A 96-well cold speed long-acting electronic ice box
Patent Information
- Application Number
- CN202520623342.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-03
- Publication Date
- 2026-09-04
- Estimated Expiration
- 2035-04-03
AI Technical Summary
[0005]本实用新型的目的在于提供一款 96 孔冷速长效电子冰盒,解决了传统冰盒的制冷机制多基于简单的蓄冷材料,其热传递效率较低,从常温降至目标低温(如-20℃或更低)的过程缓慢的问题
[0011]This utility model discloses a 96-hole fast-cooling and long-lasting electronic ice box, comprising a shell and a fast-cooling and long-lasting cooling component. The fast-cooling and long-lasting cooling component includes a built-in battery, a heat dissipation layer, a heat insulation layer, a cooling element, a layout plate, and a protective edge. The built-in battery is located inside the lower part of the shell. The heat dissipation layer is located above the built-in battery and is also located inside the shell. The heat insulation layer is detachably connected to the heat dissipation layer and is located above the heat dissipation layer, also inside the shell. The cooling element passes through the heat insulation layer and is detachably connected to the heat dissipation layer, and is located above the heat dissipation layer. One end of the heat dissipation layer is also located above the insulation layer. The layout plate is fixedly connected to the outer shell and is located inside the upper part of the outer shell. The layout plate is also located above the cooling element. The protective edge is fixedly connected to the outer shell and is located above the outer shell. The protective edge is located on the periphery of the layout plate. By modifying and replacing the traditional ice box structure with a fast and long-lasting cooling component, the problem that the cooling mechanism of traditional ice boxes is mostly based on simple cold storage materials, which has low heat transfer efficiency and slow process of cooling from room temperature to target low temperature (such as -20℃ or lower) is effectively solved.
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Figure CN224719030U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of low-temperature storage equipment technology, and in particular to a 96-hole fast-cooling and long-lasting electronic ice box. Background Technology
[0002] In fields such as biomedicine and chemical analysis, it is often necessary to preserve and transport samples at low temperatures to ensure their activity and stability.
[0003] Existing ice boxes often require a long time to reach low temperatures during the cooling process. For some applications that require rapid sample cooling, such as the termination of denaturation reactions in genotyping and genotyping experiments, ordinary ice boxes cannot meet the need for instant cooling. This is because the cooling mechanism of traditional ice boxes is mostly based on simple cold storage materials, which have low heat transfer efficiency and a slow process of cooling from room temperature to the target low temperature (such as -20°C or lower).
[0004] To address the above issues, we propose a 96-hole fast-cooling and long-lasting electronic ice box. Summary of the Invention
[0005] The purpose of this invention is to provide a 96-hole fast-cooling and long-lasting electronic ice box, which solves the problem that the cooling mechanism of traditional ice boxes is mostly based on simple cold storage materials, which has low heat transfer efficiency and slow process of cooling from room temperature to target low temperature (such as -20℃ or lower).
[0006] To achieve the above objectives, this utility model employs a 96-hole fast-cooling and long-lasting electronic ice box, comprising a shell and a fast-cooling and long-lasting cooling component. The fast-cooling and long-lasting cooling component includes a built-in battery, a heat dissipation layer, a heat insulation layer, a cooling element, a layout plate, and a protective edge. The built-in battery is located inside the lower part of the shell. The heat dissipation layer is located above the built-in battery and is also located inside the shell. The heat insulation layer is detachably connected to the heat dissipation layer and is located above the heat dissipation layer and is also located inside the shell. The cooling element passes through the heat insulation layer and is detachably connected to the heat dissipation layer and is located above the heat dissipation layer. The end of the cooling element away from the heat dissipation layer is also located above the heat insulation layer. The layout plate is fixedly connected to the shell and is located inside the shell and is also located above the cooling element. The protective edge is fixedly connected to the shell and is located above the shell, and is located around the periphery of the layout plate.
[0007] The rapid and long-lasting cooling component also includes a display screen and control buttons. The display screen is fixedly connected to the housing and located inside the housing on one side. The display screen is also located on the side of the built-in battery. The control buttons are detachably connected to the housing and located on the side of the housing near the display screen. The control buttons are also located below the display screen.
