COOLING DEVICE, A RECEPTACLE ASSEMBLY, A SYSTEM AND A PRINTED BOARD ASSEMBLY
20220252800 · 2022-08-11
Assignee
Inventors
Cpc classification
H05K7/2039
ELECTRICITY
H05K7/20509
ELECTRICITY
F28D2021/0029
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/20454
ELECTRICITY
F28D15/0275
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
H05K7/205
ELECTRICITY
International classification
Abstract
A cooling device for cooling a heat generating component, wherein the cooling device comprises a heat sink and at least one heat pipe that is in thermal contact with the heat sink, wherein the at least one heat pipe comprises a thermal contact area that is configured for thermal contact with a heat generating component, and the at least one heat pipe is configured in a shape that provides mechanical spring properties. Such a heat generating component may comprise a pluggable module. Also disclosed is a receptacle assembly comprising a frame having an interior cavity configured for accommodating a heat generating component and having an opening for receiving the heat generating component, characterized in that it comprises a cooling device. Disclosed is also a system comprising a receptacle assembly, and a printed board assembly (PBA) comprising a receptacle assembly.
Claims
1. A cooling device for cooling a heat generating component, wherein the cooling device comprises a heat sink and at least one heat pipe that is in thermal contact with the heat sink, wherein the at least one heat pipe comprises a thermal contact area that is configured for thermal contact with the heat generating component, and the at least one heat pipe is configured in a shape that provides mechanical spring properties.
2. The cooling device according to claim 1, wherein the heat generating component comprises a pluggable module.
3. The cooling device according to claim 1, wherein the heat pipe comprises at least one first portion comprising the thermal contact area that is configured to be at least partly in thermal contact with the heat generating component, at least one second portion that is configured to be at least partly in thermal contact with the heat sink, and at least one third portion that is connected to the first portion and connected to the second portion.
4. The cooling device according to claim 3, wherein the third portion of the heat pipe comprises at least a part that has a shape that provides mechanical spring properties.
5. The cooling device according to claim 3, wherein the third portion comprises at least a part that forms an acute angle or an obtuse angle to at least one of the first portion and the second portion, and thereby achieving mechanical spring properties.
6. The cooling device according to claim 1, wherein the heat pipe comprises a first end portion and a second end portion that are in thermal contact with the heat sink, an intermediate portion that comprises the thermal contact area that is configured to be at least partly in thermal contact with the heat generating component, a first connecting portion that connects the first end portion with the intermediate portion and a second connecting portion that connects the second end portion with the intermediate portion, wherein the respective first and second connecting portion comprises at least a part that forms an acute angle or an obtuse angle in relation to the first and second end portion.
7. The cooling device according to claim 1, wherein the heat pipe comprises a first end portion that comprises the thermal contact area that is configured to be at least partly in thermal contact with the heat generating component, a second end portion that is in thermal contact with the heat sink, and an intermediate portion that connects the first end portion with the second end portion diagonally and which comprises at least a part that forms an acute angle or an obtuse angle in relation to the second end portion.
8. The cooling device according to claim 1, wherein the heat pipe is a flat heat pipe.
9. A receptacle assembly comprising a frame having an interior cavity configured for accommodating a heat generating component and having an opening for receiving the heat generating component, the receptacle assembly further comprises a cooling device, wherein the cooling device is for cooling the heat generating component, in which the cooling device comprises a heat sink and at least one heat pipe that is in thermal contact with the heat sink, the at least one heat pipe comprises a thermal contact area that is configured for thermal contact with the heat generating component, and the at least one heat pipe is configured in a shape that provides mechanical spring properties.
10. The receptacle assembly according to claim 9, wherein the heat pipe is configured to exert a biasing force on the frame.
11. The receptacle assembly according to claim 9, wherein the heat pipe is configured to exert a biasing force on the heat generating component during insertion into the cavity of the frame and to become resiliently deformed when the heat generating component is inserted into the cavity of the frame.
