This invention relates generally to the field of lighting products, and more particularly, to a luminaire configured to provide optimal conditions for the growth of vegetation in indoor and/or greenhouse conditions in a way that is efficient for the users of those products.
The need for lighting products to facilitate the creation of optimal growing conditions for vegetation in indoor and/or greenhouse settings is continually increasing. Current reflector and socket designs unnecessarily waste energy and do not provide optimal lighting conditions. In addition, current bulb designs do not provide optimal lighting from either a growth or energy consumption standpoint.
Accordingly, there is a need in the field of lighting products for an optimized luminaire that can provide more efficient light in indoor growing conditions.
The present invention relates to an efficient horticultural luminaire suitable for both indoor and greenhouse applications. The efficient horticultural luminaire comprises CONVEX hybrid reflector technology that positions the lamp's arc tube on the reflector's base horizontal plane, utilizing the lamp's ability to spread the lamp's lumens while utilizing direct control from the reflector's precision design to maximize overall performance.
The foregoing and other features and advantages of the present invention will be apparent from the following more detailed description of the particular embodiments of the invention, as illustrated in the accompanying drawings.
As discussed above, embodiments of the present invention relate to an efficient luminaire suitable as a horticulture grow light for both indoor and greenhouse applications. The efficient horticultural luminaire comprises Concealed Vacuum Airflow Technology that maximizes the hood's photometric performance and thermal dissipation. The efficient horticultural luminaire further comprises CONVEX hybrid reflector technology that positions the lamp's arc tube on the reflector's base horizontal plane, utilizing the lamp's ability to spread the lamp's lumens while utilizing direct control from the reflector's precision design to maximize overall performance.
Referring to the drawings,
The performance of the luminaire 10 is enhanced by the orientation and placement of the lamp 14 within the housing 12 of luminaire 10. In an embodiment, the lamp socket 16 is positioned in the luminaire 10 such that the internal arc tube of the lamp 14 inserted in the socket is positioned at the lower horizontal edge of the housing 12, such that the lamp extends beyond the plane of the lower horizontal edge of the housing 12. Positioning the lamp 14 in this way allows for the reflector 17, shown in
Conventional luminaires have a “dead zone” beneath the bottom surface of the luminaire in which neither direct rays or reflected rays are present. This is in contrast with luminaire 10, which has little to no “dead zone” beneath the bottom surface of luminaire 10. Consequently, as a result of the placement of bulb 14 in socket 16, luminaire 10 is able to deliver more usable light rays 18 to the vegetation located near luminaire 10, significantly increasing the efficiency of luminaire 10 relative to conventional luminaires and its ability to produce growth in vegetation located near luminaire 10.
The embodiments and examples set forth herein were presented in order to best explain the present invention and its practical application and to thereby enable those of ordinary skill in the art to make and use the invention. However, those of ordinary skill in the art will recognize that the foregoing description and examples have been presented for the purposes of illustration and example only. The description as set forth is not intended to be exhaustive or to limit the invention to the precise form disclosed. Many modifications and variations are possible in light of the teachings above without departing from the spirit and scope of the forthcoming claims.
Number | Date | Country | |
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62591639 | Nov 2017 | US |