JP4988525B2 - Light-emitting diode luminaire - Google Patents

Light-emitting diode luminaire Download PDF

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JP4988525B2
JP4988525B2 JP2007303232A JP2007303232A JP4988525B2 JP 4988525 B2 JP4988525 B2 JP 4988525B2 JP 2007303232 A JP2007303232 A JP 2007303232A JP 2007303232 A JP2007303232 A JP 2007303232A JP 4988525 B2 JP4988525 B2 JP 4988525B2
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temperature
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JP2009129688A (en
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善宣 村上
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Panasonic Corp
Panasonic Holdings Corp
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Matsushita Electric Industrial Co Ltd
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本発明は、発光ダイオードを光源とする発光ダイオード照明器具に関する。   The present invention relates to a light-emitting diode luminaire using a light-emitting diode as a light source.

従来から、赤色、緑色、青色及び白色発光ダイオード(以下、赤色発光ダイオード等と総称する)から出射される合成光の三刺激値をカラーセンサによって検出し、その検出結果に基づいて、上記の合成光の輝度及びクロミナンス特性が所望の輝度及びクロミナンス特性となるように赤色発光ダイオード等を制御する発光ダイオード照明器具が知られている(例えば、特許文献1参照)。   Conventionally, tristimulus values of combined light emitted from red, green, blue, and white light emitting diodes (hereinafter collectively referred to as red light emitting diodes, etc.) are detected by a color sensor, and the above synthesis is performed based on the detection result. There is known a light-emitting diode illuminating device that controls a red light-emitting diode or the like so that the luminance and chrominance characteristics of light become desired luminance and chrominance characteristics (see, for example, Patent Document 1).

ところで、発光ダイオードの光出力のピーク波長は、発光ダイオードの温度特性に起因して変化する。従って、上記の発光ダイオード照明器具においても、発光ダイオードの周辺雰囲気温度の変化に伴って、各色の発光ダイオードの光出力のピーク波長が変化し、各光色の色度が変動する虞がある。このため、各色の光を合わせて成る照明光の色度が温度変化に起因して変動する虞がある。しかしながら、特許文献1に記載の技術ではこの問題を解決できない。
特開2005−259699号公報
By the way, the peak wavelength of the light output of the light emitting diode changes due to the temperature characteristics of the light emitting diode. Therefore, also in the above-described light-emitting diode luminaire, the peak wavelength of the light output of the light-emitting diode of each color changes with the change in ambient temperature of the light-emitting diode, and the chromaticity of each light color may vary. For this reason, there is a possibility that the chromaticity of the illumination light formed by combining the light of each color may vary due to a temperature change. However, the technique described in Patent Document 1 cannot solve this problem.
JP 2005-259699 A

本発明は、上記の従来の問題を解決するためになされたものであり、温度変化に起因する照明光の色度変動を抑制することができる発光ダイオード照明器具を提供することを目的とする。   The present invention has been made to solve the above-described conventional problems, and an object of the present invention is to provide a light-emitting diode illuminating device that can suppress variation in chromaticity of illumination light caused by a temperature change.

上記目的を達成するために本発明は、第1の発光ダイオードと、前記第1の発光ダイオードの発光色と同一色で、且つ、該第1の発光ダイオードの光出力のピーク波長よりも短いピーク波長の光を出力する第2の発光ダイオードと、前記第1の発光ダイオードの発光色と同一色で、且つ、該第1の発光ダイオードの光出力のピーク波長よりも長いピーク波長の光を出力する第3の発光ダイオードと、前記第1、第2及び第3の発光ダイオードの周辺雰囲気温度を検出する温度センサと、前記第1、第2及び第3の発光ダイオードの合成光出力を検出する光検出素子と、前記温度センサによる検出結果に応じて、温度変化に拘らず前記第1、第2及び第3の発光ダイオードの合成光出力のピーク値及びピーク波長が変動せず、かつ該ピーク波長が、前記光検出素子の受光感度が最大となる受光波長と等しくなるようにそれらの光出力比を制御する制御部と、を備え、前記制御部は、前記光検出素子による検出結果にも応じて、前記第1、第2及び第3の発光ダイオードの光出力を制御することを特徴とする。 To accomplish the above object, a first light emitting diode, the same color and the emission color of the first light emitting diode, and, shorter peak than the peak wavelength of the light output of the first light emitting diode and the second light-emitting diode that outputs light having a wavelength, the same color and the emission color of the first light emitting diode, and the output light of the peak wavelength longer than the peak wavelength of the light output of the first light emitting diode A third light emitting diode, a temperature sensor for detecting ambient temperature around the first, second and third light emitting diodes, and a combined light output of the first, second and third light emitting diodes. The peak value and the peak wavelength of the combined light output of the first, second, and third light emitting diodes do not fluctuate regardless of the temperature change according to the detection result of the light detection element and the temperature sensor, and the peak wavelength , And a control unit receiving sensitivity of the light detection element to control their light output ratio to be equal to the light-receiving wavelength of maximum, the control unit, depending also on the result of detection by the light detection element The optical output of the first, second and third light emitting diodes is controlled.

