Energy-saving germplasm resource library
By setting up buffer rooms and solar panels in the germplasm resource bank, the problem of high electricity consumption during the long-term operation of the germplasm resource bank has been solved, and more efficient energy utilization has been achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- YINUO (TIANJIN) ENVIRONMENTAL TECH CO LTD
- Filing Date
- 2025-06-13
- Publication Date
- 2026-06-23
AI Technical Summary
Germplasm resource banks need to maintain a constant low-temperature environment for a long time, which leads to huge energy consumption, and existing technologies are unable to effectively reduce energy consumption.
Design an energy-saving germplasm resource bank that reduces cold air loss by setting up buffer rooms and uses solar panels to supply electricity when there is sufficient sunlight, thereby reducing dependence on the traditional power grid.
It effectively reduces the working pressure on refrigeration equipment, lowers power consumption, and achieves more efficient energy utilization.
Smart Images

Figure CN224386269U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of germplasm resource bank technology, and in particular to an energy-saving germplasm resource bank. Background Technology
[0002] Germplasm banks are used to preserve plant germplasm resources, ensuring that the germplasm retains its original genetic characteristics and high germination rate decades or even centuries later. This is of great significance for crop breeding, biodiversity conservation, and addressing future climate change.
[0003] Germplasm resource banks require a constant low-temperature environment to maintain seed viability, and they need to operate continuously for long periods of time, resulting in huge energy consumption.
[0004] Therefore, considering the aforementioned need for a constant low-temperature environment to maintain seed viability in germplasm resource banks, and the requirement for long-term uninterrupted operation leading to significant electricity consumption, an energy-saving germplasm resource bank can be designed. By setting up buffer rooms, the loss of cold air in the storage room during germplasm handling can be effectively reduced, thus reducing the workload of the refrigeration equipment. Simultaneously, solar panels can be installed to generate electricity when there is sufficient sunlight, supplying the operating power of the refrigeration equipment and reducing dependence on the traditional power grid. Utility Model Content
[0005] To overcome the problem that germplasm resource banks need to maintain seed viability in a constant low-temperature environment and need to operate continuously for a long time, resulting in huge energy consumption.
[0006] The technical solution of this utility model is as follows: an energy-saving germplasm resource bank, including a germplasm bank body, storage components, and lighting components. Two sets of first partitions are fixedly installed inside the germplasm bank body, dividing the interior into three independent storage rooms. Three sets of second partitions are fixedly installed inside the germplasm bank body, each separating a buffer room within one of the three storage rooms. A first insulated door is located on one side of the germplasm bank body and is rotatably connected to it. The first insulated door is located on one side of the buffer room. A mounting bracket is fixedly installed above the germplasm bank body, and a solar panel is fixedly installed above the mounting bracket. The storage components are located inside the storage rooms, and the lighting components are located inside the germplasm bank body.
[0007] Preferably, by setting up the first partition and the second partition, the interior of the germplasm bank can be divided into three separate storage rooms, and each storage room is equipped with a separate buffer room. The buffer room provides a buffer zone for cold air when taking out and putting in germplasm, reducing the direct loss of cold air inside the storage room. The buffer room can be accessed by setting up a first insulated door. Solar panels can be installed by setting up mounting brackets. The solar panels can generate electricity when the light is good to power the whole device, reducing the dependence on the traditional power grid. The germplasm is stored by setting up storage components, and the lighting components provide lighting for staff when taking out and putting in germplasm.
[0008] As a preferred option, the germplasm bank is equipped with three sets of refrigeration units, which are located inside the three storage rooms respectively.
[0009] Preferably, a temporary storage cabinet is fixedly installed inside the buffer room, and a second insulated door is provided inside the buffer room. The second insulated door is rotatably connected to the second partition and is located on one side of the storage room.
[0010] Preferably, the lighting components include a human body sensor and a light fixture. The human body sensor is installed inside the buffer room, and the light fixtures are installed on the top of both the storage room and the buffer room.
[0011] Preferably, the storage components include slide rails and storage cabinets. The slide rails are fixedly installed inside the germplasm bank body and are located in the storage room. The storage cabinets are set inside the storage room, and multiple sets of storage cabinets are provided. The storage cabinets are slidably connected to the germplasm bank body through the slide rails.
[0012] Preferably, the storage component includes through holes and holding trays, with multiple sets of through holes on the top surface of the storage cabinet and multiple sets of holding trays inside the storage cabinet.
[0013] Preferably, the storage component includes a label clip and a handle. The label clip is fixedly installed on one side of the storage cabinet, and the handle is fixedly installed on one side of the storage cabinet, with the handle located below the label clip.
[0014] The beneficial effects of this utility model are:
[0015] This invention, through the cooperation of the first and second partitions, can divide the interior of the germplasm bank into three separate storage rooms, each equipped with a separate buffer room. The buffer room provides a buffer zone for cold air when retrieving and placing germplasm, preventing the cold air inside the storage room from being directly lost when entering or leaving the storage room, effectively reducing the refrigeration pressure, thereby reducing the consumption of electricity due to refrigeration. When there is sufficient sunlight, the solar panels generate electricity to provide the refrigeration unit with the power required for refrigeration, thereby effectively reducing the dependence on the traditional power grid. Attached Figure Description
[0016] Figure 1 The diagram shown is a three-dimensional structural schematic of the energy-saving germplasm resource bank of this utility model.
