sleeve six, and the magnetic sleeve six is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring.

[0018] Further, the magnetic sleeve five and the magnetic sleeve six are matched, and the magnetic sleeve five and the magnetic sleeve six are magnetically connected.

[0019] In conclusion, the utility model has the following beneficial effects:

[0020] 1. By setting the humidity adjusting assembly, the humidity sensor detects the humidity in the sleeve pipe, that is, the environmental humidity where different culture dishes are located, and signals are transmitted to the PLC controller, when humidification is required, the PLC controller is operated to open the ultrasonic atomizer, and the spray enters the culture dish rack from the communication pipe and the flow guide pipe, so that the environment of the bacterial culture dish can be humidified, when dehumidification is required, the PLC controller is operated to open the electromagnetic valve one and the electromagnetic valve two, and the PLC controller is operated to open the fan, the fan sends air into the sleeve pipe, and the airflow is discharged from the flow guide pipe and the communication pipe, so that the sleeve pipe can be dried and dehumidified, and the humidity in the environment of different culture dishes can be controlled.

[0021] 2. By setting the hand wheel, rotating the hand wheel can drive the damping shaft and the connecting frame to rotate, and then drive the culture dish rack to rotate, so that the position of the culture dish rack and the culture dish can be adjusted, and different culture dishes can be adjusted to the sleeve pipe below the fan for dehumidification or humidification operation. DRAWINGS

[0022] Figure 1is the schematic diagram of the overall structure in the embodiment;

[0023] Figure 2 is the schematic diagram of the structure of the sleeve in the embodiment;

[0024] Figure 3 is the schematic diagram of the structure of the illuminating lamp in the embodiment;

[0025] Figure 4 is the schematic diagram of the structure of the internal framework adjusting assembly in the embodiment;

[0026] Figure 5 is the schematic diagram of the structure of the sleeve in the embodiment;

[0027] Figure 6 is the schematic diagram of the structure of the sealing assembly in the embodiment.

[0028] In the figure, 1 is a bacterial incubator, 2 is an internal framework adjusting assembly, 201 is a hand wheel, 202 is a damping rotating shaft, 203 is a connecting frame, 204 is a culture dish, 205 is a placing frame, 206 is a flow guide pipe, 207 is a magnetic sleeve three, 208 is a magnetic sleeve four, 3 is a sealing cover, 4 is a humidity adjusting assembly, 401 is a fan, 402 is a blowing pipe, 403 is a connecting pipe, 404 is a solenoid valve one, 405 is a communicating pipe, 406 is a solenoid valve two, 407 is an ultrasonic atomizer, 408 is a pipeline, 409 is a sleeve, 410 is a humidity sensor, 411 is a battery box, 412 is a PLC controller, 413 is a magnetic sleeve one, 414 is a magnetic sleeve two, 5 is a sealing assembly, 501 is a notch, 502 is a sealing door, 503 is a magnetic sleeve five, 504 is a magnetic sleeve six, 6 is a temperature sensor, 7 is an electric heating plate, and 8 is an illuminating lamp. DETAILED DESCRIPTION

[0029] The utility model will be further explained in detail below in combination with the drawings.

[0030] Wherein same parts are indicated with same reference numerals. It should be noted that the words "front", "back", "left", "right", "upper" and "lower" used in the following description refer to the directions in the drawings, and the words "bottom surface" and "top surface", "inner" and "outer" refer to the directions towards or away from the geometric center of a specific part.

[0031] Referring to Figure 1 As shown in the figure, the utility model is a bacterial incubator with an adjustable internal framework for bacterial detection, comprising a bacterial incubator 1, an internal framework adjusting assembly 2 arranged inside the bacterial incubator 1, a sealing cover 3 threadedly connected to the upper end of the bacterial incubator 1, a humidity adjusting assembly 4 connected to the upper end of the sealing cover 3, and a sealing assembly 5 connected to the outside of the bacterial incubator 1.