本発明によれば、第1、第2及び第3の発光ダイオードの光出力比が温度センサの検出結果に基づいて制御部により制御され、その結果、温度変化に拘らず上述の発光ダイオードの合成光出力のピーク値及びピーク波長が変動しないので、温度変化に起因する上述の合成光すなわち照明光の色度変動を抑制することができる。 According to the present invention , the light output ratio of the first, second, and third light emitting diodes is controlled by the control unit based on the detection result of the temperature sensor. Since the peak value and the peak wavelength of the light output do not fluctuate, the above-described synthesized light, that is, the chromaticity fluctuation of the illumination light due to the temperature change can be suppressed.

本発明の一実施形態に係る発光ダイオード照明器具(以下、照明器具という)について図面を参照して説明する。図1は、本実施形態の照明器具の構成を示す。この照明器具1は、光源として、互いに光出力のピーク波長が異なる3種の赤色発光ダイオード2a、2b、2cを備える。赤色発光ダイオード2bは、赤色発光ダイオード2a(第1の発光ダイオード)と略同一色で、赤色発光ダイオード2aの光出力のピーク波長よりも短いピーク波長の光を出力し(第2の発光ダイオード)、赤色発光ダイオード2cは、赤色発光ダイオード2aと略同一色で、赤色発光ダイオード2aの光出力のピーク波長よりも長いピーク波長の光を出力するように構成されている(第3の発光ダイオード)。照明器具1は、同様の構成を有する緑色発光ダイオード3a、3b、3c及び青色発光ダイオード4a、4b、4cをさらに備える。以下、発光ダイオードをLEDといい、赤色LED2a〜2c、緑色LED3a〜3c及び青色LED4a〜4cを総称してLED5という。   A light-emitting diode lighting apparatus (hereinafter referred to as a lighting apparatus) according to an embodiment of the present invention will be described with reference to the drawings. FIG. 1 shows the configuration of the lighting apparatus of the present embodiment. The luminaire 1 includes three types of red light emitting diodes 2a, 2b, and 2c having different light output peak wavelengths as light sources. The red light emitting diode 2b is substantially the same color as the red light emitting diode 2a (first light emitting diode), and outputs light having a peak wavelength shorter than the peak wavelength of the light output of the red light emitting diode 2a (second light emitting diode). The red light emitting diode 2c is configured to output light having a peak wavelength that is substantially the same color as the red light emitting diode 2a and is longer than the peak wavelength of the light output of the red light emitting diode 2a (third light emitting diode). . The luminaire 1 further includes green light emitting diodes 3a, 3b, 3c and blue light emitting diodes 4a, 4b, 4c having the same configuration. Hereinafter, the light emitting diode is referred to as an LED, and the red LEDs 2a to 2c, the green LEDs 3a to 3c, and the blue LEDs 4a to 4c are collectively referred to as an LED 5.

また、照明器具1は、LED5を点灯させるための点灯回路6と、LED5の光出力の三刺激値を検出する光センサ7と、LED5の周辺雰囲気温度を検出する温度センサ8と、LED5の各々の光出力を制御する制御部9と、点灯回路6及び制御部9に電源を供給する電源回路10と、を備える。制御部9は、温度センサ8による検出結果に応じて、温度変化に拘らず赤色LED2a〜2cの合成光出力のピーク値及びピーク波長が変動しないようにそれらの光出力比を制御する。緑色LED3a〜3c及び青色LED4a〜4cも同様に制御される。また、制御部9は、光センサ7による検出結果にも応じてLED5の光出力を制御する。   The lighting fixture 1 includes a lighting circuit 6 for lighting the LED 5, a light sensor 7 for detecting the tristimulus value of the light output of the LED 5, a temperature sensor 8 for detecting the ambient atmosphere temperature of the LED 5, and each of the LEDs 5. And a power supply circuit 10 that supplies power to the lighting circuit 6 and the control unit 9. The control unit 9 controls the light output ratio of the red LEDs 2a to 2c so that the peak value and the peak wavelength of the red LEDs 2a to 2c do not fluctuate in accordance with the detection result of the temperature sensor 8. The green LEDs 3a to 3c and the blue LEDs 4a to 4c are similarly controlled. In addition, the control unit 9 controls the light output of the LED 5 in accordance with the detection result by the optical sensor 7.

