The present invention relates to an illumination source, and to an illumination system equipped with the illumination source. The present invention further relates to a dimming control method used in the illumination system.
The Japan industrial standard (JIS): Z9112 defines five colors (color temperatures) for illumination light for an illumination source. Among the five colors, an incandescent lamp color (color temperature of 3000K), a neutral white color (color temperature of 5000K), and a daylight color (color temperature of 6700K) are frequently employed for room illumination.
Recently, illumination sources of which illumination light color is variable have been developed (e.g. Published Japanese Translation of a PCT application No. 2003-517705). Such an illumination source is able to alter illumination color easily in accordance with the season and the time of day. For example, it is possible to adopt a daylight color during summer because the color looks cool, while adopting an incandescent lamp color during winter because the color looks warm. On the other hand, it is possible to adopt a daylight color while working because the color is said to help improve the work efficiency, while adopting an incandescent lamp color during a break because the color is relaxing.
One criterion used in evaluation of illumination light quality is a color rendering characteristic. The color rendering characteristic attempts to evaluate illumination light in comparison with the natural light. Specifically, when the color tone of an object upon which illumination light is irradiated is close to that of natural light, the illumination light is evaluated as having a favorable color rendering characteristic. Usually, the color rendering characteristic is represented by a general color rendering index Ra. When the general color rendering index Ra indicates 90 or above, the illumination light is evaluated as having a favorable color rendering characteristic.
Currently, however, there is no illumination source of which illumination light color is variable that has favorable color rendering characteristics for all of an incandescent lamp color, a neutral white color, and a daylight color. For example, when an illumination source exhibits a favorable color rendering characteristic for an incandescent lamp color, it exhibits an unfavorable color rendering characteristic for a daylight color. Conversely, when an illumination source exhibits a favorable color rendering characteristic for a daylight color, it exhibits an unfavorable color rendering characteristic for an incandescent lamp color. This means that if an illumination source is designed to exhibit a favorable color rendering characteristic for illumination light of low color temperatures, it will exhibit an unfavorable color rendering characteristic for illumination light of high color temperatures, and conversely when the illumination source is designed to exhibit a favorable color rendering characteristic for illumination light of high color temperatures, it will exhibit an unfavorable color rendering characteristic for illumination light of low color temperatures.
In view of the above-stated problem, the present invention aims to provide an illumination source capable of outputting illumination light at an incandescent lamp color, a neutral white color, and a daylight color, and exhibiting favorable color rendering characteristics for all the three colors. The present invention also aims to provide an illumination system equipped with the illumination source, and a dimming control method used in the illumination system.
So as to solve the above-described problem, an illumination source relating to the present invention is an illumination source capable of outputting illumination light at different color temperatures, including: a first light emitting device operable to emit light in a first red; a second light emitting device operable to emit light in a second red that is different from the first red; and a third light emitting device operable to emit light in a different color from the first red and from the second red, and a fourth light emitting device operable to emit light in a different color from any of the first red, the second red, and the color of light emitted from the third light emitting device, where the illumination light is outputted at different color temperatures by adjusting luminous intensity ratios of the first to fourth light emitting devices.
Here, “color temperature” is a value representing a relative strength between blue light and red light contained in an illumination source emitting light of a certain color. The color temperature is represented by a blackbody temperature of a perfect blackbody that emits light of the same color as emitted by the illumination source.
“Luminous intensity ratio” is a ratio of luminous strength of each light emitting device emitting a different one of all the colors with respect to a luminous intensity of the entire illumination source. Therefore, summation of all the luminous intensity ratios of all the light emitting devices will yields 100%.
The illumination source relating to the present invention has at least four light emitting devices that respectively emit a different one of colors, including two types of red. Therefore, it is possible to generate illumination light having a targeted color temperature by selecting one of the two types of red that is more suitable for generating illumination light having a favorable color rendering characteristic, thereby mixing the selected type of red with the other colors of light. Accordingly, the illumination source of the present invention is capable of outputting illumination light at the incandescent lamp color, the neutral white color, and the daylight color, and also to obtain favorable color rendering characteristics for all the three colors.
