WO2020175710A1 - 発光装置及び照明装置 - Google Patents
発光装置及び照明装置 Download PDFInfo
- Publication number
- WO2020175710A1 WO2020175710A1 PCT/JP2020/008543 JP2020008543W WO2020175710A1 WO 2020175710 A1 WO2020175710 A1 WO 2020175710A1 JP 2020008543 W JP2020008543 W JP 2020008543W WO 2020175710 A1 WO2020175710 A1 WO 2020175710A1
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- WIPO (PCT)
- Prior art keywords
- light
- light emitting
- peak wavelength
- emitting device
- wavelength
- Prior art date
- Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
- Ceased
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Classifications
-
- A—HUMAN NECESSITIES
- A22—BUTCHERING; MEAT TREATMENT; PROCESSING POULTRY OR FISH
- A22B—SLAUGHTERING
- A22B5/00—Accessories for use during or after slaughtering
- A22B5/0064—Accessories for use during or after slaughtering for classifying or grading carcasses; for measuring back fat
-
- A—HUMAN NECESSITIES
- A22—BUTCHERING; MEAT TREATMENT; PROCESSING POULTRY OR FISH
- A22C—PROCESSING MEAT, POULTRY, OR FISH
- A22C17/00—Other devices for processing meat or bones
- A22C17/0073—Other devices for processing meat or bones using visual recognition, X-rays, ultrasounds, or other contactless means to determine quality or size of portioned meat
- A22C17/008—Other devices for processing meat or bones using visual recognition, X-rays, ultrasounds, or other contactless means to determine quality or size of portioned meat for measuring quality, e.g. to determine further processing
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21L—LIGHTING DEVICES OR SYSTEMS THEREOF, BEING PORTABLE OR SPECIALLY ADAPTED FOR TRANSPORTATION
- F21L4/00—Electric lighting devices with self-contained electric batteries or cells
-
- G—PHYSICS
- G02—OPTICS
- G02B—OPTICAL ELEMENTS, SYSTEMS OR APPARATUS
- G02B5/00—Optical elements other than lenses
- G02B5/20—Filters
- G02B5/206—Filters comprising particles embedded in a solid matrix
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21W—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO USES OR APPLICATIONS OF LIGHTING DEVICES OR SYSTEMS
- F21W2131/00—Use or application of lighting devices or systems not provided for in codes F21W2102/00-F21W2121/00
- F21W2131/40—Lighting for industrial, commercial, recreational or military use
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21Y—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO THE FORM OR THE KIND OF THE LIGHT SOURCES OR OF THE COLOUR OF THE LIGHT EMITTED
- F21Y2113/00—Combination of light sources
- F21Y2113/10—Combination of light sources of different colours
- F21Y2113/13—Combination of light sources of different colours comprising an assembly of point-like light sources
- F21Y2113/17—Combination of light sources of different colours comprising an assembly of point-like light sources forming a single encapsulated light source
-
- F—MECHANICAL ENGINEERING; LIGHTING; HEATING; WEAPONS; BLASTING
- F21—LIGHTING
- F21Y—INDEXING SCHEME ASSOCIATED WITH SUBCLASSES F21K, F21L, F21S and F21V, RELATING TO THE FORM OR THE KIND OF THE LIGHT SOURCES OR OF THE COLOUR OF THE LIGHT EMITTED
- F21Y2115/00—Light-generating elements of semiconductor light sources
- F21Y2115/10—Light-emitting diodes [LED]
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/80—Constructional details
- H10H20/85—Packages
- H10H20/851—Wavelength conversion means
- H10H20/8511—Wavelength conversion means characterised by their material, e.g. binder
- H10H20/8512—Wavelength conversion materials
- H10H20/8513—Wavelength conversion materials having two or more wavelength conversion materials
-
- H—ELECTRICITY
- H10—SEMICONDUCTOR DEVICES; ELECTRIC SOLID-STATE DEVICES NOT OTHERWISE PROVIDED FOR
- H10H—INORGANIC LIGHT-EMITTING SEMICONDUCTOR DEVICES HAVING POTENTIAL BARRIERS
- H10H20/00—Individual inorganic light-emitting semiconductor devices having potential barriers, e.g. light-emitting diodes [LED]
- H10H20/80—Constructional details
- H10H20/85—Packages
- H10H20/851—Wavelength conversion means
- H10H20/8515—Wavelength conversion means not being in contact with the bodies
Definitions
- the present disclosure relates to a light emitting device and a lighting device.
- Patent Document 1 Japanese Patent Laid-Open No. 201 2 _ 1 547 1
- a light emitting device emits light specified by an emission spectrum having a first peak wavelength, a second peak wavelength, a third peak wavelength, and a fourth peak wavelength.
- the first peak wavelength is included in the wavelength range from 6001 ⁇ ! to 660 ⁇ !.
- the second peak wavelength is included in the wavelength region from 510 nm to 550 n.
- the third peak wavelength is included in the wavelength region from 44 0 1 ⁇ 0 1 to 47 0 0!
- the fourth peak wavelength is 360 ⁇ ! to 4301 ⁇ . It is included in the wavelength range up to.
- the relative light intensity at the second peak wavelength is 0.75 or more and 0.98 or less.
- the relative light intensity at the third peak wavelength is at least 0.55 and at most 0.95.
- the light intensity at the first peak wavelength is 1, ⁇ 2020/175710 2 ⁇ (:171? 2020 /008543
- a light emitting device emits light specified by a light emitting spectrum having a first peak wavelength, a second peak wavelength, and a third peak wavelength.