LED5は、基板51に実装されている。光センサ7は、図2に示されるように、赤色光透過フィルタ71、緑色光透過フィルタ72及び青色光透過フィルタ73と、これらの各々に対応し、透過光を検出する3個の光検出素子74、75、76とにより構成される。赤色光透過フィルタ71は、赤色LED2a〜2cの合成光の分光分布に対応するフィルタ特性を有しており、その合成光出力のピーク波長と略等しい受光波長において光検出素子74の受光感度を最大とする。緑色光透過フィルタ72及び青色光透過フィルタ73も、緑色LED3a〜3c及び青色LED4a〜4cとの間で同様の関係を有するように構成されている。光センサ7は、光検出素子74〜76による検出結果に基づいて光の三刺激値を検出し、その検出結果を制御部9に出力する。   The LED 5 is mounted on the substrate 51. As shown in FIG. 2, the optical sensor 7 includes a red light transmission filter 71, a green light transmission filter 72, and a blue light transmission filter 73, and three light detection elements corresponding to each of these to detect transmitted light. 74, 75, and 76. The red light transmission filter 71 has a filter characteristic corresponding to the spectral distribution of the combined light of the red LEDs 2a to 2c, and maximizes the light receiving sensitivity of the light detecting element 74 at a light receiving wavelength substantially equal to the peak wavelength of the combined light output. And The green light transmission filter 72 and the blue light transmission filter 73 are also configured to have the same relationship with the green LEDs 3a to 3c and the blue LEDs 4a to 4c. The optical sensor 7 detects the tristimulus value of light based on the detection results of the light detection elements 74 to 76 and outputs the detection result to the control unit 9.

温度センサ8は、LED5の近傍に配置されており、例えば基板51上に設けられている。ところで、LED5は、周辺雰囲気温度の変化に応じてLED5の温度が変化し、その光出力のピーク波長が変動する。例えば、図3に示されるように、周辺雰囲気温度が常温Tであるときのピーク波長がFである場合に、周辺雰囲気温度がTからT(T>T)まで上昇すると、そのピーク波長はFからF(F>F)まで長くなる。このため、光センサ7が、常温では、LED5のピーク波長の光出力を最大受光感度でもって検出できる場合においても、温度が変化してピーク波長がずれると、最大受光感度でもってピーク波長の光出力を検出できないので、検出誤差が発生する虞がある。従って、この検出誤差を補償するため温度センサ8が設けられている。 The temperature sensor 8 is disposed in the vicinity of the LED 5, and is provided on the substrate 51, for example. By the way, LED5 changes the temperature of LED5 according to the change of ambient atmosphere temperature, and the peak wavelength of the optical output fluctuates. For example, as shown in FIG. 3, when the ambient wavelength rises from T 0 to T 1 (T 1 > T 0 ) when the peak wavelength is F 0 when the ambient ambient temperature is normal temperature T 0. The peak wavelength becomes longer from F 0 to F 1 (F 1 > F 0 ). For this reason, even when the optical sensor 7 can detect the light output of the peak wavelength of the LED 5 at the normal temperature with the maximum light receiving sensitivity, if the temperature changes and the peak wavelength shifts, the light of the peak wavelength with the maximum light receiving sensitivity. Since the output cannot be detected, a detection error may occur. Therefore, a temperature sensor 8 is provided to compensate for this detection error.

制御部9は、CPUを含むマイクロプロセッサにより構成することができ、電源回路10からLED5の各々に供給される電流を制御することで、それらの光出力を制御する。   The control part 9 can be comprised by the microprocessor containing CPU, and controls those light outputs by controlling the electric current supplied to each of LED5 from the power supply circuit 10. FIG.

