This application claims priority under 35 U.S.C. §119 from Korean Application No. 10-2011-0003493 filed Jan. 13, 2011, the subject matter of which is incorporated herein by reference.
1. Field
An embodiment may relate to a flat light emitting diode (LED) lighting device. More particularly, an embodiment may relate to a flat LED lighting device that can prevent (or reduce) side glare.
2. Background
An incandescent lamp, a halogen lamp, a discharge lamp, and/or so on may be used as a lighting device. The lighting device may also include a Light Emitting Diode (LED). The LED lighting device may use an LED device as a light source. The LED device may emit a light as minority carriers re-combine, after producing the minority carriers injected to a semiconductor by using a P-N junction. The LED device may emit light with a wavelength that varies based on the type of impurities, thereby providing a red color, a blue color, and/or a yellow color, and possibly producing a white color. The LED lighting device may have a size smaller than other light sources, such as the incandescent lamp, the halogen lamp, and/or so on. The LED lighting device may have advantages of a long lifetime, a good efficiency, and/or a fast response.
Arrangements and embodiments may be described in detail with reference to the following drawings in which like reference numerals refer to like elements and wherein:
Reference may now be made in detail to specific embodiments, examples of which may be illustrated in the accompanying drawings. Wherever possible, same reference numbers may be used throughout the drawings to refer to the same or like parts.
If a LED lighting device is used for a simple lighting, a direction of light may change by using a non-transparent diffusion cap. If a directional projection of the light is required for a particular purpose, a lens unit may be provided to the LED lighting device for guiding the light from the LED device.
The LED lighting device that requires a direction of the light may be provided with the lens unit or a combination of the lens unit and a reflective member. That is, the light from the lighting device may be made to have a direction by using the lens unit and the reflective member, so as to direct the light to a desired region.
The LED lighting device that requires no direction may use a diffuser for scattering the light. A flat LED lighting device is one example of the LED lighting device that requires no direction. The flat LED lighting device may have a flat LED light source with a plurality of LED devices and a diffuser provided over the flat LED lighting device for scattering the light by using the diffuser. The diffuser may have a light emission mode of the plurality of LED devices as the LED light source appears, not to be in a spot light form (i.e., a hot spot form) as they are, but rather in a surface light source form. However, since the flat LED lighting device has a Unified Glare Rating (UGR) that relates to a degree of glare, the CIE may be defined greater than 21, which may be in a range that is difficult for the user to receive, and/or may feel inconvenient even when the user receive. One method for relating to such a problem is to use of a louver, which is used in a fluorescent lamp. However, the louver may cause a structure of the flat LED lighting device to be great and complicated.
A flat LED lighting device may be described with reference to
The lower cover 7 may have step portions at edges for mounting (or providing) the diffuser 3 and the glare preventive member 5 thereto. The diffuser 3 may also be provided to the step portions at the edges of the lower cover 7, and the glare preventive member 5 may be mounted to step portions formed additionally at edges of the upper cover 9.
The flat LED lighting device may include the LED light source 1, the diffuser 3, and the glare preventive member 5 formed flat such that the flat LED lighting device may serve as a surface light source.
As one embodiment, the flat LED lighting device may be mounted on a ceiling and/or a wall. The LED light source may be provided inward from a plane that defines the ceiling or the wall. This type of lighting device may only allow light to be provided directly underneath.
The diffuser 3 and the glare preventive member 5 may be described with respect to
As described above, the diffuser 3 may be provided over the flat LED light source 1 having the plurality of LED devices 10. The diffuser 3 may scatter the light from the LED light source 1. The glare preventive member 5 may be provided over the diffuser 3. The glare preventive member 5 may be provided so to be in contact with the diffuser 3 or may be spaced apart from the diffuser 3.
The diffuser 3 may be formed of a mixture of a diffusing agent to have no unevenness. That is, the light from the LED light source 1 may be scattered by the diffusing agent mixed in the diffuser 3, so as to remove hot spots. The diffuser 3 may be formed of polycarbonate. The glare preventive member 5 may include a transparent plate 54 and a micro-lens array 52 having a plurality of micro-lenses 52a that change a light distribution for preventing glare from taking place. Although the micro-lens 52a has very small size that is not visible with naked eyes,
The glare preventive member 5 includes the transparent plate 54 for transmission of the light, and the micro-lens array 52 coupled to the transparent plate 54 by a UV resin.
If the transparent plate 54 and the diffuser 3 have a same refractive index such as the transparent plate 54 and the diffuser 3 being formed of an identical material (e.g. polycarbonate), an intermediate layer may be provided between the transparent plate 54 and the diffuser 3. The intermediate layer may have a refractive index different from the transparent plate 54 and the diffuser 3. If the intermediate layer exists, the light from the diffuser 3 may be effectively guided to the micro-lens array 52.
The transparent plate 54 may be spaced a predetermined distance from the diffuser 3 so as to form a gap 7 between the diffuser 3 and the transparent plate 54. The gap 7 may be an air gap. An air gap is one example of the intermediate layer. The air gap 7 may be provided between the diffuser 3 and the transparent plate 54. Since air has a refractive index of 1, and the polycarbonate has a refractive index of 1.586, the intermediate layer may be present between the transparent plate 54 and the diffuser 3. In order to provide the air gap 7, the transparent plate 54 may not need to be spaced apart from the diffuser 3. In an example that the transparent plate 54 is in contact with the diffuser 3, the air gap 7 may substantially exist between the transparent plate 54 and the diffuser 3. If the transparent plate 54 is not coupled to the diffuser 3, but is just in contact with the diffuser 3, the air gap 7 may be substantially provided between the transparent plate 54 and the diffuser 3.
