Intelligent power-saving terminal heat dissipation device
By designing reasonable ventilation holes, heat dissipation devices and air duct systems in smart power-saving terminals, the problem of heat dissipation of power-saving equipment is solved, rapid heat dissipation is achieved, the service life of the equipment is extended and normal use is ensured.
Patent Information
- Application Number
- CN202421164938.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-05-27
- Publication Date
- 2025-06-13
- Estimated Expiration
- 2034-05-27
AI Technical Summary
The heat generated by power-saving equipment during use is difficult to effectively dissipate heat, resulting in excessive temperature of the equipment, affecting service life and normal use.
A heat dissipation device of an intelligent power-saving terminal was designed to ensure rapid air circulation by rationally designing ventilation holes, heat dissipation devices and air duct systems, thereby achieving rapid heat dissipation. The specific design includes setting up a blind-shaped air outlet on the top of the sheet metal main body, multiple hexagonal air outlets on the left and right sides, multiple air inlets on the front panel, multiple air ducts and radiators inside, and forming air low-pressure and high-pressure areas at the axial flow fan to promote air flow.
Through rapid air circulation, the temperature inside the equipment is effectively reduced, the service life of the equipment is extended, and the normal use of the equipment is ensured.
Smart Images

Figure CN222981851U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the field of intelligent power saving, and more specifically, to a heat dissipation device for an intelligent power saving terminal. Background Art
[0002] When power saving devices are in use, they generate a large amount of heat. If this heat cannot be dissipated in time, it will cause the device temperature to be too high, thus affecting the service life of each component in the device, and in severe cases, it will affect the normal use of the device. Currently, fans are commonly used for cooling in power saving devices, but the design of ventilation holes, the heat dissipation device, and the layout of the air duct system are crucial for the quality of the heat dissipation effect. Summary of the Invention
[0003] The heat dissipation device for the intelligent power saving terminal of the utility model enables air to circulate quickly through reasonable design of ventilation holes, the heat dissipation device, and the air duct system, achieving the purpose of rapid heat dissipation.
[0004] To achieve the above object, the technical solution of the utility model is described as follows:
[0005] The heat dissipation device for the intelligent power saving terminal includes a radiator, an axial flow fan, a first reactor, a first capacitor, a second reactor, a transformer, a controller circuit board, a front panel, a rear panel, a second capacitor, an upper panel, and a sheet metal main body. Its characteristics are:
[0006] A louvered air outlet is provided at the top of the sheet metal main body;
[0007] A plurality of hexagonal air outlets are provided on the upper parts of the left and right sides of the sheet metal main body;
[0008] The front panel is provided with a plurality of air inlets, and cold air enters the interior of the intelligent power saving terminal through these air inlets;
[0009] A first capacitor is provided between the first reactor and the second reactor, and a transformer is provided on one side of the second reactor. The number of the first reactor, the second reactor, and the transformer is 3 each;
[0010] A plurality of air ducts are formed between the first reactor, the second reactor, the transformer and the sheet metal main body;
[0011] The axial flow fan is arranged between the first reactor and the radiator, and the number of the axial flow fans is 3;
[0012] Three radiators are sequentially arranged in the interior of the intelligent power saving terminal according to the space;
[0013] Gaps are provided between the above-mentioned components and the upper panel, and between the circuit board and the sheet metal main body to facilitate air flow.
[0014] Advantages of the Utility Model
[0015] (1) The heat dissipation device of the intelligent power-saving terminal of the present utility model enables air to circulate rapidly through reasonable designs of ventilation holes, heat dissipation devices, and air duct systems, achieving the purpose of rapid heat dissipation.
[0016] (2) When installed, the heat dissipation device of the intelligent power-saving terminal of the present utility model is installed vertically, with air entering the power-saving terminal from bottom to top, conforming to the law of air flow. Moreover, the air duct is designed with a wider front and a narrower rear, enabling the heat generated by the device to be rapidly circulated out through the air outlet. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Attached Figure 1 is a schematic structural view of the heat dissipation device of the intelligent power-saving terminal of the present utility model Figure 1 .
