Compressive heat sink
11719428 ยท 2023-08-08
Assignee
Inventors
Cpc classification
F21Y2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21K9/90
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V29/503
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/0055
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/0035
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V29/71
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
A heat-sink assembly is configured with two parts to grip a light-emitting element and produce a transverse force urging a surface of the light-emitting element toward a surface of the heat-sink assembly, which conducts heat away from the light-emitting element. Fastening mechanisms and a fulcrum inter-connect the heat-sink parts and produce the force that grips the light-emitting element. A configuration of the heat-sink parts creates a semi-enclosed space accessible through a gap. A configuration of elastomeric gaskets within the semi-enclosed space protects a portion of the space from intrusion of liquids or other environmental influences. Configuration of the heat-sink parts to form a recess in the heat-sink assembly provides protection of the light-emitting element from mechanical damage, and the recess may contain transparent materials that further protect the light-emitting element from detrimental environmental influences.
Claims
1. A heat-sink assembly for removing heat from a light-emitting element, the light-emitting element having a thermal-interface surface, a first edge, and a second edge, the first edge and the second edge being on respective spaced-apart portions of the light-emitting element and the thermal-interface surface extending at least partially between the first and second edges, the heat-sink assembly comprising: a heat-sink element composed of a solid material; a heat-extraction surface thermally connected to the heat-sink element; a force redirection mechanism configured to convert to a transverse force a compressive force applied through the action of the heat-sink element pushing the force redirection mechanism in a first direction against the first edge of the light-emitting element, the transverse force acting on the light-emitting element in a second direction transverse to the first direction, the transverse force causing the thermal-interface surface of the light-emitting element to press toward the heat-extraction surface; and a restraining element acting on the second edge of the light-emitting element to resist the compressive force; characterized in that the heat-sink assembly includes a mechanism for continually maintaining the compressive force.
2. The heat-sink assembly of claim 1, wherein the heat-extraction surface is planar and wherein the force-redirection mechanism includes an inclined surface portion configured to be in contact with the first edge of the light-emitting element and inclined so that a first force applied by the inclined surface portion to the first edge of the light-emitting element and directed parallel to the heat-extraction surface results in a second force pressing the thermal-interface surface of the light-emitting element toward the heat-extraction surface.
3. The heat-sink assembly of claim 1, further including a fastening mechanism supported relative to the heat-sink element, and configured to urge the heat-sink element toward the restraining element by tightening and produce the compressive force when the fastening mechanism is tightened.
4. The heat-sink assembly of claim 3, further including a spacer, the spacer being a solid element or assembly situated between the heat-sink element and the restraining element and serving to limit the degree to which the fastening mechanism is able to cause bending of the heat-sink element or the restraining element.
5. The heat-sink assembly of claim 1, wherein the heat-sink element and the restraining element are portions of a continuous unitary material and apply the compressive force through spring forces.
6. The heat-sink assembly of claim 1, further including a compressive fastener contacting the heat-sink element and the restraining element at locations no greater than a first distance from the light-emitting element, the heat-sink element and the restraining element contacting each other at locations no less than the first distance from the light-emitting element, the compressive fastener forcing the heat-sink element and the restraining element toward each other to apply the compressive force.
7. The heat-sink assembly of claim 1, wherein a thermally conductive medium, which may be solid or liquid, disposed between and conforming to portions of the thermal-interface surface and the heat-extraction surface acts to conduct heat from the thermal-interface surface to the heat-extraction surface.
8. The heat-sink assembly of claim 1, wherein the shapes of the heat-sink element and the restraining element define a recess sized to accept the light-emitting element and prevent mechanical contact between sensitive portions of the light-emitting element and planar surfaces external to the recess.
9. The heat-sink assembly of claim 8, wherein optically transmissive solid material is included in the recess, the solid material being configured as a barrier capable of resisting intrusion, onto sensitive portions of the light-emitting element, of dust or of liquid or of mechanical influences originating outside the recess.
10. The heat-sink assembly of claim 8, wherein optically transmissive solid material is included in the recess, the solid material forming a seal over portions of the light-emitting element, which seal resists ingression of dust or of a liquid or of a gas from outside of the recess to the surface of the light-emitting element.