- the first peak wavelength is 6 0 0 1 ⁇ 01 to 6 60 Are included in the wavelength range up to.
- the second peak wavelength is from 440 1 ⁇ 111 to 470. Is included in the wavelength range up to.
- the third peak wavelength is 3601 ⁇ 111 to 4300. It is included in the wavelength range up to.
- the relative light intensity at the second peak wavelength is not less than 0.15 and not more than 0.35.
- the relative light intensity at the third peak wavelength is 0.2 or more and 0.5 or less.
- An illumination device includes at least one of the above light emitting devices.
- Fig. 1 is a diagram showing an example of using the lighting device according to an embodiment for meat inspection.
- FIG. 2 is a diagram showing an example of a light emitting device according to an embodiment.
- FIG. 3 is a cross-sectional view of the light emitting device shown in FIG. 2 taken along the plane indicated by imaginary line _.
- FIG. 4 is an enlarged view of the light emitting device shown in FIG.
- FIG. 5 is a diagram showing an example of a light emitting spectrum of a light emitting element included in the light emitting device according to the embodiment.
- FIG. 6 is a diagram showing an example of a fluorescent spectrum of each of the first phosphor, the second phosphor, and the third phosphor provided in the light emitting device according to the embodiment.
- FIG. 7 is a diagram showing an example of a light emitting spectrum when the color temperature is constant.
- FIG. 8 is a diagram showing an example of a relationship between a test color and a color rendering index.
- FIG. 9 is a diagram showing an example of a light emission spectrum when color temperatures are different.
- FIG. 10E is a diagram showing an example of a top view of a lighting device according to an embodiment.
- FIG. 108 is a diagram showing an example of a side view of a lighting device according to an embodiment.
- FIG. 11 is a diagram showing an example of using the lighting device according to the embodiment for fresh fish inspection. ⁇ 2020/175710 3 boxes (: 171-1? 2020 /008543
- FIG. 12 is a diagram showing an example of a light emitting spectrum when the color temperature is constant.
- FIG. 13 is a diagram showing an example of a relationship between a test color and a color rendering index.
- FIG. 14 is a diagram showing an example of a light emission spectrum when color temperatures are different.
- FIG. 15 is a diagram showing an example of a side view of a lighting device according to an embodiment.
- the user 500 for example, in order to rate the meat 501, illuminates the meat 501 with the lighting system 100 and inspects the meat 501.
- the user 500 may be, for example, a rating member belonging to the Japan Meat Rating Association.
- a meat 501 rating means that the user 500 evaluates the meat 501.
- the evaluation of meat 501 is, for example, varieties of meat 501, gender of meat 501, grade of meat 501 (8-5 to 81, 5-5 to 1 or 0-5 to 1 etc.). ), marbling of meat 501, reddish color, fineness of reddish firmness or texture, or color or quality of fat.
- the illumination device 100 uses the illumination device 100 to irradiate the illuminated area 502 with light, which is mainly called "red meat”. Inspect the part and the white part, also called the "shoulder". The user 500 can accurately inspect the meat 501 by irradiating the meat 501 with the light of the lighting device 100.
- the light emitting device 1 according to the present embodiment will be described in detail with reference to FIGS. 2, 3 and 4. At least one light-emitting device 1 is installed in the lighting device 100 described above.
- the light emitting device 1 includes an element substrate 2, a plurality of light emitting elements 3, a frame body 4, and a sealing member. 5 and a wavelength conversion member 6 are provided.
- the element substrate 2 may be formed of, for example, a material having an insulating property.
- the material 2 may be formed of, for example, a ceramic material such as alumina or mullite, a glass ceramic material, or a composite material obtained by mixing a plurality of these materials.
- the element substrate 2 may be formed of a polymer resin material or the like in which fine particles of metal oxide capable of adjusting thermal expansion are dispersed.
- the element substrate 2 is provided on the main surface 2A of the element substrate 2 or inside the element substrate 2.
- a wiring conductor that electrically connects 2 and the wiring board 30 may be provided.
- the wiring conductor may be formed of a conductive material such as tungsten, molybdenum, manganese, or copper.
- a metal paste in which an organic solvent is added to tungsten powder is printed on the ceramic green sheet to be the element substrate 2 with a fixed pattern, and a plurality of ceramic green sheets are laminated and fired. May be formed by
- the wiring conductor may have a plated layer of, for example, nickel or gold formed on its surface to prevent oxidation.
- the element substrate 2 may be provided with a metal reflection layer spaced apart from the wiring conductor and the plating layer in order to efficiently emit the light emitted from the light emitting element 3 to the outside.
- the metal reflective layer may be formed of a metal material such as aluminum, silver, gold, copper or platinum, for example.
- the plurality of light emitting elements 3 are mounted on the main surface 2 A of the element substrate 2.
- the plurality of light emitting elements 3 are electrically connected to the plating layer adhered to the surface of the wiring conductor provided on the element substrate 2 via, for example, a brazing material or solder.
- the number of the light emitting elements 3 mounted on the main surface 2 A of the element substrate 2 is not particularly limited.
- the light emitting element 3 is, for example, an LED (l i ght em i tt i ng d i ode).
- L E D emits light to the outside by recombination of electrons and holes in a P N junction in which a P-type semiconductor and an N-type semiconductor are joined.
- the light emitting element 3 is not limited to the LED, but may be another light emitting device such as an LD (Laser diode).
