Intelligent breeding beehive with heat dissipation function

Through the design of intelligent breeding beehives, the temperature sensor and fan system are used to automatically adjust the exchange of hot and cold air in the beehive, which solves the problem of insufficient heat dissipation in traditional beehives and improves the health of bee colonies and honey production.

CN223110832UActive Publication Date: 2025-07-18ZHONGKAI UNIV OF AGRI & ENG
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Patent Information

Application Number
CN202422436813.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-09
Publication Date
2025-07-18
Estimated Expiration
2034-10-09

AI Technical Summary

Technical Problem

Traditional beehive design is not enough to meet the heat dissipation needs of bees for temperature changes, resulting in high temperatures that may affect colony activity and honey yield and affect colony health.

Method used

Design an intelligent breeding beehive, equipped with temperature sensors, solar panels, controllers, fans and screen panels, to automatically adjust the exchange of hot and cold air in the beehive, to discharge hot air through the fan and introduce cold air, and to combine the sink cooling and sunshade design to maintain a suitable temperature environment.

Benefits of technology

Effectively adjust the temperature in the beehive, ensure the comfort of the bee, improve honey yield and colony health, and prevent the adverse effects of extreme temperatures on the colony.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223110832U_ABST
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Abstract

The utility model relates to the technical field of bee breeding, in particular to an intelligent breeding beehive with a heat dissipation function. The intelligent breeding beehive with the heat dissipation function comprises a beehive body, and comb foundations are arranged in the beehive body in parallel at equal intervals; the temperature sensor is arranged in the middle of the inner side face of the beehive; the solar panel is fixedly arranged on the beehive; the controller is arranged on one side surface outside the beehive; the inlet is formed in the lower end, opposite to the controller, of the air bellow; the sieve plate is fixedly arranged in the middle of the upper end of the side face where the beehive controller is located in a When the temperature of the beehive exceeds the set appropriate temperature, the fan rotates, hot air in the beehive is blown out from the sieve plate through the air bellow and the air bellow outlet, meanwhile, cold air enters the bottom inlet, hot air exits from the top of the side face, and therefore exchange of the cold air and the hot air of the beehive is achieved, and the heat dissipation effect is achieved.
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Description

Technical Field

[0001] The utility model relates to the technical field of bee breeding, in particular to an intelligent breeding beehive with a heat dissipation function. Background Art

[0002] A beehive is a place for bees to reproduce and thrive during the beekeeping process and is the most basic beekeeping tool.

[0003] Global climate change has led to rising temperatures and an increase in extreme weather events. Bees are very sensitive to temperature changes. High temperatures may cause a decrease in colony activity, affecting honey production and colony health. However, traditional beehive designs are often simple and insufficient to meet the heat dissipation requirements of the bee colony inside the beehive.

[0004] Therefore, it is necessary to design an intelligent breeding beehive with a heat dissipation function. Summary of the Utility Model

[0005] In order to overcome the disadvantages that bees are very sensitive to temperature changes, high temperatures may cause a decrease in colony activity, affecting honey production and colony health, but traditional beehive designs are often simple and insufficient to meet the heat dissipation requirements of the bee colony inside the beehive, the technical problem of the utility model is: to provide an intelligent breeding beehive with a heat dissipation function.

[0006] The technical implementation solution of the utility model is: an intelligent breeding beehive with a heat dissipation function, comprising: a beehive and a foundation comb, with the foundation comb arranged equidistantly and parallelly inside the beehive; a temperature sensor, which is arranged at the middle position of the inner side surface of the beehive; a solar panel, which is fixedly arranged on the top of the beehive; a controller, which is arranged on one side surface outside the beehive; an entrance, which is opened at the lower end opposite to the controller of the beehive; a sieve plate, which is fixedly arranged through the upper end middle of the side surface where the controller of the beehive is located; a blower box, which is fixedly arranged with the sieve plate covering the entrance of the blower box outside the side surface where the sieve plate of the beehive is located, and the outlet of the blower box faces downward; a support frame, which is fixedly arranged at the outlet of the blower box; a fan, which is fixedly arranged on the support frame; a first air-permeable plate, which is fixedly arranged below the support frame at the outlet of the blower box.

