Water-cooled heat sink and water-cooled system
There is provided a water-cooled heat sink including first and second heat transfer channel plates that are stacked and coupled together. The first heat transfer channel plate is provided with a continuous recess that is located in a facing surface thereof that faces the second heat transfer channel plate, corresponds to the coolant channel, and is open at the facing surface, the second heat transfer channel plate is provided with a continuous protrusion, which is fitted into the recess of the first heat transfer channel plate with a gap therebetween, in a facing surface thereof that faces the first heat transfer channel plate, and the first and second heat transfer channel plates are stacked and coupled together to define the coolant channel between the recess and the protrusion.
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This Application claims benefit of priority under 35 U.S.C. §119 to Japanese Patent Application No. 2006-210945 filed on Aug. 2, 2006, which is hereby incorporated by reference.
BACKGROUND1. Field of the Disclosure
The present disclosure relates to a water-cooled heat sink and a water-cooled system that radiate the heat of a heat generating source.
2. Description of the Related Art
Water-cooled heat sinks are used for radiating the heat of, for example, a CPU (heat source) that generates heat. These water-cooled heat sinks have a coolant channel within a heat transfer block that thermally contacts a heat generating source. Although studies have been made to the use of a spirally formed the coolant channel so as to increase the effective length thereof (see for example, JP-A-8-97337, JP-A-8-204079, and JP-A-2003-234589), the basic concept of using water (coolant) that flows to remove the heat of a heat source that touches a heat sink, performing cooling, is common.
In such a water-cooled heat sink, if the cross-sectional area (contact area with a coolant) of a channel is increased, a heat-radiating effect becomes high. However, if channel grooves are made minute (the number of walls are increased) in order to increase the cross-sectional area of the channel, machinability becomes more difficult, and channel resistance increases.
SUMMARY OF THE DISCLOSUREA water-cooled heat sink is disclosed in which a coolant channel for allowing a coolant to flow therethrough is formed in a heat transfer body that directly or indirectly contacts a heat generating source. The heat sink includes first and second heat transfer channel plates that are stacked and coupled together. In this water-cooled heat sink, the first heat transfer channel plate is provided a continuous recess that is located in a facing surface thereof that faces the second heat transfer channel plate, corresponds to the coolant channel, and is open at the facing surface. The second heat transfer channel plate is provided with a continuous protrusion, which is fitted into the recess of the first heat transfer channel plate with a gap therebetween, in a facing surface thereof that faces the first heat transfer channel plate. The first and second heat transfer channel plates are stacked and coupled together to define the coolant channel between the recess and the protrusion.
The water-cooled heat sink of the invention can be used for a water-cooled system including a liquid pump having a discharge port that communicates with an inlet hole of the coolant channel, and a suction port that communicates with an outlet hole of the coolant channel; and a heat-radiating unit formed in a channel that connects the outlet hole with the suction port.
In one embodiment, the heat generating source may thermally directly or indirectly contact the second heat transfer channel plate.
There are alternatives in the cross-sectional shape of the recess of the first heat transfer channel plate and the protrusion of the second heat transfer channel plate. For example, the protrusion and the recess may have a rectangular cross-section, a semicircular cross-section, or an oblong shape. Moreover, the protrusion and the recess may have a triangular cross-section.
The water-cooled heat sink 10, as shown in
As shown in
As such, the coolant channel 11 is composed of the continuous recess 11a including a simple rectangular groove, and the continuous protrusion 11b that is fitted into the continuous recess 11a with a gap therebetween, and is formed only by stacking the first heat transfer channel plate 101 and the second heat transfer channel plate 102 on each other. Accordingly, the machinability of the water-cooled heat sink is excellent. In addition, the first heat transfer channel plate 101 or the second heat transfer channel plate 102 are further split into two pieces, for example by separately forming continuous protrusions.