[0032] Referring toFigures 1-5 As shown, the humidity adjusting assembly 4 comprises a fan 401 fixedly connected to the upper end of the sealing cover 3, the outside of the fan 401 is fixedly connected with a blowing pipe 402, the outside of the blowing pipe 402 is detachably connected with a connecting pipe 403, the connecting pipe 403 penetrates through the sealing cover 3 and is detachably connected with the sealing cover 3, the outside of the connecting pipe 403 is fixedly connected with a solenoid valve one 404, the bottom of the bacteria incubator body 1 is fixedly connected with a communication pipe 405, the outside of the communication pipe 405 is fixedly connected with a solenoid valve two 406, the bottom of the bacteria incubator body 1 is fixedly connected with an ultrasonic atomizer 407, the outside of the ultrasonic atomizer 407 is fixedly connected with a pipeline 408, the pipeline 408 is fixedly connected with the communication pipe 405, the lower end of the sealing cover 3 is fixedly connected with a plurality of sleeves 409, the plurality of sleeves 409 are equidistantly arranged, the inner walls of the plurality of sleeves 409 are all fixedly connected with humidity sensors 410, the upper end of the sealing cover 3 is fixedly connected with a battery box 411, the front end of the battery box 411 is fixedly connected with a PLC controller 412;

[0033] By setting the humidity adjusting assembly 4, the humidity sensor 410 detects the humidity in the sleeve 409, that is, the environmental humidity where the different culture dishes 204 are located, and transmits the signal to the PLC controller 412, when humidification is needed, the PLC controller 412 is operated to open the ultrasonic atomizer 407, and the spray enters the culture dish 204 rack 205 from the communication pipe 405 and the flow guide pipe 206, so that the environment where the bacteria culture dish 204 is located can be humidified, when dehumidification is needed, the PLC controller 412 is operated to open the solenoid valve one 404 and the solenoid valve two 406, and the PLC controller 412 is operated to open the fan 401, the fan 401 sends air into the sleeve 409, the airflow is discharged from the flow guide pipe 206 and the communication pipe 405, so that the sleeve 409 can be air-dried and dehumidified, and then the humidity in the environment where the different culture dishes 204 are located can be controlled.

[0034] Referring to Figures 1-5 As shown, the architecture adjusting assembly 2 comprises a hand wheel 201 rotationally arranged below the bacteria incubator body 1, the upper end of the hand wheel 201 is fixedly connected with a damping shaft 202, the damping shaft 202 extends to the inside of the bacteria incubator body 1, the damping shaft 202 is rotationally connected, the outside of the damping shaft 202 is fixedly connected with a plurality of connecting frames 203, the outside of the connecting frame 203 is fixedly connected with a culture dish 204 rack 205, and the lower end of the culture dish 204 rack 205 is fixedly connected with a flow guide pipe 206.

[0035] By setting the hand wheel 201, rotating the hand wheel 201, the damping shaft 202 and the connecting frame 203 can be driven to rotate, and the culture dish 204 placing frame 205 is further driven to rotate, so that the position of the culture dish 204 placing frame 205 and the culture dish 204 can be adjusted, and different culture dishes 204 can be conveniently adjusted to the corresponding sleeve 409 below the fan 401 for dehumidification or humidification operation.

[0036] Referring to Figures 1-5 As shown, the lower end of the sleeve 409 is fixedly connected with a magnetic sleeve one 413, the magnetic sleeve one 413 is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the upper end of the flow guide pipe 206 is fixedly connected with a magnetic sleeve two 414, the magnetic sleeve two 414 is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve one 413 is matched with the magnetic sleeve two 414, and the magnetic sleeve one 413 is magnetically connected with the magnetic sleeve two 414.

[0037] By setting the magnetic sleeve one 413 and the magnetic sleeve two 414, the bacteria incubator body 1 is transparent, so that when the culture dish 204 placing frame 205 is rotated, the culture dish 204 placing frame 205 can be rotated to be directly below the sleeve 409, and then the magnetic sleeve one 413 and the magnetic sleeve two 414 can firmly adsorb the sleeve 409 and the culture dish 204 placing frame 205 together to form a closed space.

