HEAT PIPE AND MANUFACTURING METHOD FOR THE SAME
A heat pipe containing a sintered powder wick and a corresponding manufacturing method improves the capillarity action of the heat pipe. Through sintering copper powder onto the surface of a copper wick, an evenly sintered result can be obtained. Then, the wick with sintered surface is placed into a hollow copper pipe to provide sufficient capillary force to a working fluid.
1. Field of the Invention
The present invention relates to a heat pipe, and more specifically, to a heat pipe containing a sintered powder wick and manufacturing method for the same.
2. Description of the Prior Art
Since many electronic information products have evolved to be lighter, smaller, and with more functions, the working frequency of electronic elements rises correspondingly. High power consumption and heat production are accompanying problems. Since cooling elements are becoming more important, the cooling efficiency of cooling elements needs to be raised. Besides taking metals having high thermal conducting efficiency like copper or aluminum as thermal conductors and using cooling fans to improve air convection, heat pipes are becoming more widely applied to cool information products.
A heat pipe works by dissipating latent heat generated when a working fluid undergoes a phase change. The heat conductivity of a typical heat pipe is about ten to a hundred times that of plain materials with high thermal conducting efficiency, such as copper. A heat pipe can effectively solve a heat problem in a small space and also has the advantages of noiselessness and low power consumption. Typical heat pipes can be categorized as groove, sintered powder, mesh, fiber, and hybrid. Each structure has its advantages and disadvantages. For example, the groove heat pipe has a relatively large heat transferring ability but poor capillary effect; the capillary effect of a mesh heat pipe is degraded in the bent part of the pipe, as is that of the fiber heat pipe since the density of the fibers in the bent part differs.
As to the better capillary action of a sintered heat pipe to that of other types of heat pipes, please refer to
Please refer to
Step S100: dispose a metallic catalytic stick (generally a stainless steel stick or an aluminum stick) in a hollow copper pipe that is to be sintered;
Step S110: fill copper powder into space between the hollow copper pipe and the metallic catalytic stick and heat the powder; with catalytic action of the catalytic stick, the copper powder is sintered to cover the inner wall of the hollow copper pipe and the catalytic stick is removed after the sintering is finished;
Step S120: vacuate the sintered copper pipe and add a working fluid;
Step S130: seal the two ends of the copper pipe and connect the two ends of the copper pipe to a heat source and a heat sink respectively.
As Step S110 shows, the manufacturing process of a conventional sintered heat pipe uses an aluminum stick as a catalyst that can sinter copper powder onto the inner wall of the copper pipe. Since the sintering process is not easy to control, the distribution of the sintered powder is likely to be uneven. This seriously lowers the efficiency of the conventional sintered heat pipe.
SUMMARY OF THE INVENTIONAn objective of the present invention is to provide a heat pipe containing a sintered powder wick and manufacturing method for the same to solve the above problem.
The heat pipe in the present invention, includes a metallic pipe; and a wick disposed in the metallic pipe and covered with sintered powder.
Another object of the present invention is to provide a method for manufacturing a heat pipe containing a sintered powder wick. The method in the present invention includes steps of sintering copper powder to cover a surface of a wick, placing the wick covered with the sintered copper powder in a metallic pipe, and sealing the two ends of the metallic pipe.
These and other objectives of the present invention will no doubt become obvious to those of ordinary skill in the art after reading the following detailed description of the preferred embodiment that is illustrated in the various figures and drawings.
BRIEF DESCRIPTION OF THE DRAWINGS
The two ends 122, 124 of the heat pipe 110 in
Please refer to
Please refer to
Step S200: sinter copper powder to cover a surface of a wick;
Step S210: dispose the wick covered with the sintered copper powder in a metallic pipe;
Step S220: vacuate the metallic pipe containing the wick;
Step S230: add a working fluid into the metallic pipe;
Step S240: seal the two ends of the metallic pipe;
Step S250: change the shape of the metallic pipe.
Please refer to
In addition, the shape of the heat pipe can be changed to apply the heat pipe of the present invention to various situations, as in Step S250. Generally, changing the shape of the heat pipe includes pressing and extruding the heat pipe where the shape is selected from a group consisting of pressing and extruding the metallic pipe, and folding the heat pipe. Step S250 further comprises changing the shape of the metallic pipe to form a drop height of the shape of the metallic pipe.
The manufacturing method of the present invention sinters a metallic powder to cover an outer surface of a wick to obtain an evenly sintered result. By the sintered surface of the wick, which is disposed in a hollow copper pipe, the capillary force can sufficiently drive the working fluid back to the heat source end. In such way, the efficiency of the sintered heat pipe can be remarkably improved compared with the conventional sintered heat pipe.
Those skilled in the art will readily observe that numerous modifications and alterations of the device and method may be made while retaining the teachings of the invention. Accordingly, the above disclosure should be construed as limited only by the metes and bounds of the appended claims.
Claims
1. A heat pipe, comprising:
- a metallic pipe; and
- a wick disposed in the metallic pipe and covered with sintered powder.
2. The heat pipe of claim 1 wherein the metalic pipe is a hollow pipe with a smooth inner wall.
3. The heat pipe of claim 1 wherein the inner wall of the metallic pipe is covered with sintered powder.
4. The heat pipe of claim 1 wherein the wick is a metallic stick.
5. The heat pipe of claim 4 wherein the wick is a copper stick.
6. The heat pipe of claim 1 wherein the wick is a bundle of fibers.
7. She heat pipe of claim 6 wherein the bundle of fibers are copper fibers.
8. The heat pipe of claim 6 wherein the fiber is a fiber capable of being sintered with metal.
9. The heat pipe of claim 1 wherein the metallic pipe is a copper pipe.
10. The heat pipe of claim 1 wherein the metallic pipe contains a working fluid.
11. The heat pipe of claim 1 wherein the metallic pipe is a sealed pipe.
12. The heat pipe of claim 1 wherein the sintered powder is made of copper powder.
13-21. (canceled)
Type: Application
Filed: Oct 20, 2005
Publication Date: Feb 22, 2007
Inventor: Ming-Chih Chen (Taipei Hsien)
Application Number: 11/163,475
International Classification: F28D 15/00 (20060101);