Method of removing ineffective portion of flat heat pipe
10016857 ยท 2018-07-10
Assignee
Inventors
Cpc classification
B23P6/00
PERFORMING OPERATIONS; TRANSPORTING
F28F2255/08
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2275/06
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A method of removing ineffective portion of flat heat pipe is disclosed. The method includes the steps of providing a flat heat pipe; flattening out at least one wick-free flatten-out zone of the flat heat pipe and then sealing the flattened flatten-out zone by welding; and cutting off a cut-away section but reserving a remainder section of the flattened and sealed flatten-out zone, so that an ineffective portion is removed from the flat heat pipe. After being processed with the above method, the flat heat pipe can have effectively increased heat transfer efficiency and save a lot of space.
Claims
1. A method of removing an ineffective portion of flat heat pipe, comprising the following steps: providing a flat heat pipe internally defining a vacuum chamber, which is filled with a working fluid and has at least one wick structure formed on an inner wall surface thereof so as to define a wick-containing space with the at least one wick structure extending an entire length of the wick-containing space and an adjacent wick-free space lacking the at least one wick structure; flattening out at least the wick-free space, and then sealing the flat heat pipe by welding, such that the flattened wick-free space defines a remainder section adjacent the wick-containing space and a cut-away section distal the wick-containing space; and cutting away the flattened and sealed cut-away section, so that the wick-free space of the flat heat pipe is removed and only the wick-containing space remains.
2. The method of removing an ineffective portion of flat heat pipe as claimed in claim 1, wherein the flat heat pipe is formed by flattening out a round heat pipe.
3. The method of removing an ineffective portion of flat heat pipe as claimed in claim 1, wherein the flatten-out zone is flattened out in a manner selected from the group consisting of squeezing, rolling, brake pressing, and pressing.
4. The method of removing an ineffective portion of flat heat pipe as claimed in claim 1, wherein the remainder section has a length smaller than that of the cut-away section.
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
(18) 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.
(19) The present invention provides a method of removing ineffective portion of flat heat pipe. Please refer to
(20) In the step 100, a flat heat pipe 1 is provided. The flat heat pipe 1 internally defines a vacuum chamber 11, which is filled with a working fluid 12 and has at least one wick structure 13 formed on an inner wall surface thereof.
(21) More specifically, in the step 100, a round heat pipe is flattened out to provide a flat heat pipe 1, as shown in
(22) In the step 101, a flatten-out zone 140 defined on the flat heat pipe 1 is flattened out and then sealed by welding, such that the flatten-out zone 140 has a remainder section 1401 and a cut-away section 1402.
(23) More specifically, the flat heat pipe 1 has a flatten-out zone 140 defined thereon and a portion of the chamber 11 corresponding to the flatten-out zone 140 has not any wick structure provided therein and is defined as a wick-free space 18. The flatten-out zone 140 includes a remainder section 1401 and a cut-away section 1402. In the illustrated first preferred embodiment, the flatten-out zone 140 is a portion of the flat heat pipe 1 that does not provide the function of heat transfer, and is normally referred to as an ineffective portion of the flat heat pipe 1. The flatten-out zone 140 is located corresponding to the wick-free space 18 of the chamber 11 and an end of the flat heat pipe 1 that is gradually outward reduced and sealed to form a reducing section 15. The remainder section 1401 corresponds to a section of the wick-free space 18 that is located adjacent to the wick structure 13, whereas the cut-away section 1402 corresponds to the reducing section 15 and another section of the wick-free space 18 that is located beyond the remainder section 1401. In the step 101, the flatten-out zone 140 is flattened out with a flattening device 2 and then undergone a low-temperature welding, such as a low-temperature high frequency welding, to seal an inner wall surface thereof, as shown in
(24) In the step 102, the flattened and sealed cut-away section 1402 is cut away while the remainder section 1401 is reserved, so that a length of the ineffective portion is removed from the flat heat pipe 1.
(25) More specifically, in the step 102, the flattened and sealed cut-away section 1402 is cut away but the remainder section 1401 is reserved, such that the sealed reducing section 15 without heat transfer function is cut off, as shown in
(26) With the above method, the ineffective portion of the flat heat pipe 1 can be partially removed and effectively shortened, allowing the flat heat pipe 1 to have increased heat transfer efficiency. Furthermore, since the surplus section of the ineffective portion of the flat heat pipe 1 is cut away, the sealed reducing section 15 is removed to effectively shorten the ineffective portion, allowing the flat heat pipe 1 to have reduced length, volume and height. Therefore, the flat heat pipe 1 processed with the method of the present invention can save a lot of space and is suitable for use in a smart mobile device, such as a smart watch, a smartphone, a tablet PC or other smart devices, to advantageously allow further reduction of the whole volume of the smart mobile device.
(27) Please refer to
(28) In the step 200, a flat heat pipe 1 is provided. The flat heat pipe 1 internally defines a vacuum chamber 11, which is filled with a working fluid 12 and has at least one wick structure 13 formed on an inner wall surface thereof.
(29) More specifically, in the step 200, a round heat pipe is flattened out to provide a flat heat pipe 1, as shown in
(30) In the step 201, a first flatten-out zone 141 and a second flatten-out zone 142 respectively defined on the first and the second end of the flat heat pipe 1 are flattened out and then sealed by welding, such that the first flatten-out zone 141 has a first remainder section 1411 and a first cut-away section 1412, whereas the second flatten-out zone 142 has a second remainder section 1421 and a second cut-away section 1422.