12. The receptacle assembly according to claim 9, wherein the heat pipe is configured to be in thermal contact with the heat generating component via a heat transfer element of the frame, directly with the heat generating component, or both via the heat transfer element and directly with the heat generating component.
13. The receptacle assembly according to claim 12, wherein the frame comprises a thermally conductive element supported in the frame and forming the heat transfer element of the frame and which thermally conductive element is configured to be in thermal contact with the heat generating component accommodated in the cavity of the frame.
14. The receptacle assembly according to claim 12, wherein the frame comprises a top opening facing towards the heat sink, wherein the heat pipe penetrates into the cavity via the top opening and is configured to enter into thermal contact with the heat generating component when the heat generating component is accommodated in the cavity.
15. The receptacle assembly in accordance with claim 9 disposed as part of a system, which system includes the heat generating component that is insertable into the cavity of the frame.
16. The receptacle assembly according to claim 15, wherein the heat generating component is a pluggable module.
17. The receptacle assembly in accordance with claim 9 disposed on a printed board assembly.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0036] Further objects, features and advantages will appear from the following detailed description of embodiments, with reference being made to the accompanying drawings. The drawings are not necessarily to scale, emphasis instead being placed upon illustrating the example embodiments.
[0037] Elements that are the same or represent corresponding or equivalent elements have been given the same reference numbers in the different figures.
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DETAILED DESCRIPTION
[0047] Embodiments and examples of the present disclosure will be described and exemplified more fully hereinafter with reference to the accompanying drawings. The solutions disclosed herein can, however, be realized in many different forms and should not be construed as being limited to the examples and embodiments set forth herein.
[0048] According to one example, as shown in
[0049] The thermal contact area is configured to face towards a heat generating component. The first portion with the thermal contact area may be configured to extend along the heat generating component, but by that is not necessarily meant that the mentioned first portion extend in the longitudinal direction of the heat generating component. It may e.g. just as well extend across, or at any angle to the longitudinal direction. By “extend along” is intended that the mentioned first portion, where heat transfer takes place, has a certain extension, i.e. is not only a point contact. The same applies to the second portion in relation to the heat sink. The mentioned first and second portion may be configured to extend essentially in parallel to at least the heat sink, and in most cases also to the heat generating component. The thermal contact area configured for thermal contact with a heat generating component may comprise an essentially flat surface in order to provide good thermal contact with the heat generating component or with a frame, as will be explained later.
[0050] According to one example, the third portion 26, 27, 36 of the heat pipe 20, 30 comprises at least a part that has a shape that provides mechanical spring properties.
[0051] According to one example, the third portion 26, 27, 36 comprises at least a part that forms an acute angle or an obtuse angle to at least one of the first portion 22, 32 and the second portion 24, 25, 34, and thereby achieving mechanical spring properties.
[0052] According to the example embodiment shown in
[0053] According to the example embodiment shown in
[0054] According to one example, the heat pipe 20, 30 is a flat heat pipe. Flat heat pipes as such are previously known and can be obtained by flattening conventional cylindrical heat pipes to a relatively low thickness, e.g. approx. 0.5 mm.
[0055] In all of the examples above, the heat pipe may comprise a thermal contact area that is configured for thermal contact with a heat generating component comprising a pluggable module.
