This application claims priority to China Application Serial Number 202010144082.2, filed Mar. 4, 2020, which are herein incorporated by reference.
The present invention is related to a heat pipe structure.
For a traditional rotating shaft structure, an O-ring is used to seal a gap of the rotating shaft structure in order to avoid the leakage of lubricating fluid. However, there is friction between the O-ring and the rotating shaft, and the rotating shaft structure is easily damage because of the insufficient rigidity.
A heat pipe is used to conduct heat. The heat pipe is usually made of a material with great thermal conductivity, and heat pipe is in contact with a heat source to dissipate heat. Since the overall structural strength of the heat pipe is limited for the purpose of heat dissipation, it is not convenient to use an O-ring for sealing when the heat pipe is fixed in contact with the heat source.
Accordingly, how to provide a solution to solve the aforementioned problems becomes an important issue to be solved by those in the industry.
To achieve the above object, an object of the present invention is to provide a heat pipe structure that does not damage heat pipe itself while maintaining contact with the shaft connected to the heat source and keeping the heat pipe internally sealed.
One aspect of the present invention is related to a heat pipe structure used for cooling a heat source. The heat pipe structure includes a sleeve tube and a shaft. The sleeve tube includes an inner wall. The sleeve tube has a trench on the inner wall. The trench is at an outlet end of the sleeve tube. The trench extends in a circumferential direction of the sleeve tube. The shaft is connected to the heat source. The shaft is inserted into the sleeve tube from the outlet end such that the shaft is rotatable relative to the sleeve tube. The trench surrounds the shaft.
In one or more embodiments of the present invention, the sleeve tube is hollow. The sleeve tube further includes an outer wall. The inner wall and the outer wall define a chamber for accommodating a heat transfer fluid.
In one or more embodiments of the present invention, the trench is connected to the inner wall by a first peripheral edge and a second peripheral edge. The second peripheral edge is closer to the outlet end than the first peripheral edge. The first peripheral edge and the second peripheral edge are parallel to each other and extend along a circumferential direction of the sleeve tube. The trench is recessed between the first peripheral edge and the second peripheral edge.
In some embodiments, the trench includes an inclined surface, and the inclined surface extends at an angle from one of the first peripheral edge and the second peripheral edge.
In some embodiments, the trench further includes a vertical surface. The vertical surface is perpendicular to the inner wall. The inner wall extends from one of the first peripheral edge and the second peripheral edge, and the vertical surface and the inclined surface form the trench.
In some embodiments, the heat pipe structure further includes a lubricating layer between the trench and the shaft. The lubricating layer fills a gap between the shaft and the sleeve tube to seal the inside of the sleeve tube.
In some embodiments, a part of the lubricating layer is accommodated in the trench and in contact with the shaft. Another part of the lubricating layer is located between the shaft and a part of the inner wall outside the trench.
In some embodiments, the lubricating layer has a first liquid surface and a second liquid surface. The first liquid surface is opposite to the second liquid surface. The first liquid surface and the second liquid surface have edges connected to the shaft. The first liquid surface is located between the inner wall outside the trench and the shaft. The second liquid surface is located between the inclined surface and the shaft.
In some embodiments, the inclined surface is configured to extend from the second peripheral edge toward the first peripheral edge. The second liquid surface is configured to protrude toward the outlet end. The first liquid surface is configured to protrude along a direction opposite to the outlet end.
In some embodiments, the inclined surface is configured to extend from the first peripheral edge toward the second peripheral edge. Both the first liquid surface and the second liquid surface are recessed toward the inside of the lubricating layer.
In summary, for the heat pipe structure of the present invention, the inner wall of the sleeve tube has a circumferentially extending trench. The trench has an inclined surface, and the lubricating layer can be filled between the trench on the inner wall and the shaft connected to the heat source. The lubricating layer can seal the inside of the sleeve tube without damaging the heat pipe structure due to capillary force.
It is to be understood that both the foregoing general description and the following detailed description are by examples, and are intended to provide further explanation of the invention as claimed.
In order to make the above and other objects, features, advantages, and embodiments of the present invention more comprehensible, the description of the drawings is as follows:
The following embodiments are disclosed with accompanying diagrams for detailed description. For illustration clarity, many details of practice are explained in the following descriptions. However, it should be understood that these details of practice do not intend to limit the present invention. That is, these details of practice are not necessary in parts of embodiments of the present invention. Furthermore, for simplifying the drawings, some of the conventional structures and elements are shown with schematic illustrations. Also, the same labels may be regarded as the corresponding components in the different drawings unless otherwise indicated. The drawings are drawn to clearly illustrate the connection between the various components in the embodiments, and are not intended to depict the actual sizes of the components.
In addition, terms used in the specification and the claims generally have the usual meaning as each terms are used in the field, in the context of the disclosure and in the context of the particular content unless particularly specified. Some terms used to describe the disclosure are to be discussed below or elsewhere in the specification to provide additional guidance related to the description of the disclosure to specialists in the art.
Phrases “first,” “second,” etc., are solely used to separate the descriptions of elements or operations with same technical terms, not intended to be the meaning of order or to limit the invention.
Secondly, phrases “comprising,” “includes,” “provided,” and the like, used in the context are all open-ended terms, i.e. including but not limited to.
