MODULAR HEAT SINK AND METHOD FOR FABRICATING SAME
There is described a method for fabricating a modular heat sink, the method comprising: extruding N individual integral heat sink segments using an extrusion process, each one of the N segments corresponding to 1/N of the modular heat sink, N being an integer greater than one; and assembling the N individual integral heat sink segments together in order to obtain the modular heat sink.
The present application is a continuation under 35 USC §120 of International patent application no. PCT/CA2009/000551 filed Apr. 24, 2009 entitled MODULAR HEAT SINK AND METHOD FOR FABRICATING SAME, which claims priority under 35 USC §119(e) of Provisional Patent Application bearing Ser. No. 61/048,400, filed on Apr. 28, 2008, the contents of which are hereby incorporated by reference.
TECHNICAL FIELDThe present invention relates to the field of heat dissipation devices, also known as heat sinks.
BACKGROUND OF THE INVENTIONDevices such as electronic circuits and lighting systems usually emit heat while functioning, and this emitted heat can be harmful to the device. For example, an increased temperature can shorten the lifetime of a lighting system and/or decrease its brightness. As a result, cooling the lighting device is required to ensure a long lifetime and/or a high brightness.
Heat sinks can be used to cool heat generating devices. A heat sink cools the device by absorbing and dissipating generated heat. A heat sink is made of a thermal conductive material and has a specific shape which improves the transfer of heat, whereby the shape is specifically determined by a need for greater surface area. Extrusion techniques are usually used to fabricate heat sinks as it is an efficient and cost-saving fabrication technique in comparison to other fabrication processes such as casting or machining. However, when using this fabrication process, the dimensions of heat sinks are limited because of limitations inherent to the extrusion process. Hence, it is not possible to make heat sinks for large lighting systems when using the extrusion process.
Therefore, there is a need for improvements to the methods for fabricating heat sinks adapted to large heat generating devices.
SUMMARY OF THE INVENTIONAccording to a broad aspect, there is provided a method for fabricating a modular heat sink, the method comprising: extruding N individual integral heat sink segments using an extrusion process, each one of the N segments corresponding to 1/N of the modular heat sink, N being an integer greater than one; and assembling the N individual integral heat sink segments together in order to obtain the modular heat sink.
According to a second broad aspect, there is provided a modular heat sink comprising a N extruded individual integral heat sink segments connected together to form the modular heat sink, each one of the N segments corresponding to 1/N of the modular heat sink, N being an integer greater than one.
The expression “heat sink segment” is to be understood as any device made in a single piece and having heat sink properties. A heat sink segment forms a heat sink when connected to at least another heat sink segment. The characteristics of each heat sink segment, such as the shape and dimensions for example, are defined so that the heat sink segments form the heat sink when connected together and can be fabricated by any adequate type of extrusion process. The heat sink segments being part of the heat sink can be identical. Alternatively, they can have different shapes and/or dimensions and/or be made of different materials.
Further features and advantages of the present invention will become apparent from the following detailed description, taken in combination with the appended drawings, in which:
It will be noted that throughout the appended drawings, like features are identified by like reference numerals.
DETAILED DESCRIPTIONAccording to the prior art, heat sinks are made in a single piece. When heat conductive material such as aluminum or copper is used to fabricate heat sinks by extrusion, the size of the heat sink is limited because of the extrusion process. Extrusion can be any adequate fabrication process which consists in pushing material through a die of a desired profile shape. However, a large heat sink fabricated following this process does not present good mechanical properties such as rigidity. These poor mechanical properties are inherent to the extrusion process.
