The present invention relates to a sealing method and structure of a heat pipe, and more particular, to a method and a structure which seals one open end of a heat pipe without performing shrinkage process thereof, so that the sealed open end can still assemble with heat-dissipation fins.
As shown in
However, the objective for shrinking the end portion 10a into the shrunk end portion 100a is to decrease the volume and area of the sealing structure, such that it is advantageous for the subsequent soldering process. However, the shape of the shrunk end portion 10a will make the heat pipe 1a with one open end useless to connect the heat-dissipation fins. Therefore, the shrunk end portion 10a has to protrude out of fins and occupy space.
To resolve the problems caused by the conventional heat pipe structure as described above, the Applicant, with many years of experience in this field, has developed a sealing method and structure of heat pipe as described as follows.
The present invention provides a sealing method and structure of a heat pipe to resolve the problems of the conventional sealing structure, so that the sealed open end of the heat pipe can still connect with heat-dissipation fins. As a result, the heat pipe can be assembled with more heat-dissipation fins to prevent conventional useless shrunk end portion protruding therefrom.
The method of forming a sealing structure at an open end of a heat pipe includes shrinking the open end to form a shrunk end with a cone-shaped portion, pressing the shrunk end to form a pinched portion so that the shrunk end and regions adjacent to the cone-shaped portion are deformed exceedingly outer than a circumference of the heat pipe, soldering an edge of the shrunk end, and modifying the shrunk end and the regions without any deformation exceeded outer than an original annular size of heat pipe.
The sealing structure of a heat pipe includes a pinched portion with internal surfaces closely contacted, and at least two edges formed on the pinched portion to be flatly and smoothly extended from an end of the heat pipe.
These and other objectives of the present invention will become obvious to those of ordinary skill in the art after reading the following detailed description of preferred embodiments.
It is to be understood that both the foregoing general description and the following detailed description are exemplary, and are intended to provide further explanation of the invention as claimed.
These, as well as other features of the present invention, will become apparent upon reference to the drawings wherein:
Reference will now be made in detail to the preferred embodiments of the present invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers are used in the drawings and the description to refer to the same or like parts.
Referring to
To prepare the sealing structure, the open end of the heat pipe 1 is processed as follows.
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Accordingly, a sealing structure of the present invention can be obtained for use to connect with the heat-dissipation fins as shown in
Furthermore, in the preferred embodiment of the present invention, the press module 2 includes two opposite blocks to press on the cone-shaped portion 110 of the shrunk end 11, and results in a line-shaped pinched portion 111 and only two curve edges on the sides. However, if the press module 2 includes three or more blocks to press on the cone-shaped portion 110, more than two edges will be formed to provide more reliable connection with the heat-dissipation fins 4 at the through hole 40.
This disclosure provides exemplary embodiments of the present invention. The scope of this disclosure is not limited by these exemplary embodiments. Numerous variations, whether explicitly provided for by the specification or implied by the specification, such as variations in shape, structure, dimension, type of material or manufacturing process may be implemented by one of skill in the art in view of this disclosure.