The present application claims priority under 35 U.S.C. § 119 to Japanese Patent Application No. 2022-063935, filed on Apr. 7, 2022, the entire contents of which are hereby incorporated herein by reference.
The present disclosure relates to a cooling device.
Conventionally, a cooling device is used for cooling a heating element. A cooling device includes a heat dissipator and a liquid cooling jacket. The heat dissipator includes a base portion and a plurality of fins. The plurality of fins protrude from the base portion. A flow path is formed by the heat dissipator and the liquid cooling jacket. When a refrigerant flows through the flow path, the heat of the heating element moves to the refrigerant.
As described above, when the flow path is formed by the liquid cooling jacket and the heat dissipator, it is necessary to provide a certain gap (clearance) between the fin and the liquid cooling jacket. If there is no gap, the fin may be deformed when the base portion is attached to the liquid cooling jacket, and desired cooling performance may not be secured. In addition, there is a possibility that the fin cannot be accommodated in the liquid cooling jacket due to positional variation when the fin is fixed to the base portion or assembly tolerance of the fin.
For this reason, a certain gap is provided in advance between the fin and the liquid cooling jacket. However, when a large amount of the refrigerant flows in this gap, an inflow amount of the refrigerant between the fins decreases, and there arises a problem that the ability to cool the fins by the liquid decreases.
An example embodiment of a cooling device of the present disclosure is a cooling device that includes a heat dissipator and a liquid cooling jacket. The heat dissipator includes a plate-shaped base portion that extends in a first direction along a direction where a refrigerant flows and in a second direction orthogonal to the first direction and has a thickness in a third direction orthogonal to the first direction and the second direction, a fin that protrudes from the base portion to one side in the third direction, and a top plate portion provided to an end on one side in the third direction of the fin. The liquid cooling jacket includes a top surface located on one side in the third direction of the top plate portion with a gap in the third direction between the top surface and the top plate portion, and top surface recesses recessed from the top surface toward one side in the third direction and located side by side in the first direction.
The above and other elements, features, steps, characteristics and advantages of the present disclosure will become more apparent from the following detailed description of the example embodiments with reference to the attached drawings.
Hereinafter, example embodiments of the present disclosure will be described with reference to the drawings.
In the drawings, with the first direction as an X direction, X1 indicates one side in the first direction, and X2 indicates the other side in the first direction. The first direction is along a direction F in which a refrigerant W flows, and the downstream side is indicated by F1 and the upstream side is indicated by F2. With the second direction orthogonal to the first direction as a Y direction, Y1 indicates one side in the second direction, and Y2 indicates the other side in the second direction. With the third direction orthogonal to the first direction and the second direction as a Z direction, Z1 indicates one side in the third direction, and Z2 indicates the other side in the third direction. Note that the above-described “orthogonal” also includes intersection at an angle slightly shifted from 90 degrees. Each of the above-described directions does not limit a direction when a cooling device 1 is incorporated in various devices.
The cooling device 1 includes a heat dissipator 2 and a liquid cooling jacket 3. The heat dissipator 2 is provided to the liquid cooling jacket 3.
The liquid cooling jacket 3 is a die-cast product that spreads in the first direction and the second direction and has a thickness in the third direction. The liquid cooling jacket 3 is made of metal such as aluminum. The liquid cooling jacket 3 has a flow path therein for allowing the refrigerant W to flow.
More specifically, the liquid cooling jacket 3 includes a refrigerant flow path 30, an inlet flow path 304, and an outlet flow path 305. The inlet flow path 304 is located at the end on the other side in the first direction of the liquid cooling jacket 3 and is configured of columnar spaces, having different diameters extending in the first direction, arranged in the first direction.
The refrigerant flow path 30 includes a first flow path 301, a second flow path 302, and a third flow path 303. The first flow path 301 has a width in the second direction and is inclined to one side in the first direction and the other side in the third direction. The other end in the first direction of the first flow path 301 is connected to one end in the first direction of the inlet flow path 304. The second flow path 302 has a width in the second direction and extends in the first direction. The other end in the first direction of the second flow path 302 is connected to one end in the first direction of the first flow path 301. The third flow path 303 has a width in the second direction and is inclined to one side in the first direction and one side in the third direction. One end in the first direction of the second flow path 302 is connected to the other end in the first direction of the third flow path 303.
The outlet flow path 305 is located at one end in the first direction of the liquid cooling jacket 3, and is configured of columnar spaces, having different diameters extending in the first direction, arranged in the first direction. One end in the first direction of the third flow path 303 is connected to the other end in the first direction of the outlet flow path 305.
