AIR FLOW GUIDING STRUCTURE
An air flow guiding structure includes a plurality of straight radiating fins being parallelly spaced to define an air flow passage between any two adjacent ones of the straight radiating fins; a plurality of first oblique sections extended from first ends of at least some of the straight radiating fins, such that a first air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the first oblique sections; and a plurality of second oblique sections extended from opposite second ends of at least some of the straight radiating fins, such that a second air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the second oblique sections. With these arrangements, air flows can be quickly guided into and out of the air flow passages to improve flow field and achieve best heat dissipation effect.
The present invention relates to an air flow guiding structure, and more particularly to an air flow guiding structure that enables upgraded heat dissipation efficiency.
BACKGROUND OF THE INVENTIONFollowing the progress in various technological fields, people demand for efficient and real-time processing of a large quantity of data. To satisfy this demand, high-frequency and high-speed processors have been constantly developed and introduced into the market. However, these high-frequency and high-speed processors also generate more heat during the operation thereof. The large amount of heat generated by the processor in a system must be timely removed to avoid overheat of the processor, so that the whole system is protected against damage and can be maintained in good performance. Therefore, there must be an improved heat dissipating device to achieve the purpose of timely removing a large amount of heat from a heat-generating electronic element, such as a processor.
That is, the conventional heat sink has the following disadvantages: (1) failing to effectively dissipate heat therefrom; and (2) tending to produce reverse flow of heat.
It is therefore tried by the inventor to overcome the above problems by developing an improved air flow guiding structure.
SUMMARY OF THE INVENTIONA primary object of the present invention is to provide an air flow guiding structure that enables upgraded heat dissipation efficiency.
To achieve the above and other objects, the air flow guiding structure according to an embodiment of the present invention includes a plurality of straight radiating fins respectively having a first end and an opposite second end and being parallelly spaced to define an air flow passage between any two adjacent ones of the straight radiating fins; a plurality of first oblique sections extended from the first ends of at least some of the straight radiating fins, such that a first air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the first oblique sections and a first angle larger than 90° and smaller than 180° is contained between the straight radiating fin and the first oblique section extended therefrom; and a plurality of second oblique sections extended from the second ends of at least some of the straight radiating fins, such that a second air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the second oblique sections and a second angle larger than 90° and smaller than 180° is contained between the straight radiating fin and the second oblique section extended therefrom.
The first and the second angles can be changed according to a user's actual need to provide most suitable air flow guiding passages. A fan can be arranged adjacent to the second ends of the straight radiating fins. When the fan operates, the second oblique sections can guide air flows produced by the fan into the second air flow guiding passages to smoothly flow through the air flow passages and out of the first air flow guiding passages, so as to change the air flow field and avoid reverse flow of heat, and reduce the temperature of air flowing into a system or a heat sink to obtain upgraded heat dissipation efficiency.
With the air flow guiding structure of the present invention, air flows can be quickly guided in between a plurality of radiating fins to improve the air flow field and achieve best heat dissipation effect. Further, the air flow guiding structure of the present invention can also be used in a narrow space to effectively improve system heat dissipation, and can be assembled at reduced cost.
The structure and the technical means adopted by the present invention to achieve the above and other objects can be best understood by referring to the following detailed description of the preferred embodiments and the accompanying drawings, wherein
The present invention will now be described with some preferred embodiments thereof and with reference to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
Please refer to
As shown, the air flow guiding structure 2 in the first embodiment includes a plurality of straight radiating fins 20, which respectively have a first end 201 and an opposite second end 202, and are parallelly spaced to define an air flow passage 3 between any two adjacent ones of the straight radiating fins 20; and a plurality of first oblique sections 2011 extended from the first ends 201 of at least some of the straight radiating fins 20, such that a first air flow guiding passage 31 communicating with the air flow passage 3 is defined between any two adjacent ones of the first oblique sections 2011 and a first angle 203 is contained between the straight radiating fin 20 and the first oblique section 2011 extended therefrom. In the illustrated embodiment, the first angle 203 is larger than 90° and smaller than 180°.
Please refer to
The air flow guiding structure 2 according to the present invention can be modified in design in response to different user requirements. For example, different combinations of the straight radiating fins 20, the first oblique sections 2011 and the second oblique sections 2021 can be arranged on the air flow guiding structure 2 to form the air flow passages 3, the first air flow guiding passages 31 and the second air flow guiding passages 32; meanwhile, the first and second angles 203, 204 contained between the straight radiating fins 20 and the first and second oblique sections 2011, 2021, respectively, can be changed according to user's actual need.
In the illustrated embodiment, the first angles 203 contained between the straight radiating fins 20 and the first oblique sections 2011 as well as the second angle 204 contained between the straight radiating fins 20 and the second oblique sections 2021 are most preferably ranged between 115° and 155°. With these arrangements, air flows can be guided by the second air flow guiding passages 32 between the second oblique sections 2021 to flow into the air flow passages 3 between the straight radiating fins 20 and then out of the first air flow guiding passages 31 between the first oblique sections 2011 to ensure minimum air stagnation and best air convection rate in the air flow guiding structure 2.