- the light emitting element 3 includes a translucent base and an optical semiconductor layer formed on the translucent base. ⁇ 2020/175710 5 boxes (: 171-1? 2020/008543
- the translucent substrate contains a material capable of growing an optical semiconductor layer thereon by using, for example, a metal organic chemical vapor deposition method or a chemical vapor deposition method such as a molecular beam epitaxial growth method. ..
- the transparent substrate may be formed of, for example, sapphire, gallium nitride, aluminum nitride, zinc oxide, zinc selenide, silicon carbide, silicone, zirconium diboride, or the like.
- the thickness of the translucent substrate may be, for example, 50 or more and 100 or less.
- the optical semiconductor layer includes a first semiconductor layer formed on the translucent 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 are, for example, II group III nitride semiconductor, gallium phosphide or gallium arsenide, etc. It may be formed of a nitride semiconductor or the like.
- the thickness of the first semiconductor layer may be, for example, 1 or more and 5 or less.
- the thickness of the light emitting layer may be, for example, 25 nm or more and 150 n or less.
- the thickness of the second semiconductor layer may be, for example, 50 n or more and 600 n or less.
- FIG. 5 is a diagram showing an example of an emission spectrum of the light emitting element 3.
- the horizontal axis and the vertical axis represent the wavelength of light emitted by the light-emitting element 3 and the relative light intensity, respectively.
- the relative light intensity is expressed as the ratio of the light intensity to the light intensity at the peak wavelength when the light intensity at the peak wavelength is 1.
- the light emitting element 3 is It emits light having a peak wavelength in the wavelength range up to.
- the wavelength range from 360 n to 430 n is included in the visible light range. 3 6 0
- the wavelength range up to is also called the purple light range.
- the frame 4 may be formed of a ceramic material such as aluminum oxide, titanium oxide, zirconium oxide, or yttrium oxide.
- the frame 4 may be formed of a multi-porous material.
- the frame body 4 may be formed of a resin material mixed with a powder containing a metal oxide such as aluminum oxide, titanium oxide, zirconium oxide, or yttrium oxide.
- the frame body 4 is not limited to these materials, ⁇ 2020/175710 6 boxes (: 171-1? 2020 /008543
- It may be formed of a material.
- the frame 4 is connected to the main surface 28 of the element substrate 2 via, for example, a resin, a brazing material, solder, or the like.
- the frame body 4 is provided on the main surface 28 of the element substrate 2 so as to surround the plurality of light emitting elements 3 at a distance from the plurality of light emitting elements 3.
- the frame body 4 is provided so that the inner wall surface is inclined so as to widen outward as the distance from the main surface 28 of the element substrate 2 increases.
- the inner wall surface functions as a reflecting surface that reflects the light emitted by the plurality of light emitting elements 3.
- the inner wall surface may include, for example, a metal layer formed of a metal material such as tungsten, molybdenum, or manganese, and a plating layer covering the metal layer and formed of a metal material such as nickel or gold.
- the plating layer reflects the light emitted by the plurality of light emitting elements 3.
- the shape of the inner wall surface of the frame body 4 may be circular in plan view. Since the shape of the inner wall surface is circular, the frame body 4 can reflect the light emitted by the plurality of light emitting elements 3 substantially uniformly toward the outside.
- the inclination angle of the inner wall surface of the frame body 4 may be set to an angle of, for example, 55 degrees or more and 70 degrees or less with respect to the main surface 2 of the element substrate 2.
- the sealing member 5 is filled in the inner space surrounded by the element substrate 2 and the frame body 4, leaving a part of the upper part of the inner space surrounded by the frame body 4.
- the sealing member 5 seals the plurality of light emitting elements 3 and transmits the light emitted by the plurality of light emitting elements 3.
- the sealing member 5 may be formed of, for example, a light-transmissive material.
- the sealing member 5 may be formed of, for example, a light-transmitting insulating resin material such as a silicone resin, an acrylic resin, or an epoxy resin, or a light-transmitting glass material.
- the refractive index of the sealing member 5 may be set to, for example, 1.4 or more and 1.6 or less.
- the wavelength conversion member 6 peaks light having a peak wavelength in the wavelength region of 360 0 n to 4 30 0 n in the wavelength region of 6 0 0 1 ⁇ 01 to 6 6 0 1 ⁇ 01.
- a first phosphor that converts light having a wavelength is provided.
- the wavelength conversion member 6 is
- the wavelength conversion member 6 transmits light having a peak wavelength in the wavelength region from 360! to 4300! from 4401 to 111. It is equipped with a third phosphor that converts light with a peak wavelength in the wavelength range up to.
- Wavelength conversion member 6 the light emitting element 3 emits light, light having a peak wavelength in a wavelength region of from 6 0 0 n m to 6 6 0 n 111, 5 3 0 1 ⁇ 111 5-6 0 Light with a peak wavelength in the wavelength range up to 1 ⁇ 111, 440 1 ⁇ 111 to 470 It is provided at a position where it can be converted into light having a peak wavelength in the wavelength range up to.
- the wavelength conversion member 6 is installed along the upper surface of the sealing member 5 in a part of the upper part of the inner space surrounded by the element substrate 2 and the frame body 4.
- the wavelength conversion member 6 may be provided so as to protrude from the upper part of the inner space surrounded by the element substrate 2 and the frame body 4.
- the wavelength conversion member 6 includes a translucent member, a first phosphor 61, a second phosphor 62, and a third phosphor 63.