[0008] The rapid and long-lasting cooling component also includes an indicator light and a switch. The indicator light is detachably connected to the housing and is located on the side of the housing closer to the display screen. The switch is detachably connected to the housing and is located on the side of the housing closer to the display screen. The switch is located on the side of the indicator light away from the display screen.
[0009] The rapid and long-lasting cooling component also includes a fan and a heat dissipation vent. The fan is detachably connected to the housing and is located on the side of the housing away from the display screen. The fan is also located on the side of the built-in battery. The heat dissipation vent is fixedly connected to the housing and is located on the inside side of the housing. The heat dissipation vent is also located on the side of the built-in battery and is perpendicular to the display screen.
[0010] The rapid and long-lasting cooling component also includes a charging port and an anti-slip pad. One end of the charging port passes through the housing and is detachably connected to the built-in battery, and is located on one side of the built-in battery. The other end of the charging port is located on the side of the housing away from the heat dissipation vent. The charging port is perpendicular to the display screen and also perpendicular to the fan. The anti-slip pad is detachably connected to the housing and is located below the housing.
[0011] This utility model discloses a 96-hole fast-cooling and long-lasting electronic ice box, comprising a shell and a fast-cooling and long-lasting cooling component. The fast-cooling and long-lasting cooling component includes a built-in battery, a heat dissipation layer, a heat insulation layer, a cooling element, a layout plate, and a protective edge. The built-in battery is located inside the lower part of the shell. The heat dissipation layer is located above the built-in battery and is also located inside the shell. The heat insulation layer is detachably connected to the heat dissipation layer and is located above the heat dissipation layer, also inside the shell. The cooling element passes through the heat insulation layer and is detachably connected to the heat dissipation layer, and is located above the heat dissipation layer. One end of the heat dissipation layer is also located above the insulation layer. The layout plate is fixedly connected to the outer shell and is located inside the upper part of the outer shell. The layout plate is also located above the cooling element. The protective edge is fixedly connected to the outer shell and is located above the outer shell. The protective edge is located on the periphery of the layout plate. By modifying and replacing the traditional ice box structure with a fast and long-lasting cooling component, the problem that the cooling mechanism of traditional ice boxes is mostly based on simple cold storage materials, which has low heat transfer efficiency and slow process of cooling from room temperature to target low temperature (such as -20℃ or lower) is effectively solved. Attached Figure Description
[0012] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this utility model. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0013] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0014] Figure 2 This is a side view of the entire utility model.
[0015] Figure 3 This is a rear view of the entire utility model.
[0016] Figure 4 This is a utility model Figure 3 A cross-sectional view of the AA line structure.
[0017] 101-Outer shell, 102-Built-in battery, 103-Display screen, 104-Control button, 105-Indicator light, 106-Switch, 107-Fan, 108-Heat dissipation vent, 109-Charging port, 110-Anti-slip pad, 111-Heat dissipation layer, 112-Insulation layer, 113-Cooling element, 114-Protective edge, 115-Layout board. Detailed Implementation
[0018] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0019] Please see Figures 1-4 , Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a side view of the entire utility model. Figure 3 This is a rear view of the entire utility model. Figure 4 This is a utility model Figure 3 A cross-sectional view of the AA line structure.
[0020] This utility model provides a 96-hole fast-cooling and long-lasting electronic ice box, including a shell 101 and a fast-cooling and long-lasting cooling component. The fast-cooling and long-lasting cooling component includes a built-in battery 102, a heat dissipation layer 111, a heat insulation layer 112, a cooling element 113, a layout plate 115, a protective edge 114, a display screen 103, control buttons 104, indicator lights 105, a switch 106, a fan 107, a heat dissipation vent 108, a charging port 109, and an anti-slip pad 110. This solution addresses the problem that traditional ice boxes often rely on simple cold storage materials for their cooling mechanism. The problem of low heat transfer efficiency and slow cooling from room temperature to the target low temperature (such as -20°C or lower) can be understood. In the aforementioned solution, during cooling, the cooling element 113 is in direct contact with the heat dissipation layer 111, cooling through the thermoelectric effect and transferring heat to the heat dissipation layer 111. The heat dissipation layer 111 is connected to the fan 107, which pushes air through the heat dissipation layer 111, expelling heat from inside the outer casing 101. The fan 107 and the... The heat dissipation vent 108 is connected to the outer shell 101 to expel heat from the interior of the outer shell 101 to the external environment. The built-in battery 102 is located at the bottom of the outer shell 101 and is connected to the cooling chip 113 via a wire to power it. The anti-slip pad 110 is located at the bottom of the outer shell 101 and is in contact with the heat dissipation layer 111 to provide stability and prevent the outer shell 101 from sliding. The charging port 109 is located on the side of the outer shell 101 and is connected to an external power source via a charging cable to charge the built-in battery 102. The display screen 103 and the indicator light 105 are located on the front of the outer shell 101 and are connected to the built-in battery 102 and the cooling chip 113 via an internal circuit to display relevant information. The switch 106 is located on the front of the outer shell 101 and controls the overall start-up and shutdown via an internal circuit. This effectively solves the problem that the cooling mechanism of traditional ice boxes is mostly based on simple cold storage materials, which has low heat transfer efficiency and slow process of cooling from room temperature to target low temperature (such as -20°C or lower).
