The present invention is in related to a heat dissipation mechanism, more particularly to a heat dissipation mechanism for die-casting and over-molding.
Nowadays, the electronic products are full of our normal lives, but an important shortcoming of the electronic products is heat dissipation. We all know that a not proper temperature may decrease the efficiency of work. Regularly, to equip with heat dissipation devices or systems, as fans or cooling systems, generates a problem that is additional power cost. Hence, another direction of solving aforesaid shortcoming is the category of designing advanced mechanisms.
Compared with other solutions, die-casting aluminum alloy is cheaper relatively. The material of aluminum alloy such as ADC12 has a better fluidity, so as to make thin members easily, but with worse conductivity. In addition, the shortcomings of a die casting process itself and impurities may produce some obstructions to the conductivity of the aluminum alloy. Further, molding high thermal conductivity materials, as copper, extruded aluminum alloy, etc., increases cost and time. Therefore, adhering those high thermal conductivity materials on the locations where the aluminum alloy needs cooling will be an outstanding solution, and it is with the advantages of mass production, low cost, and high thermal conductivity.
Frankly speaking, the combination for connecting two metals with different properties is very difficult. Especially, an improper surface treatment process for two joint surfaces may cause a higher heat resistance than individual die-cast aluminum alloy parts'. That is, the efficiency of heat dissipation may be worse.
As it can be seen, how to solve aforesaid shortcomings becomes an important issue to persons who are skilled in the art.
The present invention is to provide a heat dissipation mechanism and a method thereof. Disposing metals with high conductivities into a die casting mold makes a combination of die-casting molten aluminum alloy and the metals with high conductivities in order to figure out the problem for difficult to joint dissimilar metals and approach a better efficiency of heat dissipation simultaneously.
A heat dissipation mechanism for connecting with at least one heat source comprises:
a main body, which is made by a material of alloy or metal through a die casting process, and has a first side and a second side that are corresponding to each other; and
at least one heat dissipation block, disposed on the first side of the main body, made by a first high thermal conductivity material, and having a connecting surface that protrudes outside the main body, wherein the connecting surface directly or indirectly connects with the heat source;
wherein the heat dissipation block connects with the main body by means of a first connecting structure, the first connecting structure having a first pair of interlock structures that are disposed in the main body and the heat dissipation block respectively.
Preferably, the heat dissipation mechanism further comprises a heat dissipation member that is disposed on the second side, and made by a second high thermal conductivity material, the heat dissipation member connecting with the main body through a second connecting structure that has a second pair of interlock structures, wherein the second pair of interlock structures are disposed in the main body and the heat dissipation member.
Preferably, the first pair of interlock structures are selected from the group consisting of: grooves, dovetail grooves, zippers, and fisheye holes, and the second pair of interlock structures are selected from the group consisting of: grooves, dovetail grooves, zippers, and fisheye holes.
Another heat dissipation mechanism for connecting with at least one heat source comprises:
a main body, which is made by a material of alloy or metal through a die casting process, and has a first side and a second side that are corresponding to each other; and
a heat dissipation member, disposed on the second side of the main body, made by a second high thermal conductivity material, and having at least one protruding block that penetrates through the main body, wherein the protruding block is configured to connect with the heat source.
Preferably, the heat dissipation mechanism further comprises at least one heat dissipation block disposed on the first side of the main body, made by a first high thermal conductivity material, and connecting with the protruding block by means of a first connecting structure, wherein the heat dissipation block is between the protruding block and the heat source, and the protruding block directly or indirectly connects with the heat source via the heat dissipation block.
Preferably, the first connecting structure is composed of a first pair of interlock structures that are disposed in the protruding block and the heat dissipation block respectively.
Preferably, the first pair of interlock structures are selected from the group consisting of: grooves, dovetail grooves, zippers, and fisheye holes.
Preferably, the first pair of interlock structures are selected from the group consisting of: grooves, dovetail grooves, zippers, and fisheye holes.
Preferably, the first high thermal conductivity material is copper.
Preferably, the second high thermal conductivity material is aluminum alloy, and the heat dissipation member is made by an extrusion process.
Preferably, the main body is made of aluminum alloy or magnesium alloy.
Preferably, the connecting surface of the heat dissipation block is through a surface treatment process in order to reduce a surface thermal resistance of the heat dissipation block.
A method for manufacturing a heat dissipation mechanism comprises steps of:
(a) providing at least one heat dissipation block that has a first pair of interlock structures;
(b) loading the heat dissipation block into a die casting mold and positioning therein;
(c) extruding a molten or semi-melted alloy or metal into the die casting mold;
(d) cooling down the die casting mold; and
(e) opening the die casting mold for taking out a formed heat dissipation mechanism;
wherein the heat dissipation block is made of a first high thermal conductivity material.