The glare preventive member 5 may be described with reference to
The micro-lens 52a may have a semispherical shape. The micro-lens 52a may have a pitch of 20˜100 μm, and more preferably may have a pitch of approximately 58 μm. In this example, since the micro-lens 52a is a semispherical, the micro-lens 52a may have a height of approximately 29 μm. One desirable reason for defining the shape and the size of the micro-lens 52a may be provided. As a result of research, it is known that the greater the pitch P of the micro-lens 52a, the better the micro-lens 52a may become in view of a total light quantity. However, it is known that the smaller the pitch P of the micro-lens 52a, the better the micro-lens 52a may become in view of side glare prevention. Therefore, in order to prevent the side glare from taking place while not substantially reducing a total light flux, the micro-lens 52a may have a pitch of 20˜100 μm.
A principle of side glare prevention may be described with reference to
a) illustrates a schematic view of a light distribution.
A flat LED lighting device in accordance with an embodiment may be described with reference to
This
A flat LED lighting device in accordance with an embodiment may be described with reference to
This
A flat LED lighting device in accordance with an embodiment may be described with reference to
Like the
Although a non-transparent diffuser 3 may be used by mixing a diffusing agent, the diffusing agent 34 may be coupled to a bottom of a transparent mother member 32 by an appropriate method.
The flat LED lighting device and the method for fabricating the same as described above may have advantages.
A reduction of UGR, which denotes a rate of glare, to be below 19 may enable the consumer to receive the glare and to reduce the glare difficult to perceive.
Fabrication of the flat LED lighting device may become simple while reducing the glare.
Embodiments may provide a flat LED lighting device and a method for fabricating the same that reduces glare.
Embodiments may provide a flat LED lighting device of which fabrication is simple while reducing glare.
A flat LED lighting device may include a flat LED light source having a plurality of LED devices, a diffuser for scattering a light from the LED devices, and a glare preventive member (or portion) for preventing (or reducing) a side glare from taking place, the glare preventive member having a micro-lens array with a plurality of micro-lenses for changing a distribution of the light.
The glare preventive member may include a transparent plate for transmitting the light, and the micro-lens array coupled to the transparent plate. The transparent plate may have a refractive index that is the same with a refractive index of the diffuser, and another refractive index may be present between the transparent plate and the diffuser. The transparent plate may be spaced a predetermined distance away from the diffuser, and an air gap may exist between the transparent plate and the diffuser.
The micro-lens may be semi-spherical. The micro-lens may have a pitch of 20˜100 μm, and more preferably the micro-lens may have a pitch of approximately 58 μm.
The transparent plate may be in contact with the diffuser, and the transparent plate may have a refractive index greater than the refractive index of the diffuser. The micro-lens may be provided to the diffuser, and may have a height greater than the pitch thereof. The micro-lens may be coupled to the diffuser with a UV resin of a high refractive index. The micro-lens may be semi-spherical.
A method for fabricating a flat LED lighting device may be provided that includes scattering a light from an LED light source by using a diffuser, and changing a distribution of the light from the diffuser by using a micro-lens array, which is a set of micro-lenses for reducing the light forwarded to a side.
The micro-lens may have a semi-spherical shape coupled to a transparent plate having a refractive index that is the same with a refractive index of the diffuser, with an air gap present between the transparent plate and the diffuser.
The micro-lens may have a semi-spherical shape coupled to a transparent plate having a refractive index that is greater than a refractive index of the diffuser. The transparent plate may be in contact with the diffuser without the air gap. The micro-lens may have a height greater than a pitch thereof, and the micro-lens may be coupled to the diffuser. The micro-lens may have a semi-spherical shape coupled to the diffuser with a UV resin of a high refractive index.
Any reference in this specification to “one embodiment,” “an embodiment,” “example embodiment,” etc., means that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one embodiment of the invention. The appearances of such phrases in various places in the specification are not necessarily all referring to the same embodiment. Further, when a particular feature, structure, or characteristic is described in connection with any embodiment, it is submitted that it is within the purview of one skilled in the art to affect such feature, structure, or characteristic in connection with other ones of the embodiments.
Although embodiments have been described with reference to a number of illustrative embodiments thereof, it should be understood that numerous other modifications and embodiments can be devised by those skilled in the art that will fall within the spirit and scope of the principles of this disclosure. More particularly, various variations and modifications are possible in the component parts and/or arrangements of the subject combination arrangement within the scope of the disclosure, the drawings and the appended claims. In addition to variations and modifications in the component parts and/or arrangements, alternative uses will also be apparent to those skilled in the art.
Number | Date | Country | Kind |
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10-2011-0003493 | Jan 2011 | KR | national |
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Entry |
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European Search Report dated Oct. 1, 2012 for Application 11186608.3. |
Number | Date | Country | |
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20120182733 A1 | Jul 2012 | US |