JP2005230171A - Indoor illuminator and light source used for it - Google Patents

Indoor illuminator and light source used for it Download PDF

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JP2005230171A
JP2005230171A JP2004041545A JP2004041545A JP2005230171A JP 2005230171 A JP2005230171 A JP 2005230171A JP 2004041545 A JP2004041545 A JP 2004041545A JP 2004041545 A JP2004041545 A JP 2004041545A JP 2005230171 A JP2005230171 A JP 2005230171A
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light
light source
wavelength
filter
lighting device
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JP4663247B2 (en
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Koki Noguchi
公喜 野口
Naohiro Toda
直宏 戸田
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Panasonic Electric Works Co Ltd
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Matsushita Electric Works Ltd
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Abstract

<P>PROBLEM TO BE SOLVED: To secure visual information without obstructing sleep by melatonin secretion suppression by light reception at night. <P>SOLUTION: An indoor illuminator is provided with a filter 2 for attenuating or cutting at least spectroscopic components in a wavelength range of 410nm to 505nm among the spectroscopic components corresponding to output from a light source 1. Thus, there is the effect of mitigating the melatonin secretion suppression caused by the light of a wavelength range of the wavelength from 410nm to 505nm while supplying the visual information. Thus, a lot of melatonin is secreted and body temperature decline and falling asleep are prompted. By the filter 2, the constitution of the wavelength to be outputted can be changed corresponding to situations with one light source. <P>COPYRIGHT: (C)2005,JPO&NCIPI

Description

この発明は、屋内用照明装置およびそれに用いる光源に関するものである。   The present invention relates to an indoor lighting device and a light source used therefor.

従来より、夜間のとくに就寝前の時間帯においては、居住空間における照明光の色温度を低色温度(電球のような赤っぽい色光)とすることで、白色光、昼光色光と比べて脳への刺激を低減し、円滑な入眠を促すことが知られており、時刻やヒトの生体リズムに合わせて光色を変化させる技術が提案されている(例えば、特許文献1参照)。
特開2000−252084号公報
Traditionally, at night, especially before bedtime, the color temperature of the illumination light in the living space is set to a low color temperature (reddish color light like a light bulb), so that the brain is compared to white light and daylight color light. It is known to reduce irritation to the human body and promote smooth sleep, and a technique for changing the light color in accordance with the time of day or human biological rhythm has been proposed (see, for example, Patent Document 1).
JP 2000-252084 A

上記に関連して、光の波長と生体リズム、睡眠との関係についての新たな知見が下記の論文にて報告されている。   In relation to the above, new knowledge about the relationship between the wavelength of light, biological rhythm, and sleep has been reported in the following paper.

Brainard et al.(2001):“Action Spectrum for Melatonin Regulation in Humans:Evidence for a Novel Circadian Photoreceptor",J.Neurosci.,21(16),6405-6412
上記文献においては、夜間の受光によるメラトニン分泌抑制の波長特性が明らかにされている。メラトニンとは、脳にある松果体から分泌されるホルモンであり、夜間の入眠前から睡眠前半の時間帯にかけて(個人差や生活リズムによって差があるが、午後10時ごろから深夜にかけて)多く分泌され、体温の低下や入眠促進をうながすと考えられている。
Brainard et al. (2001): “Action Spectrum for Melatonin Regulation in Humans: Evidence for a Novel Circadian Photoreceptor”. Neurosci., 21 (16), 6405-6412
In the above document, the wavelength characteristic of melatonin secretion suppression by nighttime light reception is clarified. Melatonin is a hormone secreted from the pineal gland in the brain, and is often used from before sleep at night to during the first half of the sleep period (depending on individual differences and lifestyle rhythms, but from 10 pm to midnight) It is secreted and is thought to promote a decrease in body temperature and promotion of falling asleep.

このメラトニンは、夜間の受光によりその分泌が抑制されることが明らかにされており、上記文献では図8のような波長特性が報告されている。図8によると、メラトニン分泌抑制感度がピークとなる波長は464nmであり、ピーク波長464nmにおける感度を1とした時、その感度が0.5以上となる範囲、すなわち410nmから505nmまでの範囲で、とくに分泌抑制感度が高くなることが分かる。   It has been clarified that the secretion of melatonin is suppressed by nighttime light reception, and the above-mentioned document reports the wavelength characteristics as shown in FIG. According to FIG. 8, the wavelength at which the melatonin secretion suppression sensitivity reaches a peak is 464 nm, and when the sensitivity at the peak wavelength of 464 nm is 1, the sensitivity is 0.5 or more, that is, the range from 410 nm to 505 nm. It can be seen that the secretion suppression sensitivity is particularly high.

