The present invention relates to a lighting device and a lighting system for irradiating a particular illuminated region with uniform illuminance with light emitted from a light source using a fly eye lens.
A lighting device for irradiating a predetermined region preferably irradiates an illuminated surface with uniform light having a predetermined shape, for example, a rectangular shape and the like. The irradiation of the uniform light having such a predetermined shape, for example, as disclosed in Japanese Patent Laid-Open No. 2001-337204, may be achieved by projecting light from a light source into a fly eye lens having a plurality of lens portions in matrix arrangement.
However, according to the technology disclosed in Japanese Patent Laid-Open No. 2001-337204 described above, when a lighting device irradiates an illuminated surface having a step with light, because there is a difference in irradiation distance between an upper stage and lower stage of the illuminated surface, a projected image formed on each of the stages of the illuminated surface is made distorted in shape relative to each other, resulting in an unattractive situation.
An object of the present invention is to provide a lighting device having a simple configuration and capable of irradiating an illuminated surface having a step without distortion with illumination light of uniform illuminance.
The present invention is made for a lighting device configured to irradiate an illuminated surface having a step with light from a preset fixed point, and the lighting device includes a fly eye lens having a plurality of lens portions configured to receive emitted light from a light source and project the emitted light onto a particular illuminated region in a manner that the emitted light is overlapped with each other, and a light shielding mask configured to oppose to the fly eye lens and have a transparent portion made open corresponding to each of the lens portions, respectively, wherein the transparent portion is divided to be formed into a first transparent portion allowing light for forming a projected image on an upper stage of the illuminated surface with the step to enter the lens portions and a second transparent portion allowing light for forming a projected image on a lower stage of the illuminated surface with the step to enter the lens portions, and the transparent portion of the first and second transparent portion is individually set depending on a distance to each stage of the illuminated surface.
Now, an embodiment of the present invention will be described with reference to the accompanying drawings.
In
As shown in
The light source unit 10 has an LED substrate 11. The LED substrate 11 holds the LED 12 on the substantially central portion thereof by means of soldering etc., and further electrically connects the held LED 12 to a power supply circuit not shown. Here, in order to improve luminous efficiency of the LED 12, a radiating fin 13 is fixedly provided on the backside of the LED substrate 11.
Further, the lens optical system unit 20 includes a lens housing 21 as well as a collimating lens 22 and a fly eye lens 23 housed and held in the lens housing 21. Further, the lens optical system unit 20 includes a light shielding mask 24 opposing to an entrance surface of the fly eye lens 23 in the lens housing 21.
As shown in
Further, the lens housing 21 includes a lens loading slot 33 open into one side thereof, as well as collimating lens hold grooves 35, light shielding mask hold grooves 36 and fly eye lens hold grooves 37, opposed to each other in this order from the LED loading slot 30 side in the inner surface of each of side walls adjacent to the lens loading slot 33.
The collimating lens 22 is, for example, a lens member configured by integrally forming a lens portion 22b on the emitting side of a lens substrate 22a in planar and substantially rectangular shape which is inserted and held into the collimating lens hold grooves 35. Then, the collimating lens 22 converts incident light from the LED 12 into substantially parallel light through the lens portion 22b to project.
The fly eye lens 23 is a lens member configured by integrally forming, in matrix arrangement, a plurality (for example, 5×7) of lens portions 23b having, for example, an entrance surface projecting downward and an emitting surface projecting upward on a lens substrate 23a in planar and substantially rectangular shape which is inserted and held into the fly eye lens hold grooves 37. Then, the fly eye lens 23 uniformly irradiates a particular illuminated region by overlapping incident light with each other which comes from the collimating lens 22 and enters each of the lens portions 23b, respectively. Here, in the present embodiment, each of the lens portions 23b, seen as planar, has, for example, a length of 3 mm and a breadth of 4.2 mm. Further, a distance across vertexes of each of the lens portions 23b is, for example, 8.3 mm. In addition, a refractive index is, for example, 1.492.
