Air-cooled cyclone radiator
Technical Field
The utility model relates to the technical field of air-cooled heat dissipation, in particular to an air-cooled cyclone heat radiator.
Background
The CPU electronic device is a very large scale integrated circuit, plays an indispensable role in a computer, and is an operation core and a control core of the computer. With the continuous development of computers, the number of transistors in the CPU electronic devices is continuously increased along with the continuous updating of the CPU electronic devices, and the heating value of the CPU electronic devices is also increased along with the continuous updating of the CPU electronic devices, so that in order to ensure the good running efficiency of the computers, the CPU electronic devices are required to be cooled by using a radiator, and are cooled by air cooling, but the traditional air cooling is carried out by using a natural wind source, but the problem that the heat dissipation is slower when the natural temperature is cooled is solved; heat sinks used in CPU electronics typically use heat sinks and it is desirable to increase the heat dissipation by increasing the external surface area of the heat sink. A radiator as disclosed in chinese patent CN105324008B, which is to increase the heat dissipation capacity by increasing the number of fins, but naturally transfers heat to the air in the wall panel through the base plate and the fins, the temperature of the air in the wall panel will rise after a certain period of operation, resulting in poor heat dissipation effect.
Such as Chinese patent publication No.: CN110968174B is an air-cooled cyclone radiator, includes radiator fan, holding frame and the base plate that from bottom to top connects gradually, equidistant interval is provided with a plurality of baffles of vertical arrangement in the holding frame, the baffle separates into a plurality of independent cavitys that are used for installing radiator unit with holding frame inner chamber, from the top down has arranged multiunit radiator unit in proper order in the cavity, radiator unit includes the fin that the level was arranged, the fin has arranged a plurality of heat dissipation grooves along length direction interval, the cross-section of heat dissipation groove is square and its one corner is provided with the deep bead, and the center pin that corresponds two heat dissipation grooves on the adjacent fin is on same axis, and the deep bead on it is equidirectional to deflect 90 with respect to the center pin of heat dissipation groove and is arranged. The utility model forms a longer spiral air duct through the communication of the heat dissipation grooves in the multi-layer heat dissipation assembly, thereby generating spiral air flow and improving the heat dissipation effect.
In order to solve the problem that natural cooling can be slower, the prior art adopts the mode that the wind source cooled down to handle, but can also appear the natural wind source can be slower the condition when cooling down, and then lead to the slower problem of natural wind source cooling down's efficiency.
Disclosure of Invention
The present utility model is directed to an air-cooled cyclone radiator, which solves the above-mentioned problems.
In order to solve the technical problems, the utility model adopts the following technical scheme:
the utility model provides an air-cooled cyclone radiator, includes the air-cooled radiator body, the air-cooled radiator body includes the heat preservation cover shell, detachably installs the wind regime blowing mechanism on the left side surface of heat preservation cover shell, detachably installs the heat source absorption mechanism on the right side surface of heat preservation cover shell.
The air source blowing mechanism comprises a high-pressure blowing unit, cooling units are fixedly arranged on the inner wall surfaces of the two sides of the heat preservation sleeve shell, and the heat source absorbing mechanism comprises a clamping fixing unit and an air source diversion unit.
The technical scheme of the utility model is further improved as follows: the heat preservation sleeve is characterized in that the inner surfaces of the two sides of the heat preservation sleeve are provided with inward-sinking clamping grooves, and the inner side surfaces of the inward-sinking clamping grooves are fixedly provided with low-temperature pipes.
The technical scheme of the utility model is further improved as follows: the outer surfaces of two sides of the heat preservation sleeve are fixedly provided with cooling coolers, and the output ends of the cooling coolers extend to the inner side surfaces of the inward-sinking clamping grooves and are connected with two ends of the low-temperature pipe.
The technical scheme of the utility model is further improved as follows: the high-pressure air blowing unit comprises a clamping plate fixedly connected to the outer surface of one side of the heat-insulating sleeve shell, and a clamping sleeve ring is fixedly connected to the outer surface of one side of the clamping plate and wrapped on the outer surface of one side of the heat-insulating sleeve shell.
