Hatching equipment with emergency power supply mechanism

By introducing an emergency power supply mechanism into the incubation equipment, and using the sliding trigger of the counterweight and dovetail slider to activate the energy storage power supply box, the problem of environmental parameter deviation when the incubation equipment is powered off is solved, and automatic emergency power supply is achieved in the event of a power outage, ensuring the stability of the embryo development environment.

CN224205942UActive Publication Date: 2026-05-08LUAN HEYING POULTRY IND CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
LUAN HEYING POULTRY IND CO LTD
Filing Date
2025-05-07
Publication Date
2026-05-08

AI Technical Summary

Technical Problem

The existing power supply equipment for incubation facilities lacks an automatic trigger function, making it difficult for staff to detect power outages in a timely manner. This causes the environmental parameters of the incubation equipment to deviate from the suitable range, affecting embryo development.

Method used

Design an incubation device with an emergency power supply mechanism, including a power supply box, a trigger-type switch button, and a sliding mechanism. When the power is lost, the counterweight and the dovetail slider slide down due to the loss of power source of the cylinder, triggering the energy storage power in the power supply box to provide emergency power to the device, ensuring the basic operation of the device during the power outage.

Benefits of technology

In the event of a power outage, emergency power supply is automatically triggered to maintain the basic operation of the incubation equipment, ensuring that the embryonic development environment is not significantly affected and preventing development slowdown or stagnation due to deviations in environmental parameters.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of hatching equipment, in particular to hatching equipment with an emergency power supply mechanism, a power supply box is arranged on the outer surface of a hatching equipment body, a trigger switch button is fixedly connected to the upper end of the power supply box, and a mounting seat is fixedly connected to the outer surface of the hatching equipment body. The dovetail-shaped sliding block is slidably connected into the mounting base, the balancing weight is fixedly connected to the outer surface of the dovetail-shaped sliding block, an air cylinder is fixedly connected to the outer surface of the hatching equipment body, when the hatching equipment body is powered off, the air cylinder loses a power source, the overall weight of the balancing weight and the dovetail-shaped sliding block generates downward pulling force, an output shaft of the air cylinder is pulled to slide downwards, and the hatching equipment body is powered off. The dovetail-shaped sliding block slides downwards in the dovetail-shaped sliding groove of the installation base, the balancing weight makes contact with and presses a trigger type switch button, and an energy storage power source in the power supply box is triggered to supply power to the incubation device body in an emergency mode, so that basic operation of the incubation device in the power-off period is maintained, and it is guaranteed that the embryo development environment is not greatly affected.
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Description

Technical Field

[0001] This utility model relates to the field of incubation equipment technology, and in particular to an incubation equipment with an emergency power supply mechanism. Background Technology

[0002] Hatching equipment is of great significance in modern aquaculture and biological research. It is primarily used to create suitable environmental conditions for the development of embryos such as poultry eggs and insect eggs, helping farmers and researchers precisely control the embryonic development process and improve hatching success rates and hatchling quality. Whether it's a large-scale poultry farm or a laboratory focused on biodiversity research, hatching equipment is widely relied upon. By simulating the natural incubation environment and precisely controlling key parameters such as temperature, humidity, and ventilation, it ensures that embryos develop under optimal conditions. Current hatching equipment typically requires the following technologies in practical applications:

[0003] 1. Temperature and humidity sensor, capable of accurately sensing subtle changes in temperature and humidity within the incubation environment;

[0004] 2. The intelligent temperature and humidity control system can accurately adjust the temperature and humidity based on sensor feedback;

[0005] 3. An air circulation device ensures even airflow inside, providing sufficient oxygen and expelling waste gas;

[0006] 4. The box structure is made of stable and durable materials, with good heat insulation and heat preservation performance.

[0007] Currently, various incubation equipment and methods are used in the market to achieve efficient incubation. Some small incubation devices use simple heating wires and fans to regulate temperature, humidity, and ventilation, suitable for small-scale family-based aquaculture. Larger incubation facilities are equipped with backup power supplies to prevent power outages from affecting embryo development.

