Lighting device
The lighting device dynamically controls emission spectra through a combination of light emitting devices with varying peak wavelengths and a controller, addressing the limitations of fixed wavelength lighting by achieving adjustable color outputs and improved color rendering.
Patent Information
- Application Number
- JP2025035901
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2019-12-16
- Filing Date
- 2025-03-06
- Publication Date
- 2025-05-20
- Estimated Expiration
- 2040-08-06
AI Technical Summary
Existing lighting devices using semiconductor light-emitting elements struggle to control emission intensity and spectrum, particularly when aiming for white light or specific color outputs, as they often rely on fixed wavelength bands and lack dynamic control mechanisms.
A lighting device comprising a first light emitting device with a specific peak wavelength and emission spectrum, multiple second light emitting devices with varying peak wavelengths, and a controller to adjust the dimming ratio and emission spectra, allowing for dynamic control of light output to achieve desired color temperatures and spectra.
Enables the production of light with adjustable color temperatures and spectra, mimicking natural sunlight or candlelight, enhancing color rendering properties and accuracy in visual inspection, while reducing color unevenness and overlap.
Smart Images

Figure 2025078800000001_ABST
Abstract
Description
[Technical field]
[0001] The present disclosure relates to a lighting device. [Background technology]
[0002] In recent years, lighting devices using semiconductor light-emitting elements such as LEDs (Light Emitting Diodes) as light sources have come to be used in place of fluorescent lamps and light bulbs. In addition, lighting devices using light-emitting elements as light sources are also used as light sources for visual inspection of painted surfaces of home appliances, automobiles, etc.
[0003] Semiconductor light-emitting elements have a narrow wavelength band of emitted light and can only emit light of a single color. When white light is desired as illumination light, multiple semiconductor light-emitting elements with different wavelength bands of emitted light are prepared, and white light is realized by mixing the multiple emitted lights. Alternatively, multiple phosphors that emit fluorescence with different wavelength bands by excitation light of the same wavelength are prepared, and white light is realized by mixing the emitted light from the semiconductor light-emitting element and the multiple fluorescent lights excited and emitted by the emitted light from the semiconductor light-emitting element. By using such a color mixing technique, it is possible to create light sources with spectra according to purposes other than white light (see JP 2015-126160 A).
[0004] However, the technology disclosed in Patent Document 1 does not describe or anticipate any control of the emission intensity and emission spectrum of the lighting device. Summary of the Invention
[0005] The lighting device according to an embodiment of the present disclosure includes a first light emitting device, a plurality of second light emitting devices, and a controller. The first light emitting device has a first peak wavelength in a wavelength range of 360 to 430 nm, and has a first emission spectrum in which the light intensity decreases continuously toward wavelengths shorter and longer than the first peak wavelength. Each of the plurality of second light emitting devices has a second peak wavelength in a wavelength range of 360 to 430 nm, and a third peak wavelength in a wavelength range from a wavelength longer than the second peak wavelength to 750 nm, and has a second emission spectrum in which the light intensity decreases continuously toward wavelengths shorter and longer than the second peak wavelength. The controller controls the first light emitting device and the plurality of second light emitting devices. The plurality of second light emitting devices each have a different third peak wavelength.
[0006] Moreover, the lighting device according to an embodiment of the present disclosure has an emission spectrum with an excitation peak wavelength in the wavelength range of 360 nm to 430 nm and an emission peak wavelength in the wavelength range of 610 nm to 730 nm. In addition, when the light intensity at the emission peak wavelength is set to 1, the emission spectrum has a relative light intensity at the excitation peak wavelength of 0.05 to 0.3, a relative light intensity at 440 nm to 480 nm of 0.1 or less, and the light intensity increases continuously in the wavelength range from 480 nm to the emission peak wavelength. [Brief description of the drawings]
[0007] [Figure 1] 1 is an external perspective view of a light emitting device according to an embodiment of the present disclosure. [Diagram 2] 2 is a cross-sectional view of the light emitting device shown in FIG. 1 cut along a plane indicated by a virtual line. [Diagram 3] FIG. 3 is an enlarged view of the light emitting device shown in FIG. [Figure 4] 1 is a graph showing emission spectra of light emitting devices according to the embodiments of the present disclosure. [Diagram 5] 1 is a graph showing a spectrum of externally emitted light in a lighting device according to an embodiment of the present disclosure. [Figure 6]1 is a graph showing a spectrum of externally emitted light in a light emitting device and / or lighting device according to an embodiment of the present disclosure. [Figure 7] 1 is a graph showing a spectrum of externally emitted light in a light emitting device and / or lighting device according to an embodiment of the present disclosure. [Figure 8] 1 is a graph showing a spectrum of externally emitted light in a light emitting device and / or lighting device according to an embodiment of the present disclosure. [Figure 9] 1 is an external perspective view of a lighting device including a light-emitting device according to an embodiment of the present disclosure. [Figure 10] FIG. 1 is an exploded perspective view of a lighting device according to an embodiment of the present disclosure. [Figure 11] 1 is a perspective view illustrating a state in which a light-transmitting substrate is removed from a housing of a lighting device according to an embodiment of the present disclosure. FIG. [Figure 12] FIG. 1 is a configuration diagram of a lighting device according to an embodiment of the present disclosure. [Figure 13] FIG. 11 is a cross-sectional view showing a configuration of an illumination device according to another embodiment of the present disclosure. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0008] Hereinafter, a light-emitting device and an illumination device according to an embodiment of the present disclosure will be described with reference to the drawings.
[0009] <Configuration of the Light Emitting Device and the Illumination Device> FIG. 1 is an external perspective view of a light emitting device according to an embodiment of the present disclosure. FIG. 2 is a cross-sectional view of the light emitting device shown in FIG. 1 cut along a plane indicated by a virtual line. FIG. 12 is a configuration diagram of an illumination device according to an embodiment of the present disclosure. In these figures, an illumination device 10 includes a first light emitting device 1a, a plurality of second light emitting devices 1b, and a control unit 7. The first light emitting device 1a and the second light emitting device 1b include a substrate 2, a light emitting element 3, a frame body 4, and a sealing member 5. The illumination device 10 includes a first light emitting device 1a, a plurality of second light emitting devices 1b, and a control unit 7. The second light emitting device 1b includes a substrate 2, a light emitting element 3, a frame body 4, a sealing member 5, and a wavelength conversion member 6.
[0010] The light emitting element 3 is located on the substrate 2. The frame 4 is located on the substrate 2 surrounding the light emitting element 3. The sealing member 5 fills the inner space surrounded by the frame 4, leaving only a portion of the upper part of the space surrounded by the frame 4. The wavelength conversion member 6 is housed in the frame 4 along the upper surface of the sealing member 5, in a portion of the upper part of the inner space surrounded by the frame 4. The light emitting element 3 is, for example, an LED (Light Emitting Diode) or LD (Laser Diode), and emits light to the outside by recombining electrons and holes in a pn junction using a semiconductor.