上述のように、メラトニンが夜間の体温低下や入眠促進を促すことからすると、夜間の就寝前における上記の波長範囲を含む光の受光は、上質の睡眠をとるためには極力避けるべきであり、照明装置や光源での対処も必要である。   As mentioned above, since melatonin promotes lowering of body temperature at night and promotion of falling asleep, light reception including the above wavelength range before going to bed at night should be avoided as much as possible to take a good-quality sleep, It is also necessary to deal with lighting devices and light sources.

先に述べたように、夜間の就寝前の時間帯においては、低色温度(電球色)の照明空間の構成が提案されているが、屋内の正面空間において一般的に用いられる光源、白熱ランプや電球色蛍光ランプなどにおいても、白色や昼光色蛍光灯に比べると上記波長成分は少なくなっているものの存在しており、メラトニン分泌抑制を引き起こすと考えられる。   As described above, in the time zone before going to bed at night, the construction of an illumination space with a low color temperature (bulb color) has been proposed, but an incandescent lamp, a light source generally used in an indoor front space Even in light bulb fluorescent lamps and the like, although the above wavelength components are reduced compared to white and daylight fluorescent lamps, it is considered that melatonin secretion is suppressed.

理想的には、上記波長範囲における出力をゼロに近づけることが望ましいが、白熱ランプのフィラメントから出力される光には、上記波長帯域の出力が含まれており、蛍光ランプにおいては、蛍光体の選択により、出力波長構成をデザインすることができるものの、上記波長帯域に水銀の発光ピークが含まれるため、これらの光源レベルでの対応、すなわち上記波長帯域における光出力の低減には限界がある。   Ideally, it is desirable that the output in the above wavelength range be close to zero, but the light output from the filament of the incandescent lamp includes the output in the above wavelength band. Although the output wavelength configuration can be designed by selection, since the emission peak of mercury is included in the wavelength band, there is a limit to the response at these light source levels, that is, the reduction of the light output in the wavelength band.

したがって、この発明の目的は、上記問題点に鑑みてなされたものであり、夜間の受光によるメラトニン分泌抑制によって睡眠を阻害せずに視覚情報の確保を実現する照明装置およびそれに用いる光源を提供することである。   Accordingly, an object of the present invention has been made in view of the above problems, and provides a lighting device that can secure visual information without inhibiting sleep by suppressing melatonin secretion by light reception at night and a light source used therefor. That is.

上記課題を解決するためにこの発明の請求項1記載の屋内用照明装置は、波長410nmから505nmまでの波長域における分光成分を略有していない。   In order to solve the above problems, the indoor lighting device according to claim 1 of the present invention has substantially no spectral component in the wavelength range from 410 nm to 505 nm.

請求項2記載の屋内用照明装置は、請求項1記載の屋内用照明装置は、光源からの出力に対応した分光成分のうちの少なくとも410nmから505nmの波長域における分光成分を減衰またはカットするフィルタを備えた。   The indoor lighting device according to claim 2, wherein the indoor lighting device according to claim 1 is a filter that attenuates or cuts a spectral component in a wavelength region of at least 410 nm to 505 nm among spectral components corresponding to an output from a light source. Equipped with.

請求項3記載の屋内用照明装置は、請求項2記載の屋内用照明装置において、前記フィルタは、410nmから505nmの波長域およびそれ以下の短波長成分を減衰もしくはカットするハイパスフィルタである。   The indoor lighting device according to a third aspect is the indoor lighting device according to the second aspect, wherein the filter is a high-pass filter that attenuates or cuts a short wavelength component of a wavelength range of 410 nm to 505 nm and lower.

請求項4記載の屋内用照明装置は、請求項1記載の屋内用照明装置において、略400nm前後の波長光を出力する光源を付加した。   According to a fourth aspect of the present invention, in the indoor lighting device according to the first aspect, a light source that outputs light having a wavelength of about 400 nm is added.

