This application claims the benefit of Korean Patent Application No. 10-2011-0019107, filed on Mar. 3, 2011, in the Korean Intellectual Property Office, the disclosure of which is incorporated herein in its entirety by reference.
1. Field
The present disclosure relates to light diffusion lenses and lighting fixtures including the same, and more particularly, to light diffusion lenses for enlarging an irradiation angle of light emitted from an optical source and lighting fixtures including the same.
2. Description of the Related Art
Currently, lighting fixtures using light-emitting diodes (LEDs) have been released for replacing incandescent lights.
LEDs used in lighting fixtures do not emit light in all directions 360 degrees and instead emit light to the front. Thus, a light distribution characteristic of the LEDs is significantly different from that of a general light.
Referring to
In this regard, when the lighting fixture is used, the optical distribution and visibility of the lighting fixture is significantly different from those of the general electric-light bulb and thus it is hard to supply the lighting fixture to the market.
Provided are light diffusion lenses which may increase an irradiation angle of light emitted from an optical source and lighting fixtures including the same.
Additional aspects will be set forth in part in the description which follows and, in part, will be apparent from the description, or may be learned by practice of the presented embodiments.
According to an aspect of the present invention, a light diffusion lens includes a body including a center hole at the center thereof penetrating from a lower surface to an upper surface of the body; and a light incident unit depressed from a lower surface of the body to surround the center hole, wherein light is incident on the light incident unit.
According to another aspect of the present invention, a lighting fixture includes: a base; a plurality of optical sources attached on an upper surface of the base to emit light; a heat spreader connected to the base to radiate heat emitted from the plurality of optical sources; and a light diffusion lens disposed on upper surfaces of the plurality of optical sources to refract light emitted from the plurality of optical sources and to increase an irradiation angle of light.
These and/or other aspects will become apparent and more readily appreciated from the following description of the embodiments, taken in conjunction with the accompanying drawings of which:
Referring to
The base 110 is attached to the upper surface of the heat spreader 120 and protrudes from the upper surface of the heat spreader 120 by a predetermined height. The base 110 is in a cylindrical form and includes a printed circuit board 111 thereon for controlling the optical sources 112. The form of the base 110 is not limited to the form illustrated in
The plurality of optical sources 112 are arranged on the printed circuit board 111 in a round form. Light-emitting diodes may be applied to the optical sources 112.
The heat spreader 120 irradiates heat emitted from the plurality of optical sources 112 to the outside and generally has a structure of a heat sink. A socket 150 connected to a power source (not illustrated) is disposed at the lower surface of the heat spreader 120.
A cross-section of the light diffusion lens 130 is a circle, as illustrated in
Although not illustrated in
In order for light emitted from the plurality of optical sources 112 to be incident on the light incident unit 133 of the light diffusion lens 130, the plurality of optical sources 112 may be disposed to face the light incident unit 133 of the light diffusion lens 130. Accordingly, the plurality of optical sources 112 are arranged in a ring form so as to correspond to the form of the light incident unit 133 disposed on the printed circuit board 111 in a ring form.
The cover 140 is installed at an upper side of the heat spreader 120, and the base 110, the plurality of optical sources 112, and the light diffusion lens 130 are disposed in the cover 140. A diffusion matter may be coated on the inner surface of the cover 140 or filled in the cover 140 so that the cover 140 may protect the plurality of optical sources 112 and allow light emitted from the plurality of optical sources 112 to diffuse well.
Hereinafter, functions of the light diffusion lens 130 will be described with reference to
Referring to
A part of light emitted from the optical source 112 is bent at an one side incident surface 1331 of the light incident unit 133 and is incident onto the inside of the light diffusion lens 130 in a direction of about 45 degrees. Light incident onto the inside of the light diffusion lens 130 is totally reflected at a side surface 1321 of the center hole 132 and is totally reflected at the upper surface 135 again, thereby facing the side 134. Light is refracted at the side 134 of the body 131 and is emitted to the outside of the light diffusion lens 130.
Referring to
A part of light emitted from the optical source 112 is bent at another side incident surface 1332 of the light incident unit 133 and is incident onto the inside of the light diffusion lens 130 in a direction of about 45 degrees. Light incident onto the inside of the light diffusion lens 130 is totally reflected at the upper surface 135 of the body 131, thereby facing the side 134 of the body 131. Light is refracted at the side 134 of the body 131 and is emitted to the outside of the light diffusion lens 130. Accordingly, a part of light emitted from the optical source 112 is totally reflected while passing through the inside of the body 131 of the light diffusion lens 130 and is emitted to a lower side of the light diffusion lens 130 so that an irradiation angle increases.
Referring to
A part of light emitted from the optical source 112 is refracted while passing through a center incident surface 1333 of the light incident unit 133 and refracted at an increased angle while passing through the upper surface 135 of the light diffusion lens 130 so that light is diffused to the outside. Accordingly, a part of light emitted from the optical source 112 is refracted while passing through the upper surface 135 of the light diffusion lens 130 and thus an irradiation angle increases.
Consequently, an irradiation angle of light emitted to the front and the side increases while light emitted from the optical source 112 passes the light diffusion lens 130.
Referring to
It should be understood that the exemplary embodiments described therein should be considered in a descriptive sense only and not for purposes of limitation. Descriptions of features or aspects within each embodiment should typically be considered as available for other similar features or aspects in other embodiments.
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