[0008] However, the aforementioned incubation equipment has a prominent hardware structure problem: the power supply equipment in the existing incubation devices often requires manual activation to provide power, lacking an automatic triggering function. Staff may not be able to detect power outages immediately, which can easily lead to a period of power failure. As a result, the environmental parameters of the incubation equipment will quickly deviate from the suitable range, and embryo development may slow down, stop, or even die. Utility Model Content

[0009] To address the shortcomings of existing technologies, this utility model provides an incubation device with an emergency power supply mechanism. This solves the technical problem that existing incubation devices often require manual activation to supply power, lack automatic triggering functions, and make it difficult for staff to detect power outages in the first instance. This can easily lead to a period of power outage, causing the environmental parameters of the incubation device to deviate rapidly from the suitable range, which may slow down, stop, or even kill the embryo.

[0010] To achieve the above objectives, this utility model provides the following technical solution:

[0011] An incubation device with an emergency power supply mechanism includes an incubation device body. An emergency power supply storage mechanism is provided on the outer surface of the incubation device body. The storage mechanism includes a power supply box and a trigger-type switch button. The power supply box is located on the outer surface of the incubation device body. The trigger-type switch button is fixedly connected to the upper end of the power supply box. A sliding mechanism for pressing the trigger-type switch button is provided on the outer surface of the incubation device body. The sliding mechanism includes a mounting base, a dovetail-shaped slider, and a counterweight. The mounting base is fixedly connected to the outer surface of the incubation device body. The dovetail-shaped slider is slidably connected inside the mounting base. The counterweight is fixedly connected to the outer surface of the dovetail-shaped slider. A cylinder is fixedly connected to the outer surface of the incubation device body.

[0012] Preferably, the mounting base has a dovetail-shaped groove inside.

[0013] Preferably, an air pump is provided on the outer surface of the incubation equipment.

[0014] Preferably, the air pump has a connecting pipe inside, and the incubation equipment body has an exhaust vent inside.

[0015] Preferably, a set of partitions is fixedly connected inside the incubation equipment body, and two cabinet doors are rotatably connected to one end of the incubation equipment body near the set of partitions.

[0016] Preferably, a temperature regulator is provided at the upper end of the incubation equipment body, and a round rod is slidably connected inside the mounting base.

[0017] Preferably, a spring is fitted onto the outer surface of the round rod.

[0018] Preferably, a rubber pad is fixedly connected to the upper end of the round rod.

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

[0020] 1. When the main body of the incubation equipment experiences a power outage, the air pump and cylinder will also lose power. The cylinder will lose its power source, and its output shaft will not be able to remain in the retracted state. At this time, the combined weight of the counterweight and the dovetail slider will generate a downward pulling force, pulling the cylinder output shaft down. The dovetail slider will slide down in the dovetail groove of the mounting base. The counterweight will contact and press the trigger switch button, triggering the energy storage power in the power supply box to provide emergency power to the main body of the incubation equipment, so as to maintain the basic operation of the incubation equipment during the power outage and ensure that the embryo development environment is not greatly affected.

[0021] Second, during the descent, the dovetail-shaped slider first contacts the surface of the rubber pad. As it continues to descend, the extrusion rod slides downward. When the rod slides, the extrusion spring contracts. Through the cooperation of the spring and the rubber pad, a buffering effect is achieved, preventing the counterweight and dovetail-shaped slider from rapidly sliding down and causing impact damage to the equipment. Attached Figure Description

[0022] The above description is only an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, the preferred embodiments of this utility model are described in detail below with reference to the accompanying drawings.

[0023] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0024] Figure 2 This is an exploded view of the power supply box connection of this utility model;

[0025] Figure 3 This is a diagram showing the connection structure of the counterweight block of this utility model;

[0026] Figure 4 This is an exploded view of the dovetail-shaped slider connection of this utility model.

