The present invention is directed to heat pipes, and more particularly, to apparatus utilizing heat pipes.
Integrating heat pipes into heat spreaders has become a well-established practice to significantly reduce thermal gradients from high power electronics to their eventual heat sinks. However; heat pipes can have geometric limitations which can limit their efficacy. Additionally, heat pipe capillary pumping capacity can be significantly reduced when operating in a scenario with high acceleration if a component of the acceleration opposes the direction liquid is pumped back to the heat pipe evaporator. In order to maximize the effectiveness of some heat spreaders, it would be useful to have heat pipes overlap and run orthogonally to one another in order to spread heat in multiple directions, as well as to have some heat pipes operating while others cannot under high acceleration loading conditions.
One solution to combat these issues has been to embed heat pipes in opposite sides (i.e., from both sides) of a heat spreader, such as a spreader plate using adhesives or solder alloys with different melting temperatures, the solder alloy associated with embedding a first installed heat pipe having a higher melting temperature than the solder alloy associated with embedding a second installed heat pipe, so that the solder alloy associated with embedding the first installed heat pipe does not melt during installation of the second heat pipe. For many heat spreaders, this manufacturing method may not be possible because critical features are machined into one side of a heat spreader to make intimate or conformal contact with components. This manufacturing method also introduces more time, cost, and risk to the parts.
Embedding heat pipes in a single orientation or direction will greatly increase the effective thermal conductivity in that direction. For example, aluminum has a thermal conductivity of roughly 200 W/m K in all directions. Embedding heat pipes in one orientation or direction can increase the effective thermal conductivity in that direction to between 600 and 2500 W/m K, depending on the length of the embedded heat pipes. The weight of the plate with embedded heat pipes is only a few percent more than the weight of the aluminum, while increasing the effective thermal conductivity up to an order of magnitude or more.
A vapor chamber is a planar heat pipe, which can effectively spread heat in a plane in two directions. Although vapor chambers have an effective thermal conductivity that is 10 to 100 times higher compared to a plate with embedded heat pipes, vapor chambers are roughly 2.3 times the density of a plate with embedded heat pipes. In addition to the increase in density, a further drawback of vapor chambers is that vapor chambers are much more costly to manufacture than plates with embedded heat pipes.
There is a need for heat pipe-embedding structures that have effective thermal conductivities approaching those of vapor chambers without suffering from the drawbacks of vapor chambers.
Applicant has found that by arranging and disposing two layers of heat pipes of an embedded heat pipe system at an angle to each other, the effective thermal conductivity of the embedded heat pipe system can be improved in a plane, similar to a vapor chamber, while reducing the fabrication costs and weight compared with the vapor chamber. The proposed solution improves upon the above-mentioned process and/or arrangement or configuration by allowing for integration of overlapping heat pipes in one side (i.e., from one side) of the heat spreader. This solution reduces the integration process to a single step, (compared with two separate steps; each step associated with embedding heat pipes in one side of opposed sides of a heat spreader), and allows for freedom to add critical machined features on the side contacting heat dissipating components.
In one embodiment, an apparatus for dissipating thermal energy including a baseplate including a first body having a first groove and a second groove intersecting one another, the first groove and the second groove formed in and only accessible from a first side of the baseplate. The apparatus including a first heat pipe and a second heat pipe arranged and disposed to provide both an overlapping arrangement and a nonoverlapping arrangement within the first groove and the second groove of the baseplate.
In another embodiment, a method of making an apparatus for dissipating thermal energy including providing a baseplate including a first body and forming a first groove and a second groove in a first side of the baseplate, the first groove and the second groove intersecting one another, and the first groove and the second groove only being accessible from the first side of the baseplate. The method further including positioning a first heat pipe and a second heat pipe to provide both an overlapping arrangement and a nonoverlapping arrangement within the first groove and the second groove of the baseplate.
In yet another embodiment, an apparatus for dissipating thermal energy including a baseplate including a body having a first groove and a noncoincident second groove each intersecting a third groove, the first groove, the second groove, and the third groove each formed in and only accessible from a first side of the baseplate. The apparatus further including a first heat pipe at least partially disposed in the first groove, a second heat pipe at least partially disposed in the second groove, and a third heat pipe at least partially disposed in the third groove, the first heat pipe, the second heat pipe and the third heat pipe each arranged and disposed to provide both an overlapping arrangement and a nonoverlapping arrangement within at least one of the first groove, the second groove, and the third groove of the baseplate.
Other features and advantages of the present invention will be apparent from the following more detailed description, taken in conjunction with the accompanying drawings which illustrate, by way of example, the principles of the invention.
Wherever possible, the same reference numbers will be used throughout the drawings to represent the same parts.