図4は、LED5及び点灯回路6の回路構成の説明のため、それらの一部である青色LED4a〜4c及びこれらの点灯回路の回路構成を示す。青色LED4a〜4cは、それぞれ、複数個ずつ、直列に接続されており、光源群4A、4B、4Cを構成する。光源群4A〜4Cは、互いに並列に接続されており、それらには、電流制限抵抗R1、R2、R3と、トランジスタ等で構成されるドライブ回路Q1、Q2、Q3とが直列接続されている。ドライブ回路Q1〜Q3は、制御部9からスイッチング信号として入力される制御信号S1、S2、S3に基づいて駆動し、青色LED4a〜4cへの通電を制御する。図示は省略するが、赤色LED2a〜2c及び緑色LED3a〜3cとそれらの点灯回路も、上記と同様に構成されている。   FIG. 4 shows the circuit configurations of the LEDs 5 and 4c, which are part of the LEDs 5 and the lighting circuit 6, for explaining the circuit configurations of the LEDs 5 and the lighting circuit 6. A plurality of blue LEDs 4a to 4c are connected in series, and constitute light source groups 4A, 4B, and 4C. The light source groups 4A to 4C are connected in parallel to each other, and current limiting resistors R1, R2, and R3 and drive circuits Q1, Q2, and Q3 including transistors and the like are connected in series to each other. The drive circuits Q1 to Q3 are driven based on control signals S1, S2, and S3 input as switching signals from the control unit 9, and control energization to the blue LEDs 4a to 4c. Although illustration is omitted, the red LEDs 2a to 2c and the green LEDs 3a to 3c and their lighting circuits are also configured in the same manner as described above.

図5は、制御信号S1〜S3の信号波形を示す。制御信号S1〜S3は、制御部9により温度センサ8からの検出信号に応じてデューティ比が独立に制御された、周期TのPWM信号とする。同図には、例えば、LED5の周辺雰囲気温度が略25度の常温であるときのPWM信号が図示されており、そのときのPWM信号のデューティ比は、略同一の値Dpとされる。デューティ比制御により青色LED4a〜4cの各々の光出力が制御されて、それらの合成光出力のピーク値及びピーク波長が制御される。   FIG. 5 shows signal waveforms of the control signals S1 to S3. The control signals S <b> 1 to S <b> 3 are PWM signals with a period T whose duty ratio is independently controlled by the control unit 9 according to the detection signal from the temperature sensor 8. In the figure, for example, the PWM signal when the ambient atmosphere temperature of the LED 5 is a room temperature of about 25 degrees is illustrated, and the duty ratio of the PWM signal at that time is set to substantially the same value Dp. The light output of each of the blue LEDs 4a to 4c is controlled by the duty ratio control, and the peak value and the peak wavelength of the combined light output are controlled.

制御信号S1〜S3は点灯回路6における青色LED4a〜4cの点灯回路に送出されるが、赤色LED2a〜2c及び緑色LED3a〜3cの各々の点灯回路にも、制御信号S1〜S3と同様に制御されたPWM信号が入力される。PWM信号のデューティ比は、照明光の光色制御のため、各色のLED5ごとに独立して制御される。   The control signals S1 to S3 are sent to the lighting circuits of the blue LEDs 4a to 4c in the lighting circuit 6, but the lighting circuits of the red LEDs 2a to 2c and the green LEDs 3a to 3c are controlled similarly to the control signals S1 to S3. PWM signal is input. The duty ratio of the PWM signal is controlled independently for each color LED 5 in order to control the light color of the illumination light.

図6は、周辺雰囲気温度が常温であるときのLED5の各々の分光分布を示す。常温時の赤色LED2a〜2cの各々の分光分布をSr、Sr、Srとし、各々の光出力のピーク波長をfr、fr、frとする。同様に、緑色LED3a〜3cの各々の分光分布をSg、Sg、Sgとし、各々の光出力のピーク波長をfg、fg、fgとする。また、青色LED4a〜4cの各々の分光分布をSb、Sb、Sbとし、各々の光出力のピーク波長をfb、fb、fbとする。 FIG. 6 shows the spectral distribution of each of the LEDs 5 when the ambient ambient temperature is room temperature. The spectral distribution of each of the red LED2a~2c at the normal temperature and Sr 1, Sr 2, Sr 3 , the peak wavelength of each light output fr 1, fr 2, fr 3 . Similarly, the spectral distribution of each of the green LED3a~3c and Sg 1, Sg 2, Sg 3 , the peak wavelength of each optical output fg 1, fg 2, fg 3 . Further, the spectral distribution of each of the blue LED4a~4c and Sb 1, Sb 2, Sb 3 , the peak wavelength of each optical output fb 1, fb 2, fb 3 .