The technical scheme of the utility model is further improved as follows: the outer side surface of the clamping ring is fixedly connected with a supporting clamping strip, a rotator is fixedly installed on the inner side surface of the supporting clamping strip, the outer surface of the rotator is arranged on the inner side surface of the clamping ring, and an arc-shaped guide fan blade is fixedly connected to the output end of the rotator.
The technical scheme of the utility model is further improved as follows: the clamping fixing unit comprises a sealing sleeve shell, wherein trapezoidal clamping plates are fixedly connected to the outer surfaces of the upper side and the lower side of the sealing sleeve shell, and threaded clamping columns are arranged on the outer surfaces of the trapezoidal clamping plates.
The technical scheme of the utility model is further improved as follows: the wind source diversion unit comprises absorption diversion telescopic hoses fixedly connected to the outer surfaces of the two sides of the sealing sleeve shell, and the absorption diversion telescopic hoses are uniformly distributed on the outer surface of the sealing sleeve shell.
By adopting the technical scheme, compared with the prior art, the utility model has the following technical progress:
1. the utility model provides an air-cooled cyclone radiator, which is characterized in that a sealing sleeve shell is fixedly arranged at a proper position by using a threaded clamping column on the surface of a trapezoid clamping plate, one end of an absorption and diversion telescopic hose is connected with an air port of equipment, and the cooling efficiency of air is improved by utilizing a plurality of absorption and diversion telescopic hoses.
2. The utility model provides an air-cooled cyclone radiator, which is characterized in that an arc-shaped flow guide fan blade is rotated by a rotator on the inner side surface of a supporting clamping strip, an external air source is guided into the heat insulation sleeve, a cooling cooler is matched to rapidly cool a low-temperature pipe on the inner side surface of an inward clamping groove along with the air source being infused into the heat insulation sleeve, meanwhile, the low-temperature pipe is utilized to radiate an internal cold source, the internal cold source is contacted and mixed with the external air source, the air source flows in the sealed sleeve along with the cold air, and meanwhile, the air source is infused into the equipment along with an absorption flow guide telescopic hose.
Drawings
FIG. 1 is a schematic diagram of the structure of the present utility model;
FIG. 2 is a schematic perspective view of a wind source blowing mechanism according to the present utility model;
FIG. 3 is a schematic perspective view of a heat preservation jacket according to the present utility model;
fig. 4 is a schematic perspective view of a heat source absorbing mechanism according to the present utility model.
In the figure: 1. an air-cooled radiator body; 11. a heat-insulating jacket; 12. an inward-sinking clamping groove; 13. a low temperature tube; 14. a cooling cooler;
2. a wind source blowing mechanism; 21. clamping a ferrule; 22. a clamping plate; 23. supporting the clamping strip; 24. a rotator; 25. arc-shaped flow guiding fan blades;
3. a heat source absorbing mechanism; 31. a sealing sleeve; 32. a trapezoid clamping plate; 33. a thread clamping column; 34. absorbing the flow guiding telescopic hose.
Detailed Description
The utility model is further illustrated by the following examples:
example 1
As shown in fig. 1-4, the utility model provides an air-cooled cyclone radiator, which comprises an air-cooled radiator body 1, wherein the air-cooled radiator body 1 comprises a heat insulation sleeve 11, an air source blowing mechanism 2 is detachably arranged on the left outer surface of the heat insulation sleeve 11, a heat source absorbing mechanism 3 is detachably arranged on the right outer surface of the heat insulation sleeve 11, the heat source absorbing mechanism 3 comprises a clamping fixing unit and an air source guiding unit, the clamping fixing unit comprises a sealing sleeve 31, trapezoid clamping plates 32 are fixedly connected on the upper outer surface and the lower outer surface of the sealing sleeve 31, screw clamping columns 33 are arranged on the outer surfaces of the trapezoid clamping plates 32, the air source guiding unit comprises absorbing guiding telescopic hoses 34 fixedly connected on the outer surfaces of the two sides of the sealing sleeve 31, the absorbing telescopic hoses 34 are uniformly distributed on the outer surface of the sealing sleeve 31, one end of each absorbing telescopic hose 34 is fixedly arranged at a proper position by using the screw clamping columns 33 on the surface of the trapezoid clamping plates 32, and then one end of each absorbing telescopic hose 34 is connected with an air inlet of the equipment, and the cooling efficiency of air is increased by using a plurality of absorbing telescopic hoses 34.
