The present invention relates to an airtight penetration structure for heat dissipation device, and more particularly, to an airtight penetration structure that includes a plurality of hollow shaft members having flanges provided at two free ends thereof. The hollow shaft members are correspondingly extended through fastening holes formed on a heat dissipation device with the flanges attached to and flush with outer surfaces of the heat dissipation device to seal around the fastening holes, so that a chamber defined in the heat dissipation device is in an airtight state.
The currently available electronic apparatus all have an enhanced performance. However, the electronic elements in the electronic apparatus for signal processing and data computing also produce more heat than before. The most frequently used heat dissipation devices include heat pipes, heat sinks, vapor chambers and the like. These heat dissipation devices are so arranged that they are in direct contact with the heat-producing electronic elements to ensure further enhanced heat dissipation effect and prevent the electronic elements from being burnt out due to overly high temperature thereof.
The vapor chamber is a device that enables heat transfer between two large surfaces to achieve the purpose of quick heat dissipation. Unlike the heat pipe that achieves heat dissipation via point-to-point heat transfer, the vapor chamber is more suitable for use in an electronic device having a relatively small internal space.
Conventionally, the vapor chamber is associated with a base board for use, so that heat produced by the heat-producing elements on the base board is transferred to the vapor chamber for quick dissipation into ambient air. To mount the vapor chamber to the base board according to a conventional way, at least one hole is formed on the vapor chamber at a position not interfering with the hollow portion of the vapor chamber. For example, a through hole is formed at each of four corners of the vapor chamber outside the closed inner space of the vapor chamber, and an internally threaded hollow copper shaft is inserted in each of the through holes. The base board is also provided with fastening holes at positions corresponding to the hollow copper shafts on the vapor chamber. Then, externally threaded fastening elements are correspondingly screwed into the internally threaded hollow copper shafts and the fastening holes to fixedly mount the vapor chamber on the base board. The above conventional mounting manner has a disadvantage. That is, the hollow copper shafts are located at four corners of the vapor chamber that are somewhat distant from the heat-producing element. In this case, the vapor chamber mounted on the base board could not be closely attached to the heat-producing element and thermal resistance tends to occur between the vapor chamber and the heat-producing element. To overcome the above problem, it has been tried to provide the hollow copper shafts on the vapor chamber at positions closer to the heat-producing element. In this case, the hollow copper shafts are directly extended through the closed inner space of the vapor chamber. While the above improved mounting manner can ensure the close attachment of the vapor chamber to the heat-producing element and avoid the occurrence of thermal resistance, the hollow copper shafts penetrating the closed inner space of the vapor chamber would endanger the air-tightness of the vapor chamber, rendering the vapor chamber no longer in a vacuum state. Further, with the hollow copper shafts penetrating the closed inner space of the vapor chamber, it is possible the flow path of the working fluid in the vapor chamber is hindered by the hollow copper shafts to cause lowered heat transfer efficiency. In a worse state, the penetrating hollow copper shafts might cause leakage of the working fluid and accordingly, failure of the vapor chamber in its heat transfer effect.
Please refer to
Therefore, the conventional penetration structures for heat dissipation devices have the following disadvantages: (1) having the problem of thermal resistance; (2) reducing the heat transfer areas of the heat dissipation devices; and (3) lowering the heat transfer efficiency of the heat dissipation devices.
A primary object of the present invention is to provide an improved airtight penetration structure for heat dissipation device to overcome the disadvantages in the prior art penetration structures for heat dissipation devices, lest the vacuum-tight chambers of the heat dissipation devices should leak via the penetration structures.
To achieve the above and other objects, the airtight penetration structure for heat dissipation device according to an embodiment of the present invention includes a first plate member, a second plate member, and a plurality of hollow shaft members. The first plate member has a first side and a second side, and is provided with a plurality of first fastening holes. The first fastening holes respectively extend from the first side to the second side to penetrate the first plate member. The second plate member has a third side and a fourth side, and is provided with a plurality of second fastening holes. The second fastening holes respectively extend from the third side to the fourth side to penetrate the second plate member. The first and the second plate member are closed to each other with the first side facing toward the third side, such that a closed chamber is defined between them. The hollow shaft members are respectively provided at two free ends with a first flange and a second flange. The hollow shaft members are correspondingly extended through the first and the second fastening holes with the first and the second flanges attached to and flush with the second side of the first plate member and the fourth side of the second plate member, respectively, to seal around the first and the second fastening holes.