- the wavelength conversion member 6 is formed by including a first phosphor 61, a second phosphor 62, and a third phosphor 63 in a member having translucency.
- the content of the phosphor contained in the translucent member is appropriately set.
- the first phosphor 61, the second phosphor 62, and the third phosphor 63 are substantially evenly dispersed in the translucent member.
- the light emitted from the light emitting element 3 enters the inside of the wavelength conversion member 6 through the sealing member 5.
- the translucent member may be formed of, for example, a translucent insulating resin such as a fluororesin, a silicone resin, an acrylic resin or an epoxy resin, or a translucent glass material. ..
- FIG. 6 is a diagram showing an example of a fluorescence spectrum of a phosphor.
- the horizontal axis and the vertical axis respectively represent the wavelength of light emitted by the phosphor and the relative light intensity.
- the phosphor may include a first phosphor 6 1 having a first peak wavelength S 1 in the wavelength region from 600 n to 6600 n as illustrated in FIG.
- the first phosphor 61 is, for example, a phosphor showing a red color.
- the first phosphor 61 is, for example, ⁇ 2020/175710 8 ⁇ (: 171 2020/008 543 ⁇ 2 ⁇ 2 3: Miri, ⁇ 2 ⁇ 3:? Mm, 3
- the first phosphor 6 1, the light incident to the inside of the wavelength conversion member 6, is converted into light having a first peak wavelength scan 1 in the wavelength region of 600 nm ⁇ 660 n m, releasing the converted light To do.
- the phosphor is as illustrated in FIG. A second phosphor 62 having a second peak wavelength 2 in the wavelength region up to.
- the second phosphor 62 is, for example, a phosphor showing green.
- the second phosphor 62 is, for example, 3 '3 ( ⁇ , ⁇ 1) 2 1 ⁇ 1 2: mm (3 ", snake, 1 ⁇ / 19) 2 3 1 ⁇ 4: milli 2 tens, or n 3: 0 u, eight ⁇ , n 2 S ⁇ 4:!.
- IV n or the like can be used second phosphor 62, the light incident to the inside of the wavelength conversion member 6, 530 n m to The light is converted into light having a second peak wavelength 2 in the wavelength region of 5 60 n, and the converted light is emitted.
- the phosphor is as illustrated in FIG. May include a third phosphor 63 having a third peak wavelength 3 in the wavelength range up to.
- the third phosphor 63 is, for example, a phosphor showing blue.
- the third phosphor 63 is, for example,
- the light is converted into light having the third peak wavelength 3 in the ⁇ 470 wavelength region, and the converted light is emitted.
- the wavelength conversion member 6 is composed of the above-mentioned first phosphor 61, second phosphor 62, and third phosphor.
- a phosphor showing a blue-green color and having a peak wavelength in the wavelength range of 450 nm to 550 n may be contained.
- the phosphor showing blue-green include (3 ", 63, 0 3) 5 (0 4 ) 3 0 I: Miri, 3 " 4 8 I 14 O 25: Miri.
- the wavelength conversion member 6, other than the above-mentioned first phosphor 61, the second phosphor 62, the third phosphor 63 shows a color in the near infrared region,
- the phosphor having the color of the near-infrared region for example, 3_Rei 3 5 ⁇ 12: ⁇ ", and the like.
- the emission spectrum 2 0 1 of the light emitting device 1 according to the present embodiment and the emission spectrum 2 0 2 of the light emitting device according to the comparative example will be described.
- the emission vector is measured by using a spectroscopic method such as a spectrophotometer.
- the horizontal axis and the vertical axis represent the wavelength and the relative light intensity of the light emitted by the light emitting device 1, respectively.
- the light emitting device 1 is In the wavelength range up to, the light emitted by the first phosphor 6 1, the light emitted by the second phosphor 6 2, the light emitted by the third phosphor 6 3 and the plurality of light emitting elements 3 Emits the light emitted by and the light combined by.
- the emission spectrum 201 has the first peak wavelength S 1 in the wavelength region from 600 to 660.
- the first peak wavelength S 1 corresponds to the wavelength of the light emitted by the first phosphor 61.
- Luminous spectrum 2 0 1 is 5 Has the second peak wavelength 2 in the wavelength range up to.
- the second peak wavelength line 2 corresponds to the wavelength of the light emitted by the second phosphor 62.
- the light emitting spectrum 201 has a third peak wavelength 3 in the wavelength region of 440 n to 470 n.
- the third peak wavelength 3 corresponds to the wavelength of the light emitted by the third phosphor 63.
- the luminous spectrum 201 is
- the emission spectrum 201 has four peak wavelengths.
- the relative light intensity at the second peak wavelength S2 is 0.75 or more or 0.9. It will be 8 or less.
- the relative light intensity at the third peak wavelength S3 is such that the relative light intensity is 0.55 or more and 0.95. It becomes the following.
- the relative light intensity at the fourth peak wavelength 4 is 0.50 or more. ⁇ 2020/175710 10 boxes (: 171? 2020/008543
- the light emitting device as the comparative example, the light emitted by a predetermined phosphor and the light emitted by a plurality of predetermined light emitting elements in the wavelength region from 360 ⁇ ! to 780 ⁇ ! Emits the combined light.
- the predetermined phosphor is, for example, the first phosphor having the first peak wavelength 1_ in the wavelength region of 600 n to 660 n.