[0011] The substrate 2 is mainly made of an insulating material, and the insulating material is, for example, a ceramic material such as alumina or mullite, or a glass ceramic material. Alternatively, the substrate 2 is made of a composite material in which a plurality of these materials are mixed. The substrate 2 may be made of a polymer resin in which metal oxide particles capable of adjusting the thermal expansion of the substrate 2 are dispersed.
[0012] At least on the upper surface of the substrate 2 or inside the substrate 2, a wiring conductor is provided to electrically connect the inside and outside of the substrate 2. The wiring conductor is made of a conductive material such as tungsten, molybdenum, manganese, or copper. When the substrate 2 is made of a ceramic material, for example, a metal paste obtained by adding an organic solvent to a powder of tungsten or the like is printed in a predetermined pattern on a ceramic green sheet that will become the substrate 2. After this, a plurality of ceramic green sheets are stacked and fired to obtain the substrate 2. Note that a plating layer of, for example, nickel or gold is formed on the surface of the wiring conductor to prevent oxidation. In addition, a metal reflective layer may be located on the upper surface of the substrate 2 at a distance from the wiring conductor and the plating layer in order to efficiently reflect light upward from the substrate 2. The metal reflective layer is, for example, aluminum, silver, gold, copper, or platinum.
[0013] The light-emitting element 3 is mounted on the main surface of the substrate 2. The light-emitting element 3 is electrically connected to a plating layer that is attached to the surface of the wiring conductor formed on the upper surface of the substrate 2, for example, via a brazing material or solder. The light-emitting element 3 has a light-transmitting substrate and an optical semiconductor layer formed on the light-transmitting substrate. The light-transmitting substrate may be any substrate that can grow an optical semiconductor layer using a chemical vapor deposition method such as metal organic vapor deposition or molecular beam epitaxy. Examples of materials that can be used for the light-transmitting substrate include sapphire, gallium nitride, aluminum nitride, zinc oxide, zinc selenide, silicon carbide, silicon, and zirconium diboride. The thickness of the light-transmitting substrate is, for example, 50 μm or more and 1000 μm or less.
[0014] The optical semiconductor layer is composed of a first semiconductor layer formed on a light-transmitting substrate, a light-emitting layer formed on the first semiconductor layer, and a second semiconductor layer formed on the light-emitting layer. The first semiconductor layer, the light-emitting layer, and the second semiconductor layer can be, for example, a III-V group semiconductor such as a III nitride semiconductor, gallium phosphide, or gallium arsenide, or a III nitride semiconductor such as gallium nitride, aluminum nitride, or indium nitride. The thickness of the first semiconductor layer is, for example, 1 μm or more and 5 μm or less, the thickness of the light-emitting layer is, for example, 25 nm or more and 150 nm or less, and the thickness of the second semiconductor layer is, for example, 50 nm or more and 600 nm or less. The light-emitting element 3 thus configured can emit excitation light in a wavelength range of, for example, 280 nm or more and 450 nm or less.
[0015] The frame 4 is made of, for example, a ceramic material such as aluminum oxide, titanium oxide, zirconium oxide, or yttrium oxide, or a porous material, or a resin material mixed with powder of a metal oxide such as aluminum oxide, titanium oxide, zirconium oxide, or yttrium oxide. The frame 4 is connected to the main surface of the substrate 2 via, for example, a resin, a brazing material, or a solder. The frame 4 is provided on the main surface of the substrate 2 so as to surround the light-emitting element 3 with a gap therebetween. The frame 4 is also formed so that the inclined inner wall surface widens outward as it moves away from the main surface of the substrate 2. The inner wall surface of the frame 4 functions as a reflecting surface for the excitation light emitted from the light-emitting element 3. If the shape of the inner wall surface of the frame 4 is circular in plan view, the light emitted by the light-emitting element 3 can be uniformly reflected outward by the reflecting surface.
[0016] The inclined inner wall surface of the frame 4 may be formed, for example, by forming a metal layer made of tungsten, molybdenum, manganese, or the like on the inner peripheral surface of the frame 4 made of a sintered material, and a plating layer made of nickel, gold, or the like that covers the metal layer. This plating layer has a function of reflecting light emitted by the light-emitting element 3. The inclination angle of the inner wall surface of the frame 4 is set to, for example, 55 degrees or more and 70 degrees or less with respect to the main surface of the substrate 2.
[0017] The inner space surrounded by the substrate 2 and the frame 4 is filled with a light-transmitting sealing member 5. The sealing member 5 seals the light-emitting element 3 and extracts the light emitted from inside the light-emitting element 3 to the outside. Furthermore, it has a function of transmitting the light extracted to the outside of the light-emitting element 3. The sealing member 5 fills the inner space surrounded by the substrate 2 and the frame 4, leaving only a part of the space surrounded by the frame 4. The sealing member 5 is made of, for example, a light-transmitting insulating resin such as silicone resin, acrylic resin, or epoxy resin, or a light-transmitting glass material. The refractive index of the sealing member 5 is set to, for example, 1.4 to 1.6.
[0018] The wavelength conversion member 6 is located along the upper surface of the sealing member 5 at the top of the inner space surrounded by the substrate 2 and the frame 4. The wavelength conversion member 6 is formed so as to be contained within the frame 4. The wavelength conversion member 6 has a function of converting the wavelength of the light emitted by the light emitting element 3. That is, the light emitted from the light emitting element 3 enters the wavelength conversion member 6 through the sealing member 5. At that time, the phosphor contained inside is excited by the light emitted from the light emitting element 3, and emits fluorescence from the phosphor. In addition, the wavelength conversion member 6 transmits and radiates a part of the light from the light emitting element 3. The wavelength conversion member 6 is made of, for example, a translucent insulating resin such as a fluorine resin, a silicone resin, an acrylic resin, or an epoxy resin, or a translucent glass material, and the phosphor is contained in the insulating resin or glass material. The phosphor is uniformly dispersed in the wavelength conversion member 6. The phosphor contained in the light emitting element 3 and the wavelength conversion member 6 is selected so that the emission spectrum of the light emitted from the light emitting device 1 becomes an emission spectrum as shown in FIG. 4.
[0019] As shown in FIG. 5, the first light emitting device 1a according to the embodiment of the present disclosure uses a light emitting element 3 having a first peak wavelength λ1 of 360 to 430 nm. The second light emitting device 1b uses a light emitting element 3 that emits excitation light having a second peak wavelength λ2 of 360 to 430 nm. That is, the second peak wavelength λ2 is the peak wavelength of the excitation light. Furthermore, the second light emitting device 1b may have a third peak wavelength λ3 in a wavelength range from a wavelength longer than the second peak wavelength λ2 to 750 nm by irradiating the excitation light to the phosphor, and for example, the third peak wavelength λ3 is emitted in a wavelength range of 410 to 750 nm. In this case, each of the multiple second light emitting devices 1b uses at least a part of different phosphors. A phosphor that emits blue fluorescence, a phosphor that emits blue-green fluorescence, a phosphor that emits green fluorescence, a phosphor that emits red fluorescence, and a phosphor that emits fluorescence in the near-infrared region may further be used. Also, these phosphors may be mixed.