請求項5記載の屋内用照明装置は、請求項4記載の屋内用照明装置において、略400nm前後に発光ピークを持つ蛍光体である、りん酸塩蛍光体SrMgP27:Eu2+(発光ピーク394nm)およびSr3(PO42:Eu2+(発光ピーク408nm)のいずれか一方または両方を用いた。 The indoor lighting device according to claim 5 is a phosphor phosphor SrMgP 2 O 7 : Eu 2+ (light emission) which is a phosphor having an emission peak at about 400 nm in the indoor lighting device according to claim 4. One or both of a peak (394 nm) and Sr 3 (PO 4 ) 2 : Eu 2+ (emission peak 408 nm) were used.

請求項6記載の屋内用照明装置に用いる光源は、請求項1記載の屋内用照明装置に用いる光源であって、青色成分を出力する蛍光体として、略400nm前後に発光ピークを持つ蛍光体である、りん酸塩蛍光体SrMgP27:Eu2+(発光ピーク394nm)およびSr3(PO42:Eu2+(発光ピーク408nm)のいずれか一方または両方を用いた。 The light source used in the indoor lighting device according to claim 6 is a light source used in the indoor lighting device according to claim 1, and is a phosphor having a light emission peak at about 400 nm as a phosphor that outputs a blue component. One or both of the phosphor phosphors SrMgP 2 O 7 : Eu 2+ (emission peak 394 nm) and Sr 3 (PO 4 ) 2 : Eu 2+ (emission peak 408 nm) were used.

この発明の請求項1記載の屋内用照明装置によれば、波長410nmから505nmまでの波長域における分光成分を略有していないので、視角情報は供給しながら、その波長410nmから505nmの波長域の光により生じるメラトニン分泌抑制を緩和させるという効果がある。そのため、メラトニンが多く分泌され、体温低下や入眠を促すことができる。   According to the indoor lighting device of the first aspect of the present invention, since it has substantially no spectral component in the wavelength range from 410 nm to 505 nm, the viewing angle information is supplied while the wavelength range from 410 nm to 505 nm. Has the effect of alleviating the suppression of melatonin secretion caused by the light. For this reason, a large amount of melatonin is secreted, which can promote a decrease in body temperature and sleep.

請求項2では、光源からの出力に対応した分光成分のうちの少なくとも410nmから505nmの波長域における分光成分を減衰またはカットするフィルタを備えたので、フィルタにより一つの光源で、出力される波長構成を状況に応じて変化させることができる。すなわち、夜間の就寝前の時間帯においてフィルタを使用することでメラトニン分泌抑制感度が高くなる410nmから505nmの波長範囲を含む光の受光を避けることができる。また、就寝前の時間帯を除いては上記波長範囲を含む光により照明することができる。   According to the second aspect of the present invention, since the filter that attenuates or cuts the spectral component in the wavelength region of at least 410 nm to 505 nm among the spectral components corresponding to the output from the light source is provided, the wavelength configuration that is output with one light source by the filter Can be changed according to the situation. That is, by using a filter in the time zone before going to bed at night, light reception including a wavelength range from 410 nm to 505 nm where the melatonin secretion suppression sensitivity becomes high can be avoided. Moreover, it can illuminate with the light containing the said wavelength range except the time slot | zone before going to bed.

請求項3では、請求項2の発明において、フィルタは、410nmから505nmの波長域およびそれ以下の短波長成分を減衰もしくはカットするハイパスフィルタであることが好ましい。それにより、対象波長成分のカットもしくは減衰を安価に実現できる。   According to a third aspect of the present invention, in the second aspect of the present invention, the filter is preferably a high-pass filter that attenuates or cuts a short wavelength component of 410 nm to 505 nm and shorter. As a result, the target wavelength component can be cut or attenuated at low cost.

請求項4では、略400nm前後の波長光を出力する光源を付加したので、青色成分を補うことで色味の自然さを保ちながら、メラトニン分泌抑制を緩和させることができる。すなわち、410nmから505nmの範囲の波長光出力をカットまたは減衰させることにより、青色の分光成分が低下するため色味が不自然となるが、上記光源を付加することでメラトニン分泌抑制効率がそれほど高くなく、かつ青色に発光する成分を補うことができる。   In claim 4, since a light source that outputs light having a wavelength of about 400 nm is added, suppression of melatonin secretion can be alleviated while maintaining the natural color by supplementing the blue component. That is, by cutting or attenuating the light output in the wavelength range from 410 nm to 505 nm, the blue spectral component is lowered and the color becomes unnatural. However, by adding the light source, the melatonin secretion suppression efficiency is so high. And a component that emits blue light can be supplemented.

