HEAT PIPE WITH ULTRA-THIN CAPILLARY STRUCTURE
A heat pipe with an ultra-thin capillary structure includes a tube body which is hollow and flat, and a capillary structure which is in the tube body and is shaped as a thin plate. The capillary structure has an adhering surface attached on a partial portion of an inner wall of the tube body, and a forming surface corresponding to the adhering surface. A vapor channel formed between the forming surface and the inner wall of the tube body; wherein the forming surface further includes an abutting surface elongated along a longitudinal direction of the vapor channel and at least one capillary transmission surface extending from a side of the abutting surface to connect to the adhering surface the steam channel, and the capillary transmission surface is gradually inclined between the adhering surface and the abutting surface.
1. Field of the Invention
The present invention generally relates to a miniaturized heat pipe, more particularly to a heat pipe with an ultra-thin capillary structure.
2. Description of the Prior Art
Nowadays, electronic products are tending to small volumes in order to be easily carried. Since the volumes are smaller, some kinds of electronic products that need to dissipate heat inside should focus on the issue of the volume of a heat pipe. In order to minimize the heat pipe in the electronic products, an ultra-thin heat pipe, which has thickness under 1.5 mm, is then developed.
However, a capillary structure inside the ultra-thin heat pipe shall follow the design tendency to be smaller as well. To design the capillary structure, it may focus on the inner space of a heat pipe in order to avoid that the inner space is too small to let air or fluid be through. That is, when an ultra-thin heat pipe is manufactured in a sintering process, its volume is designed very small to cause that metal powders are not able to be through a gap between a mandrel bar and the inner wall of the ultra-thin heat pipe, and part of the metal powders may not be positioned in the ultra-thin heat pipe. That is why a powdered capillary structure of an ultra-thin heat pipe is only formed at a location of the heat pipe without completion in prior arts. As a conclusion, a sectional surface of an ultra-thin heat pipe is hardly filled with the powdered capillary structure in prior arts. As it can be seen, this kind of powdered capillary structure may be short of a better vaporization surface area, a better condensation surface area, a better liquid transmission sectional surface area, a fluent vapor channel, and a reinforced supporting structure, and we would know the prior ultra-thin heat pipe should be improved in the aspect of heat transmission.
Accordingly, how to improve the heat transmission of an ultra-thin heat pipe in prior arts is an important issue to the people skilled in the art.
SUMMARY OF THE INVENTIONIn one aspect, the present invention is to provide a heat pipe with an ultra-thin capillary structure. It is to form a miniaturized capillary structure on an inner wall of a heat pipe in order to maintain an enough space of a vapor channel for heat exchange, for example vaporization and condensation. Furthermore, the heat pipe has a largest capillary surface area and a liquid transmission sectional area, so as to approach the aspect with a miniaturized heat pipe.
In order to perform the above aspect, a heat pipe with an ultra-thin capillary structure provided by the present invention comprises a tube body which is hollow and flat, and a capillary structure which is in the tube body and is shaped as a thin plate. The capillary structure has an adhering surface attaching on a partial portion of an inner wall of the tube body, and a forming surface corresponding to the adhering surface. A vapor channel is formed between the forming surface and the inner wall of the tube body; wherein the forming surface further comprises an abutting surface elongated along a longitudinal direction of the vapor channel and at least one capillary transmission surface extending from a side of the abutting surface to connect to the adhering surface , and the capillary transmission surface is gradually inclined between the adhering surface and the abutting surface.
The objects, spirits, and advantages of the preferred embodiments of the present invention will be readily understood by the accompanying drawings and detailed descriptions, wherein:
Following preferred embodiments and figures will be described in detail so as to achieve aforesaid objects.
Please refer to
As shown in
In the preferred embodiment of the present invention, the forming surface 21 has an abutting surface 210 that is attached on the inner surface of the upper wall 10 and elongated along a longitudinal direction of the vapor channel 100, and at least one capillary transmission surface 211 that extends from a side of the abutting surface 210 to connect to the adhering surface 20. In particular, the capillary transmission surface 211 is gradually inclined between the adhering surface 20 and the abutting surface 210. The benefits of the inclined capillary transmission surface 211 are to increase a surface area between the capillary structure 2 and the vapor channel 100, reduce flow resistance of vapor flow, and increase a capillary surface area of working fluid flowing back to the capillary structure 2, in order to achieve a better heat-exchange rate, even though the capillary structure 2 is thinned. As it can be seen, the present invention discloses that two sides of the capillary structure 2 form the two vapor channels 100 and the two capillary transmission surfaces 211, respectively. As shown in
As shown in
As shown in
Accordingly, by means of above described structure, a heat pipe with an ultra-thin capillary structure is achieved.
Although the invention has been disclosed and illustrated with reference to particular embodiments, the principles involved are susceptible for use in numerous other embodiments that will be apparent to persons skilled in the art. This invention is, therefore, to be limited only as indicated by the scope of the appended claims.
Claims
1. A heat pipe with an ultra-thin capillary structure, comprising:
- a tube body (1), being hollow and flat; and
- a capillary structure (2), being in the tube body (1) and shaped as a thin plate, having an adhering surface (20) attached on a partial portion of an inner wall of the tube body (1), and a forming surface (21) corresponding to the adhering surface (20), a vapor channel (100) being formed between the forming surface (21) and the inner wall of the tube body (1);
- wherein the forming surface (21) further comprises an abutting surface (210) elongated along a longitudinal direction of the vapor channel (100), and at least one capillary transmission surface (211) extending from a side of the abutting surface (210) to connect to the adhering surface (20), the capillary transmission surface (211) being gradually inclined between the adhering surface (20) and the abutting surface (210).
2. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein a thickness of the flat tube body (1) is under 0.5 mm.
3. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein the capillary structure (2) is made by selecting from a group consisting of knit, fiber and sintered metal powders and their combination.
4. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein a porosity of the forming surface (21) is gradually reduced as the forming surface (21) is extended toward the adhering surface (20).
5. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein two sides of the abutting surface (210) have two capillary transmission surfaces (211), respectively.
6. The heat pipe with an ultra-thin capillary structure according to claim 5, wherein the two capillary transmission surfaces (211) are symmetrical to each other.
7. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein a bare area (22) is formed at a portion of the capillary structure (2) by removing corresponding capillary transmission surface.
8. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein the capillary transmission surface (211) has a plurality of air flow holes (220) exposing the inner wall of the tube body (1).
9. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein the capillary transmission surface (211) has a plurality of cut-outs (220′) exposing the inner wall of the tube body (1).
10. The heat pipe with an ultra-thin capillary structure according to claim 1, wherein the capillary structure (2) has a plurality of grooves (101) that are radially threaded on the inner wall of the tube body (1), a depth of the groove (101) being less than 30% of a thickness of the tube body (1).
11. The heat pipe with an ultra-thin capillary structure according to claim 10, wherein the depth of the thread (101) is less than 0.03 mm.
Type: Application
Filed: Feb 14, 2014
Publication Date: Apr 30, 2015
Inventor: Hao PAI (Taoyuan County)
Application Number: 14/180,410
International Classification: F28D 15/04 (20060101);