A quick heat-dissipation refrigerator base
Patent Information
- Application Number
- CN202522404299.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-11-13
- Publication Date
- 2026-09-25
- Estimated Expiration
- 2035-11-13
AI Technical Summary
现有的底座还停留在常规的底座侧面开散热孔的方式,通过空气自然流通或加装内置风扇来进行散热,这种现有的散热方式在面对高发热底座时其散热效果远远达不到需求,而且底座侧面开散热孔在室外或者使用过程中也存在着进水的风险,存在安全隐患
本实用新型底座设置盖体对底壳进行封装,将电池及控制器设置于底壳内,通过控制器执行对冰箱的辅助控制,为确保底座的散热效果以及防水效果,将散热区设置于底壳底部,以防止侧面进水,并且设置出气壳体围合散热区构成出气通道,出气通道直接对接控制器的散热风扇,防止控制器热风扩散到底壳内部,直接散热出气,提高散热效果,进气通道则通过对散热区的空间进行缩小以增大气流,在进气同时直接对控制器侧壁进行散热。
Smart Images

Figure CN224801934U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of refrigerator base technology, and in particular to a refrigerator base with fast heat dissipation. Background Technology
[0002] Adding a stand with a power supply and controller to a refrigerator (often called a "smart stand" or "multi-functional stand") is gaining increasing acceptance among users. This is primarily because it integrates power management, intelligent control, and additional functions to address pain points in traditional refrigerator use, improving convenience, safety, and functionality. Refrigerators are high-power appliances (especially double-door and side-by-side refrigerators), and the stand itself, which controls the refrigerator, generates a significant amount of heat during operation, particularly noticeable in the controller area. Therefore, proper heat dissipation for the stand is crucial. Existing stands still rely on conventional side ventilation holes for cooling, using natural airflow or an internal fan. This current cooling method is far from sufficient for the high-heat-generating stand, and the side ventilation holes also pose a safety hazard due to the risk of water ingress outdoors or during use. Utility Model Content
[0003] The purpose of this invention is to address the shortcomings of existing technologies by proposing a fast-heat dissipation refrigerator base.
[0004] To achieve the above objectives, a fast-dissipation refrigerator base includes a bottom shell and a cover that encapsulates the bottom shell. A battery and a controller are disposed inside the bottom shell and are electrically connected. Heat dissipation areas are respectively disposed on both sides of the controller at the bottom of the bottom shell. Multiple heat dissipation holes are disposed in the heat dissipation areas. A cooling fan is disposed on one side of the controller. An air outlet shell is disposed in the heat dissipation area corresponding to the cooling fan, which forms an air outlet channel with the heat dissipation area. The air outlet channel faces the cooling fan.
[0005] The base is equipped with a cover to enclose the bottom shell, and the battery and controller are placed inside the bottom shell. The controller performs auxiliary control of the refrigerator. To ensure the heat dissipation and waterproofing of the base, the heat dissipation area is located at the bottom of the bottom shell to prevent water from entering from the side. An air vent shell is set up to enclose the heat dissipation area to form an air vent channel. The air vent channel is directly connected to the controller's cooling fan to prevent the controller's hot air from spreading into the bottom shell. Direct heat dissipation and air venting improve the heat dissipation effect.
[0006] Preferably, the heat dissipation area on the other side of the controller is provided with an air intake housing that forms an air intake channel with the heat dissipation area, and the air intake channel faces the side wall of the controller.
[0007] The intake casing is designed to enclose the heat dissipation area, forming an intake channel that can effectively accelerate the airflow entering the bottom casing. The intake channel faces the side wall of the controller, directly dissipating heat from the controller and improving its heat dissipation effect.
[0008] Preferably, the air intake channel and the air outlet channel are respectively separated from the controller by ventilation gaps.
[0009] The ventilation gaps allow the air intake and exhaust channels to connect to the internal space of the bottom shell, enabling heat dissipation for the entire space. The design of the air intake and exhaust channels can also be used to specifically heat the controller.
[0010] Preferably, the bottom of the bottom shell is provided with insertion slots that surround the heat dissipation area and open to the side of the bottom shell, and the area of the insertion slot corresponding to the heat dissipation area is provided with a hollow area.
[0011] Considering that the heat dissipation area is located at the bottom of the shell, there is a risk of dust and dirt from the ground entering. A plug-in slot is provided to allow for the insertion of baffles, reducing the risk of dust entering and preventing water from splashing in.
[0012] Preferably, the bottom shell is provided with multiple mounting areas, and each mounting area is provided with multiple mounting holes.