(31) More specifically, the flat heat pipe 1 has a first and a second flatten-out zone 141, 142 defined on the first and the second end thereof, respectively, and two portions of the chamber 11 corresponding to the first and second flatten-out zones 141, 142 have not any wick structure provided therein and are defined as a first and a second wick-free space 181, 182. The first flatten-out zone 141 includes a first remainder section 1411 and a first cut-away section 1412, whereas the second flatten-out zone 142 includes a second remainder section 1421 and a second cut-away section 1422. In the illustrated second preferred embodiment, the first and the second flatten-out zone 141, 142 are portions of the flat heat pipe 1 that do not provide the function of heat transfer, and are normally referred to as ineffective portions of the flat heat pipe 1. The first flatten-out zone 141 is located corresponding to the first wick-free space 181 of the chamber 11 and a sealed reducing section 15 that is gradually outward reduced from the first end of the flat heat pipe 1, whereas the second flatten-out zone 142 is located corresponding to the second wick-free space 182 of the chamber 11 and a closed round end 16 that is formed on the second end of the flat heat pipe 1.
(32) The first remainder section 1411 corresponds to a section of the first wick-free space 181 that is located adjacent to the wick structure 13, whereas the first cut-away section 1412 corresponds to the reducing section 15 and another section of the first wick-free space 181 that is located beyond the first remainder section 1411. The second remainder section 1421 corresponds to a section of the second wick-free space 182 that is located adjacent to the wick structure 13, whereas the second cut-away section 1422 corresponds to the closed round end 16 and another section of the second wick-free space 182 that is located beyond the second remainder section 1421. In the step 201, the first and the second flatten-out zone 141, 142 are respectively flattened out with a flattening device 2 and then undergone a low-temperature welding, such as a low-temperature high-frequency welding, to seal an inner wall surface thereof, as shown in
(33) In the step 202, the flattened and sealed first and second cut-away sections 1412, 1422 are cut away while the first and second remainder sections 1411, 1421 are reserved, so that two ineffective portions are removed from the flat heat pipe 1.
(34) More specifically, in the step 202, the flattened and sealed first and second cut-away sections 1412, 1422 are cut away but the first and second remainder sections 1411, 1421 are reserved, such that the sealed reducing section 15 and the closed round end 16, which are respectively formed on the first and the second end of the flat heat pipe 1 without providing the heat transfer function, are cut off, as shown in
(35) With the above method, the ineffective portions of the flat heat pipe 1 can be partially removed and effectively shortened, allowing the flat heat pipe 1 to have increased heat transfer efficiency. Furthermore, since the surplus sections of the ineffective portions of the flat heat pipe 1 are cut away, both of the sealed reducing section 15 and the closed round end 16 are removed to effectively shorten the ineffective portions, allowing the flat heat pipe 1 to have reduced length, volume and height. Therefore, the flat heat pipe 1 processed with the method of the present invention can save a lot of space and is suitable for use in a smart mobile device, such as a smart watch, a smartphone, a tablet PC, or other smart devices, to advantageously allow further reduction of the whole volume of the smart mobile device.
(36) Please refer to
(37) In the step 300, a flat heat pipe 1 is provided. The flat heat pipe 1 internally defines a vacuum chamber 11, which is filled with a working fluid 12 and has at least one wick structure 13 formed on an inner wall surface thereof.
(38) More specifically, in the step 300, an upper and a lower plate 171, 172 are closed to each other to provide a flat heat pipe 1, as shown is
(39) In the step 301, a flatten-out zone 140 defined on one end of the flat heat pipe 1 is flattened out and then sealed by welding, such that the flatten-out zone 140 has a remainder section 1401 and a cut-away section 1402.
(40) More specifically, the flat heat pipe 1 has a flatten-out zone 140 located corresponding to the wick-free space 18 of the chamber 11 and a seal-up portion 19 extended from one end of the flat heat pipe 1. The flatten-out zone 140 includes a remainder section 1401 and a cut-away section 1402. In the illustrated third preferred embodiment, the flatten-out zone 140 is a portion of the flat heat pipe 1 that does not provide the function of heat transfer and is normally referred to as an ineffective portion of the flat heat pipe 1. The remainder section 1401 corresponds to a section of the wick-free space 18 that is located adjacent to the wick structure 13, whereas the cut-away section 1402 corresponds to the seal-up portion 19 and another section of the wick-free space 18 that is located beyond the remainder section 1401. In the step 301, a portion of the flatten-out zone 140 located between the wick structure 13 and the seal-up portion 19 is flattened out with a flattening device 2 and then undergone a low-temperature welding, such as a low-temperature high-frequency welding, to seal an inner wall surface thereof, as shown in
(41) In the step 302, the flattened and sealed cut-away section 1402 is cut away while the remainder section 1401 is reserved, so that the ineffective portion is removed from the flat heat pipe 1.
(42) More specifically, in the step 302, the flattened and sealed cut-away section 1402 is cut away but the remainder section 1401 is reserved, such that the seal-up portion 19 without heat transfer function is cut off, as shown in
(43) With the above method, the ineffective portion of the flat heat pipe 1 can be effectively shortened, allowing the flat heat pipe 1 to have largely increased heat transfer efficiency. Furthermore, the flat heat pipe 1 with shortened ineffective portion can save a lot of space and is suitable for use in a smart mobile device, such as a smart watch, a smartphone, a tablet PC or other smart devices, to advantageously allow further reduction of the volume of the smart mobile device.
(44) In conclusion, the method of removing ineffective portion of flat heat pipe according to the present invention has the following advantages: (1) Enabling a flat heat pipe to have largely shortened ineffective portion; (2) enabling the flat heat pipe to have increased heat transfer efficiency; and (3) enabling the flat heat pipe to occupy less space.
(45) 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.