The light shielding mask 24 includes a transparent substrate 24a in planar and substantially rectangular shape which is inserted and held into the light shielding mask hold grooves 36, and a light shielding film 24b adhered on an emitting surface of the transparent substrate 24a. The light shielding mask 24 is adjacent and opposed to the entrance surface of the fly eye lens 23, and in the light shielding film 24b, a transparent portion 25 is made open at a position to which each of the lens portions 23b of the fly eye lens 23 corresponds.
Each transparent portion 25 is divided to be formed into a first transparent portion 25a allowing light for forming the projected image 101a on the upper stage of the illuminated surface 100a (see
The first and second transparent portions 25a, 25b are shaped and arranged, for example, in a manner individually set by means of experiment and/or simulation etc. based on the step H between the illuminated surface 100a and 100b, the fix position (Y, Z, α, β etc.) of the lighting device 1, and each of dimensions of the lens portions 23b etc.
In the present embodiment, each transparent portion 25a, 25b is set so that the lighting device 1 forms the rectangular projected images 101a, 101b, on each of the stages 100a, 100b of the illuminated surface, which have the same width and are arranged on the same line with respect to one another. For this purpose, a shape of each transparent portion 25a, 25b is made substantially rectangular. A width W1, W2 of each transparent portion 25a, 25b has a different, individual value, respectively, and an opening position thereof also is set at a position so that a distance between centers has a predetermined distance D from each other (see
Further, now in
According to such embodiment, the light shielding mask 24 opposing to the entrance surface of the fly eye lens 23 is provided, and the transparent portion 25 is made open corresponding to each lens portion 23b, respectively, and further each of the transparent portions 25 is divided to be formed into the first transparent portion 25a allowing light for forming the projected image 101a on the upper stage of the illuminated surface 100a to enter the lens portion 23b, and the second transparent portion 25b allowing light for forming the projected image 101b on the lower stage of the illuminated surface 100b to enter the lens portion 23b, and thereby, using a simple configuration, a difference between irradiation distances to the illuminated surface 100a, 100b due to the step can be complemented, respectively. Therefore, the first and second transparent portions 25a, 25b are suitably set, and whereby, the illuminated surface 100a, 100b having the step can be irradiated without distortion with light uniformized by the fly eye lens 23.
Next,
The present embodiment is described as one example in which a plurality (for example, two) of the lighting devices 1a, 1b configured in a similar way to the first embodiment described above are used to form a lighting system, and emitted light from each lighting device 1a, 1b is overlapped with each other on the illuminated surface 100a, 100b (see
Here, in the present embodiment, each lighting device 1a, 1b houses, as a light source, an LED 12 having a different, luminescent color from one another. For example, in the present embodiment, the lighting device 1a houses the LED 12 having a Cyan-base, luminescent color as a light source, and the lighting device 1b houses the LED 12 having an Umber-base, luminescent color.
As shown in
On the one hand, as shown in
In such configuration, as shown in
According to such embodiment, the plurality of the lighting devices 1a, 1b housing the LED 12 of a different, luminescent color and the light shielding mask 124, 225 formed in an arbitrary opening shape, respectively, are used to form a lighting system, and therefore the aesthetic projected image 131a, 131b can be formed on each of the illuminated surface 100a, 100b.
In addition, in the present embodiment, as a matter of course, the lighting devices 1a, 1b may be integrally formed.
Moreover, needless to say, the color of each LED and the shape of each transparent portion should not be limited to the aforementioned.
Further, in each embodiment, the projected image can be blinked by controlling a power supply circuit for supplying power to the LED 12.
Still further, in each embodiment, although the example using the surface-mounted LED as a light source has been described, the present invention should not be limited to this, and for example, a so-called “shell LED” in which a lens portion is integrally formed with a light emitting portion may be used as a light source, and moreover, needless to say, a HID lamp etc. may be used as a light source.
Number | Date | Country | Kind |
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2004-360326 | Dec 2004 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2005/016305 | 9/6/2005 | WO | 00 | 6/12/2007 |