METHOD FOR MANUFACTURING A PLATE-TYPE HEAT PIPE AND A PLATE-TYPE HEAT PIPE OBTAINED THEREBY
A method for manufacturing a plate-type heat pipe includes providing an elongated engaging plate and a base plate. A plurality of supporting members is secured on a top surface of the base plate. A second and third metal powders are filled onto the base plate, surrounding lower ends of the supporting members. The second and third metal powders are heated to obtain a first wick structure and a second wick structure. The first wick structure adheres to the top surface of the base plate and the second wick structure adheres to the top surface of the first wick structure. The base plate and the supporting members are secured to a bottom surface of the engaging plate to obtain a workpiece. A working fluid is injected into the workpiece and the workpiece is vacuumed to obtain the plate-type heat pipe.
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1. Field of the Invention
The present invention relates to a method for manufacturing a plate-type heat pipe, and more particularly to a method for manufacturing a plate-type heat pipe which has a plurality of supporting members interconnecting opposite sides thereof. The present invention also relates to a plate-type heat pipe obtained by the method.
2. Description of Related Art
Generally, plate-type heat pipes efficiently dissipate heat from heat-generating components such as a central processing unit (CPU) of a computer. Referring to
It is therefore desirable to provide a method for manufacturing a plate-type heat pipe and a plate-type heat pipe obtained by the method, which has a good heat conductivity and can overcome the limitations described.
SUMMARY OF THE INVENTIONA method for manufacturing a plate-type heat pipe includes providing an elongated engaging plate and a base plate with a trough therein. A plurality of supporting members is provided by sintering a first metal powder and is secured on a top surface of the base plate. A second metal powder and a third metal powder are filled onto the base plate to enclose bottom ends of the supporting members. The base plate and the second and third metal powders are then heated, whereby the second metal powder and the third metal powder are turned into a first wick structure and a second wick structure respectively. The first wick structure securely adheres to the top surface of the base plate and the second wick structure securely adheres to the top surface of the first wick structure. The base plate and the supporting members are then secured to a bottom surface of the engaging plate to obtain a workpiece. Finally a working fluid is injected into a space between the base plate and the engaging plate and the space is vacuumed via an opened end of the workpiece. The opened end of the workpiece is sealed to obtain the plate-type heat pipe.
A plate-type heat pipe comprises a base plate defining a trough therein and an engaging plate hermetically secured on a top of the base plate. A plurality of supporting members is received in the heat pipe and interconnects the base plate and the engaging plate. The supporting members are formed by sintering a metal powder. First and second wicks are provided on a top face of the base plate in the trough. The first wick is located over the second wick and has a pore size larger than that of the second wick. The first and second wicks surround lower ends of the supporting members.
Other advantages and novel features will become more apparent from the following detailed description of preferred embodiments when taken in conjunction with the accompanying drawings.
Many aspects of the present embodiments can be better understood with reference to the following drawings. The components in the drawings are not necessarily drawn to scale, the emphasis instead being placed upon clearly illustrating the principles of the present embodiments. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The supporting members 16 are spaced from each other. The supporting members 16 are perpendicular to, interconnect and abut against the engaging plate 11 and the base plate 12 to enhance stability and strength of the plate-type heat pipe 10. The first wick structure 14 comprises a plurality of pores which communicate with pores of the second wick structure 15. The pores of the first wick structure 14 each have a pore size smaller than that of the pores of the second wick structure 15.
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It is believed that the present embodiments and their advantages will be understood from the foregoing description, and it will be apparent that various changes may be made thereto without departing from the spirit and scope of the invention or sacrificing all of its material advantages, the examples hereinbefore described merely being preferred or exemplary embodiments of the invention.
