The present invention relates to a sealing structure of a heat pipe, and more particularly to a method for manufacturing the same.
Today, heat pipes are among the chief instruments used to keep electronic components such as central processing units (CPUs) working within a tolerable range of temperature. A heat pipe usually includes a cylindrical body with a cavity defined therein and a quantity of working fluid contained in the cavity. The heat pipes transfer heat originating at the CPUs away through phase transition of the working fluid, and the cavities inside the pipes are vacuum-exhausted to form a vacuum thus making the working fluid easy to evaporate. The more perfect the vacuum in the heat pipe, the lower the temperature at which the heat pipe begins to work. Thus, it is necessary for the heat pipe to be hermetically sealed after being vacuum-exhausted. A sealing structure is formed to hermetically seal the heat pipe. The sealing structure of the heat pipe is one of key factors in determining quality and performance of the heat pipe. Many researchers in this area are looking for a method for manufacturing a sealing structure, which may keep the pressure in the heat pipe within a certain range.
A conventional sealing structure 12 of a heat pipe 10 is shown in
What is needed, therefore, is a sealing structure for a heat pipe and a method for manufacturing the same, which can overcome the above-described disadvantage of the prior art.
A sealing structure formed at an end of a heat pipe, comprises a two-layer structure, which can be divided into two walls and a rib interconnecting the walls together, wherein the rib extends between the two walls. A method for manufacturing the sealing structure comprises following steps: (1) providing a metallic pipe with an end sealed and an opposite open portion; (2) pressing the open portion of the pipe to form the two-layered sealing structure by using a pair of pressing molds, wherein the pair of pressing molds comprises a first pressing mold and a second pressing mold, the first mold having an M-shaped convex portion and the second mold having a corresponding M-shaped concave portion for receiving the convex portion.
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, in which:
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 embodiment. Moreover, in the drawings, like reference numerals designate corresponding parts throughout the several views.
Referring to
The two walls 112 are bent slightly inwards towards to each other, and each has a larger length H than a length h of the rib 114. The walls 112 comprise two transitional portions 116 connecting the walls 112 to ends of the rib 114. Each transitional portion 116 has an arc-shaped figuration, preferably with a streamlined outer figuration to reduce stress concentration caused by deformation of a pipe for forming the sealing structure 110. The rib 114 protrudes forwards from a middle part of the sealing structure 110 and is used to increase the bonding strength of the two layers of the sealing structure 110.
A method for manufacturing the sealing structure 110 comprises the following steps.
Step (1) Providing a metallic pipe with a bottom end sealed and a top open portion 127 as shown in
Step (2) Transversely pressing the top open portion 127 of the pipe to form the sealing structure 110, which has an M-shaped cross section and a tip of the rib 114 extending in coincidence with a center of the pipe.
As shown in
The first mold 210 has a substantially convex projection 212 with a depressed portion 214 in form of a groove defined in a middle part thereof. Thus, the first mold 210 has a substantially M-shaped convex contacting surface. The second mold 220 has a concave portion 222 with a small protrusion 224 projected outwardly from a middle part thereof. Thus, the second mold 220 has a substantially M-shaped concave contacting surface. The depressed portion 214 and the protrusion 224 are in line with each other. The depressed portion 214 has a depth shorter than a height of the convex portion 212, and the protrusion 224 has a lower height in comparison with a depth of the concave portion 222. This can prevent the open end 127 from having a severe deformation during the pressing operation thereof, thereby to reduce the stress concentration thereat.
Therefore, the top open portion 127 of the vertically extending pipe is placed between the first mold 210 and the second mold 220 in such a manner that the protrusion 224 of the second mold 220 points to a center of the pipe and a bottom of the depressed portion 214. The first mold 210 is then moved towards the second mold 220, whereby a wall of the top open portion 127 of the pipe is cramped toward the concave portion 222 and the protrusions 224. The top open portion 127 of the pipe is pressed into a double-layered M-shaped structure with the rib 114 extending from a middle part thereof. After this step (2), the top open portion 127 of the pipe is initially closed.
Then the sealing structure 110 can be further processed by a welding step to melt an outer, top part of the sealing structure 110 to seal a slit between the two layers of the sealing structure 110, thereby assuring more perfect vacuum in the heat pipes 100.
As shown in
The sealing structure 110 of the preferred embodiment of the present invention and the conventional sealing structure 12 (shown in
Table 1 reveals that the heat pipe 100 in accordance with the preferred embodiment of the present invention provides a sealing structure 110 having better bonging strength than the conventional sealing structure 12 and therefore assures more perfect vacuum in the heat pipe 100.
As described above, the presence of the rib 114 can efficiently increase the bonding strength between the two layers of the sealing structure 110. In the preferred embodiment, the rib 114 projects forward from the sealing structure 110 along a same direction to that of the two walls 120. For another embodiment, a rib may projects outward from a sealing structure in a direction opposite to that of the two walls. As shown in
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.
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