Energy-saving full-temperature aquaculture breeding flask cabinet heat preservation door

CN224775815UActive Publication Date: 2026-09-22TIANJIN YUNNI TECH CO LTD
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Patent Information

Application Number
CN202522348226.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-11-05
Publication Date
2026-09-22
Estimated Expiration
2035-11-05

AI Technical Summary

Technical Problem

[0004]上述的动植物种苗孵化设备在实际的使用中存在一些问题,孵化柜的正面安装有柜门,当柜内与外部温差过大时,在柜门的表面很容易形成冷凝水,一旦冷凝水滴入培育室,很容易污染所孵化物

Benefits of technology

1、本实用新型通过中空板的设置,门体采用中空设置并安装若干组中空板,配合连通件和抽送件可实现孵化箱内部空气的循环流通,有效减少门体内壁与箱内空气的温差,降低柜门表面因温差过大形成冷凝水的可能性,并且,结构简单,便于生产制造。

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses an energy -saving type full temperature aquatic breeding shake bottle cabinet heat preservation door, including the door body, the door body is hollowly arranged, the inner chamber of door body is installed with a plurality of groups hollow board from left to right in proper order, the inner side upper surface of each group hollow board all is provided with the communication spare for introducing the inside air of hatching box to hollow board, the inner side lower surface of each group hollow board is provided with the pumping spare of pumping the inside air of hollow board to hatching box, the outer side lower part of door body is provided with the receiving spare for receiving the condensed water in the inside hollow board, the utility model discloses the setting of hollow board, the door body adopts hollow setting and installs a plurality of groups hollow board, and the circulation of the inside air of hatching box can be realized with cooperation communication spare and pumping spare, effectively reduces the temperature difference of door body inner wall and the inside air of box, reduces the possibility that the condensed water is formed on the surface of cabinet door because of the temperature difference too big, and, simple structure, convenient production and manufacture.
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Description

Technical Field

[0001] This utility model relates to the technical field of energy-saving full-temperature aquatic breeding shaker cabinet insulation door, specifically an energy-saving full-temperature aquatic breeding shaker cabinet insulation door. Background Technology

[0002] The full-temperature aquatic breeding shaker is a core specialized equipment for aquatic seed industry research, seedling cultivation, and superior variety selection. Its core function is to simulate the natural growth environment of aquatic organisms and provide stable, controllable, and efficient cultivation conditions for aquatic breeding through the synergistic function of "precise temperature control + shaking culture + environmental regulation". Ultimately, it aims to improve the breeding success rate, shorten the cultivation cycle, and select superior varieties.

[0003] Currently, Chinese patent CN219781249U discloses a seed and plant incubation device, belonging to the field of breeding equipment technology. The incubation cabinet includes a cabinet body with a door on the front and an air inlet on the back; a horizontal partition within the cabinet body, dividing the interior into several layers; and a longitudinal partition within each layer, dividing the layers into a cultivation chamber and an installation chamber. The bottom wall of the cultivation chamber has grooves for placing plant seeds or animal eggs, and the longitudinal partitions have air outlets. Each installation chamber is equipped with an air intake fan, whose inlet and outlet are connected to the air inlet and outlet via a first pipe and a second pipe, respectively. Each installation chamber is also equipped with an oxygen generator, whose outlet is connected to the second pipe via a third pipe. Oxygen generated by the oxygen generator mixes with the airflow and is blown into the cultivation chamber, allowing for faster and more even distribution of oxygen throughout the cultivation chamber.