請求項5では、請求項4の発明において、略400nm前後に発光ピークを持つ蛍光体である、りん酸塩蛍光体SrMgP27:Eu2+(発光ピーク394nm)およびSr3(PO42:Eu2+(発光ピーク408nm)のいずれか一方または両方を用いることが好ましい。それにより、青色成分を補うことで色味の自然さを保ちながら、メラトニン分泌抑制を緩和させることができる。 According to claim 5, in the invention of claim 4, phosphate phosphors SrMgP 2 O 7 : Eu 2+ (emission peak 394 nm) and Sr 3 (PO 4 ), which are phosphors having an emission peak at about 400 nm. 2 : It is preferable to use one or both of Eu 2+ (emission peak 408 nm). Thereby, melatonin secretion suppression can be relieved, maintaining the naturalness of a color by supplementing a blue component.

この発明の請求項6記載の屋内用照明装置に用いる光源によれば、請求項1記載の屋内用照明装置に用いる光源であって、青色成分を出力する蛍光体として、略400nm前後に発光ピークを持つ蛍光体である、りん酸塩蛍光体SrMgP27:Eu2+(発光ピーク394nm)およびSr3(PO42:Eu2+(発光ピーク408nm)のいずれか一方または両方を用いたので、フィルタを用いて光源から出力される光の分光特性を操作するのではなく、光源の分光特性そのものにおいて、410nmから505nmの波長域に対応する出力を減らし、青色成分を補うことで色味の自然さを保ちながら、メラトニン分泌抑制を緩和させることができる。 According to the light source used for the indoor lighting device according to claim 6 of the present invention, the light source used for the indoor lighting device according to claim 1 is a light emission peak around 400 nm as a phosphor that outputs a blue component. One or both of phosphor phosphors SrMgP 2 O 7 : Eu 2+ (emission peak 394 nm) and Sr 3 (PO 4 ) 2 : Eu 2+ (emission peak 408 nm) are used. Therefore, instead of manipulating the spectral characteristics of the light output from the light source using a filter, the spectral characteristics of the light source itself are reduced by reducing the output corresponding to the wavelength range from 410 nm to 505 nm and compensating for the blue component. While maintaining the natural taste, melatonin secretion suppression can be alleviated.

この発明の実施の形態を図1〜図7に基づいて説明する。なお、本発明は、以下の実施形態により限定的に解釈されるものではない。図1は、本発明の実施形態における、フィルタを用いた照明装置構成の概念図を示している。   An embodiment of the present invention will be described with reference to FIGS. In addition, this invention is not limitedly interpreted by the following embodiment. FIG. 1 shows a conceptual diagram of a configuration of a lighting device using a filter in an embodiment of the present invention.

図1(A)に示すように、本照明装置は光源1、フィルタ2、反射板3、制御部および電源4などで構成され、光源1を挟み反射板3の略反対側の出光面にフィルタ2を設定している。または、図1(B)に示すように、反射板を有さず光源1の周囲を取り囲む出光面にフィルタ2を設定する。フィルタ2は平面もしくは曲面に形成される。   As shown in FIG. 1A, the present lighting device is composed of a light source 1, a filter 2, a reflector 3, a control unit, a power source 4, and the like, and a filter is provided on the light exit surface on the substantially opposite side of the reflector 3 with the light source 1 in between. 2 is set. Alternatively, as shown in FIG. 1B, the filter 2 is set on the light exit surface surrounding the periphery of the light source 1 without having a reflector. The filter 2 is formed in a plane or a curved surface.

本実施形態で用いる光フィルタ2は、図2(A)に示すような分光特性を有する透光性材料により構成されている。このフィルタ2は、光源からの出力に対応した分光成分のうちの少なくとも光によるメラトニン分泌抑制効率のよい410nmから505nmまでの波長光を取り除く、もしくは減衰させるためのものである。その波長領域の透過率はゼロに近い方が望ましいが、メラトニン分泌抑制、生体リズムへの光の作用の大きさは、受光強度×受光時間の積分値により決まると考えられているため、図2(B)に示すように、透過率を少しでも低下させることができれば有意義であると考えられる。   The optical filter 2 used in the present embodiment is made of a translucent material having spectral characteristics as shown in FIG. This filter 2 is for removing or attenuating light having a wavelength from 410 nm to 505 nm, which has high efficiency in suppressing melatonin secretion by light, among spectral components corresponding to the output from the light source. Although it is desirable that the transmittance in the wavelength region is close to zero, it is considered that the magnitude of the action of light on melatonin secretion suppression and biological rhythm is determined by the integrated value of received light intensity × light receiving time. As shown in (B), it is considered meaningful if the transmittance can be reduced as much as possible.