11. The heat-sink assembly of claim 1, wherein the heat-sink element and the restraining element together bound a semi-enclosed interior space within which there exists at least one point distant from the nearest surface of the heat-sink element and equally distant from the restraining element, at which point the combined surface, comprising the set-theoretic union of all points on the surface of the heat-sink element and all points on the surface of the restraining element, subtends a total of at least nine steradians of solid angle.
12. The heat-sink assembly of claim 11, wherein the semi-enclosed interior space includes a gasket assembly and a protected space, the gasket assembly comprising one or more elastomeric gaskets, the gasket assembly contacting and extending between the heat-sink element and the restraining element, the configuration of which gasket assembly is such that the gasket assembly resists ingression of dust or of a liquid or of a gas into the protected space.
13. The heat-sink assembly of claim 12, wherein the gasket assembly includes a deformation gap between two gaskets or between a gasket and a surface of the heat-sink element or between a gasket and a surface of the restraining element, the deformation gap being a separation between a gasket surface and a surface that the gasket surface would be touching if the gasket surface were not deformed relative to a simpler shape, which deformation gap is filled with one or more materials that resist ingression of dust or of a liquid or of a gas into the protected space.
14. The heat-sink assembly of claim 1, wherein the heat-sink element has the form of a solid elongated in a direction of elongation, the solid having a first length in the direction of elongation and a first cross section in a plane perpendicular to the direction of elongation, the first cross section being constant over most of the first length.
15. The heat-sink assembly of claim 14, wherein the restraining element has the form of a solid elongated in a direction of elongation, the solid having a second length in the direction of elongation and a second cross section in a plane perpendicular to the direction of elongation, the second cross section being constant over most of the second length.
16. The heat-sink assembly of claim 15, wherein the first cross section is identical to the second cross section.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION OF VARIOUS EMBODIMENTS
(17) A compressive heat sink will become better understood through review of the following detailed description in conjunction with the drawings. The detailed description and drawings provide examples of the various embodiments described herein. Those skilled in the art will understand that the disclosed examples may be varied, modified, and altered without departing from the scope of the disclosed structures. Many variations are contemplated for different applications and design considerations; however, for the sake of brevity, not every contemplated variation is individually described in the following detailed description.
(18) Examples of a compressive heat sink are now described in more detail with reference to
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(20) Any of a variety of mechanisms may be used to supply the compressive force F1.
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(22) As shown in an exemplary cross section in
(23) As shown in the cross section of an exemplary heat-sink assembly 106 in
(24) A semi-enclosed space 601 shown in
(25) Heat-sink elements 107 and 108 may include features that may serve to protect light-emitting element 102 from possible mechanical damage and/or from degradation by environmental factors such as water and dust. As shown in the exemplary heat-sink assembly in
(26) As shown in the three views and one detail of an exemplary heat-sink assembly in
(27) A further example of a heat-sink assembly is shown in
(28) Accordingly, while embodiments have been particularly shown and described, many variations may be made therein. Other combinations of features, functions, elements, and/or properties may be used. Such variations, whether they are directed to different combinations or directed to the same combinations, whether different, broader, narrower, or equal in scope, are also included.
(29) A1. A heat-sink assembly for removing heat from a light-emitting element, the light-emitting element having a thermal-interface surface, a first edge, and a second edge, the first edge and the second edge being on respective spaced-apart portions of the light-emitting element and the thermal-interface surface extending at least partially between the first and second edges, the heat-sink assembly comprising:
(30) a heat-sink element composed of a solid material;
(31) a heat-extraction surface thermally connected to the heat-sink element;
(32) a force redirection mechanism configured to convert to a transverse force a compressive force applied through the action of the heat-sink element pushing the force redirection mechanism in a first direction against the first edge of the light-emitting element, the transverse force acting on the light-emitting element in a second direction transverse to the first direction, the transverse force causing the thermal-interface surface of the light-emitting element to press toward the heat-extraction surface; and
(33) a restraining element acting on the second edge of the light-emitting element to resist the compressive force.
(34) A2. The heat-sink assembly of paragraph A1, wherein the heat-extraction surface is planar and wherein the force-redirection mechanism includes an inclined surface portion configured to be in contact with the first edge of the light-emitting element and inclined so that a first force applied by the inclined surface portion to the first edge of the light-emitting element and directed parallel to the heat-extraction surface results in a second force pressing the thermal-interface surface of the light-emitting element toward the heat-extraction surface.