- the first phosphor emits light incident on the inside of the wavelength conversion member at 600 It converts to light with a peak wavelength of 1 X and emits the converted light.
- Predetermined light emitting element is, for example, a light-emitting element you emit light having a third peak wavelength scan 3_ say yes in the wavelength region of up to 440 n m or al 470 n (so-called blue excitation light).
- the emission spectrum 202 of the comparative example is from 600 nm to 6 nm.
- It has a third peak wavelength spectrum 3 _ in the wavelength region up to 470 n. That is, the emission spectrum 202 has two peak wavelengths.
- the light emitting device 1 emits the light specified by the light emitting spectrum 201 having the first peak wavelength S 1 in the wavelength region of 600 nm to 660 n.
- the light emitting device 1 is
- Light Source 1 is 4401 ⁇ 01-470 Up to the third peak wavelength range
- the light emitting device 1 emits the light specified by the light emitting spectrum 201 having the fourth peak wavelength 4 in the wavelength range from 3601 ⁇ 01 to 4301 ⁇ 01.
- the relative light intensity at the second peak wavelength S 2 is 0.75 or more and 0.98 or less.
- the relative light intensity at the third peak wavelength S 3 is 0.55 or more and 0.95 or less.
- the relative light intensity at the 4th peak wavelength S4 is ⁇ .50 or more and ⁇ .85 or less.
- the light specified in the emission spectrum 201 includes red, green and blue light. ⁇ 2020/175 710 1 1 ⁇ (: 171? 2020 /008543
- each of the three colors of light in proportions close to the spectrum of sunlight. As a result, it is possible to realize the light emitting device 1 that emits light close to sunlight, in which lights of all colors from blue to red are evenly scattered.
- the color rendering of the light emitting device 1 according to the present embodiment and the color rendering of the light emitting device according to the comparative example indicated by the light emitting spectrum 202 will be described.
- the horizontal axis and the vertical axis represent the test color and the color rendering index, respectively.
- Graph 301 is a graph obtained by plotting the color rendering index for each test color in Light Emitting Device 1 with a solid line.
- Graph 302 is a graph obtained by plotting a value obtained by plotting the color rendering index for each test color in the light emitting device according to the comparative example with a broken line.
- the "color rendering property" is one of the indexes for evaluating the quality of the light source, and numerically expresses the appearance of color by the color rendering index with reference to natural light.
- Color rendering index is the average color rendering index Special color rendering index 9, Special color rendering index 0, special color rendering index 8 11 1, special color rendering index 8 12 2, special color rendering index 1 3, special color rendering index 8 1 4, special color rendering index 1 5, etc.
- the average color rendering index Special color rendering index 8 9, Special color rendering index 10, Special color rendering rating 11 1, Special color rendering rating 8 1 2, Special color rendering rating 1 3, Special color rendering rating 1 4, and Special color rendering rating 8 15 is all 90 or more.
- the average color rendering index 83 is 90 or more.
- the special color rendering index of 9 is about 65.
- the special color rendering index of 8 10 is about 8 5.
- the special color rendering index 11 is 90 or more.
- Special color rendering index 2 is about 7 8.
- the special color rendering index 13 is 90 or more.
- Special color rendering index It is 90 or more.
- the special color rendering index 8 15 is about 90.
- the color rendering index for each test color in the light emitting device 1 is a value of 90 or more, and the variation is extremely small.
- the comparative example ⁇ 2020/175710 12 boxes (: 171-1? 2020 /008543
- the color rendering index for each test color in the light emitting device has a very large variation, since values of 90 or more and values of 70 or less are mixed. Therefore, it is understood that the light emitting device 1 is superior in color rendering to the light emitting device according to the comparative example.
- the light emitting device 1 emits light having a special color rendering index 9 of 90 or more, and emits light having a special color rendering index 8 12 of 90 or more. This gives an average color rendering index of 8 3 and a special color rendering index of 9, 1, It is possible to realize a light emitting device 1 having excellent color rendering properties, all of which are 90 or more.
- the light emission spectrum is measured by using a spectroscopic method such as a spectrophotometer.
- the horizontal axis and the vertical axis respectively represent the wavelength of light emitted by the light emitting device and the relative light intensity.
- the color temperature quantifies the color of the light emitted by the light source, and is represented by the unit ⁇ (Kelvin).
- Low color temperature means that the color of the light emitted by the light source is reddish.
- High color temperature means that the color of the light emitted by the light source is bluish.
- the color temperature of the light emitted by an incandescent light bulb is approximately 280 ⁇ .
- the color temperature of daylight white light is approximately 420 ⁇ .
- the light specified in the emission spectrum 4 0 1 has a color temperature of 2 800 ⁇ .
- the light specified in the emission spectrum 402 has a color temperature of 300 ⁇ 0.
- the light specified in the emission spectrum 403 has a color temperature of 400.
- the light specified in the emission spectrum 404 has a color temperature of 420.
- the light specified by the emission vector 505 has a color temperature of 550 ⁇ .
- the light specified by the emission spectrum 406 has a color temperature of 650 ⁇ .
- Relative light intensity at the emission spectra 40 2, 40 3, 40 4, 40 5 and 40 6 is when the light intensity at the maximum peak wavelength of the emission spectrum 4 0 is 1. Is expressed as the ratio of the light intensity to the light intensity at the maximum peak wavelength. ⁇ 2020/175 710 13 boxes (: 171? 2020 /008543
- the emission spectrum 4 01 is It can be seen that the relative light intensity in the wavelength region up to 4 0 1 ⁇ is extremely large and the variation in the relative light intensity is large compared with the relative light intensity in the wavelength region from 4 4 0 1 ⁇ to 4 7 0 1 ⁇ . It can be seen that red light is dominant in light having a color temperature of 2800 ⁇ .