その材料には、ハロゲン化物などを添加することによって、各波長における透過率を調整した硼珪酸系あるいはりん酸系などの透過性ガラス、もしくは、アクリル(PMMA)樹脂、ポリカーボネイト(PC)樹脂、ポリスチレン(PS)樹脂、ポリエチレン(PE)樹脂、ポリエチレンテレフタレート(PET)樹脂、PS樹脂とPE樹脂からなるPS/PEアロイ等の透光性合成樹脂などに、染料や顔料を添加したものから構成される。ただし、本発明は、フィルタの材料を上記のものに限定する趣旨のものではなく、上記のように各波長における光のカット率および透過率を調整できるのであれば、どのような材料を用いても良い。   Borosilicate or phosphoric acid transmissive glass whose transmittance at each wavelength is adjusted by adding a halide or the like to the material, or acrylic (PMMA) resin, polycarbonate (PC) resin, polystyrene (PS) resin, polyethylene (PE) resin, polyethylene terephthalate (PET) resin, composed of transparent resin such as PS / PE alloy composed of PS resin and PE resin, plus dyes and pigments . However, the present invention is not intended to limit the material of the filter to the above, and any material can be used as long as the cut rate and transmittance of light at each wavelength can be adjusted as described above. Also good.

後者の染料や顔料を添加したカラーフィルタによる例を示す。図3は、一般的な黄色のゼラチンフィルタの分光透過率を示している。図3において、N−40,41,44,45,46は黄色フィルタの種類であり、縦軸は透過率100%を1としたときの透過率、横軸は波長を示している。これらのフィルタを用いることにより、410nmから505nmの波長域およびそれ以下の短波長成分を減衰もしくはカットするハイパスフィルタとすることで、安価に装置を構成することができる。   An example using the color filter to which the latter dye or pigment is added is shown. FIG. 3 shows the spectral transmittance of a typical yellow gelatin filter. In FIG. 3, N-40, 41, 44, 45, and 46 are types of yellow filters, the vertical axis indicates the transmittance when the transmittance is 100%, and the horizontal axis indicates the wavelength. By using these filters, a device can be constructed at low cost by using a high-pass filter that attenuates or cuts a short wavelength component of 410 nm to 505 nm or less.

しかし、これらのフィルタにより410nmから505nmの範囲の波長光出力をカットまたは減衰させることにより、青色の分光成分が低下するため、RGB三原色光でバランスよく構成される一般的な白色蛍光ランプや白熱ランプと比較すると、色味が不自然となり、居住空間を構成する照明としては、その点が問題となる。   However, by cutting or attenuating the light output in the wavelength range from 410 nm to 505 nm with these filters, the blue spectral component is reduced, so that general white fluorescent lamps and incandescent lamps that are well-balanced with RGB three primary color lights Compared with, the color becomes unnatural, and this is a problem as lighting constituting the living space.

そこで、メラトニン分泌抑制効率がそれほど高くなく、かつ青色に発光する波長が略400nm以下の光を付加することで、その間題を解決することができる。具体的には、394nmに発光ピークを有するりん酸塩蛍光体SrMgP27:Eu2+、408nmに発光ピークを有するSr3(PO42:Eu2+などを用いて、蛍光ランプやLEDを構成し、略400nm以下の光を付加する。 Therefore, the problem can be solved by adding light having a melatonin secretion suppression efficiency that is not so high and that emits blue light with a wavelength of about 400 nm or less. Specifically, using phosphor phosphate phosphor SrMgP 2 O 7 : Eu 2+ having an emission peak at 394 nm, Sr 3 (PO 4 ) 2 : Eu 2+ having an emission peak at 408 nm, a fluorescent lamp, An LED is formed, and light of approximately 400 nm or less is added.

