This application is based upon and claims the benefit of priority of the prior Japanese Patent Application No. 2008-309925, filed on Dec. 4, 2008, the entire contents of which are incorporated herein by reference.
The embodiments discussed herein are related to a radiator and a cooling unit.
There are units configured to cool electronic components included within an electronic apparatus using a liquid coolant. Such units include those having a radiator for dissipating heat from the coolant. Such units are disclosed, for example, in Japanese Laid-Open Patent Publications No. 10-185466, No. 2007-170718, and No. 2007-192429.
Some of radiators include a tube which allows passage of a liquid coolant or a coolant in the interior thereof and a tank connected to both ends of the tube. However, when employing the unit having the radiator as described above in a compact electronic apparatus, the employment of the unit may be difficult depending on the size of the tank of the radiator.
According to an embodiment, a radiator for dissipating heat by the use of liquid coolant flowing therein includes a plate including at least two flat sections parallel to each other, a flection connecting the flat sections, a passage configured within the two flat sections and the flection to allow the liquid coolant to flow from a first opening to a second opening provided at each end of the two flat sections, the two flat sections opposed to each other, the plate including a plurality of fins outside thereof, an inlet tube having an opening formed along a longitudinal direction thereof so as to fit the first opening and an end opening for allowing the liquid coolant to flow in the passage, and an outlet tube having an opening formed along a longitudinal direction thereof so as to fit of the second opening and an end opening for allowing the liquid coolant to flow out the passage, the outlet tube disposed in parallel with the inlet tube, wherein each longitudinal direction of the inlet tube and the outlet tube are in parallel with at least one of each surface of the two flat sections.
The object and advantages of the invention will be realized and attained by means of the elements and combinations particularly pointed out in the claims.
It is to be understood that both the foregoing general description and the following detailed description are exemplary and explanatory and are not restrictive of the invention, as claimed.
Referring now to the drawings, an embodiment will be described.
A laptop personal computer will be described as an example of an electronic apparatus.
The cooling jacket (hereinafter, referred to as “jacket”) 10 allows a liquid coolant to flow through the interior thereof. The jacket 10 includes a case 11a and a lid 11b. The case 11a and the lid 11b correspond to a casing. The case 11a and the lid 11b are formed of metal having a high thermal conductivity such as copper or aluminum, for example. The jacket 10 has a flat shape. The jacket 10 comes into abutment with electronic components such as a central processing unit (CPU) 70b, illustrated with dotted lines, which mounted on a printed circuit board 50. Accordingly, the heat of the electronic components is transferred to the liquid coolant flowing in the jacket 10.
The pump 20 allows circulation of the liquid coolant between the jacket 10 and the radiator 30. The pump 20 is a motor-driven pump. The pump 20 and the jacket 10 are in communication with each other via rubber tubes 60. The rubber tubes 60 are configured to prevent a leakage of the liquid coolant. The rubber tubes 60 are fastened by metallic belts. The pump 20 has a flat shape.
The radiator 30 dissipates heat from the liquid coolant which is heated by the jacket 10. The radiator 30 is formed of metal such as aluminum or the like, for example. The radiator 30 includes a single tube 34, which is a plate with a passage therein, a surrounding board 36, an exhaust tube or an outlet tube 32a, and an introduction tube or an inlet tube 32b. The tube 34 allows the liquid coolant to flow in the interior thereof and has a flat shape and assumes a substantially a U-shape. That is, the tube 34 includes two flat sections parallel to each other, a flection connecting the flat sections, a passage configured within the two flat sections and the flection to allow the liquid coolant to flow in the passage. The exhaust tube or outlet tube 32a is in communication with the other end of the tube 34, where an opening as an end of the passage is positioned, through a side surface thereof for discharging the liquid coolant from the tube 34 through the communicating portion. The introduction tube 32b is in communication with one end of the tube 34, where an opening as an end of the passage is positioned through a side surface thereof for introducing the liquid coolant to the tube 34 through the communicating portion. The surrounding board 36 surrounds the tube 34. The exhaust tube 32a and the introduction tube 32b are respectively in communication with the jacket 10. The exhaust tube 32a, the introduction tube 32b, and the jacket 10 are in communication with each other via the rubber tubes 60.