Example 2
As shown in fig. 1-4, on the basis of embodiment 1, the present utility model provides a technical solution: preferably, the wind source blowing mechanism 2 comprises a high-pressure blowing unit, wherein cooling units are fixedly arranged on the inner wall surfaces of two sides of the heat preservation sleeve 11, an inward clamping groove 12 is formed on the inner surface of two sides of the heat preservation sleeve 11, a low-temperature pipe 13 is fixedly arranged on the inner surface of the inward clamping groove 12, a cooling cooler 14 is fixedly arranged on the outer surface of two sides of the heat preservation sleeve 11, the output end of the cooling cooler 14 extends to the inner surface of the inward clamping groove 12 and is connected with two ends of the low-temperature pipe 13, the high-pressure blowing unit comprises a clamping plate 22 fixedly connected with the outer surface of one side of the heat preservation sleeve 11, a clamping ferrule 21 is fixedly connected with the outer surface of one side of the clamping plate 22 and is wrapped on the outer surface of one side of the heat preservation sleeve 11, a supporting clamping strip 23 is fixedly connected with the outer surface of the clamping ferrule 21, the inner side surface of the supporting clamping strip 23 is fixedly provided with a rotator 24, the outer surface of the rotator 24 is arranged on the inner side surface of the clamping ring 21, the output end of the rotator 24 is fixedly connected with arc-shaped flow guide fan blades 25, the arc-shaped flow guide fan blades 25 are rotated through the rotator 24 on the inner side surface of the supporting clamping strip 23, external wind sources are guided to the inside of the heat preservation sleeve 11, when the wind sources are infused into the inside of the heat preservation sleeve 11, the low-temperature tube 13 on the inner side surface of the invagination clamping groove 12 is rapidly cooled by the cooling cooler 14, and meanwhile, the cold sources in the inside are emitted by the low-temperature tube 13, are contacted and mixed with the wind sources entering from the outside, and flow along with the cold air in the inside of the sealing sleeve 31, and meanwhile, the cold air is infused into the inside of the equipment by the air guide telescopic hose 34 in a matched and absorbed mode.
The working principle of the air-cooled cyclone radiator is specifically described below.
As shown in fig. 1-4, the sealing sleeve 31 is fixedly installed at a proper position by using the threaded clamping columns 33 on the surface of the trapezoid clamping plate 32, one end of the absorbing and guiding telescopic hose 34 is connected with the air inlet of the equipment, the cooling efficiency of air is increased by utilizing the absorbing and guiding telescopic hoses 34, the arc-shaped guiding fan blades 25 are rotated by the rotator 24 on the inner side surface of the supporting clamping strip 23, the external wind source is guided to the inside of the heat insulation sleeve 11, the low-temperature tube 13 on the inner side surface of the inward-sinking clamping groove 12 is rapidly cooled by the cooling cooler 14 along with the time of the wind source being infused into the inside of the heat insulation sleeve 11, the internal cold source is emitted by the low-temperature tube 13 to be contacted and mixed with the external wind source, and the air is infused into the inside of the equipment along with the running of the cold air in the inside of the sealing sleeve 31.
The foregoing utility model has been generally described in great detail, but it will be apparent to those skilled in the art that modifications and improvements can be made thereto. Accordingly, it is intended to cover modifications or improvements within the spirit of the inventive concepts.