図4に示すように、多層干渉膜などを用いて、略410nmから505nmの範囲のみをカットもしくは減衰させる例では、上記のような、394nmに発光ピークを有するりん酸塩蛍光体SrMgP27:Eu2+、408nmに発光ピークを有するSr3(PO42:Eu2+などを用いることで、フィルタによるカットもしくは減衰範囲外の可視青色光波長領域で青色成分を出力することができる。 As shown in FIG. 4, in an example in which only a range of about 410 nm to 505 nm is cut or attenuated using a multilayer interference film or the like, the phosphate phosphor SrMgP 2 O 7 having an emission peak at 394 nm as described above. : Eu 2+ , Sr 3 (PO 4 ) 2 having an emission peak at 408 nm: Eu 2+ or the like can be used to output a blue component in the visible blue light wavelength region outside the cut or attenuation range by the filter. .

図5に示すように、染料や顔料を添加したカラーフィルタを用いて安価に構成する例では、略400nm前後の波長域の透過率が、400nm台中盤と比べてやや高い特性のフィルタを用いることで、略410nmから505nmの範囲の透過を低減しつつ、効果的に400nm前後の青色成分を出力することができる。この場合、破線で挟まれた範囲(380nm〜410nm)の可視青色光を付加している。図5において、縦軸は透過率100%を1としたときの透過率を示している。   As shown in FIG. 5, in an example where a color filter to which dyes or pigments are added is used at a low cost, a filter having a slightly higher characteristic than that of the 400 nm base plate is used in the wavelength region of about 400 nm. Thus, it is possible to effectively output a blue component of around 400 nm while reducing the transmission in the range of about 410 nm to 505 nm. In this case, visible blue light in a range (380 nm to 410 nm) sandwiched between broken lines is added. In FIG. 5, the vertical axis indicates the transmittance when the transmittance 100% is 1.

図6は、本発明の実施形態の具体的な照明装置の構成例を示している。図6(A)は天井付け照明装置の例であり、反射板3が天井に取り付けられ、光源1を覆うカバーがフィルタ機能を有する素材により構成されたフィルタ2となっている。図6(B−1)は天井吊り照明装置の例であり、反射板3が天井から吊り下げられ、光源1を覆うカバーがフィルタ機能を有する素材により構成されたフィルタ2となっている。図6(B−2)も同様に天井吊り照明装置の例であり、出光面にフィルタ2が設定されている。図6(C)はデスクスタンドの例であり、スタンドのアームにより支持された反射板3で光源1を覆い、その出光面にフィルタ2が設定されている。   FIG. 6 shows a specific configuration example of the illumination device according to the embodiment of the present invention. FIG. 6A shows an example of a ceiling-mounted illumination device, in which a reflector 3 is attached to the ceiling, and a cover that covers the light source 1 is a filter 2 made of a material having a filter function. FIG. 6B-1 shows an example of a ceiling-suspended lighting device, in which a reflector 3 is suspended from a ceiling, and a cover that covers the light source 1 is a filter 2 made of a material having a filter function. FIG. 6B-2 is also an example of a ceiling-suspended lighting device, and the filter 2 is set on the light exit surface. FIG. 6C shows an example of a desk stand, in which the light source 1 is covered with a reflecting plate 3 supported by an arm of the stand, and a filter 2 is set on the light exit surface.

なお、フィルタは、出光面全体をカバーする必要はなく、対象者の位置などに対応して、一部のみに設定してもよい。また、生体リズムやメラトニン分泌への影響は、受光者の生体リズムにより変化するため、それに応じてフィルタリングの有無を変更することも有意義である。   The filter does not need to cover the entire light exit surface, and may be set to only a part corresponding to the position of the subject. In addition, since the influence on the biological rhythm and melatonin secretion varies depending on the biological rhythm of the light receiver, it is also meaningful to change the presence or absence of filtering accordingly.

図7は、本発明の実施形態のデスクスタンドにおける例であり、光源1の出光部に配置されたフィルタ2を反射板3内部へ収納することができる。すなわち、アーム11にて支持された反射板3にフィルタ2を収納可能なフィルタ収納部10が形成されている。フィルタ2の移動は手動もしくは、対象者の生体リズムに対応して自動で行われる。また、同様に、フロアスタンドやダウンライト、ブラケットなどにおいても、フィルタ機能を有するカバーで光源を被う、もしくは出光面にフィルタを設定することで、上記と同等の効果を得ることができる。   FIG. 7 is an example of the desk stand according to the embodiment of the present invention, and the filter 2 disposed in the light output portion of the light source 1 can be accommodated inside the reflector 3. That is, the filter storage portion 10 that can store the filter 2 is formed in the reflection plate 3 supported by the arm 11. The movement of the filter 2 is performed manually or automatically corresponding to the biological rhythm of the subject. Similarly, in a floor stand, downlight, bracket, etc., the same effect as described above can be obtained by covering the light source with a cover having a filter function or setting a filter on the light exit surface.