[0007] In a preferred embodiment of the utility model, it further comprises: a chute, which is fixedly arranged at the lower outlet of the blower box; a second air-permeable plate, which is slidably arranged on the chute, and a rack is arranged on a partial side of the second air-permeable plate; a motor, which is fixedly arranged on the side of the blower box close to the rack of the second air-permeable plate; a gear, which is fixedly arranged at the output end of the motor, and the gear is engaged with the rack.

[0008] In a preferred embodiment of the utility model, it further comprises: a limit plate, which is fixedly arranged on the inner lower surface, the side surface opposite to the door and the top surface inside the beehive; a cushion block, which is arranged inside the limit plate.

[0009] In a preferred embodiment of the present utility model, it further includes: a sliding door, which is slidably provided at the entrance.

[0010] In a preferred embodiment of the present utility model, it further includes: a water tank, which is fixedly provided outside the entrance; a sunshade top plate, which is fixedly provided above the water tank on the side where the entrance of the bellows is located.

[0011] The present utility model has the following advantages: 1. In the present utility model, when the temperature exceeds the set appropriate temperature, the fan rotates, blowing the relatively hot air in the beehive out from the sieve plate and through the bellows and the bellows outlet, and at the same time, relatively cold air enters from the bottom entrance, and the hot air goes out from the side top, so that the beehive realizes the exchange of hot and cold air and plays a role in heat dissipation.

[0012] 2. When there is water in the water tank, the water vaporizes and absorbs heat, which can reduce the temperature at the entrance of the beehive, and a sunshade is provided above the water tank to prevent the water from being heated and dried by the sun. Description of the Drawings

[0013] Figure 1 It is a three-dimensional structural schematic diagram of the present utility model.

[0014] Figure 2 It is a sectional three-dimensional structural schematic diagram of the present utility model.

[0015] Figure 3 It is an enlarged view of part A of the present utility model.

[0016] Figure 4 It is a first partial three-dimensional structural schematic diagram of the present utility model.

[0017] Figure 5 It is a second partial three-dimensional structural schematic diagram of the present utility model.

[0018] The marks of each component in the drawings are as follows: 1. Beehive, 2. Foundation comb, 3. Temperature sensor, 4. Solar panel, 5. Controller, 6. Entrance, 7. Sieve plate, 8. Bellows, 9. Support frame, 10. Fan, 11. First ventilation plate, 12. Slide groove, 13. Second ventilation plate, 14. Motor, 15. Gear, 16. Limit plate, 17. Cushion block, 18. Sliding door, 19. Water tank, 20. Sunshade top plate. Detailed Embodiment

[0019] The present utility model will be further described below in conjunction with the drawings and embodiments.

[0020] Embodiment 1

[0021] As Figures 1-5As shown in the figure, the utility model provides an intelligent breeding beehive with a heat dissipation function, which specifically includes a beehive 1, a foundation comb 2, a temperature sensor 3, a solar panel 4, a controller 5, an entrance 6, a sieve plate 7, a bellows 8, a support frame 9, a fan 10 and a first air-permeable plate 11. The foundation combs 2 are equidistantly arranged in parallel in the beehive 1. A temperature sensor 3 is arranged at the middle position of the inner side surface of the beehive 1. A solar panel 4 is fixedly arranged on the beehive 1. A controller 5 is arranged on one side surface outside the beehive 1. An entrance 6 is opened at the lower end opposite to the controller 5 of the bellows 8. A sieve plate 7 is fixedly arranged through the upper end middle of the side surface where the controller 5 of the beehive 1 is located. The bellows 8 is fixedly arranged to cover the sieve plate 7 at the entrance 6 of the bellows 8 outside the side surface where the sieve plate 7 of the beehive 1 is located. The outlet of the bellows 8 faces downward. A support frame 9 is fixedly arranged at the outlet of the bellows 8. A fan 10 is fixedly arranged on the support frame 9. A first air-permeable plate 11 is fixedly arranged below the support frame 9 at the outlet of the bellows 8.