[0017] Figure 2 The diagram shown is a three-dimensional structural representation of the internal structure of the energy-saving germplasm resource bank buffer room of this utility model.
[0018] Figure 3 The diagram shown is a three-dimensional structural representation of the internal structure of the energy-saving germplasm resource bank storage room of this utility model.
[0019] Figure 4 The diagram shown is a top-view cross-sectional three-dimensional structural schematic of the energy-saving germplasm resource bank of this utility model;
[0020] Figure 5 The diagram shown is a side view cross-sectional three-dimensional structural schematic of the energy-saving germplasm resource bank of this utility model;
[0021] Explanation of reference numerals in the attached drawings: 1. Germplasm bank body; 101. First insulated door; 102. First partition; 103. Second partition; 104. Mounting bracket; 105. Solar panel; 2. Storage room; 3. Buffer room; 301. Temporary storage cabinet; 302. Second insulated door; 4. Refrigeration unit; 501. Slide rail; 502. Storage cabinet; 503. Through hole; 504. Placing tray; 505. Label clip; 506. Handle; 601. Human body sensor; 602. Lighting lamp. Detailed Implementation
[0022] The present invention will be further described below with reference to the accompanying drawings and embodiments.
[0023] Please see Figures 1-5This utility model provides an embodiment: an energy-saving germplasm resource bank, including a germplasm bank body 1, storage components, and lighting components. Two sets of first partitions 102 are fixedly installed inside the germplasm bank body 1, dividing the interior into three independent storage rooms 2. Three sets of second partitions 103 are fixedly installed inside the germplasm bank body 1, each separating a buffer room 3 within one of the three storage rooms 2. A first heat-insulating door 101 is located on one side of the germplasm bank body 1, rotatably connected to it, and situated on one side of the buffer room 3. A mounting bracket 104 is fixedly installed above the germplasm bank body 1, and a solar panel 105 is fixedly installed above the mounting bracket 104. The storage components are arranged in… Inside the storage room 2, the lighting components are installed inside the germplasm bank body 1. By setting the first partition 102 and the second partition 103, the germplasm bank body 1 can be divided into three separate storage rooms 2, and each storage room 2 is equipped with a separate buffer room 3. By setting the buffer room 3, a buffer zone for cold air can be provided when taking out and putting out germplasm, reducing the direct loss of cold air inside the storage room 2. The buffer room 3 can be entered and exited by setting the first heat preservation door 101. The solar panel 105 is installed by setting the mounting bracket 104. The solar panel 105 can generate electricity when the light is good to power the whole device, reducing the dependence on the traditional power grid. The storage components are set to store germplasm, and the lighting components provide lighting for staff when taking out and putting out germplasm.
[0024] Please see Figures 1-3 In this embodiment, three sets of refrigeration units 4 are fixedly installed inside the germplasm bank body 1, and the three sets of refrigeration units 4 are respectively located inside the three storage rooms 2. By setting up the refrigeration units 4, the storage rooms 2 can be cooled to provide a good storage environment for the germplasm. The three sets of refrigeration units 4 are set up separately in the three storage rooms 2, so that storage rooms 2 with different temperature environments can be created according to the storage requirements of different germplasms. A temporary storage cabinet 301 is fixedly installed inside the buffer room 3. The buffer room 3 is provided with a second heat-insulating door 302. The second heat-insulating door 302 is rotatably connected to the second partition 103. Located on one side of storage room 2; storage room 2 can be accessed from buffer room 3 by setting a second heat-insulating door 302; temporary storage cabinet 301 can be set up to temporarily store germplasm that needs to be stored or retrieved; the lighting components include a human body sensor 601 and a light 602. The human body sensor 601 is set inside buffer room 3, and the light 602 is set on the top of both storage room 2 and buffer room 3; by setting the human body sensor 601, the light 602 is turned on after the staff enters buffer room 3 to illuminate the staff's work, and the light 602 is turned off after the staff leaves to save energy.
[0025] Please see Figures 4-5 In this embodiment, the storage component includes a slide rail 501 and a storage cabinet 502. The slide rail 501 is fixedly installed inside the germplasm bank body 1 and is located inside the storage room 2. The storage cabinet 502 is disposed inside the storage room 2, and multiple sets of storage cabinets 502 are provided. The storage cabinets 502 are slidably connected to the germplasm bank body 1 via the slide rail 501. The storage component includes through holes 503 and holding trays 504. Multiple sets of through holes 503 are opened on the top surface of the storage cabinet 502, and multiple sets of holding trays 504 are disposed inside the storage cabinet 502. The storage component includes a label clip 505 and... A handle 506 and a label clip 505 are fixedly installed on one side of the storage cabinet 502. The handle 506 is located below the label clip 505. By setting the handle 506, the storage cabinet 502 can be pulled to slide along the slide rail 501, which facilitates the adjustment of the position of multiple sets of storage cabinets 502 and saves more space. The through hole 503 allows cold air to enter the interior of the storage cabinet 502. The tray 504 can be used to store germplasm. The label clip 505 can be used to classify and label the stored germplasm.