[0018] Attached Figure 2 is a schematic structural view of the heat dissipation device of the intelligent power-saving terminal of the present utility model Figure 2 . DETAILED DESCRIPTION OF THE EMBODIMENTS
[0019] The technical solutions of the present utility model will be further described in detail below in conjunction with the specific embodiments.
[0020] As shown in the attached Figure 1 and in conjunction with the attached Figure 2 : The heat dissipation device of the intelligent power-saving terminal includes a radiator (3), an axial flow fan (4), a first reactor (5), a first capacitor (6), a second reactor (8), a current transformer (7), a controller circuit board (11), a front panel (9), a rear panel, a second capacitor (10), an upper panel (13), and a sheet metal main body (14).
[0021] The front panel is provided with a plurality of air inlets, and cold air enters the interior of the intelligent power-saving terminal through these air inlets. The arrow direction in the figure indicates the air flow direction.
[0022] The top of the sheet metal main body is provided with a louver-type air outlet (2), and a plurality of hexagonal air outlets (1) are provided on the upper parts of the left and right sides of the sheet metal main body. The hot air is discharged from the device through the air outlets.
[0023] A first capacitor is provided between the first reactor and the second reactor, and a current transformer is provided on one side of the second reactor. The number of the first reactor, the second reactor, and the current transformer is 3 each; a plurality of air ducts are formed between the first reactor, the second reactor, the current transformer, and the sheet metal main body.
[0024] The axial flow fan is arranged between the first reactor and the radiator, and the number of the axial flow fans is 3 each. The axial flow fans drive the heat generated by the device to move forward.
[0025] Inside the intelligent power-saving terminal, there are three radiators arranged in sequence according to space. The radiators are located near the air outlet. The radiators drive the heat generated by the device to move towards the air outlet, achieving the purpose of heat dissipation.
[0026] There are gaps between the above-mentioned components and the upper panel (16) and between the circuit board (15) and the sheet metal body (12) to facilitate air flow.
[0027] The air flow in the intelligent power-saving terminal is as described below:
[0028] Cold air enters the intelligent power-saving terminal from multiple air inlets provided on the front panel, and successively passes through multiple air ducts formed between the first reactor, the second reactor, the current transformer and the sheet metal body, as shown by the attached Figure 1 arrow. An air low-pressure area and an air high-pressure area are formed at the axial flow fan. The axial flow fan drives the heat generated by the device to move towards the air high-pressure area, forming an air flow field; the radiator drives the heat generated by the device to move towards the air outlet, achieving the purpose of heat dissipation. In addition, there are gaps between the above-mentioned components and the upper panel and between the circuit board and the sheet metal body to facilitate air flow. When installing this device, it is installed vertically, and air enters the power-saving terminal from bottom to top, which conforms to the air flow law. Moreover, the air ducts are wider at the front and narrower at the back, and can quickly circulate the heat generated by the device through the air outlet.
Claims
1. An intelligent power-saving terminal heat dissipation device, comprising a radiator, an axial flow fan, a first reactor, a first capacitor, a second reactor, a mutual inductor, a controller circuit board, a front panel, a rear panel, a second capacitor, an upper panel, and a sheet metal body, wherein: The top of the sheet metal body is provided with a shutter-type air outlet; The sheet metal body is provided with a plurality of hexagonal air outlets on the upper left and right sides; The front panel is provided with a plurality of air inlets, through which cold air enters the interior of the intelligent power-saving terminal; A first capacitor is provided between the first reactor and the second reactor, the mutual inductor is provided on one side of the second reactor, and the number of the first reactor, the second reactor and the mutual inductor are all 3; A plurality of air ducts are formed between the first reactor, the second reactor, the mutual inductor and the sheet metal body; The axial flow fans are arranged between the first reactor and the radiator, and the number of the axial flow fans is 3; The intelligent power-saving terminal is provided with three heat sinks in order of space; Gaps are provided between the above-mentioned components and the upper panel, and between the circuit board and the sheet metal body to facilitate air flow.