Waterproof incubator for research and development

By introducing a magnetic filter tank and a water level monitoring system into the water-jacketed incubator, the problems of cleaning impurities and controlling water level in the water were solved, achieving the effects of impurity removal and water level stabilization, and improving the service life of the equipment and environmental stability.

CN224199385UActive Publication Date: 2026-05-05HUANGSHAN HEXIU BIOTECHNOLOGY CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
HUANGSHAN HEXIU BIOTECHNOLOGY CO LTD
Filing Date
2025-04-29
Publication Date
2026-05-05

AI Technical Summary

Technical Problem

Existing water-jacketed incubators cannot effectively clean rust and impurities from the water during use, leading to excessive accumulation of contaminants, which affects the incubator environment. Furthermore, they cannot accurately control water level changes, impacting equipment lifespan and temperature and humidity control.

Method used

A magnetic filter canister is used to filter ferromagnetic impurities in the water, and a water pump is automatically replenished by a water level monitor and a microcontroller to ensure water purity and stable water level.

Benefits of technology

It effectively removes impurities from the water, reduces bacterial growth, extends equipment life, and enables precise monitoring and control of the water level, ensuring the stability of the cultivation environment.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a water-proof incubator for research and development, and relates to the technical field of water-proof incubators, the water-proof incubator comprises an incubator body and a partition frame, the incubator body is internally provided with a cavity, the inner wall of the cavity is provided with a heating pipe, the two sides of the interior of the incubator body are provided with metal plates, and the partition frame is arranged on the inner wall of the cavity. A plurality of inclined inserting grooves are formed in the inner wall of the metal plate, separation frames are arranged in the inclined inserting grooves, and a water supply mechanism capable of automatically filtering water is arranged on one side of the incubator body. The service life of the incubator is prolonged, the possibility of bacteria breeding caused by impurities in water is reduced, and the purity of a sample is protected.
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Description

Technical Field

[0001] This utility model relates to the technical field of water-jacketed incubators, specifically a water-jacketed incubator for research and development. Background Technology

[0002] Water-jacketed incubators are high-precision temperature control devices that can be used for plant tissue preparation, germination, seedling cultivation, microbial culture, insect and small animal rearing, BOD determination in water quality testing, and other temperature control experiments. They are ideal equipment for production, research, and education departments in fields such as bioengineering, medicine, agriculture, forestry, environmental science, animal husbandry, and aquaculture. They are also particularly important in the production of raw materials for aquaculture feed additives.

[0003] However, existing water-jacketed incubators used for research and development have the following problems during use: traditional water supply equipment cannot clean rust and impurities in the water, which affects the environment inside the incubator, leading to excessive dirt and a large number of bacteria, thus affecting the service life of the incubator. In addition, when the temperature and humidity inside the incubator increase, it is necessary to heat the water source inside, but the rate of water level drop cannot be predicted during long-term heating, which cannot meet market demand. Utility Model Content

[0004] The purpose of this invention is to provide a water-jacketed incubator for research and development, in order to solve the related problems mentioned in the background art.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a water-jacketed incubator for research and development, comprising an incubator body and a partition frame, wherein the incubator body has an internal cavity, and a heating tube is provided on the inner wall of the cavity; metal plates are installed on both sides of the incubator body, and multiple inclined slots are provided on the inner wall of the metal plates; a partition frame is provided inside the inclined slots; and a water supply mechanism with automatic water filtration is provided on one side of the incubator body.

[0006] This technical solution provides a water-jacketed incubator for research and development, wherein a fan is installed at the top of the interior of the incubator.

[0007] This technical solution provides a water-jacketed incubator for research and development, wherein through holes are provided on both sides of the top of the cavity.

[0008] This technical solution provides a water-jacketed incubator for research and development. The water supply mechanism includes a water pump and a water tank. The water pump is mounted on the side wall of the incubator via a bracket. The water tank, which is close to the water pump, is mounted on the side wall of the incubator via a bracket. A delivery pipe penetrating the water tank is installed at the input end of the water pump. A connecting pipe is installed at the output end of the water pump, and a magnetic filter can is provided at the top of the connecting pipe. An L-shaped insertion tube penetrating the magnetic filter can is installed on the side wall of the incubator.

[0009] This technical solution provides a water-jacketed incubator for research and development. The outer wall of the magnetic filter tank is connected to the L-shaped insertion tube and the connecting tube by bolts. The inner wall of the magnetic filter tank is provided with a sealing gasket that fits into the connecting tube and the L-shaped insertion tube.

[0010] This technical solution provides a water-jacketed incubator for research and development. A microcontroller is installed on the top of the incubator body, and a water level monitor is installed on one side of the cavity. The output terminal of the water level monitor is electrically connected to the input terminal of the microcontroller through a wire, and the output terminal of the microcontroller is electrically connected to the input terminal of the water pump through a wire.