In this manner, the refrigerant W flowing into the inlet flow path 304 flows into the first flow path 301 and flows to one side in the first direction and the other side in the third direction in the first flow path 301, flows into the second flow path 302 and flows to one side in the first direction in the second flow path 302, flows into the third flow path 303 and flows to one side in the first direction and the one side in the third direction in the third flow path 303, and flows into the outlet flow path 305 and is discharged to the outside of the liquid cooling jacket 3.
The base portion 21 has a plate shape that extends in the first direction and the second direction and has a thickness in the third direction. The base portion 21 is made of a metal having high thermal conductivity, for example, a copper plate.
The fin group 20 is configured as so-called stacked fins by stacking a plurality of fins 22 in the second direction. The fin group 20 is fixed to a surface 21A on one side in the third direction of the base portion 21 by brazing or the like. That is, the heat dissipator 2 has the fin group 20 in which the fins 22 are arranged in the second direction.
The fin 22 is formed of one metal plate extending in the first direction. The fin 22 is made of, for example, a copper plate. The fin 22 includes a side plate portion 221, a top plate portion 222, and a bottom plate portion 223. The side plate portion 221 has a flat plate shape that extends in the first direction and the third direction and has a thickness in the second direction.
The top plate portion 222 is bent toward one side in the second direction (that is, second direction) at the one end in the third direction of the side plate portion 221. The bottom plate portion 223 is bent toward one side in the second direction at the other end in the third direction of the side plate portion 221. The top plate portion 222 and the bottom plate portion 223 are formed by press working. Thus, the top plate portion 222 can be easily formed.
The fins 22 having such a configuration are stacked in the second direction to form the fin group 20. The bottom plate portion 223 in the fin group 20 is fixed to the surface 21A on one side in the third direction of the base portion 21. As described above, the heat dissipator 2 includes the fins 22 protruding from the base portion 21 to one side in the third direction, and the top plate portion 222 provided at one end in the third direction of the fin 22.
In the liquid cooling jacket 3, a top surface 31 (see
In a state where the heat dissipator 2 is not attached to the liquid cooling jacket 3, the top surface 31 is exposed to the other side in the third direction. The heat dissipator 2 is attached to the liquid cooling jacket 3 by fixing a surface 21A on one side in the third direction of the base portion 21 in the heat dissipator 2 to a surface 3A on the other side in the third direction of the liquid cooling jacket 3. In a state where the heat dissipator 2 is attached, the other side in the third direction of the top surface 31 is covered with the base portion 21. As a result, the second flow path 302 is closed by the base portion 21. In a state where the heat dissipator 2 is attached to the liquid cooling jacket 3, the fin group 20 is accommodated in the second flow path 302.
The heating element 4A and the like are fixed to a surface 21B (see
The refrigerant W flowing from the first flow path 301 into the second flow path 302 flows to one side in the first direction through a flow path 20A (see
As illustrated in
The top surface recess 32 is formed to be recessed from the top surface 31 toward one side in the third direction. The top surface recess 32 is formed in a rectangular parallelepiped shape extending in the second direction, and a plurality of them are arranged side by side in the first direction. That is, the liquid cooling jacket 3 has the top surface recesses 32 that are recessed toward one side in the third direction from the top surface 31, and are arranged side by side in the first direction.
By providing the top surface recess 32 in the top surface 31 of the liquid cooling jacket 3, a turbulent flow is generated in the refrigerant W2 flowing through the gap S due to a corner portion C1 of the top surface recess 32. As a result, the flow path resistance of the gap S increases. Therefore, the flow rate of the refrigerant W1 flowing through the flow path 20A located on the other side in the third direction of the top plate portion 222 increases, and the cooling performance can be improved. The corner portion C1 may be a chamfered corner portion.
The top surface recess 32 is formed as a groove extending in the second direction. As a result, a turbulent flow is generated in a direction orthogonal to the flow of the refrigerant W2, and the turbulent flow can be expanded in the entire second direction to improve cooling performance.
The top surface recess 33 is a columnar space recessed from the top surface 31 toward one side in the third direction. Note that the top surface recess 33 may be a hemispherical or conical space.
That is, the top surface recess 33 is formed in a circular shape as viewed in the third direction. The effect of stirring the refrigerant W in the second direction is obtained by the top surface recess 33. As a result, the low-temperature refrigerant W2 flowing through the flow path not overlapping with the heating element 4A and the like as viewed in the third direction in the gap S and the high-temperature refrigerant W2 flowing through the flow path overlapping with the heating element 4A and the like as viewed in the third direction in the gap S are mixed, and the cooling performance can be further improved. In addition, by stirring the refrigerant W2 flowing through the gap S, the turbulence factor in the second direction can be increased, and the flow path resistance of the gap S can be increased.