A heat sink is designed in accordance with the characteristics of the object to be cooled, a target temperature for the object, the characteristics of the environment in which the heat sink will be placed, etc. For example, if the modular heat sink is to be used to cool an LED board comprising a plurality of LEDs, the characteristics of the modular heat sink are chosen in accordance with the dimensions of the LED board, the repartition of the LEDs on the LED board, the heat generated by the LEDs, the temperature of the environment in which the heat sink is to be placed, a target temperature for the LED board, etc. The characteristics of a heat sink comprises, but are not limited to, the shape, the dimensions, the material properties such as rigidity for example, and the like. If the characteristics of the heat sink prevent the heat sink from being fabricated in a single piece by extrusion, then the method illustrated in
In one embodiment, a heat sink is to be fabricated while using an extrusion process and the heat sink is broken down into two pieces, i.e. two individual integral heat sink segments, each corresponding to one half of the heat sink. In another embodiment, the heat sink is broken down into three pieces, i.e. three individual integral heat sink segments, each corresponding to one third of the heat sink. The breaking down of the heat sink is performed with the desired number of individual integral heat sink segments that can be fabricated in a single piece while using an extrusion process.
In one embodiment, the heat sink to be fabricated is symmetrical and the N individual integral heat sink segments are substantially identical. In another embodiment, the N individual integral heat sink segments are different while each one of the N individual integral heat sink segments corresponds to 1/N of the heat sink. The nature of the differences between the segments can be material, shape, surface area, volume of material, etc.
It should be understood that any assembling means such as male-female connectors, fasteners, adhesive, welding, etc, can be used for releasably or permanently connecting the heat sink segments together. In one embodiment, the heat sink segments are fixedly secured together once connected. This can be achieved by welding, permanent adhesive bonding, etc. In another embodiment, a relative movement between the heat sink segments is possible once connected together. In this case, the heat sink segments become fixedly secured together once attached to the object to be cooled. It should be understood that more than one assembling means can be used for connecting the individual integral heat sink segments together. For example, a combination of male/female connector and adhesive bonding can be used.
In one embodiment, a heat sink having a shape similar to the heat sink 10 is made in multiple steps. The heat sink is divided into several heat sink segments, each one having dimensions adapted to be fabricated while using the extrusion process. The different heat sink segments are then assembled together to form a large heat sink having a shape such as the shape of heat sink 10.
It should be understood that heat sinks having any shape can be fabricated while using the process illustrated in
The heat sink 150 is created by assembling four identical heat sink segments 120 together, as illustrated in
In one embodiment, each circular recess 128 is closed at one end, thereby forming an abutting surface. Each projecting end 130 is inserted in its corresponding circular recess 128 via the open end of the corresponding circular recess 128 and slides therein until abutting against the closed end of the corresponding recess 128. In another embodiment, the circular recesses 128 are each provided with an open end at their two extremities. In this case, the heat sink segments 120 can have a longitudinal relative movement. In order to fixedly secure the heat sink segments 120 together, any adequate type of mechanical fasteners such as screws, bolts, etc, can be used. Alternatively, any adequate type of adhesive can be used for securing the heat sink segments together. In another embodiment, the heat sink segments 120 become fixedly secured together once the heat sink 150 is attached to the object to be cooled.
While
It should be understood that any mechanical means can be used to connect the single piece heat sink segments together to form the modular heat sink. The mechanical means can be either permanent or non-permanent. For example, the heat sink segments can be designed so that they fit together and assembly results in the modular heat sink. In another example, a permanent or non-permanent adhesive can be used to connect the heat sink segments together. The heat sink segments can also be welded together.
While the previous embodiments refer to a modular heat sink composed of N identical heat sink segments, it should be understood that the N heat sink segments can have different shapes as long as each one of the N heat sink segments corresponds to 1/N of the heat sink, and can be made of different materials, such as copper.
The heat sink 220 represents an example of a non-symmetrical heat sink. The heat sink segments 202, 206, 208, and 222 are not identical but each one of the heat sink segments 202, 206, 208, and 222 corresponds to 1/4 of the heat sink 220.
It should be understood that the heat sink segments 202-208 and 222 can be shaped so that the heat sinks 200 and 220 are provided with fins such as fins 224 on their outer lateral surface.
