FLEXIBLE TWO-PHASE CONVERSION HEAT TRANSFER DEVICE
20220260320 ยท 2022-08-18
Inventors
Cpc classification
F28D15/0241
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A flexible two-phase conversion heat transfer device includes a main body enclosing a chamber. A working liquid is received in the chamber. A capillary structure body is disposed in the chamber. The main body has at least one bellows section. The bellows section has multiple waved stripes. The waved stripes at least have a waved stripe feature including a waved stripe height or a waved stripe width or a waved stripe pitch between each two adjacent waved stripes. By means of the different waved stripe features, the main body is bendable by an angle ranging from 0-180 degrees without interference between the waved stripes.
Claims
1. A flexible two-phase conversion heat transfer device comprising: a main body having at least one straight section and a bellows section, the bellows section including multiple waved stripes arranged at intervals, each waved stripe having a waved stripe bottom end and a waved stripe top end, the waved stripe bottom end being positioned in adjacency to an outer surface of the main body, the waved stripe top end being raised from the outer surface of the main body, a waved stripe height being defined between the waved stripe bottom end and the waved stripe top end, the waved stripe heights being unequal to each other; and a chamber enclosed in the main body, a working liquid being received in the chamber, a capillary structure body being disposed in the chamber, by means of the bellows section, one end of the main body being bendable by an angle ranging from 0-180 degrees.
2. The flexible two-phase conversion heat transfer device as claimed in claim 1, wherein the chamber includes an evaporation section, a heat insulation section and a condensation section, the heat insulation section being positioned between the evaporation section and the condensation section, the straight sections respectively corresponding to the evaporation section and the condensation section, the bellows section corresponding to the heat insulation section.
3. The flexible two-phase conversion heat transfer device as claimed in claim 1, wherein a waved stripe pitch is defined between each two waved stripes, the waved stripe pitches being equal to each other.
4. The flexible two-phase conversion heat transfer device as claimed in claim 1, wherein the waved stripe heights are gradually increased from the middle of the bellows section to two sides thereof or gradually increased from a left side of the bellows section to a right side thereof or gradually increased from the right side of the bellows section to the left side thereof.
5. The flexible two-phase conversion heat transfer device as claimed in claim 1, wherein each waved stripes has a waved stripe width, the waved stripe widths of the waved stripes being equal to each other.
6. The flexible two-phase conversion heat transfer device as claimed in claim 1, wherein the waved stripes are annular waved stripes.
7. The flexible two-phase conversion heat transfer device as claimed in claim 1, wherein the capillary structure body includes a first capillary section and a second capillary section, the first capillary section being positioned on the straight sections, the second capillary section being positioned on the bellows section, the first capillary section being in capillary connection with the second capillary section.
8. The flexible two-phase conversion heat transfer device as claimed in claim 7, wherein the second capillary section has two ends respectively partially extending from the bellows section to the straight sections.
9. A flexible two-phase conversion heat transfer device comprising: a main body having at least one straight section and a bellows section, the bellows section including multiple waved stripes, the waved stripes being multiple recessed/raised structures alternately formed on the main body, each waved stripe having a waved stripe width, the waved stripe widths being unequal to each other; and a chamber enclosed in the main body, a working liquid being received in the chamber, a capillary structure body being disposed in the chamber, by means of the bellows section, the main body being bendable by an angle ranging from 0-180 degrees.
10. The flexible two-phase conversion heat transfer device as claimed in claim 9, wherein each waved stripe has a waved stripe bottom end and a waved stripe top end, the waved stripe bottom end being positioned in adjacency to an outer surface of the main body, the waved stripe top end being raised from the outer surface of the main body, a waved stripe height being defined between the waved stripe bottom end and the waved stripe top end, the waved stripe heights being equal to each other.
11. The flexible two-phase conversion heat transfer device as claimed in claim 9, wherein each waved stripe has a waved stripe leftmost side and a waved stripe rightmost side, the waved stripe width being defined between the waved stripe leftmost side and the waved stripe rightmost side.
12. The flexible two-phase conversion heat transfer device as claimed in claim 9, wherein a waved stripe pitch defined between each two adjacent waved stripes, the waved stripe pitches being equal to each other.
13. The flexible two-phase conversion heat transfer device as claimed in claim 9, wherein the waved stripes are annular waved stripes.
14. The flexible two-phase conversion heat transfer device as claimed in claim 9, wherein the capillary structure body includes a first capillary section and a second capillary section, the first capillary section being positioned on the straight sections, the second capillary section being positioned on the bellows section, the first capillary section being in capillary connection with the second capillary section.
