LED light fixture
09797580 · 2017-10-24
Assignee
Inventors
- Jeffrey Mansfield Quinlan (Covington, GA, US)
- Mark Anthony Hand (Covington, GA, US)
- Forrest Starnes McCanless (Oxford, GA, US)
- John T. Mayfield, III (Loganville, GA, US)
Cpc classification
F21Y2103/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21V19/003
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2105/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21Y2115/10
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
International classification
F21V1/00
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
F21S8/04
MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
Abstract
Light fixtures for illuminating spaces that use light emitting diode-based light sources and that incorporate chip on board technology that enables the light emitting diode to be mounted directly on a portion of the light fixture. In some embodiments, the light fixture includes a reflector assembly onto which the light emitting diode is directly mounted. In other embodiments, the reflector assembly includes an aperture that receives a board having chip on board technology onto which the light emitting diode is directly mounted. In some embodiments, the light fixture also includes a diffuser for diffusing the light emanating from the light emitting diodes.
Claims
1. A light fixture for illuminating an architectural space comprising: (a) a housing comprising a housing cavity; (b) a heat dissipater having an underside comprising at least one mounting surface, wherein the heat dissipater is positioned within the housing cavity such that the at least one mounting surface is recessed entirely within the housing cavity; (c) a plurality of light emitting diodes mounted directly onto the at least one mounting surface without a printed circuit board interposed between the plurality of light emitting diodes and the at least one mounting surface, wherein the plurality of light emitting diodes are recessed entirely within the housing cavity; and (d) traces printed on the at least one mounting surface to electrically interconnect the plurality of light emitting diodes.
2. The light fixture of claim 1, wherein the heat dissipater further comprises at least one pair of curved reflective surfaces, wherein the at least one mounting surface is interposed between the curved reflective surfaces of the at least one pair of curved reflective surfaces and wherein the curved reflective surfaces of the at least one pair of curved reflective surfaces extend from the at least one mounting surface in a direction toward the architectural space to an extent beyond the plurality of light emitting diodes so as to be positioned to receive and reflect light emitted by the plurality of light emitting diodes.
3. The light fixture of claim 1, wherein at least one of the plurality of light emitting diodes further comprises a lens comprising a phosphor-infused polymer.
4. The light fixture of claim 1, wherein the housing further comprises opposing end walls separated by a distance and opposing side walls separated by a distance, wherein the opposing end walls and the opposing side walls define the housing cavity such that the housing cavity extends entirely across the distance between the opposing end walls and the distance between the opposing side walls.
5. The light fixture of claim 4, wherein the heat dissipater extends continuously and entirely across the distance between the opposing side walls and the distance between the opposing end walls.
6. The light fixture of claim 2, wherein the at least one mounting surface comprises an elongated channel near an upper portion of the housing.
7. The light fixture of claim 2, wherein the curved reflective surfaces of the at least one pair of curved reflective surfaces extend within the housing cavity parallel to the at least one mounting surface and wherein the curved reflective surfaces of the at least one pair of curved reflective surfaces curve downwardly from the at least one mounting surface towards a bottom portion of the housing.
8. The light fixture of claim 2, wherein the at least one pair of curved reflective surfaces is formed integrally with the at least one mounting surface.
9. The light fixture of claim 2, wherein the at least one pair of curved reflective surfaces is recessed entirely within the housing cavity.
10. The light fixture of claim 6, wherein: the at least one mounting surface comprises a first mounting surface and a second mounting surface that extends within the housing cavity parallel to the first mounting surface; the at least one pair of curved reflective surfaces comprise a first pair of curved reflective surfaces and a second pair of curved reflective surfaces; and the first mounting surface is interposed between the reflective surfaces of the first pair of curved reflective surfaces and the second mounting surface is interposed between the curved reflective surfaces of the second pair of curved reflective surfaces.
11. The light fixture of claim 10, wherein a central portion of the heat dissipater comprises a crest where an edge of one of the curved reflective surfaces of the first pair of curved reflective surfaces meets an edge of one of the curved reflective surfaces of the second pair of curved reflective surfaces.
12. A method of manufacturing a light fixture, the method comprising: (a) providing a light fixture comprising: (i) a housing comprising a housing cavity; and (ii) a heat dissipater having an underside comprising at least one mounting surface, wherein the heat dissipater is positioned within the housing cavity such that the at least one mounting surface is recessed entirely within the housing cavity; and (b) directly attaching a plurality of light emitting diodes onto the at least one mounting surface without a printed circuit board interposed between the plurality of light emitting diodes and the at least one mounting surface such that the plurality of light emitting diodes are recessed entirely within the housing cavity.
13. The method of manufacturing a light fixture of claim 12, wherein: the at least one mounting surface comprises a first mounting surface and a second mounting surface that extends within the housing cavity parallel to the first mounting surface; the heat dissipater further comprises a first pair of curved reflective surfaces and a second pair of curved reflective surfaces; and the first mounting surface is interposed between the curved reflective surfaces of the first pair of curved reflective surfaces and the second mounting surface is interposed between the curved reflective surfaces of the second pair of curved reflective surfaces.
14. The method of manufacturing a light fixture of claim 12, further comprising printing traces directly on the at least one mounting surface to electrically interconnect the plurality of light emitting diodes.
