RADIATING FIN STRUCTURE AND HEAT SINK THEREOF
A radiating fin structure and a heat sink thereof. The radiating fin structure includes a main body. At least one input section and at least one output section extend from two ends of the main body respectively. The input section and the main body contain a first angle. The output section and the main body contain a second angle. The heat sink is composed of multiple radiating fins, at least one heat pipe and at least one chassis. The heat pipe penetrates through and strings the radiating fins to form one or more radiating fin assemblies. The input sections of the radiating fins of one radiating fin assembly are adjacent to the output sections of the radiating fins of another radiating fin assembly to together define a central heat dissipation section and multiple spiral heat dissipation flow ways as multiple flow guide structures to achieve better heat dissipation effect.
The present invention relates to a radiating fin structure and a heat sink thereof, and more particularly to a heat sink composed of multiple radiating fins with multiple flow guide structures for speeding convection of airflow so as to achieve better heat dissipation effect.
BACKGROUND OF THE INVENTIONFollowing the advance of semiconductor technology, the volumes of integrated circuits have become smaller and smaller. For processing more data, the number of components contained in a current integrated circuit is several times the number of components contained in a conventional integrated circuit with the same volume. The greater the number of the components contained in the integrated circuit is, the higher the heat generated by the integrated circuit in working is. As exemplified with a common central processor, under full-load condition, the heat generated by the central processor is high enough to burn out the entire central processor. Therefore, it has become a very important topic how to provide effective heat radiating measure for the integrated circuit.
In general, a heat sink is made of a metal material with high thermal conductivity. The heat sink has multiple plane radiating fins for increasing heat dissipation area. In order to promote heat dissipation effect, a fan is co-used with the heat sink to carry away the heat by way of forced convection. Moreover, heat pipes are added to the heat sink to speed heat dissipation and protect the integrated circuit from burning out.
1. The manufacturing cost is higher.
2. The fan can be hardly commonly applied to the heat sink.
3. The heat dissipation efficiency is low.
A primary object of the present invention is to provide a radiating fin structure with excellent flow guiding effect.
A further object of the present invention is to provide a heat sink with excellent flow guiding effect.
A still further object of the present invention is to provide the above heat sink, which is able to dissipate heat in multiple directions.
A still further object of the present invention is to provide the above heat sink, which is manufactured at lower cost.
To achieve the above and other objects, the radiating fin structure of the present invention includes a main body. At least one input section and at least one output section extend from two ends of the main body respectively. The input section and the main body contain a first angle. The output section and the main body contain a second angle. The heat sink is composed of multiple radiating fins, at least one heat pipe and at least one chassis. The heat pipe has at least one heat dissipation end and at least one heat absorption end. The chassis has at least one groove in which the heat absorption end of the heat pipe is received. The heat dissipation end of the heat pipe penetrates through and strings the radiating fins to form one or more radiating fin assemblies. The input sections of the radiating fins of one radiating fin assembly are adjacent to the output sections of the radiating fins of another radiating fin assembly to together define a central heat dissipation section and multiple spiral heat dissipation flow ways. The heat sink can dissipate heat by way of natural convection. Alternatively, the heat sink is housed in a jacket mated with a fan. The fan serves to vertically blow airflow to the heat sink to forcedly dissipate the heat from the heat sink or laterally blow the airflow to the heat sink to forcedly dissipate the heat from the heat sink. No matter whether the heat is dissipated from the heat sink by way of natural convection or forced convection, a very good heat dissipation effect is achieved. Moreover, the angles contained between the input section and the main body and the output section and the main body can be freely adjusted to enhance convection. Also, the heat sink is manufactured with less material at lower cost. Furthermore, the heat sink can be more easily manufactured and more quickly assembled. In addition, the fan is easily replaceable. According to the aforesaid, the heat sink of the present invention has the following advantages:
- 1. The heat sink is able to provide excellent heat dissipation effect.
- 2. The manufacturing labor is reduced and the manufacturing time is shortened.
- 3. The manufacturing cost is lower.
- 4. The fan is more easily replaceable.
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:
Please refer to
Please now refer to
Please now refer to
Please refer to
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. A radiating fin structure comprising a main body, at least one input section and at least one output section extending from two ends of the main body respectively, the input section and the main body containing a first angle, the output section and the main body containing a second angle.
2. The radiating fin structure as claimed in claim 1, wherein the radiating fin structure has at least one perforation, the perforation being selectively formed on the main body, the input section or the output section.
3. The radiating fin structure as claimed in claim 1, wherein the input section upward extends from the main body.
4. The radiating fin structure as claimed in claim 1, wherein the output section downward extends from the main body.
5. The radiating fin structure as claimed in claim 1, wherein the first angle is greater than 0 degree and less than 180 degrees.
6. The radiating fin structure as claimed in claim 1, wherein the second angle is greater than 0 degree and less than 180 degrees.
7. The radiating fin structure as claimed in claim 1, wherein the first angle and the second angle are positioned on opposite sides of the main body.
8. A heat sink comprising:
- at least one heat pipe having at least one heat dissipation end and at least one heat absorption end;
- one or more radiating fin assemblies each including multiple radiating fins, each of the radiating fins having a main body, at least one input section and at least one output section extending from two ends of the main body respectively, the input section and the main body containing a first angle, the output section and the main body containing a second angle, the heat dissipation end of the heat pipe penetrating through and stringing the radiating fins to form the radiating fin assembly, the input sections of the radiating fins of one radiating fin assembly being adjacent to the output sections of the radiating fins of another radiating fin assembly to together define a central heat dissipation section and multiple spiral heat dissipation flow ways; and
- a chassis having at least one groove in which the heat absorption end of the heat pipe is received.
9. The heat sink as claimed in claim 8, wherein the central heat dissipation section communicates with the spiral heat dissipation flow ways.
10. The heat sink as claimed in claim 8, wherein the central heat dissipation section communicates with the chassis.
11. The heat sink as claimed in claim 8, wherein the heat sink is housed in a jacket having a first open end and a second open end.
12. The heat sink as claimed in claim 11, wherein the jacket is assembled with at least one fan, the fan being selectively connected to any of the first and second open ends of the jacket.
13. The heat sink as claimed in claim 8, wherein the spiral heat dissipation flow ways are positioned around the heat sink.
14. The heat sink as claimed in claim 8, wherein a mount is horizontally connected to one side of the heat sink, one end of the mount being mated with at least one fan.
15. The heat sink as claimed in claim 8, wherein each of the radiating fins has at least one perforation, the perforation being selectively formed on the main body, the input section or the output section.
16. The heat sink as claimed in claim 8, wherein the input section upward extends from the main body.
17. The heat sink as claimed in claim 8, wherein the output section downward extends from the main body.
18. The heat sink as claimed in claim 8, wherein the first angle is greater than 0 degree and less than 180 degrees.
19. The heat sink as claimed in claim 8, wherein the second angle is greater than 0 degree and less than 180 degrees.
Type: Application
Filed: Jul 6, 2009
Publication Date: Jan 6, 2011
Inventors: Xiaozhen Zeng (Shenzhen city), Yawen Liu (Shenzhen city)
Application Number: 12/498,134
International Classification: F28F 9/00 (20060101); F28F 7/00 (20060101); F28D 15/02 (20060101);