[0004] The above-mentioned plant and animal seedling incubation equipment has some problems in actual use. The incubation cabinet has a door on the front. When the temperature difference between the inside and outside of the cabinet is too large, condensation can easily form on the surface of the door. Once the condensation drips into the incubation room, it can easily contaminate the incubated organisms. Utility Model Content

[0005] The purpose of this utility model is to provide an energy-saving, full-temperature aquatic breeding shaker cabinet with an insulated door to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides the following technical solution: An energy-saving, full-temperature aquatic breeding shaker cabinet with an insulated door includes a door body. The door body is hollow, and several sets of hollow panels are installed in the inner cavity of the door body from left to right. The upper inner surface of each set of hollow panels is provided with a connecting piece for introducing air from inside the incubator into the hollow panel. The lower inner surface of each set of hollow panels is provided with a pumping piece for pumping air from inside the hollow panel into the incubator. The lower outer surface of the door body is provided with a receiving piece for collecting condensate inside the hollow panels. A door lock is provided on the outer surface of the door body, and a hinge for connecting to the incubator is provided at one end of the door body.

[0007] As a preferred technical solution, the connecting member includes several sets of air suction pipes connected to the upper inner side of each set of hollow plates, and the other end of each set of air suction pipes penetrates the inner surface of the door.

[0008] As a preferred technical solution, the other ends of several groups of suction pipes located in the same hollow plate are all arranged downwards, and the several groups of suction pipes located in the same hollow plate are arranged in a rectangular array.

[0009] As a preferred technical solution, the extraction component includes an installation tube connected to the lower inner surface of each set of hollow plates, the other end of each set of installation tubes penetrating the inner surface of the door body, and an air intake fan fixedly installed in the inner cavity of each set of installation tubes.

[0010] As a preferred technical solution, the receiving component includes a mounting plate that snaps onto the lower outer surface of the door body. A water collection box is fixedly connected to the inner surface of the mounting plate at the corresponding position of each set of hollow plates. One end of each set of water collection boxes is inserted into the lower inner cavity of the corresponding side hollow plate.

[0011] As a preferred technical solution, the outer inner wall of the door is bonded with a heat insulation pad, and there is a heat insulation strip between every two sets of hollow panels.

[0012] Compared with the prior art, the beneficial effects of this utility model are: 1. This utility model, through the setting of hollow plates, the door body adopts a hollow setting and installs several sets of hollow plates, and with the connecting parts and the extraction parts, can realize the circulation of air inside the incubator, effectively reduce the temperature difference between the inner wall of the door and the air inside the box, reduce the possibility of condensation on the surface of the cabinet door due to excessive temperature difference, and the structure is simple and easy to manufacture.

[0013] 2. By setting up a suction fan and cooperating with the installation pipe and the suction fan, this utility model can effectively draw the air that has undergone heat exchange treatment inside the hollow plate back into the incubator, forming a complete air circulation path, ensuring that the treated air is returned in time and maintaining the stability of the air environment inside the incubator.

[0014] 3. With the design of the receiving component, the water collection box is inserted into the lower inner cavity of the hollow plate, which can accurately collect the condensate generated by each group of hollow plates. In addition, the mounting plate adopts a snap-fit ​​method, which is convenient for disassembly and cleaning, and avoids leakage or accidental dripping of condensate into the incubator. Attached Figure Description

[0015] Figure 1 This is a schematic diagram of the structure of the heat preservation door of an energy-saving full-temperature aquatic breeding shaker cabinet according to this utility model; Figure 2 This is a schematic diagram of the water collection box structure of this utility model; Figure 3 This is a cross-sectional structural diagram of the door body of this utility model; Figure 4 This is a schematic diagram of the hollow plate of this utility model.

[0016] In the picture: 100. Door body; 101. Door lock; 102. Insulation strip; 103. Hinges; 104. Heat insulation pad; 200. Mounting plate; 201. Handle; 202. Water collection box; 300. Hollow board; 301. Suction pipe; 302. Suction fan; 303. Mounting pipe. Detailed Implementation

[0017] 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.