次に本発明の他の実施形態における屋内用照明装置に用いる光源について説明する。すなわち、上記のように、フィルタを用いて光源から出力される光の分光特性を操作するのではなく、光源の分光特性そのものにおいて、410nmから505nmの波長域に対応する出力を減らすことにより対応することもできる。   Next, a light source used in an indoor lighting device according to another embodiment of the present invention will be described. That is, as described above, instead of manipulating the spectral characteristics of the light output from the light source using a filter, the spectral characteristics of the light source itself are handled by reducing the output corresponding to the wavelength range from 410 nm to 505 nm. You can also.

例えば、屋内照明において広く利用されている3波長型蛍光ランプにおいては、452nmにピーク波長を有するアルミン酸塩蛍光体BaMg2Al1627:Eu2+など、400nm台中〜後半にピーク波長を有する蛍光体により、青色を発色している。そこで、それらの蛍光体に代えて、394nmに発光ピークを有するりん酸塩蛍光体SrMgP27:Eu2+、408nmに発光ピークを有するSr3(PO42:Eu2+などを用いることで、410nmから505nmの範囲に対応する波長光の出力を低減することができ、光色も3原色の含まれた自然なものとすることができる。 For example, in a three-wavelength fluorescent lamp widely used in indoor lighting, an aluminate phosphor BaMg 2 Al 16 O 27 : Eu 2+ having a peak wavelength at 452 nm has a peak wavelength in the middle to the latter half of the 400 nm range. Blue color is developed by the phosphor. Therefore, phosphate phosphors SrMgP 2 O 7 : Eu 2+ having an emission peak at 394 nm, Sr 3 (PO 4 ) 2 : Eu 2+ having an emission peak at 408 nm, and the like are used instead of those phosphors. As a result, the output of the wavelength light corresponding to the range from 410 nm to 505 nm can be reduced, and the light color can be a natural one including the three primary colors.

ただし、蛍光ランプの場合には、なお問題が残っている。蛍光ランプでは、ランプ内部の水銀が紫外線を発光し、それにより蛍光体が励起されるが、水銀が紫外線のみならず、例えば436nmをピーク波長とする光をも発光するため、蛍光ランプにおいてはその出力をゼロにすることはできない。   However, the problem still remains with fluorescent lamps. In a fluorescent lamp, mercury inside the lamp emits ultraviolet light, thereby exciting the phosphor, but mercury emits not only ultraviolet light but also light having a peak wavelength of, for example, 436 nm. The output cannot be zero.

そこで、光源として、UVの出力において水銀の発光に依存しない、LEDを用いることで、上記問題を解決することができる。具体的には、UVを出力するLEDをベースに、3波長型蛍光ランプで一般的に用いられている蛍光体に加え、青色を発色する蛍光体として、394nmに発光ピークを有するりん酸塩蛍光体SrMgP27:Eu2+、408nmに発光ピークを有するSr3(PO42:Eu2+などを用い、出力されるUVでそれらを励起するLED光源を構成することで、水銀の発光ピークが410nmから505nmの波長域に対応する出力をより効果的に減少させた光源とすることができる。 Therefore, the above problem can be solved by using an LED that does not depend on mercury emission in the UV output as the light source. Specifically, based on an LED that outputs UV, in addition to a phosphor generally used in a three-wavelength fluorescent lamp, a phosphor that has a light emission peak at 394 nm as a phosphor that develops a blue color. By using an SrMgP 2 O 7 : Eu 2+ , Sr 3 (PO 4 ) 2 : Eu 2+ having an emission peak at 408 nm, and the like, by constructing an LED light source that excites them with the output UV, It is possible to provide a light source in which the output corresponding to the wavelength region of the emission peak from 410 nm to 505 nm is more effectively reduced.