As follows, an illumination source, an illumination system, and a dimming control method, which relate to the present invention, are described by way of an embodiment and with reference to the drawings.
<Illumination Source>
The light emitting devices 3-6 are specifically: a first red light emitting device 3 that emits light in a first red; a second red light emitting device 4 that emits light in a second red; a blue light emitting device 5 that emits light in blue; and a white light emitting device 6 that emits light in white. The light emitting devices 3-6 are arranged with an appropriate distance therebetween so that rays of light emitted from the light emitting devices 3-6 will be mixed to generate white illumination light.
Note that among these colors of light emitted from the light emitting devices 3-6, the two colors other than the two types of red (i.e. other than the first red and the second red) are not limited to blue and white, as long as white illumination light will result by mixture of all the light of colors emitted from the light emitting devices 3-6. Other possible combinations are: a combination of blue, green, and two types of red; a combination of blue, yellow, and two types of red, and so forth.
It should be also noted that the number of the light emitting devices 3-6 is not limited to one for each color.
Furthermore, it is not necessary that the light emitting devices 3-6 are provided in the same number for each of the colors. For example, just as an illumination source 40 shown in
Note that generally, the distance from the illumination source 1 to an object of illumination is much longer than the distance between the light emitting devices 3-6. Therefore the rays of light from the light emitting devices 3-6 will be mixed without particular attention paid to the distance between the light emitting devices 3-6 or to the arrangement of the light emitting devices 3-6. However from a manufacturing point of view and so forth, it is desirable that the light emitting devices 3-6 be aligned regularly to some extent.
As
The first red light emitting device 3 is provided with a first red LED 7 having a light emission peak wavelength of 625 nm. The light emitted from the first red light emitting device 3 has a light emission spectrum as shown by a solid line in
The second red light emitting device 4 is provided with a second red LED 8 having a light emission peak wavelength of 635 nm. The light emitted from the second light emitting device 4 has a light emission spectrum as shown by a broken line in
The blue light emitting device 5 is provided with a blue LED 9 having a light emission peak wavelength of 460 nm. The light emitted from the blue light emitting device 5 has a light emission spectrum as shown in
The white light emitting device 6 is provided with: a blue LED 9 having a light emission peak wavelength of 460 nm (same type as used for the blue light emitting device 5); and a green phosphor 11 provided to cover the blue LED 9, the green phosphor 11 having a light emission peak wavelength of 550 nm. In the white light emitting device 6, part of the blue light emitted from the blue LED 9 is converted to green light by means of the green phosphor 11. The rest of the blue light left unconverted is mixed with the green light resulting from the conversion, to generate white light having a light emission spectrum as shown in
Note that the blue LED 9 used for the white light emitting device 6 may have a different light emission peak wavelength from that of the blue LED 9 of the blue light emitting device 5. In addition, the light emission peak wavelength of the blue LED 9 used for the white light emitting device 6 is not limited to 460 nm, as long as it lies within the range of 455-465 nm. Furthermore, the light emission peak wavelength of the green phosphor 11 is not limited to 550 nm, as long as it lies within the range of 545-555 nm.
In addition, the colors of light emitted from the LED and the phosphor used for the white light emitting device 6 are not limited to a combination of blue and green respectively, as long as they can generate white light by being mixed. For example, other possible combinations are: a blue LED and a red phosphor that is capable of converting the blue light emitted from the blue LED into red light; and a blue LED and a yellow phosphor that is capable of converting the blue light emitted from the blue LED into yellow light.
The illumination source 1 having the above structure is able to vary the color of illumination light as appropriate, by adjustment of the luminous intensity ratio for each of the light emitting devices 3-6 with use of the lighting apparatus detailed later, or with use of various other lighting apparatuses.
<Illumination System>
The lighting apparatus 50 is connected to the illumination source 1 via a lead wire 104, and also to the base 103 via lead wires 105 and 106. The lighting apparatus 50 supplies electric current inputted from an external commercial alternating power source (not shown in the drawing) to the illumination source 1 via the base 103.