[0011] Compared with the prior art, this utility model provides a water-jacketed incubator for research and development, which has the following beneficial effects:

[0012] 1. This utility model can filter ferromagnetic impurities mixed in water through a magnetic filter canister, reduce the content of ferromagnetic impurities in the filtered liquid, reduce the possibility of bacteria growth in the water, and protect the purity of the sample.

[0013] 2. This utility model uses a low-level water level monitor inside the microcontroller to detect a low water level. The low water level information is fed back to the microcontroller, which then starts the water pump to deliver water from the tank through the delivery pipe and connecting pipe. After being filtered by the magnetic filter, the water is delivered to the cavity through the L-shaped tube. If the high-level water level monitor on the side wall of the cavity detects an excessively high water level, the microcontroller will shut down the water pump and stop the water from entering. Attached Figure Description

[0014] Figure 1 This is a schematic diagram of the front sectional view of the present invention;

[0015] Figure 2 This is a schematic diagram of the main structure of this utility model;

[0016] Figure 3 For the present utility model Figure 1 A magnified structural diagram at point A.

[0017] In the diagram: 1. Incubator; 2. Microcontroller; 3. Cavity; 4. Through hole; 5. Heating tube; 6. Inclined slot; 7. Metal plate; 8. Divider; 9. Water level monitor; 10. Water pump; 11. Connecting pipe; 12. Delivery pipe; 13. Water tank; 14. L-shaped insertion tube; 15. Magnetic filter tank; 16. Sealing gasket; 17. Fan. Detailed Implementation

[0018] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0019] Example 1, such as Figure 1-2 As shown, this utility model provides a technical solution: a water-jacketed incubator for research and development, including an incubator body 1 and a partition rack 8. The incubator body 1 has an internal cavity 3, and the inner wall of the cavity 3 is provided with a heating pipe 5. A fan 17 is provided at the top of the incubator body 1. Through holes 4 are provided on both sides of the top of the cavity 3. By activating the heating pipe 5, the water in the cavity 3 is heated to generate hot air, which can be discharged into the external position of the incubator body 1 through the through holes 4, which is convenient for increasing the humidity inside the incubator body 1. When it is not necessary to discharge into the incubator body 1, the through holes 4 can be blocked with a wooden plug.

[0020] Example 2, as Figure 1-3 As shown, this utility model provides a technical solution: a water-jacketed incubator for research and development, including metal plates 7 installed on both sides inside the incubator body 1, and multiple inclined slots 6 are opened on the inner wall of the metal plates 7. A partition frame 8 is provided inside the inclined slot 6. By inserting the partition frame 8 into the inclined slot 6 at different heights, it can meet the placement requirements of various heights and improve the space utilization. The inclined slot 6 used in this application is inclined and through, which increases the stability of temperature conduction with the cavity 3 of the inner wall of the incubator body 1.

[0021] Example 3, as Figure 1-3As shown, this utility model provides a technical solution: a water-jacketed incubator for research and development. One side of the incubator body 1 is equipped with a water supply mechanism with automatic water filtration. The water supply mechanism includes a water pump 10 and a water tank 13. The water pump 10 is mounted on the side wall of the incubator body 1 via a bracket. The water tank 13, close to the water pump 10, is mounted on the side wall of the incubator body 1 via a bracket. A delivery pipe 12, penetrating the water tank 13, is installed at the input end of the water pump 10. A connecting pipe 11 is installed at the output end of the water pump 10, and a magnetic filter canister 15 is installed at the top of the connecting pipe 11. An L-shaped insertion tube 14, penetrating the magnetic filter canister 15, is installed on the side wall of the incubator body 1. The outer wall of the magnetic filter canister 15 is connected to the L-shaped insertion tube 14 and the connecting pipe 11 via bolts. A sealing gasket 16, fitting closely to the connecting pipe 11 and the L-shaped insertion tube 14, is provided on the inner wall of the magnetic filter canister 15. A microcontroller 2 is installed at the top of the incubator body 1. A cavity 3... A water level monitor 9 is installed on one side. The output of the water level monitor 9 is electrically connected to the input of the microcontroller 2 via a wire, and the output of the microcontroller 2 is electrically connected to the input of the water pump 10 via a wire. The water level monitor 9 feeds back the low water level information to the microcontroller 2, and the microcontroller 2 starts the water pump 10 to deliver the water source in the water tank 13 through the delivery pipe 12 and the connecting pipe 11. After being filtered by the magnetic filter canister 15, the water is delivered to the cavity 3 through the L-shaped insertion pipe 14. The magnetic filter canister 15 can filter out ferromagnetic impurities mixed in the water, reducing the content of ferromagnetic impurities in the filtered liquid. After the magnetic filter canister 15 has been used for a period of time, it needs to be removed and repeatedly cleaned to remove iron powder and dirt from the filter screen. This application uses bolt fixing connection. The bolts can be removed, the magnetic filter canister 15 can be moved downward, and the magnetic filter canister 15 can be tilted to one side by the elasticity of the pipe to remove the magnetic filter canister 15.