[0022] In the utility model, energy can be stored through the top solar energy, and the appropriate temperature range of the beehive 1 can be input by the staff through the controller 5. The temperature inside the bellows 8 is monitored in real time through the temperature sensor 3 arranged in the beehive 1. When heat dissipation is required due to too high temperature, the fan 10 fixed on the support frame 9 rotates, blowing the relatively hot air in the beehive 1 out from the sieve plate 7 and through the bellows 8 and the outlet of the bellows 8. At the same time, relatively cold air enters from the bottom entrance 6. The cold air enters from the bottom, and the hot air exits from the side top. In this way, the exchange of hot and cold air in the beehive 1 is better realized, playing a role in heat dissipation. In addition, the sieve plate 7 and the first air-permeable plate 11 can prevent bees from entering the bellows 8 and contacting the fan 10 and being damaged. The downward air outlet of the bellows 8 can avoid sunlight from entering the inside of the beehive 1, maintaining the dark environment that bees like.

[0023] Embodiment 2

[0024] As Figure 2 and Figure 3 As shown in the figure, on the basis of Embodiment 1, it specifically further includes a second air-permeable plate 13, a motor 14 and a gear 15. A chute 12 is fixedly arranged at the lower outlet of the bellows 8. A second air-permeable plate 13 is slidably arranged on the chute 12. A rack is arranged on a part of one side of the second air-permeable plate 13. A motor 14 is fixedly arranged on the bellows 8 close to the rack side of the second air-permeable plate 13. A gear 15 is fixedly arranged at the output end of the motor 14. The gear 15 is matched with the rack.

[0025] The staff can also set a lower limit temperature to prevent the environmental temperature from decreasing at night or under other circumstances. Since the entrance 6 and the first ventilation plate 11 keep the beehive 1 in a ventilated state, it is not easy to keep the beehive 8 at a warm temperature. Therefore, when the temperature is lower than the set lower limit temperature, the motor 14 rotates automatically. The gear 15 on the motor 14 rotates to drive the second ventilation plate 13 to slide in the chute 12, so that the ventilation holes of the first ventilation plate 11 and the second ventilation plate 13 are staggered. In this way, the ventilation holes are blocked from each other, and thus the beehive 1 has only one opening at the entrance 6, reducing the heat dissipation capacity of the beehive 1 and enhancing the heat preservation capacity of the beehive 1 at the same time. When the temperature inside the beehive 1 exceeds the lower limit temperature, the motor 14 rotates automatically. The gear 15 on the motor 14 rotates to drive the second ventilation plate 13 to slide in the chute 12, so that the ventilation holes of the first ventilation plate 11 and the second ventilation plate 13 coincide. In this way, the ventilation and heat dissipation capacity of the beehive 1 are enhanced.

[0026] As Figure 4 shown, on the basis of Embodiment 1, it specifically further includes a limiting plate 16 and a cushion block 17. The limiting plate 16 is fixedly arranged on the lower surface, the side surface opposite to the door and the top surface inside the beehive 1, and the cushion block 17 is arranged inside the limiting plate 16.

[0027] Through the limiting plate 16 arranged inside the beehive 1, the edge of the foundation comb 2 is separated from the inside of the beehive 1 by a certain distance, thus increasing the air permeability inside the beehive 1, and the height of the position of the foundation comb 2 relative to the bottom of the beehive 1 can be adjusted through the cushion block 17 so as to adjust the air permeability inside the beehive 1.