[0020] For example, the phosphor that exhibits blue color is BaMgAl 10 O 17:Eu, (Sr,Ca,Ba) 10 (PO 4 ) 6 Cl 2 :Eu,(Sr,Ba) 10 (PO 4 ) 6 Cl 2 :Eu, and the phosphor that shows blue-green is (Sr,Ba,Ca) 5 (PO 4 ) 3 Cl:Eu,Sr 4 Al 14 O 25 The green phosphor is SrSi 2 (O,Cl) 2 N 2 :Eu, (Sr,Ba,Mg) 2 SiO 4 :EU 2+ , ZnS:Cu,Al,Zn 2 SiO 4 The red phosphor is Y. 2 O 2 S:Eu,Y 2 O 3 :Eu, SrCaClAlSiN 3 :EU 2+ , CaAlSiN 3 :Eu, CaAlSi(ON) 3 :Eu. The phosphor that emits near infrared light is 3Ga 5 O 12 :Cr.
[0021] As shown in Figs. 12 and 13, the lighting device 10 according to the embodiment of the present disclosure includes the above-mentioned first light emitting device 1a, second light emitting device 1b, and control unit 7. Hereinafter, a description will be given with reference to the drawings. In the lighting device 10, the emission spectrum of light emitted from the first light emitting device 1a is defined as a first emission spectrum, and the emission spectrum of light emitted from the second light emitting device 1b is defined as a second emission spectrum. In addition, the control unit 7 controls the first light emitting device 1a and the second light emitting device 1b. The emission spectrum of light obtained by combining the first emission spectrum and the second emission spectrum controlled by the control unit 7, that is, the emission spectrum of light emitted from the lighting device 10, is defined as a third emission spectrum.
[0022] The control unit 7 controls the dimming ratio applied to each light emitting device. The dimming ratio refers to the power applied to each light emitting device, that is, the voltage value and / or current value ratio based on the rated current value and / or rated voltage value. In addition, in the case of a configuration using PWM control, the dimming ratio refers to the duty ratio of the voltage and / or current. As a result, the luminous flux output by each light emitting device can be adjusted.
[0023] For example, the control unit 7 can adjust the light emission intensity emitted from the first light emitting device 1a and / or the second light emitting device 1b. The light emission intensity (light intensity) refers to the illuminance of light incident on the photosensitive surface, i.e., the incident light flux per unit area. The light emission intensity of each light emitting device can be adjusted to any value between 0 and 1, assuming that the maximum light intensity is 1. For example, by adjusting the ratio of the intensity of light emitted from each light emitting device in increments of 0.1 or 0.01, it is possible to emit light of various colors. In addition, when the first light emitting device 1a and the second light emitting device 1b each have a plurality of light emitting elements, it is possible to adjust which light emitting element a voltage is applied to, how much voltage or current is applied, and the like, for the circuit of the light emitting device 1, as shown in FIG. 13.
[0024] In addition, when the lighting device 10 has a first light-emitting device 1a and a second light-emitting device 1b having a second peak wavelength λ2, it is possible to adjust which light-emitting device is to emit light and which light-emitting device is to have a higher emission intensity, as shown in FIG. 12. That is, the third emission spectrum of the lighting device 10 is a combination of the first emission spectrum, which is the spectrum of light emitted from the first light-emitting device 1a, and the second emission spectrum, which is the spectrum of light emitted from the second light-emitting device 1b. The intensity of the first emission spectrum can be adjusted by adjusting the voltage or current applied to the first light-emitting device 1a, and the intensity of the second emission spectrum can be adjusted by adjusting the voltage or current applied to the second light-emitting device 1b. The emission spectrum of the light emitted from the lighting device 10 in this manner is the third emission spectrum. At this time, the control unit 7 also adjusts which light-emitting device is to be selected.
[0025] More specifically, the control unit 7 may select the first light-emitting device 1a as the light-emitting device to be emitted, and may also control which of the multiple second light-emitting devices 1b is to be emitted based on the first emission spectrum. The control unit 7 may also select a light-emitting device that is a reference for controlling the dimming ratio from the first light-emitting device 1a and the multiple second light-emitting devices 1b, and control the dimming ratio of each light-emitting device based on the dimming ratio of the reference light-emitting device. At this time, the control unit 7 may set a first dimming ratio of the first light-emitting device 1a, and control the dimming ratio of each of the multiple second light-emitting devices 1b based on the first dimming ratio. The control unit 7 may also select, from the multiple second light-emitting devices 1b, a second light-emitting device 1b having a peak wavelength that has the maximum light intensity in a wavelength range from a wavelength longer than the second peak wavelength λ2 to 750 nm, and set a second dimming ratio of this second light-emitting device 1b. Then, based on the second dimming ratio, the dimming ratio of each of the first light-emitting device 1a and the multiple other second light-emitting devices 1b may be controlled.
[0026] Furthermore, the control unit 7 may control the first light-emitting device 1a and / or the second light-emitting device 1b based on signals or information received wirelessly from the outside. The control unit 7 may include a calculation device such as a CPU, a memory, and the like.
[0027] The lighting device 10 according to the embodiment of the present disclosure includes a first light emitting device 1a, a plurality of second light emitting devices 1b, and a control unit 7. The first light emitting device 1a has a first peak wavelength λ1 in a wavelength range of 360 to 430 nm, and has a first emission spectrum in which the light intensity decreases continuously in the range of 360 to 750 nm as the wavelength approaches shorter and longer wavelengths than the first peak wavelength. The continuous decrease in light intensity means that the emission spectrum does not have a maximum value in the decreasing section of the wavelength range. Note that in the measurement results of the emission spectrum, minute peaks and valleys corresponding to measurement errors are not considered to specify the peak wavelength.
[0028] Each of the second light emitting devices 1b has a second peak wavelength λ2 in the wavelength region of 360 to 430 nm, and a third peak wavelength λ3 in the wavelength region longer than the second peak wavelength λ2 and up to 750 nm, and has a second emission spectrum in which the light intensity decreases continuously toward wavelengths shorter than the second peak wavelength λ2 and longer than the third peak wavelength λ3. In this case, the lighting device 10 has a plurality of second light emitting devices 1b. The third peak wavelength λ3 of each of the second light emitting devices 1b is preferably different at least in the wavelength region of 430 nm to 750 nm.
[0029] As described above, the control unit 7 can select a light-emitting device to be caused to emit light from among the first light-emitting device 1a and the plurality of second light-emitting devices 1b. The control unit 7 can also control the dimming rate of each of the first light-emitting device 1a and the plurality of second light-emitting devices 1b. In other words, the control unit 7 can control the third emission spectrum of the illumination device 10 by controlling which light-emitting device is to emit light and at what brightness the light-emitting device is to emit light. This makes it possible to control each of the light-emitting devices having spectra with different peak wavelengths. Therefore, the third emission spectrum can be changed according to various applications.
