Systems and methods for lighting fixtures
Examples of the present disclosure are related to systems and methods for lighting fixtures. More particularly, embodiments disclose lighting fixtures utilizing metal core PCB (MCPCB) for thermal, mechanical, and/or optical controls.
1. A heat sink comprising:
a substrate;
at least one light source positioned on a first surface of the substrate; and
at least one bend extending along a longitudinal axis of the substrate;
wherein a top heat dissipation surface area of the heat sink is based in part on:
a height of the at least one bend, wherein the height of the bend is based in part on a length of the heat sink;
a width of a second surface of the substrate; and
an angle between the first surface of the substrate and the at least one bend.
2. The heat sink of claim 1 , wherein a mechanical rigidity of the heat sink is based on the height of the bend.
3. The heat sink of claim 2 , wherein the mechanical rigidity of the heat sink is in a direction perpendicular to a direction of the bend.
4. The heat sink of claim 1 , wherein increasing the width of the second surface increases the top heat dissipation surface area of the heat sink.
5. The heat sink of claim 1 , wherein the substrate is metal-core printed circuit board.
6. The heat sink of claim 1 , further comprising:
a first bend; and
a second bend, the first bend and the second bend being position on different sides of the at least one light source, the first bend and the second bend being asymmetrical.
7. The heat sink of claim 1 , further comprising:
a coating positioned on the second surface of the substrate;
reflectors positioned on the second surface of the substrate, wherein the reflectors are positioned on the second surface of the substrate before the coating.
8. The heat sink of claim 7 , wherein the reflectors are positioned around the at least one light surface.
9. The heat sink of claim 8 , wherein the reflectors are positioned on the at least one bend.
10. A method for dissipating heat using a heat sink comprising:
positioning at least one light source on a first surface of the substrate;
positioning at least one bend extending along a longitudinal axis of the substrate, wherein a top heat dissipation surface area of the heat sink is based in part on:
a height of the at least one bend, wherein the height of the bend is based in part on a length of the heat sink;
a width of a second surface of the substrate; and
an angle between the first surface of the substrate and the at least one bend;
generating heat, via the at least one light source;
flowing the heat around the at least one bend.
11. The method of claim 10 , further comprising:
increasing a mechanical rigidity of the heat sink by increasing the height of the bend.
12. The method of claim 11 , wherein the mechanical rigidity of the heat sink is in a direction perpendicular to a direction of the bend.
13. The method of claim 10 , wherein increasing the width of the second surface increases the top heat dissipation surface area of the heat sink.
14. The method of claim 10 , wherein the substrate is metal-core printed circuit board.
15. The method of claim 10 , wherein the substrate includes a first bend, and a second bend, the first bend and the second bend being position on different sides of the at least one light source, the first bend and the second bend being asymmetrical.
16. The method of claim 10 , further comprising:
positioning reflectors on the second surface of the substrate
positioning a coating positioned on the second surface of the substrate after the reflectors are positioned on the second surface of the substrate.
17. The method of claim 16 , wherein the reflectors are positioned around the at least one light surface.
18. The method of claim 17 , wherein the reflectors are positioned on the at least one bend.