Further, when the coolant channel 11 is constituted by the continuous recess 11a and the continuous protrusion 11b, the heat radiation performance of the water-cooled heat sink is also excellent. Supposing the second heat transfer channel plate 102 is composed of a flat surface 11c (
Claims
1. A water-cooled heat sink in which a coolant channel for allowing a coolant to flow therethrough is formed in a heat transfer body that contacts a heat generating source, the water-cooled heat sink comprising:
- first and second heat transfer channel plates that are stacked and coupled together,
- wherein the first heat transfer channel plate has a continuous recess that is located in a facing surface thereof that faces the second heat transfer channel plate, corresponds to the coolant channel, and is open at the facing surface,
- wherein the second heat transfer channel plate has a continuous protrusion, which is fitted into the recess of the first heat transfer channel plate with a gap therebetween, in a facing surface thereof that faces the first heat transfer channel plate, and
- wherein the first and second heat transfer channel plates are stacked and coupled together to define the coolant channel between the recess and the protrusion.
2. The water-cooled heat sink according to claim 1,
- wherein the heat generating source thermally contacts the second heat transfer channel plate.
3. The water-cooled heat sink according to claim 2, wherein the heat generating source directly contacts the second heat transfer channel plate.
4. The water-cooled heat sink according to claim 2,
- wherein the heat generating source indirectly contacts the second heat transfer channel plate.
5. The water-cooled heat sink according to claim 1,
- wherein the cross-sectional shape of the recess and the cross-sectional shape of the protrusion are rectangular.
6. The water-cooled heat sink according to claim 1,
- wherein the cross-sectional shapes of the recess and the cross-sectional shapes of the protrusion are semicircular or oblong.
7. The water-cooled heat sink according to claim 1,
- wherein the cross-sectional shape of the recess and the cross-sectional shape of the protrusion are triangular.
8. A water-cooled system comprising:
- a water-cooled heat sink in which a coolant channel for allowing a coolant to flow therethrough is formed in a heat transfer body that contacts a heat generating source;
- a liquid pump having a discharge port that communicates with an inlet hole of the coolant channel of the water-cooled heat sink, and a suction port that communicates with an outlet hole of the coolant channel; and
- a heat-radiating unit formed in a channel that connects the outlet hole with the suction port, the water-cooled heat sink including first and second heat transfer channel plates that are stacked and coupled together,
- wherein the first heat transfer channel plate has a continuous recess that is located in a facing surface thereof that faces the second heat transfer channel plate, corresponds to the coolant channel, and is open at the facing surface,
- wherein the second heat transfer channel plate has a continuous protrusion, which is fitted into the recess of the first heat transfer channel plate with a gap therebetween, in a facing surface thereof that faces the first heat transfer channel plate, and
- wherein the first and second heat transfer channel plates are stacked and coupled together to define the coolant channel between the recess and the protrusion.
9. The water-cooled system according to claim 8 wherein the heat transfer body directly contacts a heat generating source.
10. The water-cooled system according to claim 8 wherein the heat transfer body indirectly contacts a heat generating source.
11. The water-cooled system according to claim 8,
- wherein the heat generating source thermally contacts the second heat transfer channel plate.
12. The water-cooled system according to claim 11 wherein the heat generating source thermally directly contacts the second heat transfer channel plate.
13. The water-cooled system according to claim 11 wherein the heat generating source thermally indirectly contacts the second heat transfer channel plate.
14. The water-cooled system according to claim 8,
- wherein the cross-sectional shape of the recess of the first heat transfer channel plate and the cross-sectional shape of the protrusion of the second heat transfer channel plate are rectangular.
15. The water-cooled system according to claim 8,
- wherein the cross-sectional shape of the recess of the first heat transfer channel plate and the cross-sectional shape of the protrusion of the second heat transfer channel plate are oblong.
16. The water-cooled system according to claim 8,
- wherein the cross-sectional shape of the recess of the first heat transfer channel plate and the cross-sectional shape of the protrusion of the second heat transfer channel plate are triangular.
Type: Application
Filed: Aug 2, 2007
Publication Date: Feb 7, 2008
Applicant:
Inventors: Jiro Nakajima (Niigata-ken), Hitoshi Onishi (Niigata-ken)
Application Number: 11/888,741
International Classification: F28D 15/00 (20060101); F28F 3/08 (20060101);