Preferably, the method for manufacturing the heat dissipation mechanism further comprises a step (a2), after step (a), of: providing at least one heat dissipation member that has a second pair of interlock structures, and is made of a second high thermal conductivity material, wherein step (b) further has one more step of loading the heat dissipation member into the die casting mold and positioning therein.
Another method for manufacturing a heat dissipation mechanism comprises steps of:
(a) providing at least one heat dissipation member that has a protruding block;
(b) loading the heat dissipation member into a die casting mold and positioning therein;
(c) extruding a molten or semi-melted alloy or metal into the die casting mold;
(d) cooling down the die casting mold; and
(e) opening the die casting mold for taking a formed heat dissipation mechanism;
wherein the heat dissipation member is made of a second high thermal conductivity material.
Preferably, the method for manufacturing the heat dissipation mechanism further comprises a step of: providing at least one heat dissipation block that is disposed on a surface of the protruding block, and is made of a first high thermal conductivity material, wherein step (b) further has one more step of loading the heat dissipation block into the die casting mold and positioning therein.
Preferably, the first high thermal conductivity material is copper.
Preferably, the second high thermal conductivity material is aluminum.
Preferably, step (c) is of: extruding a molten or semi-melted aluminum alloy or magnesium alloy into the die casting mold.
Other and further features, advantages, and benefits of the invention will become apparent in the following description taken in conjunction with the following drawings. It is to be understood that the foregoing general description and following detailed description are exemplary and explanatory but are not to be restrictive of the invention.
The accompanying drawings are incorporated in and constitute a part of this application and, together with the description, serve to explain the principles of the invention in general terms. Like numerals refer to like parts throughout the disclosure.
The objects, spirits, and advantages of the preferred embodiments of the present invention will be readily understood by the accompanying drawings and detailed descriptions, wherein:
In order to describe in detail the technical content, structural features, achieved objectives and effects of the instant application, the following detailed descriptions are given in conjunction with the drawings and specific embodiments. It should be understood that these embodiments are only used to illustrate the application and not to limit the scope of the instant application.
With reference to
Referring to
For further information, the heat dissipation block 130 is shaped as a flake and made of copper, and it is located where the main body 110 connecting with the heat source is. Talking to the embodiment, three heat dissipation blocks 130 connect with three heat sources respectively, such as CPU, GPU and battery. It is to be sure that the number of the heat source is variable for the persons skilled in the art.
As shown in
Besides, the heat dissipation block 130 is equipped with a first connecting structure 131, and so does the heat dissipation member 120. In other words, the heat dissipation member 120 has at least one second connecting structure 121. The first connecting structure 131 has a first pair of interlock structures that are cooperated to each other and disposed in the main body 110 and the heat dissipation block 130 respectively. The second connecting structure 121 has a second pair of interlock structures that are cooperated to each other as well, wherein the second pair of interlock structures are disposed in the main body 110 and the heat dissipation member 120. The first pair of interlock structures and the second pair of interlock structures are grooves, dovetail grooves, zippers, fisheye holes, etc.
Practically, based on the shapes of the main body 110 and the heat dissipation block 130 being corresponding to each other, the first pair of interlock structures of the first connecting structure 131 are formed, and the first pair of interlock structures will be discussed later. In the same way, according to the shapes of the main body 110 and the heat dissipation member 120 being corresponding to each other also, the second pair of interlock structures of the second connecting structure 121 are formed, and the second pair of interlock structures will be discussed later.
Regarding to
As shown in
That is to say, the first pair of interlock structures on the main body 110 and the heat dissipation block 130 are tightly cooperated with each other, such as the inclined surfaces 131a of the heat dissipation block 130 and the dovetail groove 111 of the main body 110. The second pair of interlock structures on the main body 110 and the heat dissipation member 120 is tightly cooperated with each other, such as the dovetail groove 121a of the heat dissipation member 120 and the interlocking and embedded structure 112 of the main body 110.
According to
With reference to
Regarding
Further, the heat dissipation block 230 is between the protruding block 222 and the heat source, but connects with the protruding block 222. The heat dissipation block 230 even connects with the protruding block 222 via a first connecting structure 231. In other words, the heat dissipation member 220 connects with the heat dissipation block 230 through the protruding block 222 so as to form an entire structure. It is beneficial to position the heat dissipation block 230 when going through a die casting process. The protruding block 222 is a heat transfer media for transferring the heat from the heat source to the heat dissipation member 220 via the heat dissipation block 230. The fins of the heat dissipation member 220 may conduct and radiate the heat efficiently. For other embodiments, the heat dissipation block 230 may be excluded, but with the protruding block 222 for directly connecting with the heat source.