The lighting circuit 51 is connected to the first red light emitting device 3 via a wiring pattern (not shown in the drawing) of the printed wiring board 2. The lighting circuit 51 supplies power to the first red light emitting device 3 to cause the device 3 to emit light.
The lighting circuit 52 is connected to the second red light emitting device 4 via a wiring pattern (not shown in the drawing) of the printed wiring board 2. The lighting circuit 52 supplies power to the second red light emitting device 4 to cause the device 4 to emit light.
The lighting circuit 53 is connected to the blue light emitting device 5 via a wiring pattern (not shown in the drawing) of the printed wiring board 2. The lighting circuit 53 supplies power to the blue light emitting device 5 to cause the device 5 to emit light.
The lighting circuit 54 is connected to the white light emitting device 6 via a wiring pattern (not shown in the drawing) of the printed wiring board 2. The lighting circuit 54 supplies power to the blue light emitting device 6 to cause the device 6 to emit light.
The light control unit 55 is connected to the lighting circuits 51-54. The light control unit 55 controls power supply from the lighting circuits 51-54 to the light emitting devices 3-6, thereby adjusting the luminous intensity ratios of the light emitting devices 3-6. Note that the mentioned control performed by the light control unit 55 includes a case of controlling any of the luminous intensity ratios down to 0% thereby completely stopping illumination of a corresponding one of the light emitting devices 3-6.
The illumination system 100, having the above structure, is able to generate illumination light of an incandescent lamp color having a general color rendering index Ra of 95 and having the light emission spectrum as shown in
On the other hand, if the luminous intensity ratios are set as follows: 0% for the first red light emitting device 3; 9.5% for the second red light emitting device 4; 2.9% for the blue light emitting device 5; and 87.6% for the white light emitting device 6, then the illumination system 100 is able to generate illumination light of a neutral white color having a general color rendering index Ra of 93 and having the light emission spectrum as shown in
Furthermore, if the luminous intensity ratios are set as follows: 0% for the first red light emitting device 3; 6.3% for the second red light emitting device 4; 4.7% for the blue light emitting device 5; and 89.0% for the white light emitting device 6, then the illumination system 100 is able to generate illumination light of a daylight color having a general color rendering index Ra of 90 and having the light emission spectrum as shown in
It is also possible to generate illumination light by causing the first red light emitting device 3 and the second red light emitting device 4 to emit light simultaneously. For example, if the luminous intensity ratios are set as follows: 16% for the first red light emitting device 3; 5% for the second red light emitting device 4; 1% for the blue light emitting device 5; and 78% for the white light emitting device 6, then the illumination system 100 is able to generate illumination light of an incandescent lamp color having a general color rendering index Ra of 96.
<Dimming Control Method for the Illumination System>
In the simulation, the light emission peak wavelength for red light was set to 620 nm, 625 nm, 630 nm, 635 nm, and 640 nm. In addition, the light emission peak wavelength for blue light was set to 460 nm, and the light emission peak wavelength for green light was set to 550 nm.
The general color rendering index Ra was measured for the cases where the color temperatures are 3000K, 4000K, 5000K, 6000K, and 7000K, respectively.
As shown in
From this simulation result, it turns out that, if using only one kind of red light, it is difficult to obtain general color rendering index Ra of 90 or above for all the incandescent lamp color, the neutral white color, and the daylight color. However if two kinds of red light are used instead (specifically, by using red light having a light emission peak wavelength of 620-630 nm for the incandescent lamp color; and by using red light having a light emission peak wavelength of 630-640 nm for the daylight color), it is possible to obtain general color rendering index Ra of 90 or above for all the incandescent lamp color, the neutral white color, and the daylight color.
Therefore, it can be said that two kinds of red light are necessary for obtaining general color rendering index Ra of 90 or above for all the incandescent lamp color, the neutral white color, and the daylight color.
As shown in
As shown in
As shown in
From the above discussion, it can be said that if a second red light having a light emission peak wavelength within the range of 610-700 nm is mixed with illumination light generated by mixing red light, blue light, and green light, it is effective for obtaining favorable color rendering characteristics for all the incandescent lamp color, the neutral white color, and the daylight color.