- the emission spectrum 402 is It can be seen that the relative light intensity in the wavelength region up to 4 0 n is extremely large and the variation in the relative light intensity is large compared with the relative light intensity in the wavelength region from 4 4 0 n to 4 7 0 n. It can be seen that red light is dominant in light having a color temperature of 300 ⁇ 0.
- the emission spectrum 406 is The relative light intensity in the wavelength range up to
- the emission spectrum 401, the emission spectrum 402, and the emission spectrum 406 the balance of the relative light intensities of the red, green, and blue lights is poor.
- the emission spectrum 40 3, the emission spectrum 40 4, and the emission vector 4 05 which correspond to the color temperatures from 400 to 500 ⁇ , are the red, green, and blue light respectively. It can be seen that it contains a good balance.
- the emission spectrum 404 corresponding to the color temperature of 420 contains a red light, a green light, and a blue light in an extremely balanced manner. ⁇ 2020/175 710 14 ⁇ (: 171? 2020 /008543
- the relative light intensities of the emission spectra 40 3, 40 4, and 40 5 are included in the range shown as the relative light intensity of the emission spectrum 20 1.
- the color rendering index and the special color rendering index of the light specified by the emission spectra 4 0 3, 4 0 4 and 4 0 5 are the color rendering index and the special color rendering evaluation of the light specified by the light emitting spectrum 2 0 1. It is assumed to fall within the range shown as a number.
- the light emitting device 1 may emit light having a color temperature within the range of 400 to 550 ⁇ . As a result, the light emitting device 1 that emits light including red, green, and blue lights in a well-balanced manner can be realized.
- a lighting device 100 includes a light emitting device 1, a main body part 101, a collar part 102, and a power supply cover 103. And a lens 104 and.
- the number of light emitting devices 1 mounted on the lighting device 100 is not particularly limited.
- the main body section 101 may have, for example, a cylindrical shape.
- the length of the main body section 101 in the longitudinal direction may be, for example, 100 or more and 200 or less.
- the length of the main body section 101 in the lateral direction may be, for example, 50 or more and 100 or less.
- the main body section 101 may be made of, for example, a metal such as aluminum, copper, or stainless steel, or a resin such as plastic.
- the main body section 101 is equipped with a power switch 105 that controls whether the lighting apparatus 100 is turned off (o) or turned on (o! ⁇ 1).
- the main body section 101 may be provided with, for example, a storage medium insertion port for inserting a storage medium capable of storing predetermined information such as an inspection result.
- the shape of the main body 101 is not particularly limited, and may be, for example, a spherical shape, a rectangular parallelepiped shape, a conical shape, or the like.
- the collar portion 102 is provided at one end of the main body portion 101, and is used to attach the light emitting device 1 at a predetermined position.
- the power supply cover 103 is provided at the other end of the main body 1101, and is used to house a power source such as a battery inside the main body 101.
- the lens 104 controls the traveling direction of the light emitted by the light emitting device 1. Len ⁇ 2020/175 710 15 boxes (: 171-1?2020/008543
- the lamp 104 collects the light emitted by the light emitting device 1 so that the illuminating device 100 can surely irradiate the light to the irradiation area 502 (see FIG. 1).
- the irradiation area is the area that exists in the plane orthogonal to the central axis of the lens 104 (3!_. For example, it is orthogonal to the central axis of the lens 104 and the central axis of the lens 104 (3!_ If the distance to the surface is 300, it may be a circular area with a diameter of less than 100. Due to the limited irradiation area, the red color incident on the eye of the user 500 who inspects the meat. Limited amount of light When the amount of red light incident on the eye is too high, the user 500 may receive a strong stimulus and may not be able to be accurately inspected. The stimulus received by the person 500 is weakened, and as a result, the inspection accuracy can be improved.
- the type of the lighting device 100 is not particularly limited.
- the lighting device 100 is not limited to a handy light as shown in Fig. 108 and Fig. 108, but is also installed in, for example, a ceiling, a wall, or a pillar, a down light, ceiling light, pendant. It may be a light, a bracket light, or the like.
- the light radiated to the irradiation region 502 is, for example, 600 n
- It has a second peak wavelength in the wavelength range from 5500 to 4500, and it has wavelengths from 4401 to 111.
- the light with the third peak wavelength in the wavelength range up to ⁇ ! and the fourth peak wavelength in the wavelength range from 3601 ⁇ 111 to 431 0111 is specified by the emission spectrum. It’s okay.
- the light irradiated to the irradiation region 502 is, for example,
- the relative light intensity at one peak wavelength is 1
- the relative light intensity at the second peak wavelength is 0.75 or more and 0.98 or less
- the relative light intensity at the third peak wavelength is 0.55.
- the relative light intensity at the fourth peak wavelength is ⁇ 0.50 and ⁇ 0.85, specified by the emission spectrum ⁇ 2020/175 710 16 ⁇ (: 171-1? 2020 /008543
- the light with which the irradiation area 50 2 is irradiated may be light having a color temperature of 420, for example, as shown in FIGS. 7 and 9.
- the light irradiated to the irradiation area 50 2 may be, for example, light having a special color rendering index of 89 and a special color rendering index of 12 90 or more. ..