[0028] As Figure 1 、 Figure 4 and Figure 5 shown, on the basis of Embodiment 1, it specifically further includes a sliding door 18, and the sliding door 18 is arranged at the entrance 6 in a sliding manner.

[0029] The sliding door 18 at the sliding entrance 6 can enlarge the size of the entrance 6 of the beehive 1, thereby enhancing the ventilation and heat dissipation of the beehive 1. At the same time, when the temperature is relatively low, the size of the entrance 6 can be appropriately reduced through the sliding door 18.

[0030] As Figure 1 、 Figure 2 、 Figure 4 and Figure 5 shown, on the basis of Embodiment 1, it specifically further includes a water tank 19, and the water tank 19 is fixedly arranged outside the entrance 6; a sunshade top plate 20, and the sunshade top plate 20 is fixedly arranged above the water tank 19 on the side surface where the entrance 6 of the beehive 8 is located.

[0031] When there is water in the water tank 19, the water vaporizes and absorbs heat, which can reduce the temperature at the entrance 6 of the beehive 1. In addition, a sunshade is arranged above the water tank 19 to prevent the water from being heated and dried by the sun. In addition, since the water tank 19 is in the shape of a strip, bees have a place to land beside it, which is convenient for bees to drink water.

[0032] Although the present disclosure has been described only with respect to a limited number of embodiments, those skilled in the art who benefit from the present disclosure will understand that various other embodiments can be designed without departing from the scope of the present utility model. Therefore, the scope of the present utility model should be limited only by the appended claims.

Claims

1. An intelligent beehive with heat dissipation function, characterized in that, Comprising: A beehive (1) and a foundation comb (2), with the foundation combs (2) arranged equidistantly and in parallel inside the beehive (1); A temperature sensor (3), which is arranged at the middle position on the inner side of the beehive (1); A solar panel (4), which is fixedly arranged on the top of the beehive (1); A controller (5), which is arranged on one outer side of the beehive (1); An entrance (6), which is opened at the lower end opposite to the controller (5) of the bellows (8); A sieve plate (7), which is fixedly arranged through the middle at the upper end of the side of the beehive (1) where the controller (5) is located; A bellows (8), which is fixedly arranged with the entrance (6) of the bellows (8) covering the sieve plate (7) outside the side of the beehive (1) where the sieve plate (7) is located, and the outlet of the bellows (8) faces downward; A support frame (9), which is fixedly arranged at the outlet of the bellows (8); A fan (10), which is fixedly arranged on the support frame (9); A first air-permeable plate (11), which is fixedly arranged below the support frame (9) at the outlet of the bellows (8).

2. The intelligent beekeeping box with a heat dissipation function according to claim 1, characterized in that it also Comprising: A second air-permeable plate (13), a chute (12) is fixedly arranged at the outlet below the bellows (8), the second air-permeable plate (13) is slidably arranged on the chute (12), and a rack is arranged on a part of one side of the second air-permeable plate (13); A motor (14), which is fixedly arranged on the side of the bellows (8) close to the rack of the second air-permeable plate (13); A gear (15), the output end of the motor (14) is fixedly arranged with the gear (15), and the gear (15) is engaged with the rack.

3. The intelligent beekeeping box with heat dissipation function according to claim 2 is characterized in that it also Comprising: A limit plate (16), which is fixedly arranged on the inner lower surface, the side opposite to the door and the top surface of the beehive (1); A cushion block (17), and the cushion block (17) is arranged inside the limit plate (16).

4. The intelligent beehive with heat dissipation function according to claim 3, characterized in that it also Comprising: A sliding door (18), which is slidably arranged at the entrance (6).

5. An intelligent beekeeping box with a heat dissipation function according to claim 4, characterized in that it also Comprising: A water tank (19), which is fixedly arranged outside the entrance (6); A sunshade top plate (20), which is fixedly arranged above the water tank (19) on the side of the bellows (8) where the entrance (6) is located.