赤色LED2a〜2cの各々は、常温時には、上述のようにデューティ比を互いに略同一としたPWM信号により点灯駆動されるので、それらの光出力が互いに略等しい。波長frとfrとの間、及び波長frとfrとの間は、例えば10[nm]以下とする。緑色LED3a〜3c及び青色LED4a〜4cの各々においても、常温時における各LEDの光出力は互いに略等しい。 Since each of the red LEDs 2a to 2c is driven to be lit by the PWM signals having substantially the same duty ratio as described above at room temperature, their light outputs are substantially equal to each other. The distance between the wavelengths fr 2 and fr 3 and between the wavelengths fr 2 and fr 1 is, for example, 10 [nm] or less. In each of the green LEDs 3a to 3c and the blue LEDs 4a to 4c, the light outputs of the LEDs at normal temperature are substantially equal to each other.

図7は、周辺雰囲気温度が常温であるときの青色LED4a〜4cの合成光の分光分布と、光センサ7の受光感度分布の一部との関係を示す。青色LED4a〜4cの合成光の分光分布Sbは、青色LED4a〜4cの各々の分光分布Sb〜Sbを足し合わせて成る。また、図示された受光感度分布Fbは、青色光透過フィルタ73により調整された光検出素子76の受光感度分布を示す。 FIG. 7 shows the relationship between the spectral distribution of the combined light of the blue LEDs 4 a to 4 c and the part of the light receiving sensitivity distribution of the optical sensor 7 when the ambient ambient temperature is room temperature. Spectral distribution Sb of the combined light of blue LED4a~4c is formed by adding the spectral distribution Sb 1 to SB 3 of each blue LED4a~4c. The illustrated light receiving sensitivity distribution Fb indicates the light receiving sensitivity distribution of the light detecting element 76 adjusted by the blue light transmission filter 73.

青色LED4a〜4cの合成光出力のピーク波長は、光検出素子76の受光感度が最大となる受光波長と略等しい。本実施形態においては、上記のピーク波長すなわち受光波長は、上述のfbとも略等しい。ここで、常温における光出力のピーク値をLpとする。図示は省略するが、赤色LED2a〜2cの合成光出力のピーク波長は、光検出素子74の受光感度が最大となる受光波長と略等しく、上述のfrとも略等しい。また、緑色LED3a〜3cの合成光出力のピーク波長は、光検出素子75の受光感度が最大となる受光波長と略等しく、上述のfgとも略等しい。 The peak wavelength of the combined light output of the blue LEDs 4a to 4c is substantially equal to the light receiving wavelength at which the light receiving sensitivity of the light detecting element 76 is maximized. In the present embodiment, the peak wavelength, that is, the light receiving wavelength is substantially equal to the above-described fb 1 . Here, the peak value of the light output at room temperature is Lp. Although not shown, the peak wavelength of the combined light output of the red LED2a~2c is substantially equal to the light wavelength where the light receiving sensitivity of the light detection element 74 becomes the maximum, approximately equal to as fr 1 above. The peak wavelength of the combined light output of the green LED3a~3c is substantially equal to the light wavelength where the light receiving sensitivity of the light detection element 75 becomes the maximum, approximately equal to as fg 1 above.

図8は、周辺雰囲気温度が常温よりも上昇したときの制御信号S1〜S3の信号波形を示す。このときの制御信号S1〜S3の信号波形は、周辺雰囲気温度の変化に拘らず、青色LED4a〜4cの合成光出力のピーク値及びピーク波長が変動しないようにデューティ比が制御されている。例えば、温度上昇時には、制御信号S1のデューティ比が常温時のデューティ比Dpと略等しいDs(Ds≒Dp)に設定され、制御信号S2のデューティ比が常温時のデューティ比Dpよりも高いDs(Ds>Dp)に設定され、制御信号S3のデューティ比が常温時のデューティ比Dpよりも低いDs(Ds<Dp)に設定される。温度下降時には、制御信号S2、S3は、上記とは逆に設定される。 FIG. 8 shows signal waveforms of the control signals S1 to S3 when the ambient atmosphere temperature rises above the normal temperature. The signal waveforms of the control signals S1 to S3 at this time are controlled so that the peak value and peak wavelength of the combined light output of the blue LEDs 4a to 4c do not fluctuate regardless of the change in ambient ambient temperature. For example, when the temperature rises, the duty ratio of the control signal S1 is set to Ds 1 (Ds 1 ≈Dp) substantially equal to the duty ratio Dp at normal temperature, and the duty ratio of the control signal S2 is higher than the duty ratio Dp at normal temperature Ds 2 (Ds 2 > Dp) is set, and the duty ratio of the control signal S3 is set to Ds 3 (Ds 3 <Dp), which is lower than the duty ratio Dp at normal temperature. When the temperature drops, the control signals S2 and S3 are set in reverse to the above.