[0030] In addition, the third peak wavelength λ3 of each of the second light emitting devices 1b may be different, and the half width at the third peak wavelength λ3 of each of the second light emitting devices 1b may be larger toward longer wavelengths. When reproducing visible light such as the solar spectrum, it is necessary to reproduce even longer wavelength regions. For this reason, the half width becomes larger toward longer wavelengths, making it easier to adjust the light. In this case, the third peak wavelength λ3 of each of the second light emitting devices 1b may be at least 10 nm or more apart. In a lighting device having emission spectra with different peak wavelengths, the smaller the wavelength region where the emission spectra overlap, the wider the wavelength region that the lighting device can emit.
[0031] In addition, when the dimming ratio of the first light emitting device 1a is equal to the dimming ratio of at least one second light emitting device 1b, the light intensity at the second peak wavelength λ2 corresponding to the second light emitting device 1b may be 25% or less of the light intensity at the first peak wavelength λ1. In other words, when the dimming ratio of the first light emitting device 1a is equal to the dimming ratio of the second light emitting device 1b, the light intensity at 360 to 430 nm of the first light emitting device 1a may be the highest. In this case, when the peak wavelength (second peak wavelength λ2) of the excitation light of the multiple second light emitting devices 1b overlaps with the first peak wavelength λ1, the influence of the second peak wavelength λ2 can be reduced. This makes it easier to dim the light in the purple region corresponding to 360 to 430 nm.
[0032] The third emission spectrum may have peak wavelengths at the positions of the first peak wavelength λ1, the second peak wavelength λ2, and the plurality of third peak wavelengths λ3. The emission spectrum of the lighting device 10 is an emission spectrum of the composite light of the light emitted from the first light-emitting device 1a and the plurality of second light-emitting devices 1b, so the magnitude of the light intensity, etc. changes depending on the dimming rate of each light-emitting device. At this time, the more the third peak wavelengths λ3 of the plurality of second light-emitting devices 1b are separated from each other, the smaller the overlap of the light of each peak wavelength is, and the peak positions are independent. When such a configuration is satisfied, the third emission spectrum of the light emitted as the lighting device 10 has a peak wavelength at the same wavelength as the third peak wavelength λ3 of each of the plurality of second light-emitting devices 1b. Here, the small overlap means that in the case where two target third peak wavelengths λ3 overlap, if the light intensity at the wavelength of the overlapping boundary is less than 50% of the light intensity at the higher of the target third peak wavelengths λ3, the peak of the third emission spectrum is located at the same wavelength as the third peak wavelength λ3 of the second light-emitting device 1b. By thus selecting a plurality of second light-emitting devices 1b by the control unit 7, the illumination device 10 can easily adjust the reproduction of light having the peak wavelength of the third emission spectrum at the peak wavelength of each light-emitting device.
[0033] Conversely, the third emission spectrum may have a peak wavelength at a wavelength region between two third peak wavelengths λ3 in addition to the first peak wavelength λ1 and the second peak wavelength λ2. The closer the third peak wavelengths λ3 of the multiple second light-emitting devices 1b are to each other, the greater the overlap of light near each third peak wavelength λ3. For this reason, the third emission spectrum has a peak at a wavelength where the overlap of light is greatest. In this case, the second emission spectrum overlaps. Here, overlapping means that in the case where two target third peak wavelengths λ3 overlap, if the light intensity at the overlapping boundary wavelength is 50% or more relative to the light intensity at the higher of the target third peak wavelengths λ3, the peak of the third emission spectrum is located at a wavelength between the target third peak wavelengths λ3 of the multiple second light-emitting devices 1b. By selecting multiple second light-emitting devices 1b in this manner by the control unit 7, the lighting device 10 can easily adjust the reproduction of light having the peak wavelength of the third emission spectrum in addition to the peak wavelength of each light-emitting device.
[0034] Moreover, the first peak wavelength λ1 and the second peak wavelength λ2 may be the same peak wavelength or may be different. Furthermore, the second peak wavelength λ2 of each of the multiple second light-emitting devices 1b, that is, the wavelength of the excitation light, may be the same peak wavelength or may be different. The same peak wavelength means that the difference in the peak wavelength is less than 2 nm. This means that the wavelength error of the light-emitting element having the same peak wavelength setting is less than 2 nm. When the first peak wavelength λ1 and the second peak wavelength λ2 are the same peak wavelength, the respective peak wavelengths are the same, so that the color unevenness and color variation of the light emitted from the lighting device can be reduced. At this time, the half-width at the second peak wavelength λ2 of each of the multiple second light-emitting devices 1b may be the same. When the half-width at the respective second peak wavelengths λ2 are the same, the color unevenness in the wavelength region of the excitation light can be reduced.
[0035] 4 shows an example in which the lighting device 10 has the first light emitting device 1a and seven types of second light emitting devices 1b, and shows the emission spectrum of each device when the dimming ratio is 100%. For example, the first light emitting device 1a emits light having a first peak wavelength in the wavelength range of 360 to 430 nm. The second light emitting device 1b has a light emitting element that emits light having a second peak wavelength in the range of 360 to 430 nm, which is irradiated to a phosphor as excitation light, and further emits light having a third peak wavelength. For example, among the second light-emitting devices 1b, one having the third peak wavelength λ3 in the wavelength region from the second peak wavelength λ2 to 480 nm is called second light-emitting device A, one having the third peak wavelength λ3 in the wavelength region of 440 to 520 nm is called second light-emitting device B, one having the third peak wavelength λ3 in the wavelength region of 480 to 570 nm is called second light-emitting device C, one having the third peak wavelength λ3 in the wavelength region of 520 to 620 nm is called second light-emitting device D, one having the third peak wavelength λ3 in the wavelength region of 550 to 650 nm is called second light-emitting device E, one having the third peak wavelength λ3 in the wavelength region of 580 to 690 nm is called second light-emitting device F, and one having the third peak wavelength λ3 in the wavelength region of 620 to 730 nm is called second light-emitting device G.
[0036] In FIG. 5, when the dimming ratio of the first light-emitting device 1a is 2%, the dimming ratio of the second light-emitting device A is 10%, the dimming ratio of the second light-emitting device B is 25%, the dimming ratio of the second light-emitting device C is 30%, the dimming ratio of the second light-emitting device D is 20%, the dimming ratio of the second light-emitting device E is 10%, the dimming ratio of the second light-emitting device F is 25%, and the dimming ratio of the second light-emitting device G is 20%, it is possible to obtain a spectrum close to D50, which is the reference spectrum of daytime sunlight. Furthermore, when the dimming rate of the first light-emitting device 1a is 2%, the dimming rate of the second light-emitting device A is 80%, the dimming rate of the second light-emitting device B is 40%, the dimming rate of the second light-emitting device C is 20%, the dimming rate of the second light-emitting device D is 5%, the dimming rate of the second light-emitting device E is 5%, the dimming rate of the second light-emitting device F is 0% (off), and the dimming rate of the second light-emitting device G is 0% (off), a spectrum close to blue can be obtained, and the spectrum can also be made to approach the sunlight spectrum underwater.