The cooling fan 40 includes an opening 41, and has a cooling fan 42 stored in the interior thereof. When the cooling fan 42 is rotated, air is taken into the cooling fan 40 via the opening 41, and is discharged from a vent port 46. The vent port 46 opposes the radiator 30. The air discharged from the vent port 46 is blown to the radiator 30. Accordingly, the heat dissipation of the liquid coolant in the radiator 30 is accelerated.
The printed circuit board 50 is a hard printed wiring board and has a predetermined patterning applied thereon. A plurality of electronic components are mounted on the printed circuit board 50. These electronic components generate heat when power is supplied thereto. The CPU 70b is one of the electronic components mounted on the printed circuit board 50. The CPU 70b is arranged so as to contact with the bottom of lid 11b. Accordingly, the liquid coolant flowing in the interior of the jacket 10 receives heat from the CPU 70b, so that the CPU 70b is cooled. The jacket 10, the radiator 30, and the cooling fan 40 are fixed onto the printed circuit board 50.
The liquid coolant is, for example, water or antifreeze solution. The antifreeze solution is water added with antifreeze liquid formulation (for example, propylene glycol) which prevents freezing of water.
Flow channels 12a, 12b are provided in the interior of the jacket 10. More specifically, the flow channels 12a, 12b are provided in the case 11a. The flow channels 12a, 12b are isolated from each other so that the flow channels 12a and 12b do not merge with each other. Projecting portions 15a and 16a are provided for trapping air bubbles in the flow channel 12a. A fin 15b is provided in the flow channel 12b for accelerating the dissipation of heat caused by the CPU 70b which is disposed so as to contact with the bottom of the case 11a.
The liquid coolant is discharged from the exhaust tube 32a and flows through the flow channel 12a. The liquid coolant flowing in the flow channel 12a is sucked by the pump 20, and is discharged into the flow channel 12b. The liquid coolant flowing in the flow channel 12b flows to the introduction tube 32b. The liquid coolant is sucked into the tube 34, and is discharged from the exhaust tube 32a to the flow channel 12a again.
Referring to
The surrounding board 36 has a U-shape in side view and surrounds the tube 34. As illustrated in
Since the cooling fan 40 in
Since there is only the single tube 34, the number of connecting portions of the tube 34 with respect to the exhaust tube 32a and the introduction tube 32b is small in comparison with the case of radiators having a plurality of tubes. Therefore, the reliability of the radiator 30 is improved by the reduction of the number of connecting points. The number of components is also reduced, so that the manufacturing cost is reduced.
As illustrated in
Here, oscillations of the cooling unit 8 will be described. The pump 20 sucks the liquid coolant from the suction tube 22a, and discharges the liquid coolant from the discharge tube 22b. In other words, a force is applied to the suction tube 22a from the jacket 10 side to the pump 20 side, and a force is applied to the discharge tube 22b from the pump 20 side to the jacket 10 side. Accordingly, the pump 20 oscillates due to the forces and the oscillations are transferred to the jacket 10. By the oscillations of the jacket 10, the entire cooling unit 8 oscillates. Also, the liquid coolant in the interior of the jacket 10 is introduced into the interior of the tube 34 via the introduction tube 32b, and the liquid coolant in the interior of the tube 34 is discharged from the exhaust tube 32a to the jacket 10. The jacket 10 oscillates also by the movement of the liquid coolant as described above as well. In this manner, the suction tube 22a, the discharge tube 22b, the exhaust tube 32a, and the introduction tube 32b are oscillation sources of the jacket 10.
However, as illustrated in
All examples and conditional language recited herein are intended for pedagogical purposes to aid the reader in understanding the invention and the concepts contributed by the inventor to furthering the art, and are to be construed as being without limitation to such specifically recited examples and conditions, nor does the organization of such examples in the specification relate to a showing of the superiority and inferiority of the invention. Although the embodiments of the present inventions have been described in detail, it should be understood that the various changes, substitutions, and alterations could be made hereto without departing from the spirit and scope of the invention.
Number | Date | Country | Kind |
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2008-309925 | Dec 2008 | JP | national |