図9は、周辺雰囲気温度が常温よりも上昇したときのLED5の各々の分光分布を示す。温度上昇に伴い、温度特性に起因して常温時よりも長くなった赤色LED2a〜2cの各々の分光分布をSr’、Sr’、Sr’とし、各々の光出力のピーク波長をfr’、fr’、fr’とする。同様に、緑色LED3a〜3cの各々の分光分布をSg’、Sg’、Sg’とし、各々の光出力のピーク波長をfg’、fg’、fg’とする。また、青色LED4a〜4cの各々の分光分布をSb’、Sb’、Sb’とし、各々の光出力のピーク波長をfb’、fb’、fb’とする。 FIG. 9 shows the spectral distribution of each of the LEDs 5 when the ambient ambient temperature rises above room temperature. As the temperature rises, the spectral distribution of each of the red LEDs 2a to 2c, which is longer than that at normal temperature due to temperature characteristics, is Sr 1 ′, Sr 2 ′, Sr 3 ′, and the peak wavelength of each light output is fr. 1 ′, fr 2 ′, and fr 3 ′. Similarly, the spectral distributions of the green LEDs 3a to 3c are Sg 1 ′, Sg 2 ′, and Sg 3 ′, and the peak wavelengths of the light outputs are fg 1 ′, fg 2 ′, and fg 3 ′. The spectral distributions of the blue LEDs 4a to 4c are Sb 1 ′, Sb 2 ′, and Sb 3 ′, and the peak wavelengths of the respective light outputs are fb 1 ′, fb 2 ′, and fb 3 ′.

赤色LED2a〜2cの各々は、温度上昇時には、上述の図8に示されるようにデューティ比が制御された制御信号S1〜S3により点灯駆動されるので、赤色LED2aよりもピーク波長が短い赤色LED2bの光出力が増加し、上記ピーク波長よりも長い赤色LED2cの光出力が低減される。赤色LED2aの光出力は常温時と略等しい。緑色LED3a〜3c及び青色LED4a〜4cの光出力も同様に制御される。   Since each of the red LEDs 2a to 2c is lighted and driven by the control signals S1 to S3 whose duty ratio is controlled as shown in FIG. 8 when the temperature rises, the red LED 2b having a shorter peak wavelength than the red LED 2a. The light output increases, and the light output of the red LED 2c longer than the peak wavelength is reduced. The light output of the red LED 2a is substantially equal to that at room temperature. The light outputs of the green LEDs 3a to 3c and the blue LEDs 4a to 4c are similarly controlled.

図10は、周辺雰囲気温度が常温よりも上昇したときの青色LED4a〜4cの合成光の分光分布と、光センサ7の受光感度分布の一部との関係を示す。青色LED4a〜4cの合成光の分光分布Sb’は、青色LED4a〜4cの各々の分光分布Sb’〜Sb’を足し合わせて成る。また、図示された受光感度分布Fbは、上述の図7と同様に、光検出素子76の受光感度分布を示す。 FIG. 10 shows the relationship between the spectral distribution of the combined light of the blue LEDs 4 a to 4 c and the part of the light reception sensitivity distribution of the optical sensor 7 when the ambient ambient temperature rises above room temperature. The spectral distribution Sb ′ of the combined light of the blue LEDs 4a to 4c is formed by adding the spectral distributions Sb 1 ′ to Sb 3 ′ of the blue LEDs 4a to 4c. The illustrated light receiving sensitivity distribution Fb indicates the light receiving sensitivity distribution of the photodetecting element 76 as in FIG. 7 described above.