15. The method of manufacturing a light fixture of claim 12, wherein the heat dissipater further comprises at least one pair of curved reflective surfaces, wherein the at least one mounting surface is interposed between the curved reflective surfaces of the at least one pair of curved reflective surfaces and wherein the curved reflective surfaces of the at least one pair of curved reflective surfaces extend from the at least one mounting surface beyond the plurality of light emitting diodes so as to be positioned to receive and reflect light emitted by the plurality of light emitting diodes.
16. The method of manufacturing a light fixture of claim 12, wherein the housing further comprises opposing end walls separated by a distance and opposing side walls separated by a distance, wherein the opposing end walls and the opposing side walls define the housing cavity such that the housing cavity extends the distance between the opposing end walls and the distance between the opposing side walls.
17. The method of manufacturing a light fixture of claim 15, wherein the at least one pair of curved reflective surfaces is formed integrally with the at least one mounting surface.
18. The method of manufacturing a light fixture of claim 15, wherein the at least one pair of curved reflective surfaces is recessed entirely within the housing cavity.
19. The light fixture of claim 16, wherein the heat dissipater extends continuously and entirely across the distance between the opposing side walls and the distance between the opposing end walls.
20. A light fixture for illuminating an architectural space comprising: (a) a housing comprising an upper portion, a lower portion, and a housing cavity having an opening proximate the lower portion; (b) a heat dissipater positioned within the housing cavity, the heat dissipater comprising at least one mounting surface, a first curved reflective surface extending from a first side of the at least one mounting surface, and a second curved reflective surface extending from a second side of the at least one mounting surface opposite the first side, wherein: i. the at least one mounting surface, the first curved reflective surface and the second curved reflective surface are positioned entirely within the housing cavity; ii. the at least one mounting surface is positioned more proximate the upper portion of the housing than the first and second curved reflective surfaces; and iii. the first and second curved reflective surfaces extend from the at least one mounting surface towards the lower portion of the housing; (c) a plurality of light emitting diodes mounted directly onto the at least one mounting surface without a printed circuit board interposed between the plurality of light emitting diodes and the at least one mounting surface, wherein the plurality of light emitting diodes are recessed entirely within the housing cavity and wherein the first and second curved reflective surfaces extend from the at least one mounting surface in a direction toward the architectural space to an extent beyond the plurality of light emitting diodes so as to be positioned to receive and reflect light emitted by the plurality of light emitting diodes; and (d) traces printed on the at least one mounting surface to electrically interconnect the plurality of light emitting diodes.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1) A full and enabling disclosure including the best mode of practicing the appended claims and directed to one of ordinary skill in the art is set forth more particularly in the remainder of the specification. The specification makes reference to the following appended figures, in which use of like reference numerals in different features is intended to illustrate like or analogous components.
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DETAILED DESCRIPTION OF THE INVENTION
(7)
(8) As shown in
(9) The plurality of individual LEDs 22 serve as a light source for illuminating an area. The LEDs 22 may be single-die or multi-die light emitting diodes, DC or AC, or may be organic light emitting diodes (“O-LEDS”). The LEDs 22 may be white or may include color or multicolor LEDs 22, or may include a variety of different colors of LEDs 22. In some embodiments, LEDs 22 are blue. LEDs 22 may include lenses that surround the LEDs to direct the emitted light. In some embodiments, a phosphor-infused silicon compound (or any suitable polymer infused with phosphor) may be deposited over at least some of the LEDs (more particularly, the lenses covering the LEDs) to alter the color of their emitted light as desired.
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(12) People of skill in the art would easily appreciate that other configurations than those illustrated in the Figures may be employed. By way only of example, as one alternative to the light fixture illustrated in
(13) While the plurality of LEDs 22 are shown in the embodiments as extending in two substantially parallel rows, one of skill in the art will recognize that the LEDs may be positioned in any suitable configuration on a reflector assembly 14 or board 26.
(14) Using a portion of the light fixture 10 as the carrier for the COB technology allows for fast programmable application of the LEDs onto the light fixture 10 without manual labor and without the possibility of programming errors. Using a light fixture 10 having COB technology is particularly well suited for an automated high speed production process where the quantity and characteristics of the LEDs used as the light source may be programmed into the light fixture 10 as the fixture 10 is being built and assembled.
(15) In the various embodiments, light emanating from the LEDs 22 is diffused by diffuser 18 that is positioned between the LEDs 22 and the area to be illuminated. Diffuser 18 may have any shape including curved, rectilinear, parabolic, or any other appropriate shape to diffuse light emitted from the LEDs 22 to provide an aesthetically pleasing appearance. Diffuser 18 may be formed of plastic or any other suitable material that allows a sufficient amount of light to pass through the diffuser. Diffuser 18 is connected to reflector assembly by any appropriate mechanical or chemical means. In some embodiments, as shown in the Figures, diffuser 18 has arms 32, 34 that snap-fit over the edges of the reflector assembly. In other embodiments, diffuser 18 may be attached to the reflector assembly using mechanical fasteners.
(16) The foregoing is provided for purposes of illustration and disclosure of embodiments of the invention. It will be appreciated that those skilled in the art, upon attaining an understanding of the foregoing may readily produce alterations to, variations of, and equivalents to such embodiments. Accordingly, it should be understood that the present disclosure has been presented for purposes of example rather than limitation, and does not preclude inclusion of such modifications, variations and/or additions to the present subject matter as would be readily apparent to one of ordinary skill in the art.