Embodiments of the invention relate to mounted light fixtures having several positioning options.
An important consideration in the design of light fixtures is the selection of the light source. Fluorescent lamps have long been the light source of choice in many commercial applications, particularly for indoor office lighting. These fluorescent lamps provide high lumen output, which is a favorable quality when illuminating a space. Other light sources may include electrodeless high-intensity discharge (“HID”) lamps or incandescent light bulbs. Additionally, light-emitting diodes (“LED”) have grown in popularity as a light source due to their high lumen output and compact size.
But such light sources (particularly, fluorescent lamps and LEDs) may produce undesirable direct lighting. “Direct lighting” means that the light is only directed into the space immediately below the light fixture, which leaves other areas of the space dark. For example, if a light fixture having a fluorescent lamp is mounted to a ceiling of a room, then the floor immediately below the light fixture may be very bright, but the upper portions of walls in the room may be dark. The use of optics may reduce some direct lighting. Optics may include lenses, shields, or other covers with refractive surfaces that refract the light and make the light more uniform in the illuminated space. But even with optics, light fixtures cannot always distribute light throughout the entire space meant to be illuminated.
Additionally, such light fixtures are typically mounted on the wall or ceiling such that a user cannot change the direction of the emitted light. For example, a light fixture may have a rectangular housing that is mounted to the ceiling with bolts or screws. If the requirements of the space change—for example, if furniture is moved in the space—then such permanently mounted fixtures cannot adapt to meet the new lighting requirements.
Finally, light sources emit thermal energy and may become very hot, thus risking damage to the light fixture. For example, a HID lamp may reach temperatures of 800° C. If the light fixture has an optic, the optic may melt or burn. The light source may become damaged or the restrike time (the time it takes for a light source to turn on after it is turned off) may become unacceptably long. It thus becomes necessary to provide systems, such as heat sinks, to reduce the temperature of the light fixture. But introducing heat sinks also increases the number of parts in the light fixture, and accordingly, the weight, manufacturing costs, etc.
Thus, there exists a need for light fixtures that may distribute light into a particular desired location.
There exists a need for light fixtures that may adapt to changing conditions within an illuminated space.
There exists a need to remove heat from the light fixture.
There exists a need to reduce the number of parts in the light fixture.
Certain embodiments of the invention provide a housing for a light fixture that acts as a heat sink to remove heat from the light fixture and also provides for selective positioning of the light fixture to thereby alter the direction of emitted light within an illuminated space. Light fixtures may include a housing, a light source, and a bracket. There may a set of fins protruding from the housing and flanges protruding from the bracket. When the housing is positioned within the bracket, the fins rest on the bracket, thus suspending the housing within the bracket. The housing may be repositioned within the bracket by engaging the bracket with other fins provided on the housing. Thus, the fins allow for the housing to be positioned in a number of different orientations, creating a number of light distribution options for the light fixture.
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.
Certain embodiments of the present invention provide a light fixture 10, which includes (inter alia) a light source 134 provided on a housing 100. There may also be provided a bracket 200 to mount the light fixture 10 to a surface, such as a wall or ceiling. As described in more detail below, the housing 100 acts as a heat sink for the light source 134 and engages with the bracket 200 to allow selective positioning of the light fixture 10 to direct the light emitted by the light source 134 as desired.
The light fixture 10 includes a housing 100. As shown in
In certain embodiments, the upper portion 110 of the housing 100 is provided with a number of fins 122. (If desired, the lower portion 130 of the housing 100 may also be provided with fins 144.) There may be provided fins 122 on the first sidewall 160, the second sidewalls 162, or both. In
In certain embodiments the fins 122 are angled with respect to the sidewall 160, 162 from which they protrude. (For example, in
In certain embodiments, the lower portion 130 of the housing 100 includes structure to retain a light source 134, an optic 140, or other components for the fixture 10. For example, the lower portion 130 may include a trough 132 having an inner surface 136. A light source 134 may be received within the trough 132 such that it contacts the inner surface 136 of the trough 132. The trough 132 may have a width that is dimensioned to closely receive the light source 134 to prevent lateral movement of the light source 134 within the trough 132. The light source 134 may connect to the power source 113 through apertures (not shown) that may be provided in the lower portion 130, or may alternatively connect to the power source 113 near the caps 150 of the housing 100.
Embodiments of the light fixture 10 may be provided with various types of light sources 134, including but not limited to fluorescent lamps, electrodeless high-intensity discharge (“HID”) lamps, incandescent light bulbs, or one or more light-emitting diodes (“LED”). If more than one LED is used as the light source 134, then the LEDs might be packaged together in a single luminaire. In general, any type of light source 134 is within the scope of this invention.
The light fixture 10 may optionally include an optic 140, which may be used to create volumetric lighting, to refract the light emitted from the light source 134, to provide a protective cover for the light source 134, and/or to assist in retaining the light source 134 within the light fixture 10. Optics 140 may include lenses, shields, or other covers with refractive surfaces. In embodiments having optics 140, the lower portion 130 of the housing 100 may include slots 138 that engage with flanges 142 on the optic 140, although retention of the optics 140 on the housing 100 is not limited to this particular retention method.
When the optic 140 is mounted over the light source 134, the light source 134 and/or the optic 140 may become very hot due to the heat energy released by the light source 134. Thus, in certain embodiments the housing 100 acts as a heat sink to remove heat from the light source 134 and/or the optic 140. To increase heat-transfer properties, the housing 100 may be made of a heat-conducive material, including metals such as, but not limited to, aluminum, copper, steel, and nickel. Additional heat-transfer properties are provided by the fins 122, which increases the surface area of the housing 100 and allow heat to be removed by convection. To further increase heat-transfer properties, the lower portion 130 of the housing 100 (the area most adjacent to the light source 134) may also include fins 144.
The housing 100 may be formed from an extrusion process, rendering it easy to vary the length of the housing 100. But other methods of formation may be used, such as molding or machining.
As shown in
As shown in
In certain embodiments the light fixture 10 may be selectively positioned within a bracket 200 that is mounted to a surface, such as a wall or ceiling. There may be a single bracket 200 or multiple brackets 200, depending upon the size and shape of the light fixture 10. The bracket 200 may include a base portion 210 and retaining flanges 220 that extend from either edge of the base portion 210. The base portion 210 is sufficiently wide such that the light fixture 10 may be positioned within the bracket 200. The ends of the retaining flanges 220 may have upstanding arms 222. When the light fixture 10 is positioned within the bracket 200, a fin 122 rests on each of the upstanding arms 222 of the bracket 200. In other words, upstanding arms 222 contact and engage the underside of the fins 122 to thereby position and retain the light fixture 10 within the bracket 200. If desired, fins 122 may be provided with bent tips 124 (as shown in
In
The bracket 200 may also include mounting means 230 to mount the light fixture 10 to a surface. Mounting means 230 may extend from the base portion 210 in the opposite direction of the retaining flanges 220. The mounting means 230 may vary depending on the particular surface upon which the light fixture 10 is to be mounted. In the embodiment shown in
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.
This application claims the benefit of Application Ser. No. 61/211,724, filed on Apr. 2, 2009 and entitled “Light Fixture With Adjustable Heat Sink Housing,” the entire contents of which are incorporated by reference.
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