This application claims priority to Taiwan Application Serial Number 102111186, filed Mar. 28, 2013, which is herein incorporated by reference.
Embodiments of the present invention relate to a heat pipe. More particularly, embodiments of the present invention relate to a heat transfer module, a heat pipe and a manufacturing method thereof.
A modern electronic device, such as the laptop and the tablet PC, generates significant heat during operation. If the heat cannot be not efficiently dissipated, the temperature of the electronic device rises, which the electronic device may have malfunctioned or even destroy the electronic components in the electronic device. Therefore, the heat dissipation device, such as the heat dissipation fan, is commonly equipped with the current electronic device.
To efficiently transfer thermal energy from the heat source (such as the electronic components) to the heat dissipation fan, the manufacturer usually interfaces a heat transfer device between the heat source and the heat dissipation fan. A heat pipe is a popular one of the heat transfer devices. The heat pipe includes capillary structures on the inner wall of the heat pipe, and the capillary structures contain working fluid therein. When one end of the heat pipe is positioned on a relative hot zone like the heat source, and another end is positioned on a relative cold zone like the heat dissipation fan, the working fluid around the relative hot zone evaporates into gas. The gas flows toward the relative cold zone in the pipe. When the gas arrives the relative cold zone, it condenses as liquid and is absorbed by the portion of the capillary structure around the relative cold zone. As such, the working fluid can be recycled to transfer the thermal energy.
Because the modern electronic device is designed as thin as possible, some manufacturers make the heat pipe in a flat shape. However, if the flat heat pipe is too thin to support the structure, when the heat source is attached to the heat pipe, the heat pipe may deform due to the pressing force from the heat source, and deteriorate its heat transfer ability. For overcoming this issue, some manufactures first assemble the heat pipe to a thermal conductive metal, and attach closely the thermal conductive metal to the heat source. Although the thermal conductive metal prevents the heat pipe from the deformation, the heat transfer path is thus lengthened, which reduces efficacy of the heat transfer.
A summary of various embodiments according to the present invention is disclosed below. It should be understood that these aspects are presented merely to provide the reader with a brief summary of these certain embodiments and that these aspects are not intended to limit the scope of this disclosure.
The present invention provides a flat heat pipe with a stronger structure, which not deforms when it suffers from an external force, and the heat transfer ability is not influenced.
One aspect of the present invention provides a heat pipe. Accordance with one embodiment of the present invention, the heat pipe includes a flat tube, a first capillary structure, a second capillary structure, and a capillary structure block.
The flat tube has a plurality of flat portions, a first arc portion and a second arc portion. The first arc portion and the second arc portion are respectively connected to the opposite sides of the flat portions. The first capillary structure is accommodated in the flat tube and is in contact with the first arc portion. The second capillary structure is accommodated in the flat tube, and is in contact with the second arc portion. The first capillary structure and the second capillary structure are spaced apart from each other, and define a gas flowing chamber therebetween. The capillary structure block is disposed on a partial area of the gas flowing chamber, and is in contact with the flat portions, the first capillary structure and the second capillary structure.
Another aspect of the present invention provides a heat transfer module. In accordance with one embodiment of the present invention, the heat transfer module includes a heat source and a heat pipe. The heat pipe is disposed on the heat source. The heat pipe includes a flat tube, a first capillary structure, a second capillary structure and a capillary structure block. The flat tube has a plurality of flat portions, a first arc portion and a second arc portion. The first arc portion and the second arc portion are respectively connected to the opposite sides of the flat portions. The first capillary structure is accommodated in the flat tube and is in contact with the first arc portion. The second capillary structure is accommodated in the flat tube and is in contact with the second arc portion. The first capillary structure and the second capillary structure are spaced apart from each other, and define a gas flowing chamber therebetween. The capillary structure block is disposed on a partial area of the gas flowing chamber, and is in contact with the flat portions, the first capillary structure and the second capillary structure.
Yet another aspect of the present invention provides a method for manufacturing the heat pipe. In accordance with one embodiment of the present invention, the method includes putting a first capillary structure and a second capillary structure on opposite sides within a non-flat tube; pressing the non-flat tube to form a flat tube, in which the flat tube has a plurality of flat portions, a first arc portion and a second arc portion, and the first arc portion and the second arc portion are respectively connected to the opposite sides of the flat portions, and the first capillary structure is in contact with the first arc portion, and the second capillary structure is in contact with the second arc portion, and the first capillary structure and the second capillary structure are spaced apart from each other, and define a gas flowing chamber therebetween; and putting a capillary structure block in a partial area of the gas flowing chamber, in which the capillary structure block is in contact with the flat portions, the first capillary structure and the second capillary structure.
In the foregoing embodiments, the capillary structure block can be in contact with the flat portions on the top and bottom sides thereof, and can also be in contact with the first capillary structure and the second capillary structure on the left and right sides thereof. Therefore, when the heat source presses against the flat portion of the flat tube, the capillary structure block can support the flat portion, thereby preventing the flat tube from deforming.
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.
The invention can be more fully understood by reading the following detailed description of the embodiment, with reference made to the accompanying drawings as follows:
Reference will now be made in detail to the present embodiments of the 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.
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In some embodiments, the normal line of the lateral wall 410 of the capillary structure block 400 exposed to the first gas flowing sub-chamber 510 is substantially parallel the lengthwise direction of the flat tube 100. Similarly, the normal line of the lateral wall 420 of the capillary structure block 400 exposed to the second gas flowing sub-chamber 520 is substantially parallel the lengthwise direction of the flat tube 100.
It is understood that the “length” of an object in this context refers to the size of the longest edge of the object. It is further understood that the “lengthwise direction” in this context refers to the direction parallel to the longest edge.
It is understood that the term “substantially” in this context refers that the variation not affecting the essence of the invention can be covered. For example, the description “the length of the first capillary structure 200 substantially equals to the length of the flat tube 100” not only refers that the length of the first capillary structure 200 is exactly equal to the length of the flat tube 100, but also refers that the length of the first capillary structure 200 can be slightly less than the length of the flat tube 100 as long as the length of the first capillary structure 200 is not less than the length of the capillary structure block 400.
In some embodiments, the first capillary structure 200, the second capillary structure 200 and the capillary structure block 400 refers to the structure that allows the fluid flowing therein by the capillary phenomenon. For example, the first capillary structure 200, the second capillary structure 300 and the capillary structure block 400 can be a structure having grooves, a mesh structure or a sintered structure. Preferably, the first capillary structure 200 and the second capillary structure 300 can be non-sintered fibers, which is more flexible than the sintered fibers, so as to make the heat pipe 10 thinner, such as pressing the heat pipe 10 to be flat. In some embodiment, the capillary structure block 400 can be a sintered structure, such as the sintered metal. As shown in
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In some embodiments, the capillary structure block 400 can be sintered before it is put into the gas flowing chamber 500.
Although the present invention has been described in considerable detail with reference to certain embodiments thereof, other embodiments are possible. Therefore, the spirit and scope of the appended claims should not be limited to the description of the embodiments contained herein.
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 |
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102111186 | Mar 2013 | TW | national |