In the liquid cooling jacket 3 illustrated in
The slit 224 has a top plate recess 224A and a top plate recess 224B. The top plate recess 224A is recessed from the surface on one side in the third direction of the top plate portion 222 to the other side in the third direction. The top plate recess 224B is recessed from the surface on the other side in the third direction of the top plate portion 222 to one side in the third direction. The top plate recess 224A and the top plate recess 224B are connected to each other in the third direction. The slit 224 is located at a position facing the turbulent flow region generated by the top surface recess 32 in the third direction.
That is, a plurality of top plate recesses 224A that are recessed from the surface on one side in the third direction of the top plate portion 222 to the other side in the third direction and are arranged side by side in the first direction, are provided. The top plate recess 224A is located at a position facing the turbulent flow region generated by the top surface recess 32 in the third direction. As a result, turbulent flow can be further generated in the gap S, and the flow path resistance of the gap S can be further increased.
As illustrated in
That is, the liquid cooling jacket 3 includes the side wall portion 35 facing, in the second direction, the side plate portions 221A and 221B arranged at both ends in the second direction of the fin group 20, and the side wall recesses 36 recessed in the second direction in the side wall portions 35 and arranged side by side in the first direction. As a result, a turbulent flow occurs in the gap between the side wall portion 35 and the side plate portions 221A and 221B due to the corners of the side wall recess 36, and the flow path resistance on both outer sides in the second direction of the fin group 20 increases. Therefore, the flow rate of the refrigerant W flowing into the fin group 20 increases, and the cooling performance can be improved.
As illustrated in
In the configuration illustrated in
The spoiler 5 includes an opposing surface 5S facing the direction in which the refrigerant W flows, that is, one side in the first direction. The spoiler 5 has a function of preventing the flow of the refrigerant W by the opposing surfaces 5S. The turbulent flow of the refrigerant W is easily generated in the vicinity of the opposing surface 5S, and the cooling performance by the fin 22 can be improved. The spoiler 5 is inclined to one side in the first direction and one side in the third direction. This makes it possible to guide the refrigerant W to the base portion 21 side by the spoiler 5, and the cooling performance can be improved.
Note that the single spoiler includes a configuration in which the spoiler 5 is provided on the side 50B side, in addition to the configuration illustrated in
As described above, the fin 22 has the spoiler 5 protruding in the second direction from the side plate portion 221. Since the turbulent flow is generated in the vicinity of the spoiler 5, the cooling performance can be further improved.
As illustrated in
That is, the number of spoilers 5 increases toward one side in the first direction. As a result, the temperature of the refrigerant W increases, and the cooling performance can be improved on the downstream side where the cooling performance is required.
The example embodiments of the present disclosure have been described above. Note that the scope of the present disclosure is not limited to the above example embodiments. The present disclosure can be implemented by making various changes to the above-described example embodiments without departing from the gist of the disclosure. The matters described in the above example embodiments can be optionally combined together, as appropriate, as long as there is no inconsistency.
For example, the fins are not limited to the stacked fins, and may be configured of pin fins protruding in a columnar shape from the base portion to one side in the third direction. In this case, the top plate portion may be fixed at one end in the third direction of the pin fin.
As described above, a cooling device according to one aspect of the present disclosure is a cooling device including a heat dissipator and a liquid cooling jacket.
The heat dissipator includes
The liquid cooling jacket includes:
Further, in the first configuration, the top surface recess may be configured as a groove extending in the second direction (second configuration).
Further, in the first configuration, the top surface recess may be configured in a circular shape as viewed in the third direction (third configuration).
Further, in any of the first to third configurations, the depth in the third direction of the top surface recess may be longer than the width in the first direction of the top surface recess (fourth configuration).
Further, in any of the first to fourth configurations, a top plate recess recessed from a surface on one side in the third direction of the top plate portion toward the other side in the third direction may be provided, and a plurality of the top plate recesses may be arranged side by side in the first direction, and
Further, in any of first to fifth configurations, the fin may include a plate-shaped side plate portion extending in the first direction and the third direction and having a thickness in the second direction, and
Further, in the sixth configuration, the heat dissipator may include a fin group in which the fins are arranged side by side in the second direction, and
Further, In the sixth or seventh configuration, the fin may include a spoiler protruding from the side plate portion in the second direction (eighth configuration).
The present disclosure can be used for cooling various heating elements.
Features of the above-described example embodiments and the modifications thereof may be combined appropriately as long as no conflict arises.
While example embodiments of the present disclosure have been described above, it is to be understood that variations and modifications will be apparent to those skilled in the art without departing from the scope and spirit of the present disclosure. The scope of the present disclosure, therefore, is to be determined solely by the following claims.
Number | Date | Country | Kind |
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2022-063935 | Apr 2022 | JP | national |