The present invention relates to a light emitting device having a light emitting element such as a light emitting diode,
In recent years, in place of conventional light emitting devices such as fluorescent lamps or incandescent lamps, light emitting devices have been developed which include a light source having a light emitting element such as a light emitting diode. Light emitting devices including a light emitting element are anticipated from the point of view of power consumption and product lifetime in comparison to conventional light emitting devices.
In light emitting devices including a light emitting element, the size of a light source is smaller than that of conventional light emitting devices, and thus a light intensity distribution is required to be improved.
According to an aspect of the invention, a light emitting device includes a plurality of light sources each including a light emitting element, a first light reflective member which surrounds the plurality of light sources, and a second light reflective member disposed ahead of the first light reflective member in a light radiation direction of the plurality of light sources with reference to the plurality of light sources. The second light reflective member includes a light transmitting material.
Now referring to the drawings, exemplary embodiments of the invention are described below.
A light emitting device according to a first embodiment of the invention will be described with reference to
As shown in
As shown in
As shown in
As shown in
The package 121 includes a base 122 and a frame member 123 disposed on the base 122. The frame member 123 surrounds the light emitting element 124.
The light emitting element 124 is, for example, a semiconductor device such as a light emitting diode (LED) and radiates primary light in response to driving power.
The light transmitting member 125 is disposed inside the frame member 123 and covers the light emitting element 124. The “light transmitting property” of the member 125 means that a wavelength of at least some of light rays radiated from the light emitting element 124 can pass through the light transmitting member. The light transmitting member 125 includes, for example, a silicone resin.
The wavelength conversion member 126 covers the light transmitting member 125 and is fixed to the frame member 123. The wavelength conversion member 126 includes a plurality of fluorescent particles which radiate secondary light in response to the primary light, and a light transmitting resin. The plurality of fluorescent particles are contained in the light transmitting resin. The “light transmitting property” of the resin means that a wavelength of at least some of light rays radiated from the light emitting element 124 and a wavelength of at least some of light rays radiated from the plurality of fluorescent particles can pass through the light transmitting resin.
As described above, an example of the light source 12 is a light emitting diode lamp (LED lamp). Another example of the light source 12 is an organic electroluminescence (organic EL).
Referring to
The light reflective member 2 includes a light transmitting material. The “light transmitting property” of the light reflective member 2 means that at least some of light rays radiated from the light source 12 can pass through the light reflective member. Examples of the light transmitting material include polymethylmethacrylate (PMMA), acrylic resin, polybutylene terephthalate, polypropylene, acrylonitrile-butadiene-styrene copolymer synthetic resin (ABS resin), polycarbonate, polyester, polyethylene and epoxy resin.
The light reflective member 2 surrounds the plurality of light sources 12. To “surround the plurality of light sources 12” includes not only a structure in which each of the plurality of light sources 12 is surrounded by the light reflective surface 131, as shown in
As schematically shown in
Since the light emitting device of this embodiment is provided with the light reflective member 2 including the light transmitting material, the light emitting device has a light intensity distribution 900 including the distribution 902. Accordingly, the light emitting device of this embodiment has an appropriate level of light spread and can realize, for example, a pleasant illumination space.
As schematically shown in
A second embodiment of the invention will be described with reference to
The light reflective member 2 of the second embodiment has an internal surface having a rougher surface texture than that of the light reflective surface 131 of the light reflective member 13. The “rougher surface texture than that of the light reflective surface 131” means that the internal surface has higher arithmetic mean roughness Ra than that of the light reflective surface 131. The exemplary arithmetic mean roughness Ra of the internal surface of the light reflective member 2 is in the range of 0.1 μm to 30 μm. The exemplary arithmetic mean roughness Ra of the light reflective surface 131 is in the range of 0.001 μm to 0.1 μm.
Some light rays 120a radiated from the light source 12 are reflected to be scattered in the internal surface of the light reflective member 2. The light emitting device of the second embodiment can properly scatter some light rays 120a radiated from the light source 12. Accordingly, the light emitting device of the second embodiment has an improved light intensity distribution.
A third embodiment of the invention will be described with reference to
The light reflective member 2 of the second embodiment has an external surface having a rougher surface texture than that of the light reflective surface 131. The “rougher surface texture than that of the light reflective surface 131” means that the external surface has higher arithmetic mean roughness Ra than that of the light reflective surface 131. The exemplary arithmetic mean roughness Ra of the external surface of the light reflective member 2 is in the range of 0.1 μm to 30 μm. The exemplary arithmetic mean roughness Ra of the light reflective surface 131 is in the range of 0.001 μm to 0.1 μm.
Some light rays 120b radiated from the light source 12 pass through the light reflective member 2 so as to be scattered by the external surface of the light reflective member 2. The light emitting device of the second embodiment can properly scatter light rays 120b radiated from the light source 12. Accordingly, the light emitting device of the second embodiment has an improved light intensity distribution.
A fourth embodiment of the invention will be described with reference to
The light reflective member 2 of the fourth embodiment includes a plurality of light scattering particles. The “light scattering property” of the particles means that the propagation direction of the light radiated from the light source 12 is changed by reflection or light refraction. Some light rays 120b radiated from the light source 12 are reflected or refracted by the light scattering particles in the light reflective member 2. Examples of the material for the light scattering particles include metallic oxide particles such as aluminum oxide, zirconium oxide, titanium oxide and yttrium oxide, glass particles having a refractive index different from that of the second light reflective member 3, polymethylmethacrylate (PMMA), acryl, polybutylene terephthalate, polypropylene, acrylonitrile-butadiene-styrene copolymer synthetic resin (ABS resin), polycarbonate, polyester, polyethylene and epoxy resin which have a light transmitting property. The light emitting device of the fourth embodiment can properly scatter the light radiated from the light source 12. Accordingly, the light emitting device of another embodiment has an improved light intensity distribution.
Number | Date | Country | Kind |
---|---|---|---|
2009-107909 | Apr 2009 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
---|---|---|---|---|
PCT/JP2010/055837 | 3/31/2010 | WO | 00 | 10/11/2011 |