1. Field of the Invention
The present invention generally relates to a heat pipe, and more particularly to a heat pipe with a dual capillary structure and a method of manufacturing the heat pipe.
2. Description of Prior Art
As the speed of a central processing unit (CPU) of a computer becomes increasingly higher, more heats are generated by a heat plate, and a traditional heat dissipating device composed of an aluminum extruded heat sink and a fan can no longer satisfy the requirements of present central processing units. Therefore, manufacturers continuously develop heat pipes with a high thermal conducting performance, and integrate the heat pipes with heat sinks to overcome the present heat dissipating issue. However, the structural design of the heat pipe and the quantity of a working fluid are related to the heat conducting speed and performance of the heat pipe. If the quantity of working fluid is too much and a gas channel in the heat pipe is reduced in size, the heat conducting performance will be affected greatly. On the other hand, if the quantity of the working fluid is too little, the interior of the heat pipe will be dried out to damage or ruin the heat pipe. Based on the aforementioned reasons, the inventor of the present invention developed a heat pipe and its manufacturing method in accordance with the present invention.
A traditional heat pipe with a dual capillary structure as disclosed in R.O.C. Publication No. 200626862 comprises a metal tube, a capillary structure and a working fluid, wherein the capillary structure comprises a plurality of meshed silk layers disposed radially along the metal tube, and the meshed silk layers include at least one flat silk net and a folded silk net disposed around the circumference of the metal tube, and the folded silk net forms a passage along its axial direction in the metal tube, and the working fluid is filled into the metal tube.
In the traditional heat pipe with a dual capillary structure, the capillary structure is formed by combining a flat silk net and a folded silk net, and there are existing problems in its practical use. Since the capillary structure is a silk net, therefore the structural strength is insufficient, and a collapse of the heat pipe usually occurs during practical operations and affects the heat conducting performance. Furthermore, these silk nets come with a rough surface, and thus causing a stopping effect to an extent regardless of a gas flow or a liquid flow. As a result, the fluid in the heat pipe cannot flow at a high speed or dissipate heat easily.
The manufacturing method of the heat pipe as disclosed in the aforementioned prior art includes the following steps of: providing at least one flat silk net and a folded sheet silk net; coiling the silk net layer by layer into a cylindrical body; and placing the cylindrical body into the metal tube. Since the external diameter of a general heat pipe is not too large, it is not easy to install the silk net type capillary structure into the metal tube, and it is even more difficult to manufacture the heat pipe by combining and attaching the capillary structure with the internal wall of the metal tube. In the aforementioned traditional method, the yield rate of the heat pipe is poor and such method definitely requires improvements.
In view of the shortcomings of the prior art, the inventor of the present invention based on years of experience in the related industry to conduct extensive researches and experiments, and finally developed a heat pipe with a dual capillary structure and its manufacturing method in accordance with the present invention.
It is a primary objective of the present invention to overcome the foregoing shortcomings by providing a heat pipe with a dual capillary structure and its manufacturing method, and a dense capillary structure is formed in a heat-absorption part of the metal tube, and an internal tube and a channel with a large containing space are formed in the remaining portion of the metal tube, not only avoiding the dry-out phenomenon of the heat pipe, but also providing a better structural strength to prevent a collapse of the capillary structure effectively, enhancing the heat conducting speed and performance of the heat pipe, and improving the yield rate of the heat pipe.
To achieve the foregoing objective, the present invention provides a heat pipe with a dual capillary structure, comprising a metal tube, a heat-absorption part, a first capillary, a second capillary and a working fluid. The metal tube forms a chamber and the heat-absorption part is formed at a section of the metal tube, and the first capillary is formed by sintering a metal powder and disposed corresponding to the heat-absorption part in the chamber. The second capillary is contained in the chamber and connected to an end of the first capillary, and includes an internal tube and a capillary tissue disposed between the internal tube and the internal wall of the metal tube. The working fluid is filled into the chamber.
To achieve the foregoing objectives, the present invention provides a method of manufacturing a heat pipe with a dual capillary structure, comprising the steps of:
(a) providing a metal tube;
(b) inserting a core rod into the metal tube, and forming a gap between the external periphery of the core rod and the internal wall of the metal tube;
(c) filling a metal powder in the gap;
(d) heating and sintering the metal powder to form a first capillary in the metal tube;
(e) removing the core rod;
(f) providing a second capillary;
(g) placing the second capillary into the metal tube, and connecting the second capillary to an end of the first capillary; and
(h) filling a working fluid into the metal tube, and removing air and sealing an opening of the metal tube.
The technical characteristics, features and advantages of the present invention will become apparent in the following detailed description of preferred embodiments with reference to the accompanying drawings, and the preferred embodiments are used for illustrating the present invention only, but not intended to limit the scope of the present invention.
Referring to
Referring to
(a) Provide a metal tube 10 (as shown in
(b) Insert a core rod 5 into the metal tube 10, and form a gap 51 between the external periphery of the core rod 5 and the internal wall of the metal tube 10 (as shown in
(c) Fill a metal powder in the gap 51 (as shown in
(d) Heat and sinter the metal powder to form a first capillary 20 in the metal tube 10, wherein the circular first capillary 20 is formed on the internal wall and at a bottom position of the metal tube 10 by the filled metal powder by a sintering process.
(e) Remove the core rod 5. In this step, the core rod 5 is shaken sideway to loosen the first capillary 20 and the core rod 5, and then the core rod 5 is removed from the metal tube 10 to form a hollow in the heat-absorption part 12.
(f) Provide a second capillary 30 (as shown in
(g) Place the second capillary 30 into the metal tube 10, and connect the second capillary 30 with an end of the first capillary 20. In this step, the second capillary 30 is passed into the metal tube 10, and the bottom end of the second capillary 30 is attached with the top end of the first capillary 20 (as shown in
(h) Fill a working fluid 40 into the metal tube 10, remove air in the metal tube 10, and seal the metal tube 1O. In this step, the metal tube 10 is erected or inclined, and then a working fluid 40 such as pure water is filled into the chamber 11 of the metal tube 10 (as shown in
Referring to
Referring to
In summation of the description above, the heat pipe with a dual capillary structure and its manufacturing method in accordance with the present invention complies with the patent application requirements and thus is duly filed for patent application.
While the invention is described in by way of examples and in terms of preferred embodiments, it is to be understood that the invention is not limited thereto. On the contrary, the aim is to cover all modifications, alternatives and equivalents falling within the spirit and scope of the invention as defined by the appended claims.