[0013] An installation area is set up for mounting the support legs, which lifts the heat dissipation area off the ground, resulting in low cost and easy processing.
[0014] Preferably, the cover is provided with a plurality of recessed drainage grooves, and the side of the cover is provided with drainage holes that are respectively connected to the drainage grooves.
[0015] A drain channel is installed to catch water that falls into the refrigerator for various reasons, and then drains it through the drain hole. This effectively drains external water while preventing water from directly entering the bottom shell.
[0016] Preferably, the drainage groove is located at the edge of the cover, and a support area for supporting the refrigerator is provided in the middle of the cover.
[0017] Preferably, the bottom shell is provided with a plurality of connection holes for installing connectors, and the connection holes are circular, elliptical, rectangular, trapezoidal, triangular or other irregular shapes.
[0018] Compared with the prior art, the beneficial effects of this utility model are: This utility model features a base with a cover that encapsulates the bottom shell, housing the battery and controller within the bottom shell. The controller provides auxiliary control of the refrigerator. To ensure effective heat dissipation and waterproofing, a heat dissipation area is located at the bottom of the bottom shell to prevent water ingress from the sides. An exhaust shell surrounds the heat dissipation area, forming an exhaust channel that directly connects to the controller's cooling fan. This prevents hot air from the controller from diffusing into the bottom shell, allowing for direct heat dissipation and improved cooling efficiency. The intake channel, by reducing the space of the heat dissipation area, increases airflow, directly cooling the controller's sidewalls while simultaneously drawing in air. Attached Figure Description
[0019] To more clearly illustrate the technical solutions in the embodiments of this utility model or the prior art, the accompanying drawings used in the embodiments will be briefly introduced below.
[0020] Figure 1 This is a schematic diagram of the structure of this utility model.
[0021] Figure 2 This is a partial structural schematic diagram of the present invention.
[0022] Figure 3 This is a partial structural schematic diagram of the present invention.
[0023] Figure 4 This is a partial structural schematic diagram of the present invention.
[0024] Figure 5 This is a partial structural schematic diagram of the present invention.
[0025] Figure 6 This is a schematic diagram of the controller structure of this utility model.
[0026] Figure 7 This is a schematic diagram of the bottom shell structure of this utility model. Detailed Implementation
[0027] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to specific embodiments and accompanying drawings. It should be understood that these descriptions are merely exemplary and not intended to limit the scope of this utility model. Furthermore, descriptions of well-known structures and technologies are omitted in the following description to avoid unnecessarily obscuring the concept of this utility model.
[0028] This utility model provides a refrigerator base for rapid heat dissipation, such as... Figures 1-7As shown, the device includes a bottom shell 1 and a cover 2 that encapsulates the bottom shell 1. A battery 3 and a controller 4 are housed inside the bottom shell 1, and the battery 3 and controller 4 are electrically connected. The refrigerator is electrically connected to the controller 4, which provides auxiliary control of the refrigerator. Heat dissipation areas 5 are located on both sides of the controller 4 at the bottom of the bottom shell 1. Multiple heat dissipation holes 51 are provided within each heat dissipation area 5. As the controller 4 generates significant heat, the heat dissipation areas 5 are designed to accelerate heat dissipation. The bottom location of the heat dissipation areas 5 is primarily for waterproofing, preventing water from entering and causing short circuits if placed on the side. A cooling fan 41 is located on one side of the controller 4, accelerating airflow within the controller 4 and thus accelerating heat dissipation. An air outlet shell 61, forming an air outlet channel 6 with the heat dissipation area 5, is provided corresponding to the cooling fan 41. The air outlet channel 6 faces the cooling fan 41, which blows airflow into the air outlet channel 6, preventing hot air from diffusing into the bottom shell 1 and quickly expelling hot air. On the other side of the controller 4, a heat dissipation area 5 is provided with an air intake housing 71 that forms an air intake channel 7 with the heat dissipation area 5. The air intake channel 7 faces the side wall of the controller 4. When the hot air is discharged from the exhaust channel 6, it will cause the room temperature air to enter the bottom shell 1 through the air intake channel 7. The air intake channel 7 can restrict the space of the heat dissipation area 5 and accelerate the airflow velocity of the air intake channel 7. Since the air intake channel 7 faces the side wall of the controller 4, it will first impact the controller 4, improving the heat dissipation effect on the side wall of the controller 4. Then the room temperature air will diffuse into the bottom shell 1 to dissipate heat to other parts. In order to improve the heat dissipation effect of the controller 4 and ensure that the airflow can freely enter and exit, there are ventilation gaps 8 between the air intake channel 7 and the exhaust channel 6 and the controller 4. By setting the ventilation gaps 8, the airflow in the air intake channel 7 and the exhaust channel 6 near the controller 4 is accelerated, further improving the heat dissipation effect on the controller 4.