[0056] Example embodiments of a receptacle assembly 70 are shown in
[0057] In one example of a receptacle assembly, the heat pipe 20, 30 of the cooling device 10 is configured to be in thermal contact with a heat generating component 40 via a heat transfer element 76 of the frame 72 and/or directly with the heat generating component 40, as shown in
[0058] According to one example is disclosed a receptacle assembly 70 wherein the heat pipe 20, 30 is configured to exert a biasing force on the frame 72. This example is illustrated in
[0059] According to one example is disclosed a receptacle assembly 70 wherein the heat pipe 20 is configured to exert a biasing force on a heat generating component 40 during insertion into the cavity 73 of the frame 72 and to become resiliently deformed when a heat generating component 40 is inserted into the cavity of the frame. This is illustrated in
[0060] In one example, the heat transfer element of the frame 72 comprises a thermally conductive element 76 supported in the frame and which thermally conductive element is configured to be in thermal contact with a heat generating component 40 accommodated in the cavity 73 of the frame. This is shown in
[0061] When the heat pipe is configured to be in direct thermal contact with the heat generating component, it will be movably connected to the heat generating component, by contact only and not fastened to the heat generating component. When the heat pipe is in thermal contact with the heat generating component via the frame itself, as in
[0062] In one example, the frame 72 comprises a top opening 78 facing towards the heat sink 60, wherein the heat pipe 20 penetrates into the cavity 73 via the top opening and is configured to enter into thermal contact with a heat generating component 40 when a heat generating component is accommodated in the cavity. This is illustrated in
[0063] In the shown examples of
[0064] In
[0065] According to one aspect is disclosed a system 80 comprising a receptacle assembly 70 in accordance with any one of the examples described above, and the system comprises a heat generating component 40 that is insertable into the cavity 73 of the frame 72.
[0066] According to one example embodiment of the system 80, the heat generating component 40 is a pluggable module. Examples of pluggable modules and components have already been mentioned.
[0067] As mentioned, the mechanical spring property of the heat pipe is used to obtain a biasing force that will exert a pressure force against the heat generating component during insertion into a frame in which it is located during use. The pressure force is released when the heat generating component is extracted from the frame.
[0068] Reference is now made to
[0069] As an alternative, the frame 72 may have an opening 78 into which the thermal contact area portion 21 of the heat pipe 20 may penetrate into the cavity 73 of the frame in order to be able to have physical contact with a heat generating component 40. This is illustrated in
[0070] In another alternative, as shown in
[0071] When the heat generating component is inserted, it will press upwards against the thermally conductive element 76, against the biasing effect of the spring properties of the heat pipe, in order to be able to be completely inserted into the cavity 73. Once inserted, it will be kept in position by the pressure force exerted by the thermally conductive element and the heat pipe.
[0072] When the heat generating component is located inside the frame it will be in contact with the heat pipe, via the thermally conductive element, and heat may be transferred from the heat generating component to the thermally conductive element and to the heat pipe and further to the heat sink whereby cooling is obtained. The heat pipe will thus be in a slightly compressed condition when the heat generating component is located in the frame. When the heat generating component is extracted from the frame, the heat pipe will be released from its compressed condition. The thermally conductive element 76 will then resume its original position and the heat pipe will resume its original position and shape. The heat pipe illustrated in
[0073] According to another aspect is also disclosed a printed board assembly (PBA) 90 comprising a receptacle assembly 70 in accordance with any one of the examples described above. A PBA is schematically shown in
[0074] With regard to the shape of the heat pipe, many different shapes are conceivable that would provide mechanical spring properties to the heat pipe. The portions of the heat pipe that have been described as forming an acute or obtuse angle in relation to other portions of the heat pipe, and which mainly provide the spring effect, may also comprise parts of the heat pipe that have a semi-circular shape, semi-elliptical shape, or other shapes with rounded forms.
[0075] The portions of the heat pipe that are in thermal contact with the heat sink and the portions configured for thermal contact with a heat generating component may be arranged to be parallel with each other.
[0076] One heat pipe may extend across several heat generating components, usually while being in thermal contact with the heat sink inbetween every heat generating component. One heat generating component may be cooled by more than one heat pipe.
[0077] Generally, all terms used herein are to be interpreted according to their ordinary meaning in the relevant technical field, unless a different meaning is clearly given and/or is implied from the context in which it is used.
[0078] Reference has been made herein to various examples and embodiments. However, a person skilled in the art would recognize numerous variations to the described embodiments that would still fall within the scope of the claims.
[0079] Any feature of any of the examples and embodiments disclosed herein may be applied to any other embodiment/example, wherever suitable. Likewise, any advantage of any of the embodiments/examples may apply to any other embodiments/examples, and vice versa.
[0080] Hence, it should be understood that the details of the described embodiments/examples are merely examples brought forward for illustrative purposes, and that all variations that fall within the scope of the claims are intended to be embraced therein.