[0038] Referring to Figures 1-5 As shown, the upper end of the communication pipe 405 is fixedly connected with a magnetic sleeve three 207, the magnetic sleeve three 207 is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve three 207 is embeddedly connected with the bottom of the bacteria incubator body 1, the lower end of the flow guide pipe 206 is fixedly connected with a magnetic sleeve four 208, the magnetic sleeve four 208 is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve three 207 is matched with the magnetic sleeve four 208, and the magnetic sleeve three 207 is magnetically connected with the magnetic sleeve four 208.

[0039] When the culture dish 204 placing frame 205 is rotated, the magnetic sleeve three 207 and the magnetic sleeve four 208 facilitate the communication between the communication pipe 405 and the corresponding flow guide pipe 206, so that the airflow can flow smoothly during dehumidification, and the magnetic sleeve four 208 below the flow guide pipe 206 corresponding to the culture dish 204 placing frame 205 which does not need to be dehumidified is tightly abutted with the bottom of the bacteria incubator.

[0040] Referring to Figures 1-5 As shown, the inner wall of the sleeve 409 is fixedly connected with a temperature sensor 6, the inside of the sleeve 409 is fixedly connected with an electric heating plate 7, the lower end of the sealing cover 3 is fixedly connected with an illuminating lamp 8, and the illuminating lamp 8 is located in the inside of the sleeve 409.

[0041] By setting the temperature sensor 6, the temperature sensor 6 detects the temperature inside the sleeve 409, the PLC controller 412 adjusts the temperature of the electric heating plate 7, and the electric heating plate heats the sleeve 409, that is, the environmental temperature of the bacterial culture dish 204 can be controlled, and the PLC controller 412 controls the opening and closing of the illuminating lamp 8 and the illumination brightness, that is, different bacteria can be provided with different light.

[0042] Referring to Figure 1 and Figure 6 As shown, the sealing assembly 5 includes a slot 501 fixedly connected to the outside of the bacterial incubator body 1, and the outside of the slot 501 is hingedly connected with a sealing door 502.

[0043] Referring to Figure 1 and Figure 6 As shown, the front end of the slot 501 is fixedly connected with a magnetic sleeve 503, and the magnetic sleeve 503 is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring.

[0044] Referring to Figure 1 and Figure 6 As shown, the rear end of the sealing door 502 is fixedly connected with a magnetic sleeve 504, and the magnetic sleeve 504 is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring.

[0045] Referring to Figure 1 and Figure 6 As shown, the magnetic sleeve 503 is adapted to the magnetic sleeve 504, and the magnetic sleeve 503 is magnetically connected with the magnetic sleeve 504.

[0046] By setting the sealing assembly 5, the setting of the slot 501 facilitates the opening of the sealing door 502 to take out the required culture dish 204, and the setting of the magnetic sleeve 503 and the magnetic sleeve 504 facilitates the tightness of the connection between the sealing door 502 and the slot 501.

[0047] Specific implementation process: the battery in the battery box 411 provides power for the device, and the PLC controller 412 is used to control the electrical elements of the device. Rotating the hand wheel 201 can drive the damping shaft 202 and the connecting frame 203 to rotate, and in turn drive the culture dish 204 holder 205 to rotate, so as to adjust the position of the culture dish 204 holder 205 and the culture dish 204, and facilitate the adjustment of different culture dishes 204 to the corresponding sleeve 409 below the fan 401 for dehumidification or humidification operation.

[0048] The bacterial incubator body 1 is transparent, so that when the culture dish 204 holder 205 is rotated, the culture dish 204 holder 205 can be rotated to be directly below the sleeve 409, and then the magnetic sleeve 413 and the magnetic sleeve 414 can firmly adsorb the sleeve 409 and the culture dish 204 holder 205 together to form a sealed space.

