Height-adjustable heat dissipation unit
11320208 ยท 2022-05-03
Assignee
Inventors
Cpc classification
F28F2255/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/0241
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2245/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2015/0216
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F21/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D15/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A height-adjustable heat dissipation unit includes a main body, which has a top plate member, a bottom plate member, an extendable structure and a chamber. The extendable structure is a tapered structure located between and connected to the top and the bottom plate member, and consists of one or more folding sections. The chamber is provided on inner wall surfaces with a main body wick structure and is filled with a working fluid.
Claims
1. A height-adjustable heat dissipation unit comprising a main body including a top plate member, a bottom plate member, and an extendable structure together defining a chamber in between them and wherein the extendable structure interconnects and tapers continuously between the top plate member and the bottom plate member, the extendable structure comprising a plurality of folding sections configured such that the extendable structure can be extended to an increased length and compressed to a decreased length to respectively increase or reduce a height of the main body where, when the extendable structure is compressed to a smallest height of the main body, the plurality of folding sections is in a nested configuration with alternating inward and outward bending of the plurality of folding sections; the chamber being internally provided with a main body wick structure and a working fluid; and the main body wick structure being provided on at least an inner wall surface of the chamber.
2. The height-adjustable heat dissipation unit as claimed in claim 1, wherein the chamber is further internally provided with a coating layer provided in the chamber, located on inner wall surfaces of the extendable structure, and extending between and connected to the main body wick structure provided in the chamber.
3. The height-adjustable heat dissipation unit as claimed in claim 1, wherein the main body further includes a vaporizing section located at the bottom plate member and a condensing section located at the top plate member.
4. The height-adjustable heat dissipation unit as claimed in claim 2, wherein the coating layer is a wick structure selected from the group consisting of a grooved structure, a woven mesh structure, and a fibrous structure.
5. The height-adjustable heat dissipation unit as claimed in claim 2, wherein the coating layer is made of a material selected from the group consisting of a polymeric material, a paper material, a fabric material, and a shape memory alloy.
6. The height-adjustable heat dissipation unit as claimed in claim 2, wherein the coating layer is provided in the chamber and located on inner wall surfaces of the extendable structure to extend between the top and the bottom plate member, such that an end of the coating layer is in contact with the main body wick structure provided in the chamber on an inner surface of the top plate member, and the other end of the coating layer is in contact with the main body wick structure provided in the chamber on an inner surface of the bottom plate member.
7. The height-adjustable heat dissipation unit as claimed in claim 1, wherein each of the folding sections is decreasing in diameter from bottom to top and accordingly has a diametrically wider lower opening and a diametrically narrower upper opening; and wherein the extendable structure further includes a connecting section formed between any two adjacent folding sections, each connecting section being connected to between the wider lower opening of an upper folding section and the narrower upper opening of an adjacent lower folding section.
8. The height-adjustable heat dissipation unit as claimed in claim 1, wherein the main body wick structure is selected from the group consisting of a sintered metal powder structure, a woven mesh structure, a fibrous structure, a grooved structure, and any combination thereof.
9. The height-adjustable heat dissipation unit as claimed in claim 1, wherein the main body is selected from the group consisting of a vapor chamber and a heat spreader.
10. The height-adjustable heat dissipation unit as claimed in claim 1, wherein the extendable structure is made of a material selected from the group consisting of an elastic material and a non-metal material.
11. The height-adjustable heat dissipation unit as claimed in claim 1, wherein the top and the bottom plate member are made of a metal material; and the metal material being selected from the group consisting of a copper material, a gold material, and an aluminum material.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) 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
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(12) 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.
(13) Please refer to
(14) In another operable embodiment, the top and the bottom plate member 11, 12 of the main body 10 are made of a metal material, such as copper, gold, or aluminum; and the extendable structure 103 is made of a non-metal material, such as a soft and flexible plastic, rubber, or polymeric material with good ductility and malleability. In this case, the main body 10 is integrally formed of the extendable structure 103, the top plate member 11, and the bottom plate member 12 by way of overmolding.