[0037] In such a configuration, it is possible to emit light of various colors by controlling the dimming ratios of the plurality of second light emitting devices 1b.
[0038] Furthermore, the light emitting device 1 according to the embodiment of the present disclosure can emit light with high color rendering properties that is similar to the spectrum of sunlight by adjusting the dimming ratio of each light emitting device. That is, it is possible to reduce the difference between the light intensity in the spectrum of sunlight and the light intensity in the third emission spectrum of the lighting device 10 according to the embodiment of the present disclosure, and it is possible to manufacture a lighting device 10 that can emit light that is similar to the spectrum of sunlight.
[0039] The lighting device 10 according to the embodiment of the present disclosure may be configured as a set of a first light-emitting device 1a and a plurality of second light-emitting devices 1b, or may be configured by arranging a plurality of devices, for example, in lighting used indoors, such as in a building or a house. For example, if it is a lighting device for a residential space, it can create a lighting environment that looks like sunlight is irradiated even indoors. In addition, if it is used as a lighting device for visual inspection of painted objects, such as automobiles, it can create an inspection environment that looks like sunlight is irradiated even indoors. By irradiating light close to the spectrum of sunlight even indoors, it is possible to make the color look closer to the color seen under sunlight (improved color rendering), and when inspecting colors, it is possible to inspect more accurately and in a state closer to the usage environment.
[0040] In addition, as part of the control to approach sunlight according to the present disclosure, control may be performed to continuously change the sunlight from morning to evening. By continuously changing the sunlight from morning to evening, it is possible to match it with the human biological rhythm. In this case, for example, when reproducing the morning, the dimming rate of light in the blue region may be increased to adjust the light to emit a light with a high color temperature. Also, when reproducing the evening, the dimming rate of light in the red region may be increased to adjust the light to emit a light with a low color temperature. In this case, the dimming rate may be adjusted so that the average color rendering index Ra is 85 or more.
[0041] Furthermore, as shown in Figs. 6 to 8, the lighting device 10 and the light emitting device 1 of the present disclosure can reproduce the light of a Japanese candle (color temperature: 1800 to 2100K) as light with a low color temperature. Specifically, one of the plurality of second light emitting devices 1b may have a peak wavelength in the wavelength region of 610 to 730 nm. In this case, only the second light emitting device 1b that satisfies this condition may be caused to emit light by the control unit 7. Note that the emission spectrum of the second light emitting device 1b may have a relative light intensity of 0.05 to 0.3 at the peak wavelength and a relative light intensity of 0.1 or less at 440 nm to 480 nm.
[0042] Furthermore, the light emission intensities of the plurality of second light emitting devices 1b may be adjusted by the control unit 7 to emit light that reproduces a Japanese candle having a peak wavelength A in the wavelength range of 610 to 730 nm under the following conditions: the relative light intensity at the second peak wavelength is 0.05 to 0.3, the relative light intensity at 440 nm to 480 nm is 0.1 or less, and the light intensity in the wavelength range from 480 nm to the peak wavelength A increases continuously. In this case, the ratio of the second light emitting devices B to E may be set low, for example, less than 20%, and the ratio of the second light emitting devices F and G may be set high, for example, 50% or more, in terms of the dimming ratio.
[0043] <Lighting and light-emitting devices that reproduce Japanese candles> As described above, the lighting device 10 may include a light emitting device 1 that reproduces a Japanese candle among the multiple light emitting devices 1, or may reproduce the light of a Japanese candle by controlling the dimming rate of the multiple light emitting devices 1. Also, the emission spectrum shown in Fig. 6 to Fig. 8 is possessed by the light emitting device 1 itself, not by the lighting device 10, and the light emitted from the light emitting device 1 may reproduce the light of a Japanese candle.
[0044] When the light emitting device 1 itself reproduces the light of a Japanese candle, the light emitting device 1 has a light emitting element 3 and a wavelength conversion member 6. The emission spectrum of the light emitted from the lighting device 10 or the light emitting device 1 has an emission peak wavelength in the wavelength range of 610 nm to 730 nm, and emits light specified by an emission spectrum having an excitation peak wavelength in the wavelength range of 360 nm to 430 nm. When the light intensity at the emission peak wavelength is 1, the relative light intensity at the excitation peak wavelength is 0.05 to 0.3, and the relative light intensity at 440 nm to 480 nm is 0.1 or less. The light intensity in the wavelength range from 480 nm to the emission peak wavelength increases continuously.
[0045] The wavelength conversion member 6 may include a plurality of phosphors 60. The phosphors 60 convert light having a peak wavelength (excitation peak wavelength λe) in the wavelength range of 360 nm to 430 nm into light having a peak wavelength (emission peak wavelength λL) in the wavelength range of 610 nm to 730 nm. The wavelength conversion member 6 is provided at a position where it can convert the light emitted by the light emitting element 3 into light having a peak wavelength in the wavelength range of 610 nm to 730 nm. The wavelength range of 610 nm to 730 nm is included in the visible light range.
[0046] The phosphor 60 may include a phosphor having a peak wavelength in the wavelength region of 600 nm to 660 nm. The phosphor having a peak wavelength in the wavelength region of 600 nm to 660 nm is, for example, a phosphor that exhibits red color. The phosphor that exhibits red color is, for example, Y 2 O 2 S:Eu,Y 2 O 3 :Eu, SrCaClAlSiN 3 :EU 2+ , CaAlSiN 3 : Eu, or CaAlSi(ON) 3:Eu, etc. can be used. The phosphor that exhibits red color converts the light that enters the inside of the wavelength conversion member 6 into light having a peak wavelength in the wavelength region of 600 nm to 660 nm, and emits the converted light. In addition to the above-mentioned phosphor that exhibits red color, the wavelength conversion member 6 may contain, for example, a phosphor that exhibits a color in the near-infrared region and has a peak wavelength in the wavelength region of 680 nm to 800 nm. An example of a phosphor that exhibits a color in the near-infrared region is 3Ga 5 O 12 :Cr, etc. By selecting one of these phosphors or combining several of them, it is possible to obtain phosphor 60 having a peak emission wavelength λL in the range of 610 nm to 730 nm.
[0047] In the present disclosure, phosphors of other colors may not be included. By not including phosphors of other colors, it is possible to reproduce a red color having an emission peak wavelength λL at 610 nm to 730 nm. In particular, in the present disclosure, in addition to not including other phosphors, the relative light intensity in the blue wavelength region described later is small (0.1 or less), so that the reproduction rate of red light having an emission peak wavelength λL at 610 nm to 730 nm can be improved compared to the case where a blue-emitting LED is used. Note that other phosphors such as those described above may be included in small amounts to the extent that they do not affect the emission peak wavelength λL. By including a small amount of phosphors other than red, it is possible to approach a natural color.