Unlike the conventional heat dissipating device that includes only straight radiating fins and fan, the air flow guiding structure 2 according to the second embodiment of the present invention includes the first oblique sections 2011 and the second oblique sections 2021 to enable change of air flow field. Further, by forming the first and the second angle 203, 204, air flowing out of the air flow passages 3 is stopped from flowing reversely. Therefore, air flows can smoothly flow through the air flow passages 3 at increased speed without stagnating between the radiating fins 20. That is, an increased convection rate of air flowing through the radiating fins 20 can be obtained to achieve fast and efficient heat dissipation.
In the air flow guiding structure 2 according to the third embodiment of the present invention, different combinations of the straight radiating fins 20, the first oblique sections 2011, the second oblique sections 2021 and the third oblique sections 2012 can be arranged on the air flow guiding structure 2; meanwhile, the first, the second and the third angles 203, 204, 205 contained between the straight radiating fins 20 and the first, the second and the third oblique sections 2011, 2021, 2012, respectively, can be changed according to user's actual need.
In the air flow guiding structure 2 according to the fourth embodiment of the present invention, different combinations of the straight radiating fins 20, the first oblique sections 2011, the second oblique sections 2021, the third oblique sections 2012 and the fourth oblique sections 2022 can be arranged on the air flow guiding structure 2; meanwhile, the first, the second, the third and the fourth angles 203, 204, 205, 206 contained between the straight radiating fins 20 and the first, the second, the third and the fourth oblique sections 2011, 2021, 2012, 2022, respectively, can be changed according to user's actual need.
In brief, the air flow guiding structure according to the present invention has the following advantages: (1) enabling easy dissipation of heat energy; (2) suppressing reverse flow of heat; and (3) ensuring smooth air flow therethrough.
The present invention has been described with some preferred embodiments thereof and it is understood that many changes and modifications in the described embodiments can be carried out without departing from the scope and the spirit of the invention that is intended to be limited only by the appended claims.
Claims
1. An air flow guiding structure, comprising a plurality of straight radiating fins respectively having a first end and an opposite second end and being parallelly spaced to define an air flow passage between any two adjacent ones of the straight radiating fins; and a plurality of first oblique sections extended from the first ends of at least some of the straight radiating fins, such that a first air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the first oblique sections.
2. The air flow guiding structure as claimed in claim 1, further comprising a plurality of second oblique sections extended from the second ends of at least some of the straight radiating fins, such that a second air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the second oblique sections.
3. The air flow guiding structure as claimed in claim 1, further comprising a plurality of third oblique sections extended from the first ends of at least some of the straight radiating fins, such that a third air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the third oblique sections.
4. The air flow guiding structure as claimed in claim 3, wherein the third oblique sections are located to one lateral side of the first oblique sections.
5. The air flow guiding structure as claimed in claim 2, further comprising a plurality of fourth oblique sections extended from the second ends of at least some of the straight radiating fins, such that a fourth air flow guiding passage communicating with the air flow passage is defined between any two adjacent ones of the fourth oblique sections.
6. The air flow guiding structure as claimed in claim 5, wherein the fourth oblique sections are located to one lateral side of the second oblique sections.
7. The air flow guiding structure as claimed in claim 1, wherein a first angle is contained between the straight radiating fin and the first oblique section extended therefrom, and the first angle being larger than 90° and smaller than 180°.
8. The air flow guiding structure as claimed in claim 2, wherein a second angle is contained between the straight radiating fin and the second oblique section extended therefrom, and the second angle being larger than 90° and smaller than 180°.
9. The air flow guiding structure as claimed in claim 3, wherein a third angle is contained between the straight radiating fin and the third oblique section extended therefrom, and the third angle being larger than 90° and smaller than 180°.
10. The air flow guiding structure as claimed in claim 5, wherein a fourth angle is contained between the straight radiating fin and the fourth oblique section extended therefrom, and the fourth angle being larger than 90° and smaller than 180°.
11. The air flow guiding structure as claimed in claim 1, wherein the air flow guiding structure is located adjacent to a fan with the second ends of the straight radiating fins facing toward the fan; whereby when the fan operates, air flows are forced through the air flow passages to flow out of the air flow guiding structure via the first air flow guiding passages.
12. The air flow guiding structure as claimed in claim 2, wherein the air flow guiding structure is located adjacent to a fan with the second oblique sections facing toward the fan; whereby when the fan operates, air flows are guided by the second air flow guiding passages to flow into the air flow passages and then out of the first air flow guiding passages.
13. The air flow guiding structure as claimed in claim 1, wherein the air flow guiding structure is mounted in a chassis; the chassis being provided with a plurality of air outlets, and the air flow guiding structure being mounted in the chassis with the first air flow guiding passages facing toward and located adjacent to the air outlets of the chassis.
Type: Application
Filed: Jul 14, 2011
Publication Date: Jan 17, 2013
Inventors: Chih-Peng Chen (New Taipei City), Jhao-Ying Huang (New Taipei City)
Application Number: 13/182,715
International Classification: F28F 7/00 (20060101); F28F 13/12 (20060101);