Claims
1. A method for manufacturing a plate-type heat pipe comprising:
- a) offering an elongated engaging plate and a base plate with a trough therein;
- b) securing a plurality of supporting members formed by sintering a first metal powder on a top surface of the base plate;
- c) filling a second metal powder and a third metal powder onto the base plate, the second and third powder enclosing bottom ends of the supporting members;
- d) heating the base plate and the second and third metal powder at a high temperature to obtain a first wick structure by the second metal powder and a second wick structure by the third metal powder, wherein the first wick structure securely adheres to the top surface of the base plate and the second wick structure securely adheres to the top surface of the first wick structure;
- e) securing the base plate and the supporting members to a bottom surface of the engaging plate to obtain a workpiece; and
- f) injecting a work fluid into the workpiece, vacuuming the workpiece, and hermetically sealing the sintered workpiece to obtain the plate-type heat pipe.
2. The method for manufacturing a plate-type heat pipe as claimed in claim 1, wherein the supporting members tightly abut against the engaging plate and the base plate.
3. The method for manufacturing a plate-type heat pipe as claimed in claim 2, wherein at step c), a plurality of fourth metal powder is applied on a periphery of each supporting member, and at step d) the fourth metal powder is heated to form a third wick structure on the periphery of the each supporting member.
4. The method for manufacturing a plate-type heat pipe as claimed in claim 3, wherein the third wick structure abuts against the bottom surface of the engaging plate and connects with the second wick structure.
5. The method for manufacturing a plate-type heat pipe as claimed in claim 4, wherein the third wick structure has a plurality of pores communicating with those of the second wick structure.
6. The method for manufacturing a plate-type heat pipe as claimed in claim 5, wherein at step c), a plurality of fifth metal powder is applied on a bottom surface of the engaging plate and at step d), the fifth metal powder is heated to form a fourth wick structure, pores of the fourth wick structure communicating with the pores of the third wick structure.
7. The method for manufacturing a plate-type heat pipe as claimed in claim 1, wherein the supporting members are porous and abut against the engaging plate and the base plate.
8. The method for manufacturing a plate-type heat pipe as claimed in claim 7, wherein at step c), a plurality of sixth metal powder is applied on a bottom surface of the engaging plate and at step d), the sixth metal powder is heated to form a fifth wick structure, pores of the fifth wick structure communicating with the pores of the supporting members.
9. The method for manufacturing a plate-type heat pipe as claimed in claim 7, wherein the third metal powder comprises a particle size exceeding that of the second metal powder.
10. The method for manufacturing a plate-type heat pipe as in claim 1, wherein the supporting members are spaced from each other and perpendicular to the engaging plate and the base plate.
11. A plate-type heat pipe comprising:
- a base plate defining a trough in a top surface thereof;
- an engaging plate secured on the top surface of the base plate over the trough;
- a plurality of supporting members interconnects the top surface of the base plate in the trough and a bottom surface of the engaging plate for reinforcing a strength of the plate-type heat pipe;
- a first wick structure provided on the top surface of the base plate in the trough;
- a second wick structure provided on a top surface of the first wick structure, wherein the second wick structure has a pore size larger than that of the first wick structure.
12. The plate-type heat pipe as in claim 11, wherein the supporting members each are a solid metal post.
13. The plate-type heat pipe as in claim 12, wherein a third wick structure is formed on a periphery of each of the supporting members.
14. The plate-type heat pipe as in claim 13, wherein a fourth wick structure is formed on the bottom surface of the engaging plate.
15. The plate-type heat pipe as in claim 11, wherein the supporting members each are made of sintered metal powder and have a plurality of pores therein.
16. The plate-type heat pipe as in claim 15, wherein a fifth wick structure is formed on the bottom surface of the engaging plate.
Type: Application
Filed: Sep 19, 2008
Publication Date: Mar 25, 2010
Applicant: FOXCONN TECHNOLOGY CO., LTD. (Tu-Cheng)
Inventor: CHUEN-SHU Hou (Tu-Cheng)
Application Number: 12/233,602
International Classification: F28D 15/00 (20060101); B21D 53/04 (20060101);