[0029] Considering that the heat dissipation area 5 is located at the bottom of the bottom shell 1, and may attract dust from the ground in some working environments, the bottom of the bottom shell 1 is provided with insertion slots 9 that surround the heat dissipation area 5 and open to the side of the bottom shell 1. Any existing baffle can be inserted through the insertion slots 9 to provide a certain barrier between the heat dissipation area 5 and the ground, preventing dust from entering directly. Considering the ventilation effect of the heat dissipation area 5, the insertion slots 9 are provided with a hollow area corresponding to the area of the heat dissipation area 5. The baffle to be inserted can be a mesh plate or other material with small aperture to block dust.
[0030] Considering that the heat dissipation area 5 is located at the bottom of the bottom shell 1 and cannot be in contact with the ground, the bottom shell 1 is provided with multiple mounting areas 11, and multiple mounting holes 12 are provided in each mounting area 11. The mounting areas 11 of the bottom shell 1 are connected to any existing support foot through the mounting holes 12 to raise the position of the heat dissipation area 5.
[0031] The cover 2 is provided with multiple recessed drainage channels 21, and the side of the cover 2 is provided with drainage holes 22 that are connected to the drainage channels 21 respectively. The drainage channels 21 are located in the edge area of the cover 2, and the middle of the cover 2 is provided with a support area 23 for supporting the refrigerator. The cover 2 supports and positions the refrigerator through the support area 23 in the middle, and water flowing down the refrigerator due to various reasons can seep into the drainage channels 21 and then be discharged through the drainage holes 22, preventing water from entering the bottom shell 1.
[0032] The bottom shell 1 is provided with a plurality of connection holes 13 for installing connectors. The connection holes 13 are circular, elliptical, rectangular, trapezoidal, triangular or other irregular shapes.
[0033] It should be understood that the specific embodiments described above are merely illustrative or explanatory of the principles of this utility model and do not constitute a limitation thereof. Therefore, any modifications, equivalent substitutions, improvements, etc., made without departing from the spirit and scope of this utility model should be included within its protection scope. Furthermore, the appended claims are intended to cover all variations and modifications falling within the scope and boundaries of the appended claims, or equivalent forms of such scope and boundaries.
Claims
1. A refrigerator base for rapid heat dissipation, characterized in that, The device includes a bottom shell and a cover that encapsulates the bottom shell. A battery and a controller are disposed inside the bottom shell and are electrically connected. Heat dissipation areas are respectively disposed on both sides of the bottom shell of the controller. Multiple heat dissipation holes are disposed in the heat dissipation areas. A cooling fan is disposed on one side of the controller. A vent housing is disposed in the heat dissipation area corresponding to the cooling fan, which together with the heat dissipation area forms an air outlet channel facing the cooling fan.
2. The rapid heat dissipation refrigerator base according to claim 1, characterized in that, The controller has an air intake housing on the other side corresponding to the heat dissipation area, which together with the heat dissipation area forms an air intake channel, and the air intake channel faces the side wall of the controller.
3. A fast-heat dissipation refrigerator base according to claim 2, characterized in that, There are ventilation gaps between the air intake channel and the controller.
4. A rapid heat dissipation refrigerator base according to claim 1, characterized in that, The bottom of the bottom shell is provided with insertion slots that surround the heat dissipation area and open to the side of the bottom shell. The area of the insertion slot corresponding to the heat dissipation area is provided with a hollow area.
5. A fast-heat dissipation refrigerator base according to claim 1, characterized in that, The bottom shell is provided with multiple mounting areas, and each mounting area is provided with multiple mounting holes.
6. A rapid heat dissipation refrigerator base according to claim 1, characterized in that, The cover is provided with multiple recessed drainage grooves, and the side of the cover is provided with drainage holes that are connected to the drainage grooves respectively.
7. A fast-heat dissipation refrigerator base according to claim 6, characterized in that, The drainage channel is located at the edge of the cover, and a support area for supporting the refrigerator is located in the middle of the cover.
8. A fast-heat dissipation refrigerator base according to claim 1, characterized in that, The bottom shell is provided with multiple connection holes for installing connectors, and the connection holes are circular, elliptical, rectangular, trapezoidal, triangular or other irregular shapes.