Systems and methods for a heat sink
A passive system that creates a cross-flow and directly flow thermal management system to dissipate large amounts of heat in a slim light fixture.
1. A heat sink for generating cross flow comprising:
a base with a plurality of vents, the vents extending along a lateral axis of the heat sink;
a plurality of fins extending along a longitudinal axis of the heat sink, wherein the plurality of fins includes a first fin and a second fin, the first and second fins being adjacent fins, wherein a length of the plurality of vents equals a distance between the first fin and the second fin, the width of the plurality of vents being longer than the length of the plurality of vents, the plurality of fins extending along in a uniform interval across the longitudinal axis of the heat sink, each of the plurality of fins includes an inner surface and an outer surface, wherein the inner surface and the outer surface extend in parallel to each other, wherein heat generated from a light source heats air that directly flows through the plurality of vents and into the plurality of fins, wherein the vents extend along the lateral axis of the heat sink such that an entirety of every inner surface of the plurality of fins is exposed via the vents.
2. The heat sink of claim 1 , wherein the vents are formed by machining the base orthogonal to an extruded axis of the plurality of fins.
3. The heat sink of claim 1 , wherein the plurality of vents includes a first vent and a second vent, the base includes an unvented portion positioned between the first vent and the second vent, wherein a distance from the first vent to the second vent is equal to a width of the heat sink.
4. The heat sink of claim 3 , wherein the distance between the first vent and the second vent is configured to enable cross flow, wherein the heated air from the light source cross flows over the unvented portion from the first vent towards the second vent.
5. The heat sink of claim 1 , wherein the cross flowing air flowing between the first fin and the second fin through the first vent travels towards a second end of the heat sink, and the cross flowing air between the first fin and the second fin through the first vent travels towards a first end of the heat sink.
6. The heat sink of claim 1 , wherein faces of the plurality of the fins are etched to increase a surface area of the plurality of fins.
7. The heat sink of claim 1 , further comprising:
a first rail extending along the longitudinal axis of the heat sink,
a second rail extending along the longitudinal axis of the heat sink, wherein the first rail includes a first plurality of tabs that are configured to extend towards a central axis of the heat sink, and the second rail includes a second plurality of tabs that are configured to extend towards the central axis of the heat sink, the first rail and the second rail being configured to apply forces against a plurality of light sources towards the plurality of fins, the plurality of light sources including the light source.
8. The heat sink of claim 7 , wherein the first rail and the second rail are removably coupled to the base to allow removal and insertion of the plurality of light sources.