[0049] When the culture dish 204 rack 205 is rotated, the magnetic sleeve three 207 and the magnetic sleeve four 208 facilitate the communication pipe 405 to be communicated with the corresponding flow guide pipe 206, so that the air flow can be smoothly circulated when dehumidification is needed, and the magnetic sleeve four 208 under the corresponding flow guide pipe 206 of the culture dish 204 rack 205 which does not need to be dehumidified is tightly abutted with the bottom of the bacterial incubator;

[0050] The humidity sensor 410 detects the humidity in the sleeve pipe 409, that is, the environmental humidity of different culture dishes 204, and transmits a signal to the PLC controller 412, and when humidification is needed, the PLC controller 412 is operated to open the ultrasonic atomizer 407, so that the spray enters the culture dish 204 rack 205 from the communication pipe 405 and the flow guide pipe 206, thereby humidifying the environment of the bacterial culture dish 204, and when dehumidification is needed, the PLC controller 412 is operated to open the electromagnetic valve one 404 and the electromagnetic valve two 406, and the PLC controller 412 is operated to open the fan 401, and the fan 401 sends air into the sleeve pipe 409, and the air flow is discharged from the flow guide pipe 206 and the communication pipe 405, thereby air-drying and dehumidifying the sleeve pipe 409, and further controlling the humidity in the environment of different culture dishes 204;

[0051] The temperature sensor 6 detects the temperature inside the sleeve pipe 409, the PLC controller 412 adjusts the temperature of the electric heating plate 7, and the electric heating plate heats the sleeve pipe 409, thereby controlling the environmental temperature of the bacterial culture dish 204, and the PLC controller 412 controls the opening and closing and brightness of the illuminating lamp 8, thereby providing different light for different bacteria;

[0052] The slot 501 is arranged to facilitate opening the sealing door 502 to take out the required culture dish 204, and the magnetic sleeve five 503 and the magnetic sleeve six 504 are arranged to facilitate the tightness of the connection between the sealing door 502 and the slot 501.

[0053] The basic principle and main features of the present application and the advantages of the present application are shown and described above. Those skilled in the art should understand that the present application is not limited by the above examples, and the above examples and descriptions in the specification are only to illustrate the principles of the present application. Without departing from the spirit and scope of the present application, various changes and improvements can be made to the present application, and these changes and improvements all fall within the scope of the claimed present application. The scope of protection of the present application is defined by the appended claims and their equivalents.

Claims

1. A bacterial incubator with adjustable internal architecture for bacterial detection, characterized by: The application relates to a bacterial culture box, which comprises a bacterial culture box body (1), the inside of the bacterial culture box body (1) is provided with a framework adjusting assembly (2), the upper end of the bacterial culture box body (1) is threadedly connected with a sealing cover (3), the upper end of the sealing cover (3) is connected with a humidity adjusting assembly (4), and the outside of the bacterial culture box body (1) is connected with a sealing assembly (5). The humidity adjusting assembly (4) comprises a fan (401), the fan (401) is fixedly connected to the upper end of the sealing cover (3), the outside of the fan (401) is fixedly connected with a blowing pipe (402), the outside of the blowing pipe (402) is detachably connected with a connecting pipe (403), the connecting pipe (403) penetrates through the sealing cover (3) and is detachably connected with the sealing cover (3), the outside of the connecting pipe (403) is fixedly connected with an electromagnetic valve I (404), the bottom of the bacterial culture box body (1) is fixedly connected with a communicating pipe (405), the outside of the communicating pipe (405) is fixedly connected with an electromagnetic valve II (406), the bottom of the bacterial culture box body (1) is fixedly connected with an ultrasonic atomizer (407), the outside of the ultrasonic atomizer (407) is fixedly connected with a pipeline (408), the pipeline (408) is fixedly communicated with the communicating pipe (405), the lower end of the sealing cover (3) is fixedly connected with a plurality of sleeve pipes (409), the plurality of sleeve pipes (409) are equidistantly arranged, the inner walls of the plurality of sleeve pipes (409) are fixedly connected with humidity sensors (410), the upper end of the sealing cover (3) is fixedly connected with a battery box (411), and the front end of the battery box (411) is fixedly connected with a PLC controller (412). The framework adjusting assembly (2) comprises a hand wheel (201), the hand wheel (201) is rotationally arranged below the bacterial culture box body (1), the upper end of the hand wheel (201) is fixedly connected with a damping rotating shaft (202), the damping rotating shaft (202) extends into the inside of the bacterial culture box body (1), the damping rotating shaft (202) is rotationally connected, the outside of the damping rotating shaft (202) is fixedly connected with a plurality of connecting frames (203), the outside of the connecting frame (203) is fixedly connected with petri dish (204) placing frames (205), and the lower ends of the petri dish (204) placing frames (205) are fixedly communicated with flow guide pipes (206).

