MOLDED HEAT TRANSFER COMPONENT HAVING VAPOR CHAMBER AND MOLDING METHOD THEREOF
20200340764 ยท 2020-10-29
Inventors
- Wei-Lin TSENG (Taipei City, TW)
- Yang-Ming SHIH (Taipei City, TW)
- Hung-Yun HSU (Taipei City, TW)
- Chi-Hang HUNG (Taipei City, TW)
Cpc classification
F28F3/12
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2255/143
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D2021/0029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2245/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28F2225/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F28D15/0233
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
Abstract
A molding method is provided. The method includes steps of: providing a mold having a male mold forming a column and a female mold forming a cavity; multiple ribs extending along a longitudinal direction of the column are formed on the column; inserting the male mold into the female mold to close the mold to make the column inserted in and separated from an inner surface of the cavity; filling a molten plastic material mixed with metal particles into the cavity so as to make the material fill a space between the column and the cavity; forming a molded heat transfer component covering the column by the solidified plastic material; taking out the molded heat transfer component with the column along the longitudinal direction of the column from the cavity; and separating the molded heat transfer component from the column along the longitudinal direction of the column.
Claims
1. A method for molding a heat transfer component having a vapor chamber, comprising: a) providing a mold having a male mold formed with a column and a female mold formed with a cavity, wherein multiple ribs extending along a longitudinal direction of the column are formed on a surface of the column; b) inserting the male mold into the female mold to close the mold to make the column inserted into the cavity and be out of contact with an inner surface of the cavity; c) filling a molten plastic material mixed with metal particles into the cavity so as to make the material fill a space between the column and the inner surface of the cavity; d) waiting for solidification of the plastic material to form a molded heat transfer component covering the column by the solidified plastic material; e) taking out the molded heat transfer component with the column along the longitudinal direction of the column from the cavity; and f) separating the molded heat transfer component from the column along the longitudinal direction of the column; wherein the molded heat transfer component includes a body, a vaper chamber is formed in the body by molding of the column, the vapor chamber has an opening, an inner wall of the vapor chamber is formed with a grooved wick structure with grooves which are perpendicular to the opening and parallel to each other by the ribs.
2. The method of claim 1, wherein an inner surface of the cavity is formed with slots, the molded heat transfer component is formed with fins by the slots, and the fins are parallel to each other and to the grooved wick structure.
3. The method of claim 1, wherein the column is made of graphite.
4. The method of claim 1, wherein a surface of the column is coated with a coating layer made of graphite material or diamond.
5. The method of claim 1, wherein the plastic material is mixed with graphite material.
6. The method of claim 4, wherein the graphite material is graphene particles or carbon nanocapsules.
7. The method of claim 5, wherein the graphite material is graphene particles or carbon nanocapsules.
8. The method of claim 1, further comprising steps of: g) sintering the metal particles after removing the solidified plastic material in the molded heat transfer component.
9. The method of claim 1, further comprising steps of: h) sealing up the opening after injecting a working fluid into the vapor chamber.
10. The method of claim 1, wherein the male mold is formed with multiple columns, and multiple vapor chambers are formed in the body by the columns.
11. The method of claim 1, wherein in the step c), both the female mold and the male mold are slightly loosened when filling the plastic material, and then tightly close the female mold and the male mold when the plastic material has been filled into the space between the column and the inner surface of the cavity
12. A molded heat transfer component having a vapor chamber, comprising: a body, made of metal in one piece, having a vapor chamber with an opening, and an inner wall of the vapor chamber being formed with a grooved wick structure with grooves which are perpendicular to the opening and parallel to each other by the ribs.
13. The molded heat transfer component of claim 12, wherein a surface of the body is formed with fins, and the fins are parallel to each other and to the grooved wick structure.
14. The molded heat transfer component of claim 12, wherein the opening is provided with a cap.
15. The molded heat transfer component of claim 14, wherein the vapor chamber is injected with a working fluid.
16. The molded heat transfer component of claim 12, wherein the body is embedded with distributed graphite material.
17. The molded heat transfer component of claim 12, wherein a surface of the body is embedded with distributed graphite material.
18. The molded heat transfer component of claim 16, wherein the graphite material is graphene particles or carbon nanocapsules.
19. The molded heat transfer component of claim 17, wherein the graphite material is graphene particles or carbon nanocapsules.
20. The molded heat transfer component of claim 12, wherein the body is formed with multiple vapor chambers, and each of the vapor chambers is of a tubular shape.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0018]
[0019]
[0020]
[0021]
[0022]
[0023]
DETAILED DESCRIPTION OF THE INVENTION
[0024] Please refer to
[0025] Please refer to
[0026] Please refer to
[0027] In step c, fill a molten plastic material 20 mixed with metal particles into the cavity 101 so as to make the plastic material 20 fill a space between the column 210 and the inner surface of the cavity 101. The plastic material 20 can be selectively mixed with graphite material. The graphite material may be graphene particles or carbon nanocapsules (CNC). Preferably, both the female mold 100 and the male mold 200 are slightly loosened to make the plastic material easy to flow into the cavity 101 when filling the plastic material 20, and then tightly close the female mold 100 and the male mold 200 to make the plastic material 20 molded to form a shape when the plastic material 20 has been filled into the space between the column 210 and the inner surface of the cavity 101.
[0028] In step d, wait for solidification of the plastic material 20 to form a green part of a molded heat transfer component 300 covering the column 210. In detail, the molded heat transfer component 300 formed by steps a-d is composed of the plastic material 20 and metal particles. When the plastic material 20 is mixed with graphite material, the graphite material is also be distributed in the molded heat transfer component 300. The molded heat transfer component 300 includes a body 310. A vaper chamber 320 is formed in the body 310 by molding of the column 210. The vapor chamber 320 has an opening 321. An inner wall of the vapor chamber 320 is formed with a grooved wick structure 330 with grooves which are perpendicular to the opening 321 and parallel to each other by the ribs 211. Also, the ribs 211 with tiny size can form the grooved wick structure 330 with tiny size.
[0029] Please refer to
[0030] In step f, separate the molded heat transfer component 300 from the column 210 along the longitudinal direction of the column 210. Because the ribs 211 are parallel, the grooved wick structure 330 can escape from the molded heat transfer component 300 while the molded heat transfer component 300 is being longitudinally moved along the column 210. When the male mold 200 is formed with multiple columns 210 as shown in
[0031] Preferably, the method for molding a heat transfer component 300 having a vapor chamber 320 further includes following steps:
[0032] In step g, sinter the metal particles after removing the solidified plastic material 20 in the molded heat transfer component 300.
[0033] Please refer to
[0034] Please refer to
[0035] Please refer to
[0036] Please refer to
[0037] The molded heat transfer component 300 can be formed with fins 340 which are parallel to each other and to the grooved wick structure 330.
[0038] The molded heat transfer component 300 with a vapor chamber 320 in one piece can be formed by the method for molding a heat transfer component 300 having a vapor chamber 320. Thus, it is not required to assemble a wick stricture onto the vapor chamber 320 as conventional manufacturing methods. The invention can effectively reduce manufacturing costs and shorten manufacturing time.
[0039] 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 invention as defined by the appended claims.