HEAT DISSIPATION MODULE AND MANUFACTURING METHOD THEREOF
20220364798 ยท 2022-11-17
Inventors
Cpc classification
F28D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F1/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/2039
ELECTRICITY
F28D2021/0029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/0275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F28F1/30
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/02
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
The disclosure relates to a heat dissipation module and a manufacturing method thereof. The heat dissipation module includes a heat pipe, multiple heat dissipation fins and multiple rings. The heat pipe has a peripheral wall. Each heat dissipation fin has a through hole and an annular wall disposed on an outer edge of the through hole. The heat dissipation fins are adapted to sheathe the heat pipe in a spacedly stacked manner through the through hole. Each ring annularly is adapted to sheathe each annular wall in a compressive manner to embed and compressedly connect each annular wall to the peripheral wall. Therefore, efficiency of heat dissipation and structural strength of the heat dissipation structure are improved.
Claims
1. A heat dissipation module comprising: a heat pipe, comprising a peripheral wall; a plurality of heat dissipation fins, each comprising a through hole and an annular wall disposed on an outer edge of the through hole, and the heat dissipation fins adapted to sheathe the heat pipe in a spacedly stacked manner through the through hole; and a plurality of rings, each adapted to sheathe each annular wall in a compressive manner to embed and compressedly connect each annular wall to the peripheral wall.
2. The heat dissipation module of claim 1, wherein each annular wall comprises a cylindrical annular wall, a plurality of cylindrical annular grooves is disposed on the peripheral wall, and each cylindrical annular wall is embedded in each cylindrical annular groove in a compressive manner.
3. The heat dissipation module of claim 1, wherein an outer periphery of each heat dissipation fin is upwardly extended with a plurality of inverted T-shape connecting sheets meshed with each other and is outwardly extended with a plurality of latches inserted respectively between each two of the inverted T-shape connecting sheets adjacent to each other, and a hardness of each ring is greater than a hardness of each annular wall.
4. A manufacturing method of a heat dissipation module, the manufacturing method comprising: a) providing a heat dissipation fin comprising a through hole and an annular wall formed on an outer edge of the through hole; b) providing a ring, wherein the ring comprises a conic ring, the conic ring comprises an upper bottom opening and a lower bottom opening, an inner diameter of the upper bottom opening is less than an outer diameter of the annular wall, an inner diameter of the lower bottom opening is greater than an outer diameter of the annular wall, and the conic ring is adapted to sheathe the annular wall; c) providing a heat pipe comprising a peripheral wall, and sheathing the heat pipe with the heat dissipation fin through the through hole; and d) providing a pressing jig for downwardly pressing the conic ring to deform the conic ring to be adapted to compressedly sheathe the annular wall until the annular wall being pressed and deformed by the ring to be embedded and connected compressedly to the peripheral wall.
5. The manufacturing method of claim 4, wherein in the step c), the annular wall comprises a cylindrical annular wall, an inner diameter of the cylindrical annular wall is less than an outer diameter of the heat pipe, and a size difference between the inner diameter of the cylindrical annular wall and the outer diameter of the heat pipe is between 0.05 mm and 0.1 mm to connect compressedly the cylindrical annular wall to the peripheral wall.
6. The manufacturing method of claim 5, wherein in the step b), an inner diameter of the conic ring tapers from the lower bottom opening to the upper bottom opening, the heat pipe comprises a top, and the upper bottom opening is arranged more adjacent to the top than the lower bottom opening.
7. The manufacturing method of claim 6, wherein in the step d), the peripheral wall is formed with a cylindrical annular groove, and the cylindrical annular wall is embedded into the cylindrical annular groove in a compressive manner.
8. A manufacturing method of a heat dissipation module, the manufacturing method comprising: e) providing a heat dissipation fin comprising a through hole and an annular wall formed on an outer edge of the through hole; f) providing a ring, wherein the ring comprises a cylindrical ring, and the cylindrical ring is adapted to compressedly sheathe outside the annular wall; g) providing a heat pipe comprising a peripheral wall, and sheathing the heat pipe with the heat dissipation fin through the through hole; and h) providing a pressing jig for inwardly pressing the cylindrical ring until the annular wall being pressed and deformed by the ring to be embedded and connected compressedly to the peripheral wall.
9. The manufacturing method of claim 8, wherein in the step g), the annular wall comprises a cylindrical annular wall, an inner diameter of the cylindrical annular wall is less than an outer diameter of the heat pipe, and a size difference between the inner diameter of the cylindrical annular wall and the outer diameter of the heat pipe is between 0.05 mm and 0.1 mm to connect compressedly the cylindrical annular wall to the peripheral wall.
10. The manufacturing method of claim 9, wherein in the step g), the peripheral wall is formed with a cylindrical annular groove, and the cylindrical annular wall is embedded into the cylindrical annular groove in a compressive manner.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF THE DISCLOSURE
[0025] To further disclose the features and technical contents of the disclosure, please refer to the following description and the drawings. However, the drawings are used for reference and description only, not for limitation to the disclosure.
[0026] Please refer to
[0027] As show in
[0028] Secondly, as shown in the step b) of
[0029] In detail, in the step b), an inner diameter of the conic ring 31 tapers from the lower bottom opening 312 to the upper bottom opening 311. The heat pipe 1 has a top 12. The upper bottom opening 311 is more adjacent to the top 12 than the lower opening 312.