[0048] The above-mentioned peak wavelength and the peak wavelength described below refer to the wavelength at which the spectrum shows a maximum value, that is, the wavelength at which the spectrum goes from a valley to a peak and back again. However, when a phosphor is used to emit various colors, the spectrum may have minute peaks and valleys. Such minute peaks and valleys are not used when specifying the peak wavelength. That is, for example, a maximum value where the width from valley to valley is 20 nm or less may not be considered as a peak.
[0049] <Lighting devices and light-emitting devices that reproduce Japanese candles> The emission spectrum of the lighting device 10 and the light emitting device 1 of the present disclosure has an excitation peak wavelength λe in the wavelength region of 360 nm to 430 nm and an emission peak wavelength λL in the wavelength region of 610 nm to 730 nm as described above. In this case, when the light intensity at the emission peak wavelength λL is 1, the relative light intensity at the excitation peak wavelength λe is preferably 0.05 to 0.3, and the relative light intensity at 440 nm to 480 nm is preferably 0.1 or less. In addition, the light intensity in the wavelength region from 480 nm to the emission peak wavelength λL is preferably continuously increasing. The excitation peak wavelength λe is the excitation light of the light emitting element 3. If the relative light intensity of the excitation light is 0.05 to 0.3, the color of the light to be emitted is less affected even if direct purple light is radiated to the outside as leakage light. In addition, the emission intensity can be sufficiently maintained. In addition, since the relative light intensity in the range of 440 nm to 480 nm is 0.1 or less, the color of the emitted light is hardly contained, which results in little effect on the color of the emitted light and improves the reproduction rate of the desired light. In addition, since the light intensity in the wavelength range from 480 nm to the emission peak wavelength λL increases continuously, the color near the emission peak wavelength λL can be reproduced favorably because there is no peak wavelength in this wavelength range.
[0050] Here, the light intensity in the wavelength region from 480 nm to the emission peak wavelength λL continuously increases means that the spectrum does not have a maximum value in the wavelength region from 480 nm to the emission peak wavelength λL. As described above, the spectrum may have minute peaks and valleys, but such minute peaks and valleys need not be used when specifying the maximum value.
[0051] The emission spectrum of the lighting device 10 and the light emitting device 1 according to the first to third embodiments of the present disclosure will be specifically described with reference to Figs. 6 to 8. The lighting device 10 and the light emitting device 1 according to the first to third embodiments are different from each other in the material and amount of the phosphor 60. The emission spectrum is measured by spectroscopy using, for example, a spectrophotometer. The lighting device 10 and the light emitting device 1 according to the first to third embodiments are devices that emit light colors that mimic the color of a candle's light. Therefore, Figs. 6 to 8 show the actual measured values of the candle's light and the measured values of each embodiment in comparison. More specifically, the actual measured values when the candle's light is brightly flickering as candle (1), when the candle's light is quietly stable as candle (2), and when the candle's light is darkly flickering as candle (3) are shown. In addition, in each embodiment, (1) is a reproduction of bright flickering light, (2) is a reproduction of quiet and stable light, and (3) is a reproduction of dark flickering light. Hereinafter, the emission peak wavelength λL in each embodiment is set to the emission peak wavelength λL1 in the first embodiment, the emission peak wavelength λL2 in the second embodiment, and the emission peak wavelength λL3 in the third embodiment.
[0052] (First embodiment) As shown in FIG. 6, the emission spectrum of the first embodiment has an emission peak wavelength λL1 in the wavelength region of 610 nm to 650 nm. In FIG. 6, the emission peak wavelength λL1 is located near 630 nm. The emission peak wavelength λL1 corresponds to the wavelength of light emitted by the phosphor 60. When the emission peak wavelength λL1 is located in the wavelength region of 610 nm to 650 nm, the phosphor 60 mainly contains the above-mentioned red phosphor 60. In this embodiment, the relative light intensity at the second peak wavelength λ2 is about 0.26, and the relative light intensity at 440 nm to 480 nm is 0.1 or less. As a result, since it hardly contains blue that humans sense, the effect on the color of the emitted light is small, and the reproduction rate of the target light is improved. And, since the light intensity in the wavelength region from 480 nm to the emission peak wavelength λL1 (near 630 nm) increases continuously, there is no peak wavelength between them. Therefore, it is possible to reproduce colors in the vicinity of the emission peak wavelength λL1, that is, from 610 nm to 650 nm. The illumination device 10 and the light emitting device 1 according to the first embodiment can realize brighter light with a more distinct red color than the other embodiments.
[0053] Second embodiment As shown in FIG. 7, the emission spectrum of the second embodiment has an emission peak wavelength λL2 in the wavelength region of 620 nm to 670 nm. In FIG. 7, the emission peak wavelength λL2 is located near 645 nm. The emission peak wavelength λL2 corresponds to the wavelength of light emitted by the phosphor 60. When the emission peak wavelength λL2 is located in the wavelength region of 620 nm to 670 nm, the phosphor 60 mainly contains the above-mentioned red phosphor 60. In this embodiment, the relative light intensity at the second peak wavelength λ2 is about 0.25, and the relative light intensity at 440 nm to 480 nm is 0.09 or less. As a result, since it contains almost no blue that humans sense, the effect on the color of the emitted light is small, and the reproduction rate of the intended light is improved. And, since the light intensity in the wavelength region from 480 nm to the emission peak wavelength λL2 (near 645 nm) increases continuously, there is no peak wavelength between them. Therefore, it is possible to reproduce colors in the vicinity of the emission peak wavelength λL2, that is, from 620 nm to 670 nm. In particular, the illumination device 10 and the light emitting device 1 according to the second embodiment can be well-balanced, having brightness and a color temperature close to that of a candlelight.
[0054] Third embodiment As shown in FIG. 8, the emission spectrum of the third embodiment has an emission peak wavelength λL3 in the wavelength region of 690 nm to 730 nm. In FIG. 8, the emission peak wavelength λL3 is located near 715 nm. The emission peak wavelength λL3 corresponds to the wavelength of light emitted by the phosphor 60. When the emission peak wavelength λL3 is located in the wavelength region of 690 nm to 730 nm, the phosphor 60 mainly contains the phosphor 60 of the color in the near infrared region described above. In this embodiment, the relative light intensity at the second peak wavelength λ2 is about 0.06, and the relative light intensity at 440 nm to 480 nm is 0.08 or less. As a result, since it contains almost no blue color sensed by humans, the effect on the color of the emitted light is small, and the reproduction rate of the target light is improved. And, since the light intensity in the wavelength region from 480 nm to the emission peak wavelength λL3 (near 715 nm) increases continuously, there is no peak wavelength between them. Therefore, it is possible to reproduce colors in the vicinity of the emission peak wavelength λL3, that is, colors from 690 nm to 730 nm. The lighting device 10 and the light-emitting device 1 according to the third embodiment can realize light that matches the actual measured values of candlelight, that is, light with a high reproduction rate, as shown in FIG.