Further, in the context, “a” and “the” can be generally referred to one or more unless the context particularly requires. It will be further understood that phrases “comprising,” “includes,” “provided,” and the like, used in the context indicate the characterization, region, integer, step, operation, element and/or component it stated, but not exclude descriptions it stated or additional one or more other characterizations, regions, integers, steps, operations, elements, components and/or groups thereof.
Please refer to
Please refer to
As shown in
As shown in
Refer to
As shown in
In this embodiment, as shown in
As shown in
Please refer to
In
In
As shown in
As mentioned above, the shape of the trench 130 is V-shaped. Refer to
Further, as shown in
In
Specifically, the lubricating layer 170 includes a first liquid surface 171 and a second liquid surface 172, and the first liquid surface 171 is opposite to the second liquid surface 172. The first liquid surface 171 and the second liquid surface 172 have edges connected to the shaft 180. As shown in
Further, in this invention, the configuration of the inclined surface 133 is related to the surface tension of the lubricating layer 170.
In this embodiment, the first liquid surface 171 is configured to protrude toward the inside of the sleeve tube 110, and the second liquid surface 172 is configured to protrude toward the outlet end. In other words, the first liquid surface 171 is configured to protrude along a direction opposite to the outlet end. It related to the surface tension of the lubricating layer 170. For the case where the first liquid surface 171 and the second liquid surface 172 are convex, in this embodiment, the inclined surface 133 is configured to extend from the second peripheral edge 145 toward the first peripheral edge 140 at an angle β1, so that the inclined surface 133 is connected to the vertical surface 136 extending vertically from the first peripheral edge 140, and the inclined surface 133 and the vertical surface 136 form the V-shaped trench 130.
The surface tension between the lubricating layer 170 and the inner wall 120 can fix the lubricating layer 170 between the sleeve tube 110 and the shaft 180. As shown in
The surface tension is proportional to the circumference of the liquid surface. Since the depth of the trench 130 is much smaller than the width of the sleeve tube 110, the perimeter of the inner wall 120 in contact with the first liquid surface 171 and the perimeter of the inclined surface 120 in contact with the second liquid surface 172 are approximately the same, and the surface tension F1 corresponding to the first liquid surface 171 and the surface tension F2 of the second liquid surface 172 are approximately the same.
However, the position of the lubricating layer 170 achieves balance according to the axial component of the surface tension. The axial component refers to a component of the surface tension in the axial direction in which the sleeve tube 110 extends. As shown in
Therefore, by providing the trench 130 filled with the lubricating layer 170, the sleeve tube 110 of the heat pipe structure 100 and the shaft 180 does not have additional friction, thereby preventing the sleeve tube 110 from being damaged due to insufficient structural rigidity when rotating.
Please refer to
Similar to
Compared with the heat pipe structure 100 in
Therefore, as shown in
The angle between the first liquid surface 171′ and the inner wall 120 is α2, the angle between the second liquid surface 172′ and the inclined surface 133 is α2, and the angle between the inclined surface 133 and the axial direction in which the sleeve tube 110 extends is β2. In a specific example, the angle α2 is 30 degrees, and the angle β2 is also 30 degrees. In this case, the axial component T1′ of the surface tension F1′ is approximately proportional to the cosine 30 degrees, and the axial component T2′ of F2′ is approximately proportional to the cosine 60 degrees, then the axial component T1′ is greater than the 1.5 times axial component T2′.
In summary, the heat pipe structure of the present invention includes a sleeve tube and a shaft connected to a heat source, and the sleeve tube and the shaft form a rotating shaft structure. An extended trench is provided on the inner wall of the sleeve tube, and the trench has an inclined surface, so that the lubricating layer filled between the trench and the shaft cannot leak out from the outlet end of the sleeve tube due to capillary force caused by the lubricating layer. Accordingly, the inside of the sleeve tube is sealed. The lubricating layer remaining inside the sleeve tube can also lubricate the rotating shaft structure without damaging the shaft and sleeve of the heat pipe structure.
Although the present invention has been described in considerable detail with reference to certain embodiments thereof, it will be apparent to those skilled in the art that various modifications and variations can be made to the structure of the present invention without departing from the scope or spirit of the invention. In view of the foregoing, it is intended that the present invention cover modifications and variations of this invention provided they fall within the scope of the following claims.
Number | Date | Country | Kind |
---|---|---|---|
202010144082.2 | Mar 2020 | CN | national |
Number | Name | Date | Kind |
---|---|---|---|
4345642 | Ernst | Aug 1982 | A |
5796581 | Mok | Aug 1998 | A |
5847925 | Progl | Dec 1998 | A |
6097596 | Cipolla | Aug 2000 | A |
6125035 | Hood, III | Sep 2000 | A |
6185102 | Shou | Feb 2001 | B1 |
6253836 | Mitchell | Jul 2001 | B1 |
9332675 | Hsieh | May 2016 | B2 |
10352546 | Mochizuki | Jul 2019 | B2 |
10775842 | Peng | Sep 2020 | B1 |
10932393 | Paavola | Feb 2021 | B2 |
20070034355 | Kuo | Feb 2007 | A1 |
20090279262 | Huang | Nov 2009 | A1 |
20100163213 | Xu | Jul 2010 | A1 |
20120160457 | Kim | Jun 2012 | A1 |
20190301813 | Liao | Oct 2019 | A1 |
20200259231 | Omi | Aug 2020 | A1 |
20200378689 | Peng | Dec 2020 | A1 |