[0030] The size difference between the inner diameter S2 of the upper bottom opening 311 and the outer diameter W2 of the annular wall 22 is between 0.05 mm and 0.1 mm. The size difference between the inner diameter S3 of the lower bottom opening 312 and the outer diameter W2 of the annular wall 22 is between 0.05 mm and 0.1 mm. In this embodiment, a number of the ring 3 is, but not limited to, multiple.
[0031] In addition, a hardness of the ring 3 is greater than a hardness of the annular wall 22. For example, the annular wall 22 is made of copper and the ring 3 is made of a material with the hardness higher than that of copper, such as aluminum, iron, or stainless steel, etc.
[0032] Thirdly, as shown in the step c) of
[0033] Furthermore, in the step c), the heat dissipation fin 2 is adapted to sheathe the heat pipe 1 from the top 12. The annular wall 22 is a cylindrical annular wall 222. An inner diameter S1 of the cylindrical annular wall 222 is less than an outer diameter W1 of the heat pipe 1. The size difference between the inner diameter S1 of the cylindrical annular wall 222 and the outer diameter W1 of the heat pipe 1 is between 0.05 mm and 0.1 mm, so that the cylindrical annular wall 222 compressedly connects the peripheral wall 11. For example, when the outer diameter W1 of the heat pipe 1 is 8 mm, the inner diameter S1 of the cylindrical annular wall 222 is about 7.9 mm, but not limited to this.
[0034] Fourthly, as shown in the step d) of
[0035] In detail, in the step d), the ring 3 is adapted to sheathe the annular wall 22 in a compressive manner to make the peripheral wall 11 be pressed by the annular wall 22 to form a cylindrical annular groove 112. The cylindrical annular wall 222 is embedded into the cylindrical annular groove 112 in a compressive manner to embed and connect compressedly the annular walls 22 to the peripheral wall 11.
[0036] In addition, in this embodiment, a number of the heat dissipation fin 2 is multiple. The heat dissipation fins 2 are adapted to sheathe the heat pipe 1 in a spacedly stacked manner through each through hole 21. An outer periphery of each heat dissipation fin 2 is upwardly extended with multiple inverted T-shape connecting sheets 23 meshed with each other. The outer periphery of each heat dissipation fin 2 is outwardly extended with multiple latches 24 inserted respectively between adjacent two of the inverted T-shape connecting sheets 23. This makes the heat dissipation fins 2 firmly stacked and connected together.
[0037] Please refer to
[0038] In addition, when the annular wall 22 is pressed toward the heat pipe 1 by the ring 3, a part of the annular wall 22 is securely embedded into the peripheral wall 11 of the heat pipe 1 and the part of the annular wall 22 compressedly connects the peripheral wall 11 of the heat pipe 1. This further improves efficiency of heat dissipation and structural strength of the heat dissipation module 10.
[0039] Please refer to
[0040] First, as shown in the step e) of
[0041] Secondly, as shown in the step f) of
[0042] The size difference between the inner diameter of the cylindrical ring 32 and the outer diameter W2 of the annular wall 22 is between 0.05 mm and 0.1 mm. In this embodiment, a number of the ring 3 is, but not limited to, multiple.
[0043] In addition, a hardness of the ring 3 is greater than a hardness of the annular wall 22. For example, the annular wall 22 is made of copper and the ring 3 is made of a material with the hardness higher than that of copper, such as aluminum, iron, or stainless steel, etc.
[0044] Thirdly, as shown in the step g) of
[0045] Besides, in the step g), the annular wall 22 is a cylindrical annular wall 222. An inner diameter S1 of the cylindrical annular wall 222 is less than an outer diameter W1 of the heat pipe 1. The size difference between the inner diameter S1 of the cylindrical annular wall 222 and the outer diameter W1 of the heat pipe 1 is between 0.05 mm and 0.1 mm, so that the cylindrical annular wall 222 is connected compressedly to the peripheral wall 11. For example, when the outer diameter W1 of the heat pipe 1 is 8 mm, the inner diameter S1 of the cylindrical annular wall 222 is about 7.9 mm, but not limited to this.
[0046] Fourthly, as shown in the step h) of
[0047] In detail, in the step h), the ring 3 is adapted to sheathe the annular wall 22 in a compressive manner to make the peripheral wall 11 be pressed by the annular wall 22 to form a cylindrical annular groove 112. The cylindrical annular wall 222 is embedded into the cylindrical annular groove 112 in a compressive manner to make the annular walls 22 be embedded and connected compressedly to the peripheral wall 11.
[0048] In addition, in this embodiment, a number of the heat dissipation fin 2 is multiple. The heat dissipation fins 2 are adapted to sheathe the heat pipe 1 in a spacedly stacked manner through each through hole 21. An outer periphery of each heat dissipation fin 2 is upwardly extended with multiple inverted T-shape connecting sheets 23 meshed with each other. The outer periphery of each heat dissipation fin 2 is outwardly extended with multiple latches 24 inserted respectively between adjacent two of the inverted T-shape connecting sheets 23. This makes the heat dissipation fins 2 be firmly stacked and connected together.
[0049] Thereby, the heat dissipation module 10 of
[0050] It will be appreciated by persons skilled in the art that the above embodiments have been described by way of example only and not in any limitative sense, and that various alterations and modifications are possible without departure from the scope of the disclosure as defined by the appended claims.