15. The flexible two-phase conversion heat transfer device as claimed in claim 14, wherein the second capillary section has two ends respectively partially extending from the bellows section to the straight sections.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0020] 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:
[0021]
[0022]
[0023]
[0024]
[0025]
DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0026] The present invention provides a flexible two-phase conversion heat transfer device including a main body. The main body has a bellows section. The bellows section has multiple waved stripes arranged at intervals or continuously. Each waved stripe has a waved stripe feature including a waved stripe height or a waved stripe width or a waved stripe pitch. The waved stripe feature of each waved stripe is different from the waved stripe feature of the other waved stripe. For example, the waved stripe height of each waved stripe is unequal to the other and/or the waved stripe pitch of each waved stripe is equal to or unequal to the other and/or the waved stripe width of each waved stripe is unequal to the other. Accordingly, when the bellows section of the main body is bent by different curvatures, the waved stripes will not interfere with each other.
[0027] Please refer to
[0028] The main body 11 has at least one straight section 111, 112 and a bellows section 113. In this embodiment, there are two straight sections 111, 112 respectively positioned on two sides of the bellows section 113. The straight sections 111, 112 respectively correspond to the evaporation section 121 and the condensation section 123. The bellows section 113 corresponds to the heat insulation section 122. The bellows section 113 includes multiple waved stripes 141, which are arranged at intervals. The waved stripes 141 are multiple continuous crimps or bends formed on the main body 11 as recessed/raised structures or wave peaks and wave troughs, which are alternately arranged.
[0029] Please now refer to
[0030] The second capillary section 132 has two ends 1321, 1322 respectively extending from the bellows section 113 to the straight sections 111, 112. That is, the first capillary section 131 is disposed in the evaporation section 121 and the condensation section 123, while the second capillary section 132 is disposed in the heat insulation section 122. Two ends 1321, 1322 of the second capillary section 132 partially extend to the evaporation section 121 and the condensation section 123. The X-direction length of the second capillary section 132 is longer than the X-direction length of the bellows section 113.
[0031] The first capillary section 131 is such as, but not limited to, a sintered capillary structure. The second capillary section 132 is a woven capillary structure in adaptation to the bellows section 113 for requirement of flexibility. In this embodiment, the sintered capillary structure is such as sintered metal powder, while the woven capillary structure is such as a mesh capillary structure (longitudinal and latitudinal woven mesh body) as shown in
[0032] A waved stripe pitch 16 is defined between each two waved stripes 141. In this embodiment, the waved stripe pitches 16 are equal to each other, whereby the adjacent waved stripes 141 are arranged at equal intervals.
[0033] Moreover, as shown in
[0034] Referring to
[0035] Please further refer to
[0036] Please further refer to
[0037] In a modified embodiment, the waved stripe heights Y1 of the waved stripes 141 are gradually increased from the left side of the bellows section 113 to the right side thereof. Alternatively, the waved stripe heights Y1 of the waved stripes 141 are gradually increased from the right side of the bellows section 113 to the left side thereof. Still alternatively, the waved stripes with higher waved stripe heights Y1 and the waved stripes with lower waved stripe heights Y1 are alternately arranged. The waved stripe pitches 16 between the waved stripes 141 are unequal to each other. For example, the waved stripe pitches 16 are increased or decreased from the middle of the bellows section 113 to two sides thereof. The waved stripe widths X1 are unequal to each other. For example, the waved stripe widths X1 are increased from the middle of the bellows section 113 to two sides thereof. Alternatively, the waved stripe heights Y1 of the waved stripes 141 are equal to each other, while the waved stripe widths X1 are unequal to each other. For example, the waved stripe widths X1 are increased from the middle of the bellows section 113 to two sides thereof.
[0038] Moreover, the waved stripes 141 are annular waved stripes (as shown in the drawings) or spiral waved stripes. The annular waved stripes 141 surround the main body 11 as closed loops. The spiral waved stripes surround the main body 11 in a spiral form. A helix angle is defined between each two adjacent waved stripes and all the waved stripes are connected via one spiral line.
[0039] Furthermore, the main body 11 of the present invention is a circular heat pipe, a flat-plate heat pipe or a vapor chamber. Also, the main body 11 is made of metal material such as pure metal (including aluminum, copper, titanium, etc.) or complex metal (alloy, including aluminum/magnesium alloy, copper/nickel alloy, aluminum/copper alloy, titanium alloy, etc.)
[0040] In the present invention, the waved stripe features of the waved stripes 141 are different from each other, whereby the main body 11 can be bent by an angle ranging from 0-180 degrees from a horizontal straight tube into a U-shaped tube or an L-shaped tube without interference between the waved stripes 141 on the inner side of the bend.
[0041] The present invention has been described with the above embodiments thereof and it is understood that many changes and modifications in such as the form or layout pattern or practicing step of the above 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.