[0027] Legend: 11. Incubation equipment body; 12. Power supply box; 13. Trigger switch button; 14. Mounting base; 15. Dovetail slider; 16. Counterweight; 17. Cylinder; 18. Dovetail slide; 19. Air pump; 21. Connecting pipe; 22. Exhaust duct; 23. Partition; 24. Cabinet door; 25. Temperature regulator; 26. Round rod; 27. Spring; 28. Rubber pad. Detailed Implementation

[0028] This application provides an incubation device with an emergency power supply mechanism, effectively solving the problem that existing incubation devices often require manual activation to supply power, lack automatic triggering functions, and make it difficult for staff to detect power outages immediately. This can easily lead to a period of power outage, causing the environmental parameters of the incubation device to deviate rapidly from the suitable range, potentially slowing down, halting, or even killing embryonic development. When the incubation device itself experiences a power outage, the air pump and cylinder simultaneously lose power. The cylinder loses its power source, and its output shaft cannot remain in the retracted state. At this time, the combined weight of the counterweight and the dovetail slider generates a downward pulling force, causing the cylinder output shaft to slide down. The dovetail slider slides downward within the dovetail groove of the mounting base, and the counterweight contacts and presses the trigger switch button, triggering the energy storage power in the power supply box to provide emergency power to the incubation device, maintaining the basic operation of the incubation device during the power outage and ensuring that the embryonic development environment is not significantly affected.

[0029] Example

[0030] like Figure 1 , Figure 2 , Figure 3 and Figure 4 As shown, the technical solution in this application embodiment effectively solves the technical problem that existing incubation devices often require manual activation to supply power, lack automatic triggering functions, and make it difficult for staff to detect power outages immediately. This can easily lead to a period of power outage, causing the environmental parameters of the incubation device to deviate rapidly from the suitable range, potentially slowing down, halting, or even killing embryonic development. The overall concept is as follows: An incubation device with an emergency power supply mechanism includes an incubation device body 11. The outer surface of the incubation device body 11 is provided with an emergency power supply storage mechanism, which includes a power supply box 12 and a trigger-type switch button 13. The power supply box 12 is located on the outer surface of the incubation device body 11, and the trigger-type switch button 13 is fixedly connected to the upper end of the power supply box 12. The outer surface of the incubation device body 11 is provided with a sliding mechanism for pressing the trigger-type switch button 13. The sliding mechanism includes a mounting base 14, a dovetail-shaped slider 15, and a counterweight. 16. Mounting base 14 is fixedly connected to the outer surface of the incubation equipment body 11. Dovetail slider 15 is slidably connected inside mounting base 14. Counterweight 16 is fixedly connected to the outer surface of dovetail slider 15. Cylinder 17 is fixedly connected to the outer surface of the incubation equipment body 11. Dovetail slider 15 is fixedly connected to the lower end of cylinder 17. Power supply box 12 is equipped with energy storage power and is connected to the circuit of incubation equipment body 11. When the device loses power, emergency power is supplied to incubation equipment body 11 through power supply box 12. When power supply is required, the trigger switch button 13 needs to be pressed to start power supply box 12 to supply power. When power loss occurs, cylinder 17 loses power source and its output shaft cannot stay in the retracted state. At this time, the weight of counterweight 16 and dovetail slider 15 pulls the output shaft of cylinder 17 down. The counterweight 16 contacts the surface of trigger switch button 13 to trigger power supply box 12 to supply emergency power.

[0031] The mounting base 14 has a dovetail-shaped groove 18 inside, and the dovetail-shaped slider 15 is slidably connected inside the dovetail-shaped groove 18. An air pump 19 is provided on the outer surface of the incubation equipment body 11. The air pump 19 is compatible with the cylinder 17. A connecting pipe 21 is provided inside the air pump 19 and is sleeved inside the incubation equipment body 11. An exhaust groove 22 is provided inside the incubation equipment body 11. A set of partitions 23 is fixedly connected inside the incubation equipment body 11. Two cabinet doors 24 are rotatably connected to one end of the incubation equipment body 11 near the set of partitions 23. A temperature regulator 25 is provided at the upper end of the incubation equipment body 11. The dovetail-shaped groove 18 and the dovetail-shaped slider 15 are matched in size to ensure the stability of sliding during lifting and lowering operations. The air pump 19 delivers oxygen to the incubation equipment body 11 through the connecting pipe 21. The air pump 19 and the cylinder 17 are connected by a hose, and the air pump 19 and the incubation equipment body 11 are connected in the same circuit. When the incubation equipment body 11 loses power, the air pump 19 also loses power, and the cylinder 17 loses its power source. The exhaust slot 22 opened in the incubation equipment body 11 is used to discharge the gas inside the incubation equipment body 11 to achieve air circulation. During the incubation operation, the incubation box is placed on the upper end of the partition 23 for support. The cabinet door 24 is closed to form a closed space inside the incubation equipment body 11. The temperature regulator 25 installed on the upper end of the incubation equipment body 11 is used to regulate the temperature inside the incubation equipment body 11.