(15) The extendable structure 103 consists of a plurality of folding sections 1031 and a connecting section 1032 formed between any two adjacent folding sections 1031. In the first embodiment, there are shown seven (7) folding sections 1031, which are sequentially referred to as the first, the second, the third, the fourth, the fifth, the sixth and the seventh folding section 1031 from bottom to top. Each of the folding sections 1031 is decreasing in diameter from bottom to top. That is, each of the folding sections 1031 has a diametrically wider lower opening 10311 and a diametrically narrower upper opening 10312. Each of the connecting sections 1032 is connected to between the wider lower opening 10311 of an upper folding section 1031 and the narrower upper opening 10312 of an adjacent lower folding section 1031. The uppermost folding section 1031, i.e. the seventh folding section 1031 in the first embodiment, is connected at its narrower upper opening 10312 to the peripheral edge of the inner surface of the top plate member 11, and the lowermost folding section 1031, i.e. the first folding section 1031 in the first embodiment, is connected at its wider lower opening 10311 to the peripheral edge of the inner surface of the bottom plate member 12. With the above arrangements of the folding sections 1031 and the connecting sections 1032, the extendable structure 103 can be compressed from an extended state into a folded state to have a reduced overall height or length, as shown in
(16) The vaporizing section 101, the extendable structure 103 and the condensing section 102 together define the chamber 104 in between them. The chamber 104 is internally provided with a working fluid, which can be pure water, methanol or a coolant. The chamber 104 is also internally provided with a main body wick structure 21 and a coating layer 22. The coating layer 22 can be extended or compressed along with the folding sections 1031 when the extendable structure 103 is pulled or compressed. The main body wick structure 21 can be a sintered metal powder structure, a woven mesh structure, a fibrous structure, a grooved structure, or any combination thereof, and is provided on at least an inner wall surface of the chamber 104. In the first embodiment, the main body wick structure 21 is illustrated as a sintered metal powder structure provided in the chamber 104 on an inner wall surface of the vaporizing section 101 and of the condensing section 102, that is, on the inner surface of the bottom plate member 12 and of the top plate member 11. In the first embodiment, one extendable structure 103 located between the vaporizing section 101 and the condensing section 102 is illustrated. However, it is understood, in practical implementation of the present invention, two or more extendable structures 103 can be included and located between the bottom and the top plate member 12, 11 to provide changeful usages of the height-adjustable heat dissipation unit 1.
(17) In the first embodiment, the coating layer 22 is illustrated as a wick structure, which can be, for example, a woven mesh structure, a fibrous structure, or a grooved structure. In practical implementation of the present invention, the coating layer 22 can be a woven mesh structure, a fibrous structure or a combination of a whisker with a woven mesh structure or a fibrous structure. The coating layer 22 is provided in the chamber 104 and located on inner wall surfaces of the extendable structure 103 to extend between the top and the bottom plate member 11, 12. More specifically, an end of the coating layer 22 is in contact with the main body wick structure 21 provided in the chamber 104 on the inner surface of the top plate member 11, and the other end of the coating layer 22 is in contact with the main body wick structure 21 provided in the chamber 104 on the inner surface of the bottom plate member 12.
(18) In a variant of the first embodiment, as shown in
(19) When the vaporizing section 101 of the main body 10 has been attached to a heat-producing element, such as a CPU, in an electronic device, such as a notebook computer, a personal computer, a communication chassis, a server, a smartphone, a communication apparatus, an industrial apparatus or a transporting device (not shown), the extendable structure 103 can be upward pulled from a folded state to an extended state, as shown in
(20) Further, when the same sized main body 10 is to be mounted in another differently sized electronic device, the extendable structure 103 of the main body 10 can also be flexibly adjusted and bent to change its overall height to adapt to electronic devices of different sizes. That is, the height-adjustable heat dissipation unit 1 of the present invention is universal to many electronic devices of different types and sizes and is therefore highly effective and convenient for use. Further, the extendable structure 103 of the main body 10 also enables the heat dissipation unit 1 to be packaged in a minimized height and accordingly, a smallest possible volume.
(21) Please refer to
(22) As shown, in the second embodiment, the folding section 1031 has a diametrically wider lower opening 10311 and a diametrically narrower upper opening 10312. The folding section 1031 is connected at the narrower upper opening 10312 to the inner surface of the top plate member 11 and at the wider lower opening 10311 to the inner surface of the bottom plate member 12. When the folding section 1031 is subjected to a twisting force applied thereto to be axially compressed or extended, the coating layer 22 provided in the chamber 104 on the inner wall surface of the extendable structure 103 is twisted along with the folding section 1031 to be compressed or extended. More specifically, to extend a compressed and folded folding section 1031, simply apply two opposite twisting forces to the top plate member 11 and the bottom plate member 12 at the same time. For example, a counterclockwise twisting force is applied to the top plate member 11 while a clockwise twisting force is applied to the bottom plate member 12. At this point, the entire folding section 1031 subjected to the two opposite twisting forces can be pulled and extended to increase its height, as shown in
(23) Further, in the second embodiment, the chamber 104, the main body wick structure 21 or the coating layer 22 can be additionally provided with a hydrophilic or a hydrophobic coating.
(24) In all of the above-described embodiments, the height-adjustable heat dissipation unit 1 according to the present invention is well flexible and bendable to effectively change its overall height or length, making the height-adjustable heat dissipation unit 1 universal to electronic devices of different types and sizes to provide excellent convenience in use. Further, the overall volume of the height-adjustable heat dissipation unit 1 with the above design can be largely reduced to facilitate convenient and economical packaging, storing and transporting thereof.
(25) 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.