To achieve the above and other objects, the airtight penetration structure for heat dissipation device according to another embodiment of the present invention includes a first plate member and a second plate member. The first plate member has a first side and a second side, and is provided with a plurality of first fastening holes. The first fastening holes respectively extend from the first side to the second side to penetrate the first plate member. The second plate member has a third side and a fourth side and a plurality of hollow shaft members integrally formed thereon. The first and the second plate member are closed to each other with the first side facing toward the third side, such that a closed chamber is defined between them. The hollow shaft members respectively extend from the third side toward the first plate member to correspondingly extend through the first fastening holes on the first plate member. An end of each of the hollow shaft members extended through the first fastening hole is a free end, around which a first flange is provided. The first flange is attached to and is flush with the second side of the first plate member to seal around the first fastening holes.
With the airtight penetration structure of the present invention, it is able to ensure the air-tightness of the closed chamber defined in the heat dissipation device when the device is penetrated by the hollow shaft members of the airtight penetration structure.
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
The present invention will now be described with some preferred embodiments thereof and by referring to the accompanying drawings. For the purpose of easy to understand, elements that are the same in the preferred embodiments are denoted by the same reference numerals.
Please refer to
The first plate member 11 has a first side 111 and a second side 112, and is provided with a plurality of first fastening holes 113. The first fastening holes 113 respectively extend from the first side 111 to the second side 112 to penetrate the first plate member 11. In the present invention, the first and the second side 111, 112 are located at a lower and an upper side of the first plate member 11, respectively.
The second plate member 12 has a third side 121 and a fourth side 122, and is provided with a plurality of second fastening holes 123. The third and the fourth side 121, 122 are located at an upper and a lower side of the second plate member 12, respectively. The first and the second plate member 11, 12 are correspondingly closed to each other with the first side 111 facing toward the third side 121, such that the first and the second plate member 11, 12 together define a closed chamber 14 between them. The second fastening holes 123 respectively extend from the third side 121 to the fourth side 122 to penetrate the second plate member 12.
Each of the hollow shaft members 13 is provided at two free ends with a first flange 131 and a second flange 132, which are respectively radially outward extended from the two free ends to be perpendicular to the hollow shaft member 13. The hollow shaft members 13 are correspondingly extended through the first and the second fastening holes 113, 123 with the first and the second flanges 131, 132 attached to and flush with the second side 112 of the first plate member 11 and the fourth side 122 of the second plate member 12, respectively, to seal around the first and the second fastening holes 113, 123. Then, an airtight joint can be formed between each of the hollow shaft members 13 and any of the first and the second fastening holes 113, 123 on the first and the second plate member 11, 12 by way of welding or diffusion bonding or gluing. The hollow shaft members 13 respectively internally define an axial through bore 133 that extends from one of the two free ends to the other free end. The axial through bores 133 can be respectively provided with female threads (not shown), so that fastening elements with corresponding male threads can be screwed thereinto to tighten the heat dissipation device against a base board.
The first and the second plate member 11, 12 can be made of a copper material, an aluminum material, a stainless steel material, or a titanium material; and the first and the second plate member 11, 12 can be made of the same material or different materials.
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When forming the porous structure by means of electrochemical deposition, the material used in the electrochemical deposition can be any one of a copper material, a nickel material, an aluminum material, and any other metal material with good thermal conductivity.
When forming the wick structure 3 using a mesh material, the mesh material can be made of one of a copper material, an aluminum material, a stainless steel material and a titanium material. Of course, the wick structure 3 can be otherwise formed by laminating two or more mesh materials together while the mesh materials are made of different ones of the above mentioned materials.
The primary object of the present invention is to provide an airtight penetration structure for a heat dissipation device, of which an internally defined vacuum-tight chamber has to be penetrated for extending fastening elements therethrough. With the airtight penetration structure of the present invention, it is able to maintain normal operation and gas-liquid circulation of the working fluid in the vacuum-tight heat dissipation device. Further, the provision of the hydrophilic layer and the wick structure in the airtight penetration structure of the present invention further enables upgraded gas-liquid circulation efficiency in the heat dissipation device.
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.
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