[0055] As described above, the emission spectrum of the light emitted by the lighting device 10 and the light emitting device 1 of the present disclosure has the above-mentioned configuration, and therefore contains almost no blue light sensed by humans, so that the effect of blue light on the color of the emitted light is small. In addition, the reproduction rate of the target light color (red) can be improved. In particular, when the purpose is to reproduce the light of a candle with a color temperature of 2000K, the light emitting device 1 of the second embodiment can reproduce light closer to that of a candle due to the balance between brightness and the reproduction rate of the color temperature.
[0056] <Color rendering properties of lighting devices and light-emitting devices> The color rendering properties of the illumination device 10 and the light emitting device 1 according to the present disclosure will be described.
[0057] "Color rendering" is one of the indices for evaluating the quality of a light source, and is a numerical representation of how colors appear using a color rendering index based on natural light. Color rendering indexes can be expressed as average color rendering index Ra, special color rendering index R9, special color rendering index R10, special color rendering index R11, special color rendering index R12, special color rendering index R13, special color rendering index R14, special color rendering index R15, etc. For example, light sources with average color rendering index Ra=100 are the sun and incandescent light bulbs.
[0058] The lighting device 10 and light-emitting device 1 according to the present disclosure can realize a light-emitting device 1 with excellent color rendering properties, with an average color rendering index Ra of 85 or more. For example, the lighting device 10 and light-emitting device 1 of the first embodiment have an average color rendering index Ra of 88.0, the lighting device 10 and light-emitting device 1 of the second embodiment have an average color rendering index Ra of 88.1, and the lighting device 10 and light-emitting device 1 of the third embodiment have an average color rendering index Ra of 88.4.
[0059] <Color temperature of lighting and light-emitting devices> Color temperature is a numerical value that represents the color of light emitted by a light source, and is expressed in units of K (Kelvin). A low color temperature means that the light emitted by the light source is reddish. A high color temperature means that the light emitted by the light source is bluish. For example, the color temperature of light emitted by an incandescent bulb is about 2800K. For example, the color temperature of daylight light is about 4200K.
[0060] The light specified by the emission spectrum of the lighting device 10 and the light emitting device 1 according to the first embodiment has a color temperature of 2083 K. The light specified by the emission spectrum of the lighting device 10 and the light emitting device 1 according to the second embodiment has a color temperature of 1964 K. The light specified by the emission spectrum of the lighting device 10 and the light emitting device 1 according to the third embodiment has a color temperature of 1825 K.
[0061] The emission spectrum of the lighting device 10 and the light emitting device 1 according to the first to third embodiments, including measurement variations, is about 2000K, which is between 1800K and 2100K, and can reproduce a warm red color like that of a Japanese candle.
[0062] Furthermore, the lighting device 10 including at least one light-emitting device 1 that reproduces the light of a Japanese candle may include a control unit 7 that adjusts the light intensity (dimming rate) of the light-emitting device 1 in the same manner as the above-mentioned configuration. The control unit 7 can adjust the intensity of the light emitted from the light-emitting device 1 by controlling the value of the current flowing through the light-emitting device 1. The control unit 7 can also adjust the light emitted from the light-emitting device 1 to flicker by changing the dimming rate over time or randomly changing the dimming rate. The control unit 7 may be attached to the wiring board 12, or the lighting device 10 may include a receiving unit that issues commands to a part that controls the current of the wiring board 12, etc., via wireless communication from the outside.
[0063] In this way, lighting device 10 has control unit 7 capable of controlling dimming, so that light with different intensities (brightness and darkness) can be reproduced even if the light has the same color temperature.
[0064] <Examples of using lighting equipment> The lighting device 10 of the present disclosure can reproduce the light of a candle (Japanese candle). For example, the lighting device 10 can be used to illuminate temple pillars, Japanese paintings, walls, etc., allowing the user to experience the colors seen under candlelight. In addition, by adjusting the intensity of the light, it is possible to reproduce changes such as the flickering of a candle.
[0065] The lighting device 10 may be used not only indoors such as inside a building or a house, but also outdoors.
[0066] <Lighting equipment configuration> As shown in Figures 9 to 11, the lighting device 10 comprises a long housing 11 that is open upward, a plurality of light-emitting devices 1 arranged in a line along the longitudinal direction within the housing 11, a long wiring board 12 on which the plurality of light-emitting devices 1 are mounted, and a long light-transmitting board 13 that is supported by the housing 11 and closes the opening of the housing 11.
[0067] The housing 11 has a function of holding the light-transmitting substrate 13 and a function of dissipating heat generated by the light-emitting device 1 to the outside. The housing 11 is made of, for example, metal such as aluminum, copper, or stainless steel, plastic, or resin. The housing 11 is erected from a bottom 21a extending in the longitudinal direction and both ends of the bottom 21a in the width direction. The housing 11 further includes a long main body 21 having a pair of support parts 21b extending in the longitudinal direction and openings on the upper side and both sides in the longitudinal direction, and two lid parts 22 that close the openings on one side and the other side in the longitudinal direction of the main body 21, respectively. At the upper part inside the housing 11 of each support part 21b, a holding part is provided in which recesses for holding the light-transmitting substrate 13 are formed so as to face each other along the longitudinal direction. The length of the housing 11 in the longitudinal direction is set to, for example, 100 mm or more and 2000 mm or less.
[0068] The wiring board 12 is fixed to the bottom surface inside the housing 11. For example, a printed circuit board such as a rigid board, a flexible board, or a rigid-flexible board is used as the wiring board 12. The wiring pattern of the wiring board 12 and the wiring pattern of the board 2 in the light emitting device 1 are electrically connected via solder or a conductive adhesive. Then, a signal from the wiring board 12 is transmitted to the light emitting element 3 via the board 2, and the light emitting element 3 emits light. Note that power is supplied to the wiring board 12 via wiring from an external power source.
[0069] The light-transmitting substrate 13 is made of a material through which the light emitted from the light-emitting device 1 passes, and is made of a light-transmitting material such as acrylic resin or glass. The light-transmitting substrate 13 is a rectangular plate, and the length in the longitudinal direction is set to, for example, 98 mm or more and 1998 mm or less. The light-transmitting substrate 13 is inserted into the recesses formed in the above-mentioned supporting parts 21b from an opening on one or the other side in the longitudinal direction of the main body 21. Thereafter, the light-transmitting substrate 13 is supported by the pair of supporting parts 21b at a position away from the multiple light-emitting devices 1 by sliding it along the longitudinal direction. Then, the openings on one and the other side in the longitudinal direction of the main body 21 are closed with the lid part 22, thereby forming the lighting device 10.
[0070] The above-mentioned lighting device 10 is a line-emitting lighting device in which a plurality of light-emitting devices 1 are arranged in a straight line, but is not limited to this and may be a surface-emitting lighting device in which a plurality of light-emitting devices 1 are arranged in a matrix or a staggered pattern.