青色LED4a〜4cの合成光出力のピーク波長は、周辺雰囲気温度の変化に拘らず略一定で、上述の波長fbとされ、光検出素子76の受光感度が最大となる受光波長と略等しい。また、上記の合成光出力のピーク値も、周辺雰囲気温度の変化の影響に起因して変動せず、常温時のピーク値Lpと略等しい。図示は省略するが、赤色LED2a〜2cの合成光出力及び緑色LED3a〜3cの合成光出力の各々のピーク値及びピーク波長も、周辺雰囲気温度の変化に起因して変動することはない。 The peak wavelength of the combined light output of the blue LED4a~4c is a regardless substantially constant change in ambient atmosphere temperature, the wavelength fb 1 described above, substantially equal to the light wavelength where the light receiving sensitivity of the light detection element 76 becomes maximum. In addition, the peak value of the synthetic light output does not vary due to the influence of changes in the ambient atmosphere temperature, and is approximately equal to the peak value Lp at normal temperature. Although illustration is omitted, the peak value and the peak wavelength of the combined light output of the red LEDs 2a to 2c and the combined light output of the green LEDs 3a to 3c do not vary due to the change in the ambient atmosphere temperature.

本実施形態によれば、赤色LED2a〜2c、緑色LED3a〜3c、及び青色LED4a〜4cの各々において各LEDの光出力比が周辺雰囲気温度の変化に応じて制御され、各々の合成光出力すなわち各色の光出力のピーク値及びピーク波長は、周辺雰囲気温度の変化に拘らず略一定とされるので、各色の光出力の色度は温度変化に起因して変動しない。このため、それらを合わせて成る照明光の色度の、温度変化に起因する変動を抑制することができる。   According to the present embodiment, the light output ratio of each LED in each of the red LEDs 2a to 2c, the green LEDs 3a to 3c, and the blue LEDs 4a to 4c is controlled according to the change in ambient ambient temperature, and each combined light output, that is, each color. Since the peak value and the peak wavelength of the light output are substantially constant regardless of the change in the ambient atmosphere temperature, the chromaticity of the light output of each color does not vary due to the temperature change. For this reason, the fluctuation | variation resulting from the temperature change of the chromaticity of the illumination light which combines them can be suppressed.

また、各色の光出力のピーク波長は温度変化に拘わらず略一定であり、それらのピーク波長と略等しい受光波長で受光感度を最大とした光検出素子74〜76でもって各色の光が検出されるので、各色の光を高感度で検出することが可能になる。そして、各色の光出力のピーク値も、周辺雰囲気温度の変化に起因して変動しないように制御されるので、温度変化に拘らず各色の光出力の高精度な制御が可能となる。このため、光センサ7による照明光の三刺激値の検出結果を基に制御部9によりLED5の光出力をフィードバック制御することで、照明光の色度及び演色性の高精度な制御が可能になる。   Further, the peak wavelength of the light output of each color is substantially constant regardless of the temperature change, and the light of each color is detected by the light detection elements 74 to 76 having the maximum light reception sensitivity at the light reception wavelength substantially equal to the peak wavelength. Therefore, it becomes possible to detect light of each color with high sensitivity. Since the peak value of the light output of each color is also controlled so as not to fluctuate due to a change in ambient ambient temperature, the light output of each color can be controlled with high accuracy regardless of the temperature change. Therefore, feedback control of the light output of the LED 5 by the control unit 9 based on the detection result of the tristimulus value of the illumination light by the optical sensor 7 enables highly accurate control of the chromaticity and color rendering of the illumination light. Become.

なお、本発明は、上記の実施形態の構成に限定されるものでなく、使用目的に応じ、様々な変形が可能である。例えば、互いに光出力のピーク波長が異なるLEDの種類は3種に限定されず、2種又は4種以上であってもよい。また、制御部9は、温度変化に拘らず赤色LED2a〜2c、緑色LED3a〜3c、及び青色LED4a〜4cの各々の合成光出力すなわち合成光量が変動しないように、温度センサ8による検出結果に応じて各LEDの光出力比を制御するように構成されていても構わない。   In addition, this invention is not limited to the structure of said embodiment, A various deformation | transformation is possible according to a use purpose. For example, the types of LEDs having different peak wavelengths of light output are not limited to three types, and may be two types or four or more types. Moreover, the control part 9 respond | corresponds to the detection result by the temperature sensor 8 so that the synthesized light output of each of the red LEDs 2a to 2c, the green LEDs 3a to 3c, and the blue LEDs 4a to 4c, that is, the synthesized light quantity does not fluctuate regardless of the temperature change. The light output ratio of each LED may be controlled.