[0026] When working, the first partition 102 and the second partition 103 are used to divide the inside of the germplasm bank body 1 into three separate storage rooms 2, and each storage room 2 is equipped with a separate buffer room 3. The buffer room 3 can provide a buffer for cold air when taking out and putting in germplasm, reducing the direct loss of cold air inside the storage room 2.
[0027] The refrigeration unit 4 can be used to cool the storage room 2, providing a suitable storage environment for the germplasm inside. The solar panel 105 can generate electricity when there is sufficient sunlight to power the refrigeration unit 4, reducing dependence on the traditional power grid and making it more energy-efficient.
[0028] When it is necessary to retrieve or place germplasm, staff members first enter the buffer room 3 through the first insulation door 101. The human body sensor 601 detects the staff member's entry and turns on the lighting 602 to provide illumination. After closing the first insulation door 101, the second insulation door 302 is opened to enter the storage room 2.
[0029] The temporary storage cabinet 301 can be used to temporarily store germplasm that has been stored or retrieved. This can effectively reduce the number of staff entering and exiting the buffer room 3 through the first insulated door 101, thus reducing the loss of cold air. The lighting 602 will automatically turn off after the staff leaves, making it more energy-efficient.
[0030] Through the above steps, the germplasm bank body 1 can be divided into three separate storage rooms 2 by the cooperation of the first partition 102 and the second partition 103. Each storage room 2 is equipped with a separate buffer room 3. The buffer room 3 can provide a buffer for cold air when taking out and putting in germplasm, preventing the cold air inside the storage room 2 from being directly lost when entering and leaving the storage room 2, effectively reducing the cooling pressure. The solar panel 105 can generate electricity when the light is good, reducing the dependence on the traditional power grid. This solves the problem that the germplasm resource bank needs to use a constant low temperature environment to maintain the viability of seeds and needs to operate continuously for a long time, resulting in huge electricity consumption.
[0031] The embodiments of the present invention have been described in detail above with reference to the accompanying drawings. However, the present invention is not limited to the above embodiments. Within the scope of knowledge possessed by those skilled in the art, various changes can be made without departing from the spirit of the present invention.
Claims
1. An energy-saving germplasm resource bank, comprising a germplasm bank body (1), characterized in that: It also includes storage components and lighting components. Two sets of first partitions (102) are fixedly installed inside the germplasm bank body (1). The two sets of first partitions (102) divide the germplasm bank body (1) into three independent storage rooms (2). Three sets of second partitions (103) are fixedly installed inside the germplasm bank body (1). The three sets of second partitions (103) separate buffer rooms (3) in the three storage rooms (2). A first heat-insulating door (101) is set on one side of the germplasm bank body (1). The first heat-insulating door (101) is rotatably connected to the germplasm bank body (1). The first heat-insulating door (101) is located on one side of the buffer room (3). An installation bracket (104) is fixedly installed on the top of the germplasm bank body (1). A solar panel (105) is fixedly installed on the top of the installation bracket (104). The storage components are set inside the storage rooms (2). The lighting components are set inside the germplasm bank body (1).
2. The energy-saving germplasm resource bank according to claim 1, characterized in that: The germplasm bank body (1) is equipped with three sets of refrigeration units (4), which are located inside the three storage rooms (2).
3. The energy-saving germplasm resource bank according to claim 1, characterized in that: A temporary storage cabinet (301) is fixedly installed inside the buffer room (3). A second heat-insulating door (302) is provided inside the buffer room (3). The second heat-insulating door (302) is rotatably connected to the second partition (103). The second heat-insulating door (302) is located on one side of the storage room (2).
4. The energy-saving germplasm resource bank according to claim 1, characterized in that: The lighting components include a human body sensor (601) and a light (602). The human body sensor (601) is located inside the buffer room (3), and the light (602) is installed on the top of both the storage room (2) and the buffer room (3).
5. The energy-saving germplasm resource bank according to claim 1, characterized in that: The storage component includes a slide rail (501) and a storage cabinet (502). The slide rail (501) is fixedly installed inside the germplasm bank body (1) and is located inside the storage room (2). The storage cabinet (502) is located inside the storage room (2). There are multiple sets of storage cabinets (502). The storage cabinet (502) is slidably connected to the germplasm bank body (1) through the slide rail (501).
6. The energy-saving germplasm resource bank according to claim 5, characterized in that: The storage component includes through holes (503) and holding trays (504). The top surface of the storage cabinet (502) has multiple sets of through holes (503), and the interior of the storage cabinet (502) is provided with multiple sets of holding trays (504).
7. The energy-saving germplasm resource bank according to claim 5, characterized in that: The storage component includes a label holder (505) and a handle (506). The label holder (505) is fixedly installed on one side of the storage cabinet (502), and the handle (506) is fixedly installed on one side of the storage cabinet (502). The handle (506) is located below the label holder (505).