[0032] A round rod 26 is slidably connected inside the mounting base 14. A spring 27 is sleeved on the outer surface of the round rod 26 and sleeved on the inner surface of the mounting base 14. A rubber pad 28 is fixedly connected to the upper end of the round rod 26. The rubber pad 28 and the dovetail slider 15 are on the same vertical line. When the dovetail slider 15 slides down to trigger the operation, the dovetail slider 15 first contacts the surface of the rubber pad 28 and squeezes the round rod 26 downward as it continues to descend. When the round rod 26 slides, it compresses the spring 27, and the cooperation between the spring 27 and the rubber pad 28 plays a buffering role.

[0033] To address the problems existing in the prior art, this utility model provides an incubation device with an emergency power supply mechanism. When the main body 11 of the incubation device experiences a power outage, the air pump 19 and the cylinder 17 are simultaneously de-energized. The cylinder 17 loses its power source, and its output shaft cannot remain in the retracted state. At this time, the combined weight of the counterweight 16 and the dovetail slider 15 generates a downward pulling force, causing the output shaft of the cylinder 17 to slide down. The dovetail slider 15 slides downward within the dovetail groove 18 of the mounting base 14. The counterweight 16 contacts and presses the trigger switch button 13, triggering the energy storage power in the power supply box 12 to provide emergency power to the main body 11 of the incubation device, so as to maintain the basic operation of the incubation device during the power outage and ensure that the embryo development environment is not greatly affected.

[0034] Incubation equipment body 11: The main structure of the entire incubation equipment, providing space for embryo development, serving as the basis for the installation and support of other components, and working in conjunction with other components to maintain the overall environment required for incubation. For example, it works with components such as air pump 19 and temperature regulator 25 to create suitable air and temperature conditions for embryo development.

[0035] Power supply box 12: As a key part of the storage mechanism for emergency power supply, it is equipped with energy storage power. Under normal circumstances, it is in standby mode. When the incubation equipment body 11 loses power, it can provide emergency power to ensure the basic operation of the equipment during the power outage and ensure that the embryo development environment is not greatly affected. It works with the trigger switch button 13, sliding mechanism, etc. to realize the emergency power supply function.

[0036] Trigger-type switch button 13: It is fixedly connected to the upper end of the power supply box 12. The power supply box 12 can only be activated to provide emergency power supply when it is pressed. It works in conjunction with the counterweight 16 in the sliding mechanism. When the power is off, the counterweight 16 slides down to contact and press it, thereby triggering the energy storage power in the power supply box 12 to supply power to the incubation equipment body 11.

[0037] Mounting base 14: It is fixedly connected to the outer surface of the incubation equipment body 11. It has a dovetail-shaped groove 18 inside to provide a sliding track for the dovetail-shaped slider 15, ensuring the accuracy and stability of its sliding direction. At the same time, it also has components such as a round rod 26 and a spring 27 inside, which work together to buffer the downward sliding process of the dovetail-shaped slider 15.

[0038] Dovetail slider 15: It is slidably connected in the dovetail groove 18 inside the mounting base 14. When the power is off, it slides down the groove under the gravity of the counterweight 16 and presses the trigger switch button 13. It is tightly matched with the dovetail groove 18 of the mounting base 14 to ensure the stability of the sliding. It is connected to the counterweight 16 to transmit the gravity of the counterweight 16 and realize the action of triggering emergency power supply.