- the user 500 uses the lighting device 100 to irradiate the irradiation area 502 with the above-described light, and inspects the meat 501, so that the red portion of the meat 501 is inspected. While clearly recognizing the white part and the white part, it is possible to perform the predetermined inspection required for rating the meat 501 with high accuracy.
- the illuminator 100 has the first peak wavelength in the wavelength region from 6 0 0 1 ⁇ 111 to 6 6 0 1 ⁇ 111, and 5 1 0 Has a second peak wavelength in the wavelength range up to Has a third peak wavelength in the wavelength range of up to 340 n, and has a fourth peak wavelength in the wavelength range of 340 n to 430 n.
- the difference in brightness at each wavelength from the long wavelength to the short wavelength can be made smaller compared to the case of a light emitting spectrum that is biased to the short wavelength, so that the red part and the white part are easier to see.
- the red or blue emission is strong, it is easy to distinguish the white and red single colors, but since unevenness occurs, it is necessary to balance the red, green, and blue colors for a natural color rendering. This makes it easier to identify colors.
- the user 500 uses the lighting device 100 in which the light emitting device 1 according to the present embodiment is mounted and the lighting device in which the light emitting device according to the comparative example described above is mounted, Actually, the inspection result when the meat 501 is inspected will be described.
- the light emitting device 1 according to the present embodiment emits light having a color temperature of 2800 ⁇ to 6500 ⁇ . It is assumed that the light emitting device according to the comparative example emits the light specified by the light emitting spectrum 202.
- Table 1 shows a list of inspection results when illuminated by the illumination device 100 according to the present embodiment. ⁇ 2020/175 710 17 ⁇ (: 171-1? 2020/008543
- ⁇ double circle mark
- the test result ⁇ means that the light associated with that mark is extremely suitable for inspection of meat 501. That is, it can be said that light having a color temperature of 420 is extremely suitable for inspection of meat 501.
- ⁇ (double circle Ma _ h) light is associated to, rather than the light that associated with the later ⁇ (_ Jumaruma _ h) and are more suitable for inspection of meat 5 0 1 I can say. In other words, it was proved that the inspection accuracy when the meat 5001 was illuminated with light having a color temperature of 420 ⁇ was extremely high.
- the inspection result is indicated as ⁇ (single circle mark). evaluated .
- the ⁇ ( _ double circle mark) representing the inspection result means that the light with the mark is suitable for inspection of meat 501. That is, it can be said that light having color temperatures of 400 ⁇ 0 ⁇ and ⁇ 500 ⁇ is suitable for inspection of meat 501. That is,
- the inspection result shows that It was evaluated that the inspection accuracy was low as compared with the case where the color temperatures of the same morphology were 400 to 500 ⁇ 500. That is, it can be said that the light specified by the emission spectrum 202 is not suitable for inspection of meat 501. In other words, it was proved that the inspection accuracy when the meat 5 01 was illuminated with the light specified by the emission spectrum 202 was low.
- the user 500 finds that the user has a light having a color temperature lower than 400, a light having a color temperature higher than 500, or a light emission spectrum.
- the inspection accuracy of meat 5 01 was low.
- the red light is Suitable for meat inspection, neither too intense nor blue light too strong ⁇ 2020/175 710 19 ⁇ (:171? 2020/008543
- the lighting device 100 equipped with the light emitting device 1 which emits light having a color temperature of 420 emits light most suitable for inspection of meat.
- a lighting device equipped with a light-emitting device that emits light having a color temperature of 2800 ⁇ or 300 ⁇ 0 ⁇ , and light specified by the emission spectrum 202 emits strong red light. It turns out that it emits light that is not suitable for meat inspection.
- an illumination device equipped with a light emitting device that emits light having a color temperature of 650 ⁇ emits light that is not suitable for meat inspection because the blue light is too intense.
- the light emitting device when the color temperature is in the range of 400 to 500 ⁇ , the light emitting device emits light suitable for inspection of meat. In particular, it can be seen that when the color temperature is 420, the light emitting device emits light most suitable for inspection of meat. It can be said that light having a color temperature in the range of 400 to 500 ⁇ has high color rendering properties and is close to sunlight.
- the lighting device 100 is a light emitting device that emits light close to sunlight.
- the lighting device 100 according to the present embodiment can improve the inspection accuracy of meat by mounting the light emitting device 1 having excellent color rendering properties.
- the lighting device 100 according to the present embodiment is equipped with the light-emitting device 1 that emits light having a color temperature suitable for inspection of meat, thereby improving inspection accuracy of meat.
- the lighting device 100 is equipped with the light emitting device 1 that emits light having a color temperature within the range of 400 to ⁇ 500, thereby reducing the Inspection accuracy can be improved.
- the lighting device 100 is provided with the light emitting device 1 that emits light having a color temperature of 420, and thus can significantly improve the inspection accuracy of meat. You can
- the illuminating device 100 includes a plurality of light emitting elements 3 that emit light having a peak wavelength in a wavelength range from 360 nm to 430 nm, and a first fluorescent light.
- a light-emitting element 3 that emits light having a peak wavelength in the violet light region, a wavelength in which the first phosphor 61, the second phosphor 62, and the third phosphor 63 are mixed in an optimal balance.
- the conversion member 6 it is possible to significantly improve the inspection accuracy of meat.
- the wavelength conversion member 6 has been described as including at least three phosphors, that is, the first phosphor 61, the second phosphor 62, and the third phosphor 63.