In other embodiments, the heat dissipation block 230 is adhered to the protruding block 222 by welding, and the welding material is the role as the first connecting structure.
Following will be the descriptions about the method for manufacturing the heat dissipation mechanism, and the numbers for those elements as aforesaid will be the same.
Please refer to
step (A10): providing the heat dissipation block 130 that has a first pair of interlock structures 131, wherein the heat dissipation block 130 is made of a first high thermal conductivity material, such as copper;
step (A20): providing the heat dissipation member 120 that has at least one second pair of interlock structures 121, wherein the heat dissipation member 120 is made of a second high thermal conductivity material, such as aluminum alloy;
step (A30): loading the heat dissipation block 130 and the heat dissipation member 120 into a die casting mold and positioning therein;
Practically, the heat dissipation block 130 and the heat dissipation member 120 are positioned on a female mold 10 and a male mold 11 respectively. The female mold 10 and the male mold 11 both have figures that are corresponding to the main body's 110, the heat dissipation member's 120 and the heat dissipation block's 130 for positioning the heat dissipation block 130 and the heat dissipation member 120. For example, a plurality of grooves that correspond to the heat dissipation block 130 are disposed on the female mold 10, in order to position the heat dissipation block 130. With the same theory, a plurality of groove structures that correspond to the fins of the heat dissipation member 120 are disposed on the male mold 11 for positioning the heat dissipation member 120. In addition, step (A20) can be neglected, and only the heat dissipation block 130 is loaded into the die casting mold and positioned therein for step (A30).
after step (A30), clamping the female mold 10 and the male mold 11, and then
step (A40): extruding a molten or semi-melted alloy or metal into the die casting mold, wherein the alloy is aluminum alloy;
Practically, the female mold 10 or the male mold 11 is provided with an injection port, and the molten or semi-melted aluminum alloy solution can be squeezed and injected from the injection port.
step (A50): cooling down the die casting mold, when the molten or semi-melted alloy or metal is solidified, the main body 110 is formed according to the figures of the die casting mold; and
step (A60): opening the die casting mold for taking out a formed heat dissipation mechanism 100.
As a matter of fact, the heat dissipation member 120 and the heat dissipation block 130 are disposed into the die casting mold in advance, therefore the first connecting structure and the second connecting structure are formed as long as the molten or semi-melted alloy or metal is filled out the die casting mold. For example, the interlocking and embedded structure 112 corresponds to the dovetail groove 121, as shown in
Regarding to
step (B10): providing at least one heat dissipation member 220 and at least one heat dissipation block 230, wherein the heat dissipation member 220 has a protruding block 222 and is made of a second high thermal conductivity material as aluminum alloy, and the heat dissipation block 230 is positioned on a surface of the protruding block 222 and is made of a first high thermal conductivity material as cooper;
step (B20): loading the heat dissipation member 220 and the heat dissipation block 230 into a die casting mold and positioning therein;
Practically, the die casting mold is similar to the female mold 10 and the male mold 11, so they will not be discussed hereinafter. In some other embodiments, the heat dissipation block 230 in both step (B10) and step (B20) can be neglected. That is, only the heat dissipation member 220 is loaded into the die casting mold and positioned therein.
step (B30): extruding a molten or semi-melted alloy or metal into the die casting mold;
step (B40): cooling down the die casting mold, thus the molten or semi-melted alloy or metal is solidified;
step (B50): opening the die casting mold for taking out a formed heat dissipation mechanism 200.
In fact, as shown in
The present invention puts the heat dissipation member and the heat dissipation block with high conductivities into the die casting mold. Therefore, the heat dissipation member and the heat dissipation block are combined with the molten aluminum alloy or magnesium alloy, and the heat dissipation mechanism formed in this way can increase the connection strength. On the other hand, a problem for difficult to joint dissimilar metals is solved, and combining metals with different high conductivities approaches a better efficiency of heat dissipation.
Although the invention has been disclosed and illustrated with reference to particular embodiments, the principles involved are susceptible for use in numerous other embodiments that will be apparent to persons skilled in the art. This invention is, therefore, to be limited only as indicated by the scope of the appended claims
Number | Date | Country | Kind |
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110132988 | Sep 2021 | TW | national |