[0039] Counterweight 16: Fixedly connected to the outer surface of the dovetail slider 15. When the power to the incubation equipment body 11 is cut off and the cylinder 17 loses its power source, the weight of the counterweight 16 and the dovetail slider 15 together generates a downward pulling force, which pulls the output shaft of the cylinder 17 down, and finally contacts and presses the trigger switch button 13 to trigger emergency power supply. It works in conjunction with the dovetail slider 15 to provide the power required to trigger emergency power supply.

[0040] Cylinder 17: Fixed on the outer surface of the incubation equipment body 11, with a dovetail slider 15 connected to its lower end. When the power supply is normal, the air pump 19 provides the power source to keep the output shaft in the retracted state. When the power is cut off, the power source is lost, and the output shaft slides down under the gravity of the counterweight 16 and the dovetail slider 15.

[0041] Dovetail groove 18: It is formed inside the mounting base 14 and is adapted to the outer dimensions of the dovetail slider 15 to provide precise sliding guidance for the dovetail slider 15.

[0042] Air pump 19: It is installed on the outer surface of the incubation equipment body 11, adapted to the cylinder 17, and connected to the incubation equipment body 11 in the same circuit.

[0043] Connecting pipe 21: It is sleeved inside the incubation equipment body 11 and serves as a channel for the air pump 19 to deliver oxygen to the incubation equipment body 11.

[0044] Exhaust trough 22: Located inside the incubation equipment body 11, it is used to exhaust the gas inside the incubation equipment body 11. In conjunction with the process of the air pump 19 delivering oxygen, it realizes air circulation, maintains a good air environment, and provides suitable gas conditions for embryo development.

[0045] Partition 23: It is fixedly connected inside the incubation equipment body 11 and is used to support the incubation box placed on it, providing a stable placement platform for the incubation box;

[0046] Cabinet door 24: Rotatably connected to one end of the incubation equipment body 11 near the partition 23. When closed, it forms a closed space inside the incubation equipment body 11, which is conducive to maintaining a stable incubation environment.

[0047] Temperature regulator 25: Installed on the upper end of the incubation equipment body 11, it is used to regulate the temperature inside the incubation equipment body 11 to ensure that the embryo develops at a suitable temperature. It works in conjunction with the incubation equipment body 11, cabinet door 24, etc. to create a stable incubation temperature environment and is an important component to ensure the normal development of the embryo.

[0048] Round rod 26: It is slidably connected inside the mounting base 14, with spring 27 sleeved on its outer surface and rubber pad 28 fixedly connected to its upper end;

[0049] Spring 27: It is sleeved on the outer surface of the round rod 26 and located on the inner surface of the mounting base 14. When the round rod 26 is squeezed downward by the dovetail slider 15, the spring 27 contracts, stores energy, and plays a buffering role.

[0050] Rubber pad 28: Fixed to the upper end of the round rod 26, and on the same vertical line as the dovetail slider 15. When the dovetail slider 15 slides down, it is the first to contact the dovetail slider 15, providing initial buffer for the slide down of the dovetail slider 15. Together with the round rod 26 and the spring 27, it buffers the slide down of the dovetail slider 15 and protects the equipment components.

[0051] Working principle:

[0052] The first step is to place the incubator on the partition 23. The air pump 19 is connected to the incubator body 11 in the same circuit. When the power is on normally, the air pump 19 is connected to the filter box on the surface of the incubator body 11, and the filtered oxygen is delivered to the incubator body 11 through the connecting pipe 21 to provide the oxygen required for embryo development. At the same time, the exhaust slot 22 opened in the incubator body 11 is used to exhaust the internal gas, realize air circulation, and maintain a good air environment. The cabinet door 24 is closed to form a closed space inside the incubator body 11 to maintain a stable incubation environment. The temperature regulator 25 regulates the temperature inside the incubator body 11 to ensure that the embryo develops at a suitable temperature. The air pump 19 is connected to the cylinder 17 through a hose. When the power is on normally, the air pump 19 provides a power source for the cylinder 17, keeping the output shaft of the cylinder 17 in a retracted state. The power supply box 12 is set on the outer surface of the incubator body 11. It has an internal energy storage power supply and is connected to the circuit of the incubator body 11, but it does not work under normal circumstances and is in a standby state.

