Abstract:
The present disclosure describes light delivery and distribution components of a ducted lighting system having a cross-section that includes at least one curved portion and a remote light source. The delivery and distribution system (i.e., light duct and light duct extractor) can function effectively with any light source that is capable of delivering light which is substantially collimated about the longitudinal axis of the light duct, and which is also preferably substantially uniform over the inlet of the light duct. The light delivery and distribution system can further function as a structural element that adjoins at least two walls of an illuminated enclosure or supports the shelves of illuminated shelving, joining the unit together.
Abstract:
Marketing strips having a light source and a flexible viscoelastic lightguide for displaying products or product related information, or illuminating a graphic on the marketing strip and products adjacent it. Light from the light source enters the viscoelastic lightguide and is transported within the lightguide by total internal reflection until the light exits from surfaces of the lightguide and through the graphic. The viscoelastic lightguide can include a pressure-sensitive adhesive, which adheres the lightguide to the marketing strip and enhances structural support for it. The light from the lightguide can illuminate products and labels on the marketing strip. The lightguide can also include a bevelled edge with light exiting the edge downward and backward from the marketing strip to illuminate products it.
Abstract:
The present disclosure describes advanced lighting elements, in particular solid-state lighting elements, and luminaires that include an array of lighting elements. The lighting elements, and luminaires including the lighting elements can exhibit benefits that include high optical efficiency and therefore high luminous efficacy; extraordinary directional control and therefore extraordinary glare control and efficacy of delivered lumens; and exceptional mixing of individual-device emission providing exceptional suppression of punch-through and color breakup. In many cases, the architecture can be amenable to low-cost manufacturing in a modular format.
Abstract:
A solid state light having a solid state light source such as LEDs, a light guide having an enclosed interior volume such as a bulb shape without vents, and a thermal guide. The light guide is coupled to the light source for receiving and distributing light from the light source. The thermal guide is at least partially contained within the interior volume with an air gap between a portion of the thermal guide and the light guide. The thermal guide provides for thermal conduction from the light source and dissipating heat through convection and radiation for cooling the light.
Abstract:
The present disclosure describes light delivery and distribution components of a ducted lighting system having a cross-section that includes at least one curved portion and a remote light source. The delivery and distribution system (i.e., light duct, redistribution plate, and light duct extractor) can function effectively with any light source that is capable of delivering light which is substantially collimated about the longitudinal axis of the light duct, and which is also preferably substantially uniform over the inlet of the light duct.
Abstract:
This application describes a back- lit transmissive display including a transmissive display ( 620 ) and a variable index light extraction layer ( 640 ) optically coupled to a lightguide ( 630 ). The variable index light extraction layer has first regions ( 140 ) of nanovoided polymeric material and second regions ( 130 ) of the nanovoided polymeric material and an additional material. The first and second regions are disposed such that for light being transported at a supercritical angle in the lightguide, the variable index light extraction layer selectively extracts the light in a predetermined way based on the geometric arrangement of the first and second regions. The transmissive display may be a transmissive display panel or a polymeric film such as a graphic.
Abstract:
A solid state light having a solid state light source such as LEDs, and optical guide, and a thermal guide. The optical guide is coupled to the light source for receiving and distributing light from the light source, and the thermal guide is integrated with the optical guide for providing thermal conduction from the solid state light source and dissipating heat through convection for cooling the light.
Abstract:
Lighting assembly comprising: an enclosure having an interior surface and a first transmissive area, the interior surface comprising a first surface area region and a second surface area region generally opposite the first surface area region, wherein the first transmissive area is within first surface area region, and wherein the second surface area region includes a surface area generally opposite the first transmissive area that is at least one of semi-specularly reflective or diffusely reflective and has an on-axis average reflectivity of at least 90% for visible light of any polarization, and the remainder of the interior surface area has an on-axis average reflectivity of at least 98% for visible light of any polarization; a light guide disposed within the enclosure and between the first and second surface area regions, including substantially between the first transmissive area and the surface area generally opposite the first transmissive area that is at least one of semi-specularly reflective or diffusely reflective, the light guide including a first opening for receiving light, wherein the first opening does not extend between the first transmissive area and the surface area generally opposite the first transmissive area that is at least one of semi-specularly reflective or diffusely reflective; and a first light source positioned to introduce light into at least the first opening of the light guide.
Abstract:
The present application is directed to a method of producing a multilayer circuit. The method comprises providing a first electrically insulating layer comprising apertures through the layer and bonding the first electrically insulating layer with a first conductive layer. The first conductive layer is bonded to the first electrically insulating layer in register to the apertures in the electrically insulating layer and the multilayer circuit is produced at a sustained rate. In another embodiment, the method comprises providing a second electrically insulating layer and bonding the second electrically insulating layer with the first conductive layer opposite the first electrically insulating layer.
Abstract:
Backlights for display devices, in particular scanning backlights for autostereoscopic 3D display devices. The backlights can include light rods, slats, or segments, arranged in parallel and used for light extraction from light sources such as a light emitting diodes. The light sources can be individually addressed and controlled in order to synchronize backlighting of right and left images to generate a corresponding 3D image.