[0071] Each of the second light-emitting devices 1b of the lighting device 10 in the embodiment of the present disclosure is configured to include, as the phosphor contained in one wavelength conversion member 6, any one of five types of phosphors consisting of a phosphor that emits blue fluorescence, a phosphor that emits blue-green fluorescence, a phosphor that emits green fluorescence, a phosphor that emits red fluorescence, and a phosphor that emits fluorescence in the near-infrared region, or a plurality of them, as described above. However, the present disclosure is not limited to this, and two types of wavelength conversion members may be provided. When two types of wavelength conversion members are provided, a first wavelength conversion member may be used, and different phosphors may be dispersed in the second wavelength conversion member, or phosphors may be dispersed in different combinations. Then, these two wavelength conversion members may be provided in one light-emitting device, and the light emitted through each wavelength conversion member may be mixed. In this way, it is possible to easily control the color rendering of the emitted light.
[0072] It should be noted that the present disclosure is not limited to the above-described embodiment, and various modifications such as numerical values are possible. Various combinations of the characteristic parts in the present embodiment are not limited to the above-described embodiment. [Explanation of symbols]
[0073] 1 Light emitting device 1a First light emitting device 1b Second light emitting device 10. Lighting Equipment 11. Cabinet 12 Wiring board 13 Translucent substrate 2. Board 21 Main body 21a bottom 21b Support part 22 Lid 3 Light emitting element 4 Frame 5 Sealing member 6 Wavelength conversion material 60 Phosphor 7 Control section λ1 First peak wavelength λ2 Second peak wavelength λ3 Third peak wavelength λe Excitation peak wavelength λL Emission peak wavelength
Claims
1. A first light emitting device; A plurality of second light emitting devices; A control unit, the first light emitting device has a first peak wavelength in a wavelength region of 360 to 430 nm, and a first emission spectrum in which the light intensity continuously decreases toward wavelengths shorter and longer than the first peak wavelength, respectively; each of the plurality of second light-emitting devices has a second peak wavelength in a wavelength region of 360 to 430 nm, and a third peak wavelength in a wavelength region of from a wavelength longer than the second peak wavelength to 750 nm, and has a second emission spectrum in which light intensity continuously decreases toward wavelengths shorter than the second peak wavelength and toward wavelengths longer than the third peak wavelength, respectively; the control unit controls the first light-emitting device and the second light-emitting device; The illumination device, wherein the third peak wavelengths of the second light-emitting devices are different from one another.
2. The illumination device according to claim 1 , wherein the control unit selects one of the first light-emitting device and the plurality of second light-emitting devices to emit light.
3. the first peak wavelength and the second peak wavelength are excitation light, and the third peak wavelength is fluorescent light; The lighting device according to claim 2 , wherein the control unit selects the first light-emitting device as the light-emitting device to emit light, and controls which of the plurality of second light-emitting devices is to emit light based on the first emission spectrum.
4. 4. The lighting device according to claim 1, wherein the control unit controls a dimming ratio of each of the first light-emitting device and the plurality of second light-emitting devices.
5. The lighting device according to any one of claims 1 to 4, wherein the control unit selects a light-emitting device from among the first light-emitting device and the plurality of second light-emitting devices as a reference for controlling a dimming rate, and controls the dimming rate of each light-emitting device based on the dimming rate of the reference light-emitting device.
6. the first peak wavelength and the second peak wavelength are excitation light, and the third peak wavelength is fluorescent light; The lighting device according to claim 4 , wherein the control unit sets a first dimming ratio for the first light-emitting device, and controls the dimming ratios of each of the second light-emitting devices based on the first dimming ratio.
7. the control unit sets a second dimming ratio for a second light-emitting device among the plurality of second light-emitting devices, the second light-emitting device having a peak wavelength that provides maximum light intensity in a wavelength region from a wavelength longer than the second peak wavelength to 750 nm, and controls the dimming ratios of the first light-emitting device and each of the other plurality of second light-emitting devices based on the second dimming ratio.
8. 8. The lighting device according to claim 1, wherein a half width of the third peak wavelength of each of the plurality of second light-emitting devices increases toward a longer wavelength.
9. 9. The lighting device according to claim 1, wherein the third peak wavelengths of the plurality of second light-emitting devices are spaced apart from each other by at least 10 nm or more.
10. 10. The lighting device according to claim 1, wherein when the dimming rate of the first light-emitting device is the same as the dimming rate of at least one of the second light-emitting devices, the light intensity at the second peak wavelength of the second light-emitting device controlled at the same dimming rate as the dimming rate of the first light-emitting device is 25% or less of the light intensity at the first peak wavelength.
11. The lighting device according to any one of claims 1 to 10, wherein the control unit selects, from among the plurality of second light-emitting devices, a second light-emitting device whose third peak wavelengths have a small overlap with each other in a wavelength region from a wavelength longer than the second peak wavelength to 750 nm.
12. The lighting device according to any one of claims 1 to 10, wherein the control unit selects, from among the plurality of second light-emitting devices, the second light-emitting devices whose third peak wavelengths overlap with each other in a wavelength region from a wavelength longer than the second peak wavelength to 750 nm.
13. 13. The lighting device according to claim 1, wherein the first peak wavelength and at least one of the second peak wavelengths are the same.
14. 14. The lighting device according to claim 1, wherein the second peak wavelengths of the second light-emitting devices are the same.
15. 15. The lighting device according to claim 1, wherein the second light emitting devices have the same half width of the second peak wavelength.
16. At least one of the second light emitting devices of the plurality of second light emitting devices has a peak wavelength A in a wavelength region of 610 nm to 730 nm as the third peak wavelength, 16. The lighting device according to claim 1, wherein the second emission spectrum has a relative light intensity of 0.05 to 0.3 at the second peak wavelength, a relative light intensity of 0.1 or less at 440 nm to 480 nm, and a light intensity continuously increasing in a wavelength region from 480 nm to the peak wavelength A, when the light intensity at the peak wavelength A is 1.
17. The emission spectrum has an excitation peak wavelength in the wavelength region of 360 nm to 430 nm and an emission peak wavelength in the wavelength region of 610 nm to 730 nm, When the light intensity at the emission peak wavelength is taken as 1, the relative light intensity at the excitation peak wavelength is 0.05 to 0.3, the relative light intensity at 440 nm to 480 nm is 0.1 or less, and the light intensity in the wavelength region from 480 nm to the emission peak wavelength increases continuously.
18. a light emitting element that emits light having the excitation peak wavelength; 18. The lighting device according to claim 17, further comprising: at least one phosphor that converts light emitted by the light-emitting element into light having the emission peak wavelength.
19. 19. The lighting device according to claim 17 or 18, wherein the light specified by the emission spectrum has a color temperature of 1800K to 2100K.
20. 20. The lighting device according to claim 17, wherein the light specified by the emission spectrum has a general color rendering index Ra of 85 or more.
21. The lighting device according to any one of claims 17 to 20, further comprising a control unit that controls the light intensity of the emission spectrum.
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