Dual heat transfer structure
11598584 ยท 2023-03-07
Assignee
Inventors
Cpc classification
F28D15/046
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/0275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/0266
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 dual heat transfer structure, comprising: at least a heat pipe and at least a vapor chamber; the heat pipe having a first end, an extension portion, and a second end, the first and second ends disposed at the two ends of the extension portion; the vapor chamber being concavely bent with its two ends being joined together and selectively compasses, encircles, encloses, or surrounds one of the first and second ends and extension portion. The dual heat transfer structure of the present invention is a complex structure that can both transfer heat with a large area and to the distal end of the structure.
Claims
1. A dual heat transfer structure comprising: at least a heat pipe having a first end, an extension portion, and a second end, the first and second ends disposed at two ends of the extension portion and a vapor chamber concavely bent with two opposed edges of the vapor chamber each defining mating lip sides which are joined together such that the vapor chamber encircles one of the first end, the second end, and the extension portion.
2. The dual heat transfer structure of claim 1, wherein the vapor chamber is provided with an airtight chamber, a wall, a capillary wick, and a working fluid filled inside the airtight chamber, and wherein the vapor chamber has a first side and a second side, wherein the second side is arranged on an inner surface of the vapor chamber after the vapor chamber is concavely bent and attached to an outer perimeter of the heat pipe.
3. The dual heat transfer structure of claim 2, wherein the first side of the vapor chamber is a heat absorbing side in contact with at least a heat source to transfer heat, the second side is a heat dissipating side to transfer heat to the heat pipe attached therewith, and further comprising a plurality of cooling fins disposed on a remainder portion of the first side that is not in contact with the heat source.
4. The dual heat transfer structure of claim 1, wherein the heat pipe is provided with a vacuum chamber.
5. The dual heat transfer structure of claim 1, wherein the first end and the second end of the heat pipe are flat oval shaped, oval, or rectangular in shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
(9) The above-mentioned object and the structure and functions of the present invention are to be illustrated with reference to the preferred embodiments in the accompanying drawings.
(10) Referring to
(11) The heat pipe 1 has a first end 11 and an extension portion 12, and a second end 13, in which the first and second ends 11, 13 are provided at the two ends of the extension portion 12. The heat pipe 1 is provided with a vacuum chamber 14 which is disposed independently and provided with at least a capillary wick 15 and a working fluid 16.
(12) The vapor chamber 2 is concavely bent with its two sides being joined (connected) together and selectively compasses, encircles, encloses, or surrounds one of the first and second ends 11, 13, and extension portion 12.
(13) The vapor chamber 2 is provided with an airtight chamber 21, the inside of which is filled with a working fluid 23. The inner wall of the airtight chamber 21 is provided with at least a capillary wick 22. The upper and lower outer surfaces of the vapor chamber 2 have a first side 2a and a second side 2b, respectively. The outer perimeter of the airtight chamber 21 has a lip side 24, two ends of which are joined together after the vapor chamber is concavely bent. The second side 2b is on the inner surface of the vapor chamber 2 after the vapor chamber is concavely bent. The second side 2b is attached to the outer perimeter of the heat pipe 1, while the first side 2a is in contact with a heat source 3 and transfers heat.
(14) Referring to
(15) In addition, a plurality of cooling fins 4 for increasing heat transfer efficiency is disposed on the rest portion of the heat absorbing portion 2c on the first side 2a of the vapor chamber 2 that is not in contact with the heat source 3. The second side 2b compasses, encircles, encloses, or surrounds the outer perimeter of the heat pipe 1 in an attaching manner, which conforms and is in contact with at least a portion of the heat pipe 1, and transfers heat.
(16) Referring to
(17) Referring to
(18) Referring to
(19) Referring to
(20) After the vapor chamber 2 is concavely bent with its two ends being joined together, the plurality of heat pipes 1 and the first heat sink 5 (cooling fins) are arranged in a horizontal manner with the first heat sink 5 being disposed above the heat pipes 1, and the vapor chamber 2 encircles and compasses the heat pipes 1 and the first heat sink 5.
(21) Referring to
(22) The cross sections of the first and second ends 11, 13 of the heat pipe 1 in each previously described embodiment are flat oval shaped (or oval or rectangular in shape in other embodiments) so that the heat pipe is able to be smoothly attached with the vapor chamber 2 or a cooling unit, thereby providing a larger contact area therebetween. And, the cross section of the remaining portion (i.e., the extending portion) of the heat pipe 1 can be an arbitrary shape or has a cross-sectional area larger than that of the first and second ends 11, 13 in order to increase the expansion efficiency of the vapor-liquid flow. In addition, the capillary wick 22 or 15 can be sintered powders, a mesh structure, woven structure, fiber structure, trenches, or the combination thereof and can be arranged in a single layer, multiple layers. It should be noted that the capillary wick in the embodiments being a single layer is illustrative and not limiting.
(23) The design of the present invention that a vapor chamber compasses, encircles, encloses, or surrounds and attaches to a heat pipe (pipes) can transfer heat with a large area and to the distal end of the structure. Because the vapor chamber, which is in contact with one or more heat sources, compasses the outer perimeters of the heat pipe and heat sink, heat can be absorbed from the heat sources, and transferred in a large area to the surface in one end of the heat pipe and to the heat sink simultaneously by the vapor chamber. After one end of the heat pipe and the heat sink (cooling fins) receive the heat transferred via the vapor chamber, the heat is transferred to the distal end of the structure and dissipated. Also, the heat sink (cooling fins) is capable of dissipating heat in a short period of time, thus preventing heat from accumulating. Therefore, heat transfer efficiency can be significantly improved.