[0021] In this specific embodiment, the built-in battery 102 is disposed inside the lower part of the outer casing 101, the heat dissipation layer 111 is disposed above the built-in battery 102, and the heat dissipation layer 111 is also disposed inside the outer casing 101. The heat insulation layer 112 is detachably connected to the heat dissipation layer 111 and is located above the heat dissipation layer 111, and the heat insulation layer 112 is disposed inside the outer casing 101. The cooling chip 113 passes through the heat insulation layer 112 and is detachably connected to the heat dissipation layer 111, and is located above the heat dissipation layer 111. One end of the cooling chip 113 away from the heat dissipation layer 111 is also disposed above the heat insulation layer 112. The layout plate 115 is connected to the... The outer casing 101 is fixedly connected and located inside the upper part of the outer casing 101. The layout plate 115 is also disposed above the cooling chip 113. The protective edge 114 is fixedly connected to the outer casing 101 and located above the outer casing 101. The protective edge 114 is disposed around the periphery of the layout plate 115. The layout plate 115 is located on the top of the outer casing 101 and is used to place samples. The protective edge 114 surrounds the periphery of the layout plate 115 to protect the edge of the outer casing 101. The heat dissipation layer 111 is located inside the outer casing 101, close to the cooling chip 113, to help dissipate heat. The built-in battery 102 is located at the bottom of the outer casing 101 to provide power to the whole.
[0022] The display screen 103 is fixedly connected to the housing 101 and is located inside the housing 101. The display screen 103 is located on one side of the built-in battery 102. The control button 104 is detachably connected to the housing 101 and is located on the side of the housing 101 near the display screen 103. The control button 104 is also located below the display screen 103.
[0023] Secondly, the indicator light 105 is detachably connected to the housing 101 and is located on the side of the housing 101 close to the display screen 103. The indicator light 105 is located on one side of the display screen 103. The switch 106 is detachably connected to the housing 101 and is located on the side of the housing 101 close to the display screen 103. The switch 106 is located on the side of the indicator light 105 away from the display screen 103. The indicator light 105 is located on the front of the housing 101 and displays the power status.
[0024] Meanwhile, the fan 107 is detachably connected to the housing 101 and is located on the side of the housing 101 away from the display screen 103. The fan 107 is located on the side of the built-in battery 102. The heat dissipation vent 108 is fixedly connected to the housing 101 and is located on the inside side of the housing 101. The heat dissipation vent 108 is located on the side of the built-in battery 102. The heat dissipation vent 108 is also perpendicular to the display screen 103. The heat dissipation vent 108 is located at the bottom of the housing 101 and works in conjunction with the fan 107 to enhance the heat dissipation effect.
[0025] Additionally, one end of the charging port 109 passes through the housing 101 and is detachably connected to the built-in battery 102, and is located on one side of the built-in battery 102. The other end of the charging port 109 is located on the side of the housing 101 away from the heat dissipation vent 108, and the charging port 109 is perpendicular to the display screen 103. The charging port 109 is also perpendicular to the fan 107. The anti-slip pad 110 is detachably connected to the housing 101 and is located below the housing 101. The charging port 109 is located on one side of the housing 101 and is used to connect the charging cable.