Such an illumination source was actually produced, and the general color rendering index Ra of illumination light outputted by the illumination source was measured. The result is shown in
First, the general color rendering index Ra of illumination light outputted from an illumination source 1 was measured, where the illumination source 1 is equipped with: a first red light emitting device 3 having a first red LED 7 whose light emission peak wavelength is 625 nm; a second red light emitting device 4 having a second red LED 8 whose light emission peak wavelength is 635 nm; a blue light emitting device 5 having a blue LED 9 whose light emission peak wavelength is 460 nm; and white light emitting device 6 having a blue LED 9 whose light emission peak wavelength is 460 nm and a green phosphor 11 whose light emission peak wavelength is 550 nm.
Further, by changing the light emission peak wavelength of the LEDs 7-9 and the green phosphor 11 one by one, the general color rendering index Ra of illumination light emitted from the illumination source was measured.
As shown in the judgment column of
As described earlier, it is preferable to obtain a color rendering index Ra of 90 or above. However, if an illumination source exhibits the general color rendering index Ra of 85 or above, then the value is modifiable to 90 or above by changing the light emission peak wavelength of any of the LEDs 7-9 and the green phosphor 11. For example, when the blue LED 9 of the white light emitting device 6 has alight emission peak wavelength of 455 nm, the general color rendering index Ra is 89 for a neutral white color (color temperature of 5000K). However in this case, the value of 89 was modified to 90 or above successfully, by changing the light emission peak wavelength of the LEDs 7-9 of the first red light emitting device 3, the second red light emitting device 4, and the blue light emitting device 5.
Accordingly, it can be said that the general color rendering index Ra will be 90 or above for all the three colors of incandescent lamp color, neutral white color, and daylight color, if the following five conditions are satisfied.
(Five Conditions)
Next, by changing the luminous intensity ratio of each of the light emitting devices 3-6 to various values, the general color rendering index Ra of illumination light generated by the illumination source 1 was measured. The result is shown in
As shown in the judgment column of
If the luminous intensity ratio of each of the light emitting devices 3-6 is adjusted to the range judged favorable (shown by the sign “o” in the drawing), resulting illumination light will have 90 or more of the general color rendering index Ra of illumination light.
Specifically, for illumination light having an incandescent lamp color, the general color rendering index Ra of 90 or above is obtained if the following conditions are satisfied, namely: the luminous intensity ratio for the first red light emitting device 3 lies within the range of 3.0-22.1%; the luminous intensity ratio for the second red light emitting device 4 lies within the range of 0-16.8%; the luminous intensity ratio for the blue light emitting device 5 lies within the range of 0.5-0.6%; and the luminous intensity ratio for the white light emitting device 6 lies within the range of 77.3-79.7%.
Furthermore, for illumination light having a neutral white color, the general color rendering index Ra of 90 or above is obtained if the following conditions are satisfied, namely: the luminous intensity ratio for the first red light emitting device 3 lies within the range of 0-7.9%; the luminous intensity ratio for the second red light emitting device 4 lies within the range of 2.5-9.5%; the luminous intensity ratio for the blue light emitting device 5 lies within the range of 2.9-3.2%; and the luminous intensity ratio for the white light emitting device 6 lies within the range of 86.4-87.6%.
Still Further, for illumination light having a daylight color, the general color rendering index Ra of 90 or above is obtained if the following conditions are satisfied, namely: the luminous intensity ratio for the first red light emitting device 3 lies within the range of 0-1.4%; the luminous intensity ratio for the second red light emitting device 4 lies within the range of 5.1-6.3%; the luminous intensity ratio for the blue light emitting device 5 lies within the range of 4.7-5.0%; and the luminous intensity ratio for the white light emitting device 6 lies within the range of 88.5-89.0%.
An illumination source, an illumination system, and a dimming control method, which relate to the present invention, are applicable for such purposes as indoor illumination, outdoor illumination, and illumination for image reading.
Number | Date | Country | Kind |
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2004-358038 | Dec 2004 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2005/022251 | 11/29/2005 | WO | 00 | 5/24/2007 |