[0053] In the second step, when the main body of the incubation equipment 11 experiences a power outage, the air pump 19 and cylinder 17 are simultaneously de-energized. Cylinder 17 loses its power source, and its output shaft cannot remain retracted. At this time, the combined weight of the counterweight 16 and the dovetail slider 15 generates a downward pulling force, causing the output shaft of cylinder 17 to slide downwards. The dovetail slider 15 slides downwards within the dovetail groove 18 of the mounting base 14. Because the dovetail groove 18 and the dovetail slider 15 are sized to match, the sliding stability is ensured. Finally, the counterweight 16 contacts and presses the trigger switch. When button 13 is turned off, the energy storage power in the power supply box 12 is triggered to provide emergency power to the incubation equipment body 11, so as to maintain the basic operation of the incubation equipment during the power outage and ensure that the embryo development environment is not greatly affected. During the descent, the dovetail slider 15 first contacts the surface of the rubber pad 28. As it continues to descend, the compression rod 26 slides downward. When the rod 26 slides, the compression spring 27 contracts. The spring 27 and the rubber pad 28 work together to buffer the impact and prevent the counterweight 16 and the dovetail slider 15 from falling rapidly and causing damage to the equipment.

[0054] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.

Claims

1. An incubation device with an emergency power supply mechanism, comprising an incubation device body (11), wherein the outer surface of the incubation device body (11) is provided with an emergency power supply storage mechanism, the storage mechanism comprising a power supply box (12) and a trigger-type switch button (13), characterized in that, The power supply box (12) is set on the outer surface of the incubation equipment body (11). The trigger switch button (13) is fixedly connected to the upper end of the power supply box (12). The outer surface of the incubation equipment body (11) is provided with a sliding mechanism for pressing the trigger switch button (13). The sliding mechanism includes a mounting base (14), a dovetail slider (15), and a counterweight (16). The mounting base (14) is fixedly connected to the outer surface of the incubation equipment body (11). The dovetail slider (15) is slidably connected inside the mounting base (14). The counterweight (16) is fixedly connected to the outer surface of the dovetail slider (15). A cylinder (17) is fixedly connected to the outer surface of the incubation equipment body (11).

2. The incubation equipment with an emergency power supply mechanism as described in claim 1, characterized in that, The dovetail-shaped slider (15) is fixedly connected to the lower end of the cylinder (17); The mounting base (14) has a dovetail-shaped groove (18) inside, and the dovetail-shaped slider (15) is slidably connected inside the dovetail-shaped groove (18).

3. The incubation equipment with an emergency power supply mechanism as described in claim 2, characterized in that, An air pump (19) is provided on the outer surface of the incubation equipment body (11); The air pump (19) and the cylinder (17) are compatible.

4. The incubation equipment with an emergency power supply mechanism as described in claim 3, characterized in that, The air pump (19) is equipped with a connecting pipe (21), which is sleeved inside the incubation equipment body (11); The incubation equipment body (11) has an exhaust vent (22) inside.

5. The incubation equipment with an emergency power supply mechanism as described in claim 4, characterized in that, A set of partitions (23) are fixedly connected inside the main body (11) of the incubation equipment; Among them, the incubation equipment body (11) has two cabinet doors (24) rotatably connected to one end of a set of partitions (23) inside.

6. The incubation device with an emergency power supply mechanism as described in claim 5, characterized in that, A temperature regulator (25) is provided at the upper end of the incubation equipment body (11); The mounting base (14) has a round rod (26) slidably connected inside.

7. The incubation device with an emergency power supply mechanism as described in claim 6, characterized in that, A spring (27) is sleeved on the outer surface of the round rod (26); The spring (27) is sleeved on the inner surface of the mounting base (14).

8. The incubation equipment with an emergency power supply mechanism as described in claim 7, characterized in that, A rubber pad (28) is fixedly connected to the upper end of the round rod (26); The rubber pad (28) and the dovetail slider (15) are on the same vertical line.