(35) A3. The heat-sink assembly of paragraph A1, further including a fastening mechanism supported relative to the heat-sink element, and configured to urge the heat-sink element toward the restraining element by tightening and produce the compressive force when the fastening mechanism is tightened.
(36) A4. The heat-sink assembly of paragraph A3, further including a spacer, the spacer being a solid element or assembly situated between the heat-sink element and the restraining element and serving to limit the degree to which the fastening mechanism is able to cause bending of the heat-sink element or the restraining element.
(37) A5. The heat-sink assembly of paragraph A1, wherein the heat-sink element and the restraining element are portions of a continuous unitary material and apply the compressive force through spring forces.
(38) A6. The heat-sink assembly of paragraph A1, further including a compressive fastener contacting the heat-sink element and the restraining element at locations no greater than a first distance from the light-emitting element, the heat-sink element and the restraining element contacting each other at locations no less than the first distance from the light-emitting element, the compressive fastener forcing the heat-sink element and the restraining element toward each other to apply the compressive force.
(39) A7. The heat-sink assembly of paragraph A1, wherein a thermally conductive medium, which may be solid or liquid, disposed between and conforming to portions of the thermal-interface surface and the heat-extraction surface acts to conduct heat from the thermal-interface surface to the heat-extraction surface.
(40) A8. The heat-sink assembly of paragraph A1, wherein the shapes of the heat-sink element and the restraining element define a recess sized to accept the light-emitting element and prevent mechanical contact between sensitive portions of the light-emitting element and planar surfaces external to the recess.
(41) A9. The heat-sink assembly of paragraph A8, wherein optically transmissive solid material is included in the recess, the solid material being configured as a barrier capable of resisting intrusion, onto sensitive portions of the light-emitting element, of dust or of liquid or of mechanical influences originating outside the recess.
(42) A10. The heat-sink assembly of paragraph A8, wherein optically transmissive solid material is included in the recess, the solid material forming a seal over portions of the light-emitting element, which seal resists ingression of dust or of a liquid or of a gas from outside of the recess to the surface of the light-emitting element.
(43) A11. The heat-sink assembly of paragraph A1, wherein the heat-sink element and the restraining element together bound a semi-enclosed interior space within which there exists at least one point distant from the nearest surface of the heat-sink element and equally distant from the restraining element, at which point the combined surface, comprising the set-theoretic union of all points on the surface of the heat-sink element and all points on the surface of the restraining element, subtends a total of at least nine steradians of solid angle.
(44) A12. The heat-sink assembly of paragraph A11, wherein the semi-enclosed interior space includes a gasket assembly and a protected space, the gasket assembly comprising one or more elastomeric gaskets, the gasket assembly contacting and extending between the heat-sink element and the restraining element, the configuration of which gasket assembly is such that the gasket assembly resists ingression of dust or of a liquid or of a gas into the protected space.
(45) A13. The heat-sink assembly of paragraph A12, wherein the gasket assembly includes a deformation gap between two gaskets or between a gasket and a surface of the heat-sink element or between a gasket and a surface of the restraining element, the deformation gap being a separation between a gasket surface and a surface that the gasket surface would be touching if the gasket surface were not deformed relative to a simpler shape, which deformation gap is filled with one or more materials that resist ingression of dust or of a liquid or of a gas into the protected space.
(46) A14. The heat-sink assembly of paragraph A1, wherein the heat-sink element has the form of a solid elongated in a direction of elongation, the solid having a first length in the direction of elongation and a first cross section in a plane perpendicular to the direction of elongation, the first cross section being constant over most of the first length.
(47) A15. The heat-sink assembly of paragraph A14, wherein the restraining element has the form of a solid elongated in a direction of elongation, the solid having a second length in the direction of elongation and a second cross section in a plane perpendicular to the direction of elongation, the second cross section being constant over most of the second length.
(48) A16. The heat-sink assembly of paragraph A15, wherein the first cross section is identical to the second cross section.
INDUSTRIAL APPLICABILITY
(49) The methods and apparatus described in the present disclosure are applicable to the general lighting industry, the decorative lighting industry, the specialty lighting industry, the agricultural lighting industry, the horticultural lighting industry, the research lighting industry, the military lighting industry, and all other industries in which LEDs or other electrically-powered sources are employed to produce light. They are also applicable to other industries in which heat is to be removed from heat-generating elements outside of an enclosure connected electrically to electrical circuitry inside the enclosure.