[0018] Please see Figure 1-4This embodiment provides an energy-saving, full-temperature aquatic breeding shaker cabinet with an insulated door, including a door body 100. The door body 100 is hollow, and several sets of hollow panels 300 are installed in the inner cavity of the door body 100 from left to right. The upper inner surface of each set of hollow panels 300 is provided with a connecting member for introducing air from inside the incubator into the hollow panel 300. The lower inner surface of each set of hollow panels 300 is provided with a pumping member for pumping air from inside the hollow panel 300 into the incubator. The lower outer side of the door body 100 is provided with a device for controlling the air flow of the hollow panels 300. The door 100 has a door lock 101 on its outer surface and a hinge 103 at one end for connecting to the incubator. The door 100 is equipped with hollow panels 300, and several sets of hollow panels 300 are installed. Combined with the connecting and extraction components, this allows for air circulation within the incubator, effectively reducing the temperature difference between the inner wall of the door 100 and the air inside the incubator. This lowers the likelihood of condensation forming on the door surface due to excessive temperature differences. Furthermore, the structure is simple and easy to manufacture.

[0019] The door 100 is adapted to fit the opening of the incubator. The door 100 is a technical means well known to those skilled in the art. For its specific working principle and structure, please refer to the cabinet door of an animal and plant seedling incubation device with publication number CN219781249U. Other details will not be elaborated here.

[0020] The connecting component includes several sets of air intake pipes 301 connected to the upper inner side of each set of hollow plates 300. The other end of each set of air intake pipes 301 also penetrates the inner surface of the door 100. Through the setting of the air intake pipes 301, the air intake pipes 301 connect the hollow plate 300 with the inner side of the door 100, which can effectively introduce the air inside the incubator into the hollow plate 300, provide a channel for the air to exchange heat with the inner wall of the door 100 in the hollow plate 300, and ensure the smooth progress of the air circulation process.

[0021] Among them, the other ends of several groups of air suction pipes 301 located in the same hollow plate 300 are all set downwards. The several groups of air suction pipes 301 located in the same hollow plate 300 are arranged in a rectangular array. By setting one end of the air suction pipes 301 downwards and distributing them in a rectangular array, the air in the incubator area corresponding to the same hollow plate 300 can be drawn into the hollow plate 300 more evenly, ensuring the uniformity of air contact with the inner wall of the door 100.

[0022] The extraction component includes an installation tube 303 connected to the lower inner surface of each set of hollow panels 300. The other end of each set of installation tubes 303 penetrates the inner surface of the door 100. An air intake fan 302 is fixedly installed in the inner cavity of each set of installation tubes 303. Through the setting of the air intake fan, the cooperation between the installation tube 303 and the air intake fan 302 can effectively extract the air that has undergone heat exchange treatment in the hollow panel 300 back into the incubator, forming a complete air circulation path, ensuring that the treated air is returned in time, and maintaining the stability of the air environment inside the incubator.

[0023] The receiving component includes a mounting plate 200 that snaps onto the lower outer surface of the door 100. A water collection box 202 is fixedly connected to the inner surface of the mounting plate 200 at the corresponding position of each set of hollow panels 300. One end of each set of water collection boxes 202 is inserted into the lower inner cavity of the corresponding side hollow panel 300. Through the setting of the receiving component, the water collection box 202 is inserted into the lower inner cavity of the hollow panel 300, which can accurately collect the condensate generated by each set of hollow panels 300. In addition, the mounting plate 200 adopts a snap-fit ​​method, which is easy to disassemble and clean, and avoids condensate leakage or accidental dripping into the incubator.

[0024] The surface of the mounting plate 200 is fitted with a handle 201.

[0025] The door 100 has an insulation pad 104 bonded to its outer inner wall, and an insulation strip 102 between every two sets of hollow panels 300. The insulation pad 104 further reduces the heat exchange between the inside of the incubator and the outside environment, and enhances the insulation performance of the door 100. At the same time, the insulation strip 102 between every two sets of hollow panels 300 can effectively block the heat transfer between adjacent hollow panels 300, further enhance the overall insulation performance of the door 100, and reduce the local temperature difference caused by uneven heat exchange in different areas inside the door 100.

[0026] Among them, the heat insulation pad 104 is made of one or more of aerogel felt, rubber and plastic sponge, polyurethane foam, etc.