[0022] Working Principle: First, connect the external power supply. The operator opens the sealed observation door of the incubator 1 and places the culture sample in the separator rack 8. The storage height can be changed by adjusting the position of the separator rack 8 in the inclined slot 6, improving space utilization. Simultaneously, the inclined slot 6, which fits snugly against the cavity 3, facilitates heat conduction. Furthermore, the metal plate 7, made of metal, conducts heat. After placing the sample, the heating tube 5 is activated to heat the cavity 3. Hot air is discharged into the incubator 1 through the through hole 4. When not needed, the discharge point can be plugged with a wooden stopper, allowing hot air to escape to the outer wall of the incubator 1. When the low-level water level monitor 9 inside the microcontroller 2 detects a low water level, it can feed back the low water level information to the microcontroller 2. The microcontroller 2 starts the water pump 10, which, through the delivery pipe 12 and connecting pipe 11, filters the water in the water tank 13 through the magnetic filter canister 15 and then delivers it to the cavity 3 through the L-shaped insertion pipe 14. The water level monitor 9 at the high point on the side wall of the cavity 3 feeds back the information that the water level is too high to the microcontroller 2, and the microcontroller 2 shuts down the water pump 10 to stop the water from continuing to flow in. In addition, the magnetic filter canister 15 can filter out ferromagnetic impurities mixed in the water, reducing the content of ferromagnetic impurities in the filtered liquid. After the magnetic filter canister 15 has been used for a period of time, it needs to be removed and repeatedly cleaned to remove iron powder and dirt from the filter screen. This application uses bolt fixing connection, which can be removed by removing the bolts, moving the magnetic filter canister 15 downward, and tilting the magnetic filter canister 15 to one side through the elasticity of the pipe, so that the magnetic filter canister 15 can be removed.

[0023] Finally, it should be noted that the above content is only used to illustrate the technical solution of this utility model, and is not intended to limit the scope of protection of this utility model. Simple modifications or equivalent substitutions made by those skilled in the art to the technical solution of this utility model do not depart from the essence and scope of the technical solution of this utility model.

Claims

1. A water-jacketed incubator for research and development, comprising an incubator body (1) and a partition rack (8), characterized in that: The culture chamber (1) has an internal cavity (3) and a heating tube (5) is provided on the inner wall of the cavity (3). Metal plates (7) are installed on both sides of the inside of the culture chamber (1) and multiple inclined slots (6) are provided on the inner wall of the metal plates (7). A partition frame (8) is provided inside the inclined slots (6). A water supply mechanism with automatic water filtration is provided on one side of the culture chamber (1).

2. The water-jacketed incubator for research and development according to claim 1, characterized in that: A fan (17) is installed at the top of the inside of the incubator (1).

3. The water-jacketed incubator for research and development according to claim 1, characterized in that: Through holes (4) are provided on both sides of the top end of the cavity (3).

4. The water-jacketed incubator for research and development according to claim 1, characterized in that: The water supply mechanism includes a water pump (10) and a water tank (13). The water pump (10) is mounted on the side wall of the culture chamber (1) by a bracket. The water tank (13) is mounted on the side wall of the culture chamber (1) close to the water pump (10) by a bracket. The input end of the water pump (10) is equipped with a delivery pipe (12) that penetrates the water tank (13). The output end of the water pump (10) is equipped with a connecting pipe (11), and a magnetic filter canister (15) is provided at the top of the connecting pipe (11). An L-shaped insertion tube (14) that penetrates the magnetic filter canister (15) is installed on the side wall of the culture chamber (1).

5. A water-jacketed incubator for research and development according to claim 4, characterized in that: The outer wall of the magnetic filter canister (15) is connected to the L-shaped insertion tube (14) and the connecting tube (11) by bolts. The inner wall of the magnetic filter canister (15) is provided with a sealing gasket (16) that fits against the connecting tube (11) and the L-shaped insertion tube (14).

6. A water-jacketed incubator for research and development according to claim 4, characterized in that: A microcontroller (2) is installed at the top of the incubator (1), and a water level monitor (9) is installed on one side of the cavity (3). The output end of the water level monitor (9) is electrically connected to the input end of the microcontroller (2) through a wire, and the output end of the microcontroller (2) is electrically connected to the input end of the water pump (10) through a wire.