[0026] When using this invention for refrigeration, the cooling element 113 is in direct contact with the heat dissipation layer 111, achieving refrigeration through the thermoelectric effect and transferring heat to the heat dissipation layer 111. The heat dissipation layer 111 is connected to the fan 107, which pushes air through the heat dissipation layer 111 to expel heat from the inside of the outer casing 101. The fan 107 is also connected to the heat dissipation vent 108 to expel heat from the inside of the outer casing 101 to the external environment. The built-in battery 102 is located at the bottom of the outer casing 101 and is connected to the cooling element 113 via a wire to supply power. The anti-slip pad 110 is located at the bottom of the outer casing 101 and is in contact with the heat dissipation layer 111. This design provides stability and prevents the outer casing 101 from sliding. The charging port 109 is located on the side of the outer casing 101 and is connected to an external power source via a charging cable to charge the built-in battery 102. The display screen 103 and the indicator light 105 are located on the front of the outer casing 101 and are connected to the built-in battery 102 and the cooling chip 113 via an internal circuit to display relevant information. The switch 106 is located on the front of the outer casing 101 and controls the overall start-up and shutdown via an internal circuit. This effectively solves the problem that the cooling mechanism of traditional ice boxes is mostly based on simple cold storage materials, which have low heat transfer efficiency and slow process of cooling from room temperature to the target low temperature (such as -20°C or lower).
[0027] The above-disclosed embodiments are merely preferred embodiments of the present utility model and should not be construed as limiting the scope of the present utility model. Those skilled in the art can understand that implementing all or part of the above-described embodiments and making equivalent changes in accordance with the claims of the present utility model are still within the scope of the utility model.
Claims
1. A 96-hole fast-cooling and long-lasting electronic ice box, including a shell, characterized in that, It also includes a rapid and long-lasting cooling component, which includes a built-in battery, a heat dissipation layer, a heat insulation layer, a cooling element, a layout plate, and a protective edge. The built-in battery is located inside the lower part of the outer casing. The heat dissipation layer is located above the built-in battery and is also located inside the outer casing. The heat insulation layer is detachably connected to the heat dissipation layer and is located above the heat dissipation layer and is also located inside the outer casing. The cooling element passes through the heat insulation layer and is detachably connected to the heat dissipation layer, and the entire cooling element is located above the heat dissipation layer. One end of the cooling element away from the heat dissipation layer is located above the heat insulation layer. The layout plate is fixedly connected to the outer casing and is located inside the upper part of the outer casing, and is also located above the cooling element. The protective edge is fixedly connected to the outer casing and is located above the outer casing, and is located around the periphery of the layout plate.
2. The 96-hole fast-cooling and long-lasting electronic ice box as described in claim 1, characterized in that, The rapid and long-lasting cooling component also includes a display screen and control buttons. The display screen is fixedly connected to the housing and located inside the housing on one side. The display screen is also located on the side of the built-in battery. The control buttons are detachably connected to the housing and located on the side of the housing near the display screen. The control buttons are also located below the display screen.
3. The 96-hole fast-cooling and long-lasting electronic ice box as described in claim 2, characterized in that, The rapid and long-lasting cooling component also includes an indicator light and a switch. The indicator light is detachably connected to the housing and is located on the side of the housing where the display screen is located. The switch is detachably connected to the housing and is located on the side of the housing where the display screen is located. The switch is located on the side of the indicator light away from the display screen.
4. The 96-hole fast-cooling and long-lasting electronic ice box as described in claim 3, characterized in that, The rapid and long-lasting cooling component also includes a fan and a heat dissipation vent. The fan is detachably connected to the housing and is located on the side of the housing away from the display screen. The fan is also located on the side of the built-in battery. The heat dissipation vent is fixedly connected to the housing and is located on the inside side of the housing. The heat dissipation vent is also located on the side of the built-in battery and is perpendicular to the display screen.
5. The 96-hole fast-cooling and long-lasting electronic ice box as described in claim 4, characterized in that, The rapid and long-lasting cooling component also includes a charging port and an anti-slip pad. One end of the charging port passes through the housing and is detachably connected to the built-in battery, and is located on one side of the built-in battery. The other end of the charging port is located on the side of the housing away from the heat dissipation vent. The charging port is perpendicular to the display screen and also perpendicular to the fan. The anti-slip pad is detachably connected to the housing and is located below the housing.