[0027] Working principle; The cabinet door is connected to the incubation cabinet body by a hinge 103 at one end. The outer door lock 101 ensures that the door is sealed and fixed after closing, thus ensuring the closed environment of the incubation room. At the same time, the cabinet door adopts a hollow structure design and the outer inner wall is bonded with a heat insulation pad 104, which can initially reduce the heat exchange between the inside of the cabinet and the outside. The air in the cultivation room is evenly drawn into the hollow plate 300 through several sets of downward-facing and rectangularly arrayed air intake pipes 301 on the upper inner side of the hollow plate 300. When the air circulates inside the hollow plate 300, it will come into full contact with the inner wall of the cabinet door, transferring the heat it carries to the inner wall of the cabinet door, thereby effectively increasing the temperature of the inner wall of the cabinet door, reducing the temperature difference between the inner wall and the air inside the cabinet, and greatly reducing the possibility of water vapor condensing directly on the inner wall of the cabinet door. The treated air, under the action of the intake fan 302, flows back to the incubation chamber through the installation pipe 303; Furthermore, the condensation generated by the air coming into contact with the hollow panel 300 naturally collects at the bottom of the panel under the action of gravity. The mounting plate 200, which is snapped onto the lower part of the cabinet door, has a water collection box 202 for each set of hollow panels 300 inserted into the lower inner cavity of the hollow panel 300, which can accurately collect the condensation generated by each set of hollow panels 300. When the water collection box 202 needs to be cleaned, the operation can be completed by simply removing the snap-on mounting plate 200, which avoids condensate leakage or accidental dripping into the incubation room and completely solves the problem of condensate contaminating the hatched organisms.

[0028] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An energy-saving, full-temperature aquatic breeding shaker cabinet with an insulated door, characterized in that, The device includes a door (100), which is hollow. Several sets of hollow plates (300) are installed in the inner cavity of the door (100) from left to right. Each set of hollow plates (300) has a connecting member on the upper inner surface for introducing air from inside the incubator into the hollow plate (300). Each set of hollow plates (300) has a pumping member on the lower inner surface for pumping air from inside the hollow plate (300) into the incubator. The lower outer side of the door (100) has a receiving member for collecting condensate from inside the hollow plate (300). The outer surface of the door (100) is equipped with a door lock (101). One end of the door (100) is equipped with a hinge (103) for connecting to the incubator.

2. The energy-saving full-temperature aquatic breeding shaker cabinet with insulated door according to claim 1, characterized in that: The connecting element includes several sets of suction pipes (301) connected to the upper inner side of each set of hollow plates (300), and the other end of each set of suction pipes (301) penetrates the inner surface of the door body (100).

3. The energy-saving full-temperature aquatic breeding shaker cabinet with insulated door according to claim 2, characterized in that: The other ends of several groups of suction pipes (301) located in the same hollow plate (300) are all arranged downwards, and the several groups of suction pipes (301) located in the same hollow plate (300) are arranged in a rectangular array.

4. The energy-saving full-temperature aquatic breeding shaker cabinet with insulated door according to claim 3, characterized in that: The extraction component includes an installation tube (303) connected to the lower inner surface of each set of hollow plates (300), the other end of each set of installation tubes (303) penetrates the inner surface of the door body (100), and an air intake fan (302) is fixedly installed in the inner cavity of each set of installation tubes (303).

5. The insulated door of an energy-saving full-temperature aquatic breeding shaker cabinet according to claim 1, characterized in that: The receiving component includes a mounting plate (200) that snaps onto the lower outer surface of the door body (100). A water collection box (202) is fixedly connected to the inner surface of the mounting plate (200) and to the corresponding position of each set of hollow plates (300). One end of each set of water collection boxes (202) is inserted into the lower inner cavity of the corresponding side hollow plate (300).

6. The energy-saving full-temperature aquatic breeding shaker cabinet with insulated door according to claim 5, characterized in that: The outer inner wall of the door (100) is bonded with a heat insulation pad (104), and there is a heat insulation strip (102) between each two sets of hollow panels (300).

Citation Information

Patent Citations

  • Animal and plant seedling incubation equipment

    CN219781249U