本発明の一実施形態に係る発光ダイオード照明器具のブロック図。The block diagram of the light-emitting-diode lighting fixture which concerns on one Embodiment of this invention. 上記器具の光センサのブロック図。The block diagram of the optical sensor of the said instrument. 上記器具のLEDの光出力ピーク波長と周辺雰囲気温度との関係を示す図。The figure which shows the relationship between the light output peak wavelength of LED of the said instrument, and surrounding ambient temperature. 上記器具の複数の青色LED及びそれらの点灯回路の回路構成図。The circuit block diagram of several blue LED of those instruments, and those lighting circuits. 上記点灯回路に入力される信号波形図。The signal waveform diagram inputted into the above-mentioned lighting circuit. 上記器具の各色のLEDの分光分布図。The spectral distribution figure of LED of each color of the said instrument. 上記複数の青色LEDの合成光分布と光センサの受光感度分布の一部との関係を示す図。The figure which shows the relationship between the synthetic light distribution of said several blue LED, and a part of light reception sensitivity distribution of an optical sensor. 周辺雰囲気温度が上昇したときの上記信号波形図。The signal waveform diagram when the ambient ambient temperature rises. 周辺雰囲気温度が上昇したときの上記各色のLEDの分光分布図。The spectral distribution figure of LED of each said color when ambient ambient temperature rises. 周辺雰囲気温度が上昇したときの上記複数の青色LEDの合成光分布と光センサの受光感度分布の一部との関係を示す図。The figure which shows the relationship between the synthetic light distribution of said several blue LED when ambient ambient temperature rises, and a part of light reception sensitivity distribution of an optical sensor.

符号の説明Explanation of symbols

1 発光ダイオード照明器具
2a〜2c 赤色ダイオード(第1、第2及び第3の発光ダイオード)
3a〜3c 緑色ダイオード(第1、第2及び第3の発光ダイオード)
4a〜4c 青色ダイオード(第1、第2及び第3の発光ダイオード)
8 温度センサ
9 制御部
DESCRIPTION OF SYMBOLS 1 Light emitting diode lighting fixture 2a-2c Red diode (1st, 2nd and 3rd light emitting diode)
3a to 3c green diode (first, second and third light emitting diodes)
4a to 4c Blue diode (first, second and third light emitting diodes)
8 Temperature sensor 9 Control unit

Claims (1)

第1の発光ダイオードと、
前記第1の発光ダイオードの発光色と同一色で、且つ、該第1の発光ダイオードの光出力のピーク波長よりも短いピーク波長の光を出力する第2の発光ダイオードと、
前記第1の発光ダイオードの発光色と同一色で、且つ、該第1の発光ダイオードの光出力のピーク波長よりも長いピーク波長の光を出力する第3の発光ダイオードと、
前記第1、第2及び第3の発光ダイオードの周辺雰囲気温度を検出する温度センサと、
前記第1、第2及び第3の発光ダイオードの合成光出力を検出する光検出素子と、
前記温度センサによる検出結果に応じて、温度変化に拘らず前記第1、第2及び第3の発光ダイオードの合成光出力のピーク値及びピーク波長が変動せず、かつ該ピーク波長が、前記光検出素子の受光感度が最大となる受光波長と等しくなるようにそれらの光出力比を制御する制御部と、を備え、
前記制御部は、前記光検出素子による検出結果にも応じて、前記第1、第2及び第3の発光ダイオードの光出力を制御することを特徴とする発光ダイオード照明器具。
A first light emitting diode;
The same color and the emission color of the first light emitting diode, and a second light-emitting diode that outputs light of a shorter peak wavelength than the peak wavelength of the light output of the first light emitting diode,
The same color and the emission color of the first light emitting diode, and a third light-emitting diode that outputs light of a peak wavelength longer than the peak wavelength of the light output of the first light emitting diode,
A temperature sensor for detecting ambient ambient temperature of the first, second and third light emitting diodes;
A light detecting element for detecting a combined light output of the first, second and third light emitting diodes;
Wherein in accordance with a detection result by the temperature sensor, first regardless the temperature change, the second and not the third combined light output fluctuation peak value and the peak wavelength of the light emitting diode and the peak wavelength of the light A control unit that controls the light output ratio so that the light receiving sensitivity of the detection element is equal to the maximum light receiving wavelength ,
The said control part controls the light output of the said 1st, 2nd and 3rd light emitting diode according to the detection result by the said photon detection element, The light emitting diode lighting fixture characterized by the above-mentioned.
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