本発明の実施形態のフィルタを用いた照明装置の概念図である。It is a conceptual diagram of the illuminating device using the filter of embodiment of this invention. 本発明の実施形態において、多層干渉膜などにより、410nmから505nmの波長域のみをカットもしくは減衰させるときの、フィルタの分光透過率の特性図である。In the embodiment of the present invention, it is a characteristic diagram of the spectral transmittance of the filter when only the wavelength region from 410 nm to 505 nm is cut or attenuated by a multilayer interference film or the like. 本発明の実施形態において、カラーフィルタを用いて、410nmから505nmの波長域を含む領域をカットもしくは減衰させるときの、フィルタの分光透過率の特性図である。In the embodiment of the present invention, it is a characteristic diagram of spectral transmittance of a filter when a color filter is used to cut or attenuate a region including a wavelength region from 410 nm to 505 nm. 本発明の実施形態において、多層干渉膜などにより、410nmから505nmの波長域のみをカットもしくは減衰させ、略400nm以下の光源により、青色成分の付加を行なう説明図である。In the embodiment of the present invention, it is an explanatory diagram in which only a wavelength region of 410 nm to 505 nm is cut or attenuated by a multilayer interference film or the like, and a blue component is added by a light source of approximately 400 nm or less. 本発明の実施形態において、カラーフィルタを用いて、410nmから505nmの波長域を含む領域をカットもしくは減衰させ、略400nm以下の光源により、青色成分の付加を行なう説明図である。In the embodiment of the present invention, a color filter is used to cut or attenuate a region including a wavelength region from 410 nm to 505 nm and add a blue component with a light source of about 400 nm or less. 本発明の実施形態の具体的な照明装置の例を示す概念図である。It is a conceptual diagram which shows the example of the specific illuminating device of embodiment of this invention. 本発明の実施形態におけるデスクスタンドのフィルタ収納例を示す説明図である。It is explanatory drawing which shows the filter storage example of the desk stand in embodiment of this invention. Brainardらの報告した、光によるメラトニン分泌抑制の波長特性図である。It is the wavelength characteristic figure of the melatonin secretion suppression by light which Brainard et al reported.

符号の説明Explanation of symbols

1 光源
2 フィルタ
3 反射板
1 Light source 2 Filter 3 Reflector

Claims (6)

波長410nmから505nmまでの波長域における分光成分を略有していないことを特徴とする屋内用照明装置。   An indoor lighting device characterized by having substantially no spectral component in a wavelength range from 410 nm to 505 nm. 光源からの出力に対応した分光成分のうちの少なくとも410nmから505nmの波長域における分光成分を減衰またはカットするフィルタを備えた請求項1記載の屋内用照明装置。   The indoor lighting device according to claim 1, further comprising a filter that attenuates or cuts a spectral component in a wavelength region of at least 410 nm to 505 nm among spectral components corresponding to an output from a light source. 前記フィルタは、410nmから505nmの波長域およびそれ以下の短波長成分を減衰もしくはカットするハイパスフィルタである請求項2記載の屋内用照明装置。   The indoor lighting device according to claim 2, wherein the filter is a high-pass filter that attenuates or cuts a short wavelength component having a wavelength range of 410 nm to 505 nm and lower. 略400nm前後の波長光を出力する光源を付加した請求項1記載の屋内用照明装置。   The indoor lighting device according to claim 1, further comprising a light source that outputs light having a wavelength of about 400 nm. 略400nm前後に発光ピークを持つ蛍光体である、りん酸塩蛍光体SrMgP27:Eu2+(発光ピーク394nm)およびSr3(PO42:Eu2+(発光ピーク408nm)のいずれか一方または両方を用いた請求項4記載の屋内用照明装置。 Phosphor phosphors SrMgP 2 O 7 : Eu 2+ (emission peak 394 nm) and Sr 3 (PO 4 ) 2 : Eu 2+ (emission peak 408 nm), which are phosphors having an emission peak at about 400 nm. The indoor lighting device according to claim 4, wherein one or both of them is used. 請求項1記載の屋内用照明装置に用いる光源であって、青色成分を出力する蛍光体として、略400nm前後に発光ピークを持つ蛍光体である、りん酸塩蛍光体SrMgP27:Eu2+(発光ピーク394nm)およびSr3(PO42:Eu2+(発光ピーク408nm)のいずれか一方または両方を用いたことを特徴とする屋内用照明装置に用いる光源。 The light source used in the indoor lighting device according to claim 1, wherein the phosphor that emits a blue component is a phosphor having a light emission peak at about 400 nm. Phosphor phosphor SrMgP 2 O 7 : Eu 2 A light source used for an indoor lighting device using one or both of + (emission peak 394 nm) and Sr 3 (PO 4 ) 2 : Eu 2+ (emission peak 408 nm).
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