It should be understood that the modular heat sink can have any shape and/or dimension. The heat sink segments constituting the modular heat sink can also have any shape and/or dimensions as long as they form the modular heat sink when they are assembled together.
It should be understood that any material having good thermal conductivity such as aluminum or copper can be used to fabricate the heat sink segments.
It should be noted that modular heat sinks can be used to cool any devices which generate heat, such as lighting systems, electronic circuits, and the like.
The embodiments of the invention described above are intended to be exemplary only. The scope of the invention is therefore intended to be limited solely by the scope of the appended claims.
Claims
1. A method for fabricating a modular heat sink, said method comprising:
- extruding N individual integral heat sink segments using an extrusion process, each one of said N segments corresponding to 1/N of said modular heat sink. N being an integer greater than one; and
- assembling said N individual integral heat sink segments together in order to obtain said modular heat sink.
2. The method as claimed in claim 1, wherein said extruding comprises extruding N identical individual integral heat sink segments.
3. The method as claimed in claim 1, wherein said extruding comprises extruding at least two different individual integral heat sink segments.
4. The method as claimed in claim 3, wherein said extruding comprises extruding said at least two different individual integral heat sink segments having a different shape.
5. The method as claimed in claim 3, wherein said extruding comprises extruding said at least two different individual integral heat sink segments from different materials.
6. The method as claimed in claim 1, wherein said assembling comprises releasably connecting said N individual integral heat sink segments together.
7. The method as claimed in claim 1, wherein said assembling comprises permanently securing said N individual integral heat sink segments together.
8. The method as claimed in claim 1, wherein said extruding comprises extruding N connectable individual integral heat sink segments, each having a male connector and a female connector thereon, said female connector of each one of said N connectable individual integral heat sink segments being adapted to receive said male connector of another one of said N connectable individual integral heat sink segments
9. The method as claimed in claim 8, wherein said extruding comprises extruding four quadrants of a cylindrically shaped modular heat sink.
10. The method as claimed in claim 1, wherein said extruding comprises extruding said N individual integral heat sink segments from one of aluminum and copper.
11. A modular heat sink comprising N extruded individual integral heat sink segments connected together to form said modular heat sink, each one of said N segments corresponding to 1/N of said modular heat sink. N being an integer greater than one.
12. The modular heat sink as claimed in claim 11, wherein said N extruded individual integral heat sink segments are identical.
13. The modular heat sink as claimed in claim 11, wherein at least two of said N extruded individual integral heat sink segments are different.
14. The modular heat sink as claimed in claim 13, wherein said at least two of said N extruded individual integral heat sink segments have a different shape.
15. The modular heat sink as claimed in claim 13, wherein at least one of said N extruded individual integral heat sink segments is made from a different material.
16. The modular heat sink as claimed in claim 11, wherein said N extruded individual integral heat sink segments are releasably connected together.
17. The modular heat sink as claimed in claim 11, wherein said N extruded individual integral heat sink segments are permanently secured together.
18. The modular heat sink as claimed in claim 11, wherein each one of said N extruded individual integral heat sink segments comprises a male connector and a female connector thereon, said male connector of each of said N extruded individual integral heat sink segments being received in said female connector of another one of said N extruded individual integral heat sink segments.
19. The modular heat sink as claimed in claim 11, wherein said N extruded individual integral heat sink segments are made of one of aluminum and copper.
20. The modular heat sink as claimed in claim 11, wherein said N extruded individual integral heat sink segments are four quadrants of a cylindrically shaped modular heat sink.
Type: Application
Filed: Oct 22, 2010
Publication Date: Sep 22, 2011
Inventors: Eran Plonski (Montreal), Sharath KUMAR (Laval), Eihab Baqui (Brossard)
Application Number: 12/910,292
International Classification: F28F 7/00 (20060101); B21D 53/02 (20060101);