In one embodiment, apparatus 8 acts as heat spreader 10, in which, for example, the edges of baseplate 12 are water cooled. In one embodiment, apparatus 8 acts as heat sink 11, in which, for example, fins (not shown) or other heat removal feature or component are utilized. In one embodiment apparatus 8 acts as both heat spreader 10 and heat sink 11. In one embodiment, one or more portions of apparatus 8 act as either or both heat spreader 10 and heat sink 11, depending upon the application. The apparatus of the present invention contemplates any number of variations and/or combinations of heat spreaders and/or heat sinks.
As shown in
As further shown in
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The sequence of pressing operations is critical to ensure that after pressing, both sets of heat pipes achieve their final deformed shape without damaging either set which could significantly impact heat pipe heat transport capacity.
Collectively, as shown in
Collectively, as shown in
As a result of the criss-cross arrangements, the effective thermal conductivity of the heat spreader is increased to a level approaching a vapor chamber, spreading heat in at least two dimensions, but at significantly reduced fabrication cost.
A prototype heat sink was fabricated and tested while undergoing 6g acceleration in a centrifuge for the arrangement shown in
It is to be understood the number of heat pipes in a heat spreader may be greater than three.
It is to be understood that although the heat pipes and heat pipe portions are not shown extending past the ends of their corresponding baseplates and extensions, the present invention is not so limited, and contemplates extending the heat pipes and heat pipe portions past the ends of their corresponding baseplates and extensions, such as to a remote heat source or heat sink.
It is to be understood that the various descriptions of the embodiments disclosed herein have been simplified to illustrate only those elements, features, and aspects that are relevant to a clear understanding of the disclosed embodiments, while eliminating, for purposes of clarity, other elements, features, and aspects. Persons having ordinary skill in the art, upon considering the present description of the disclosed embodiments, will recognize that other elements and/or features may be desirable in a particular implementation or application of the disclosed embodiments. However, because such other elements and/or features may be readily ascertained and implemented by persons having ordinary skill in the art upon considering the present description of the disclosed embodiments, and are therefore not necessary for a complete understanding of the disclosed embodiments, a description of such elements and/or features is not provided herein. As such, it is to be understood that the description set forth herein is merely exemplary and illustrative of the disclosed embodiments and is not intended to limit the scope of the invention as defined solely by the claims.
In the present disclosure, other than where otherwise indicated, all numbers expressing quantities or characteristics are to be understood as being prefaced and modified in all instances by the term “about.” Accordingly, unless indicated to the contrary, any numerical parameters set forth in the following description may vary depending on the desired properties one seeks to obtain in the embodiments according to the present disclosure. At the very least, and not as an attempt to limit the application of the doctrine of equivalents to the scope of the claims, each numerical parameter described in the present description should at least be construed in light of the number of reported significant digits and by applying ordinary rounding techniques.
Also, any numerical range recited herein is intended to include all sub-ranges subsumed therein. For example, a range of “1 to 10” is intended to include all sub-ranges between (and including) the recited minimum value of 1 and the recited maximum value of 10, that is, having a minimum value equal to or greater than 1 and a maximum value of equal to or less than 10. Any maximum numerical limitation recited herein is intended to include all lower numerical limitations subsumed therein and any minimum numerical limitation recited herein is intended to include all higher numerical limitations subsumed therein. Accordingly, Applicant reserves the right to amend the present disclosure, including the claims, to expressly recite any sub-range subsumed within the ranges expressly recited herein. All such ranges are intended to be inherently disclosed herein such that amending to expressly recite any such sub-ranges would comply with the requirements of 35 U.S.C. sctn. 112, first paragraph, and 35 U.S.C. sctn. 132(a).
The grammatical articles “one”, “a”, “an”, and “the”, as used herein, are intended to include “at least one” or “one or more”, unless otherwise indicated. Thus, the articles are used herein to refer to one or more than one (i.e., to at least one) of the grammatical objects of the article. By way of example, “a component” means one or more components, and thus, possibly, more than one component is contemplated and may be employed or used in an implementation of the described embodiments.
Any patent, publication, or other disclosure material, in whole or in part, that is said to be incorporated by reference herein, is incorporated herein in its entirety, but only to the extent that the incorporated material does not conflict with existing definitions, statements, or other disclosure material expressly set forth in this disclosure. As such, and to the extent necessary, the express disclosure as set forth herein supersedes any conflicting material incorporated herein by reference. Any material, or portion thereof, that is said to be incorporated by reference herein, but which conflicts with existing definitions, statements, or other disclosure material set forth herein is only incorporated to the extent that no conflict arises between that incorporated material and the existing disclosure material.
While the invention has been described with reference to one or more embodiments, it will be understood by those skilled in the art that various changes may be made and equivalents may be substituted for elements thereof without departing from the scope of the invention. In addition, many modifications may be made to adapt a particular situation or material to the teachings of the invention without departing from the essential scope thereof. Therefore, it is intended that the invention not be limited to the particular embodiment disclosed as the best mode contemplated for carrying out this invention, but that the invention will include all embodiments falling within the scope of the appended claims. In addition, all numerical values identified in the detailed description shall be interpreted as though the precise and approximate values are both expressly identified.
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