2. The bacterial incubator with adjustable internal architecture for bacterial detection according to claim 1, characterized in that: The lower ends of the sleeve pipes (409) are fixedly connected with magnetic suction sleeves I (413), the magnetic suction sleeves I (413) are composed of a magnetic suction ring and a rubber sleeve wrapped outside the magnetic suction ring, the upper ends of the flow guide pipes (206) are fixedly connected with magnetic suction sleeves II (414), the magnetic suction sleeves II (414) are composed of a magnetic suction ring and a rubber sleeve wrapped outside the magnetic suction ring, the magnetic suction sleeves I (413) are matched with the magnetic suction sleeves II (414), and the magnetic suction sleeves I (413) and the magnetic suction sleeves II (414) are magnetically connected.

3. The bacterial incubator with adjustable internal architecture for bacterial detection according to claim 2, characterized in that: The upper end of the communication pipe (405) is fixedly connected with a magnetic sleeve three (207), the magnetic sleeve three (207) is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve three (207) is inlaidly connected with the bottom of the bacterial incubator body (1), the lower end of the flow guide pipe (206) is fixedly connected with a magnetic sleeve four (208), the magnetic sleeve four (208) is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring, the magnetic sleeve three (207) is matched with the magnetic sleeve four (208), and the magnetic sleeve three (207) is in magnetic connection with the magnetic sleeve four (208).

4. The bacterial incubator with adjustable internal architecture for bacterial detection according to claim 1, characterized in that: The inner wall of the sleeve (409) is fixedly connected with a temperature sensor (6), the inside of the sleeve (409) is fixedly connected with an electric heating plate (7), the lower end of the sealing cover (3) is fixedly connected with an illuminating lamp (8), and the illuminating lamp (8) is located in the inside of the sleeve (409).

5. The bacterial incubator with adjustable internal architecture for bacterial detection according to claim 1, characterized in that: The sealing assembly (5) comprises a slot (501), and the slot (501) is fixedly connected outside the bacterial incubator body (1); and a sealing door (502) is hingedly connected outside the slot (501).

6. The bacteria incubator with adjustable internal architecture for bacteria detection according to claim 5, characterized in that: The front end of the slot (501) is fixedly connected with a magnetic sleeve five (503), and the magnetic sleeve five (503) is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring.

7. The bacteria incubator with adjustable internal architecture for bacteria detection according to claim 6, characterized in that: The rear end of the sealing door (502) is fixedly connected with a magnetic sleeve six (504), and the magnetic sleeve six (504) is composed of a magnetic ring and a rubber sleeve wrapped outside the magnetic ring.

8. The bacteria incubator with adjustable internal architecture for bacteria detection according to claim 7, characterized in that: The magnetic sleeve five (503) is matched with the magnetic sleeve six, and the magnetic sleeve five (503) is in magnetic connection with the magnetic sleeve six.

Citation Information

Patent Citations

  • Bacterial incubator

    CN217628348U