- the wavelength conversion member 6 may include other types of phosphors.
- the wavelength conversion member 6 may be configured to include four types of phosphors, or may be configured to include five or more types of phosphors.
- the effect that can be realized by the light emitting device 1 is that the lighting device 1 including the light emitting device 1
- the lighting device 100 is used by the user 1500 to inspect the fresh fish 1501.
- a user 1501 for example, is a wholesaler who handles fresh fish 1501.
- Fresh fish 1501 means raw fish that is expected to be fresh, and may include, for example, tuna or skipjack.
- Freshness may be the most important factor in determining the quality of fresh fish 1501.
- the user 1500 uses the lighting device 100 to irradiate the irradiation area 1502 with light and inspect it.
- the test may include, for example, a test for individual differences such as whether there is much lean meat or much fat.
- the inspection may include a food hygiene inspection to check for the occurrence of melt, mildew, sagging, or damage.
- the user 150 0 0 examines the red part, also called “lean meat", and the white part, also called “shedashi”. User 150 0 may focus on the inspection of "red meat”.
- the user 1500 includes the inspection of the balance between "red meat” and “sashimi” by irradiating the fresh fish 1501 with the light of the lighting device 1005, or the inspection of red meat, etc. , The inspection of fresh fish 1501 can be performed accurately. ⁇ 2020/175 710 21 ⁇ (: 171-1? 2020 /008543
- the light emitting device 1 according to the present embodiment is configured, at least in part, to be the same as or similar to the light emitting device 1 according to the embodiment in which the lighting device 100 is used for the inspection of meat 501.
- the configuration of the lighting device 100 used for the inspection of the fresh fish 1501 according to the present embodiment will be described by focusing on the part different from the lighting device 100 used for the inspection of the meat 5101. To be done.
- the configuration of the illumination device 100 according to the present embodiment, the description of which is omitted may be the same as or similar to the configuration of the illumination device 100 used for the inspection of the meat 501. Specifically, the description of the configuration of the light emitting device 1 is omitted. Meanwhile, the emission spectrum of the light emitting device 1 will be described below.
- the emission spectrum 1 201 of the light emitting device 1 according to the present embodiment and the emission spectrum 1 202 of the light emitting device according to the comparative example will be described.
- the emission spectrum is measured, for example, by a spectrophotometer using a spectroscopic method.
- the horizontal axis and the vertical axis respectively represent the wavelength and the relative light intensity of the light emitted by the light emitting device.
- the light emitting device 1 is In the wavelength range up to, the light emitted by the first phosphor 6 1, the light emitted by the second phosphor 6 2, the light emitted by the third phosphor 6 3 and the plurality of light emitting elements 3 Emits the light emitted by and the light combined by.
- the emission spectrum 1 201 has a first peak wavelength S 1 in the wavelength region from 600 to 6600.
- the first peak wavelength spectrum 11 corresponds to the wavelength of the light emitted by the first phosphor 61.
- the luminous spectrum 1 201 Has other peak wavelengths X in the wavelength range up to.
- the other peak wavelengths correspond to the wavelengths of the light emitted by the second phosphor 62.
- the light emitting spectrum 1 201 has a second peak wavelength 2 in the wavelength region of 4 4 0 n to 4 7 0 n.
- the second peak wavelength spectrum 12 corresponds to the wavelength of the light emitted by the third phosphor 63. Is the luminous spectrum 1 2 0 1 ⁇ 2020/175 710 22 ⁇ (:171? 2020 /008543
- the emission spectrum 1201 has four peak wavelengths.
- the relative light intensity at the second peak wavelength S12 is 0. It is above and less than 0.35.
- the relative light intensity at the third peak wavelength 13 is 0.2 or more and 0.4 or less.
- the light emitting device as a comparative example is 3601 ⁇ 01 to 780 In the wavelength range up to, the light emitted by a predetermined phosphor and the light emitted by a plurality of predetermined light emitting elements are combined to emit light.
- the predetermined phosphor is, for example, the first phosphor having the first peak wavelength S 1 1 X in the wavelength region from 600 n ⁇ ! to 6601 ⁇ 111.
- the first phosphor is capable of converting the light incident on the inside of the wavelength conversion member to 60
- the predetermined light emitting element is, for example, a light emitting element (so-called blue excitation light) that emits light having a second peak wavelength 12_ in the wavelength region of 440 n to 470 n.
- the emission spectrum 1202 of the comparative example has the first peak wavelength 11 _ in the wavelength region from 600 nm to 660 n, and from 440 n to 470 n. Has a second peak wavelength 1 2 _. In other words, the emission spectrum 1202 has two peak wavelengths.
- the light emitting device 1 emits the light specified by the light emitting spectrum 1201 having the first peak wavelength 11 in the wavelength range of 600 nm to 660 n.
- the light emitting device 1 emits the light specified by the light emitting spectrum 1201 having another peak wavelength spectrum X in the wavelength range from 510 n to 550 n.
- the light emitting device 1 emits light specified by the light emitting spectrum 1201 having the second peak wavelength spectrum 12 in the wavelength region from 4401 ⁇ 111 to 4701 ⁇ 111.
- the light emitting device 1 emits the light specified by the light emitting spectrum 1201 having the third peak wavelength S 13 in the wavelength range from 360 n to 430 n. 1st pee ⁇ 2020/175 710 23 ⁇ (:171? 2020 /008543
- the relative light intensity at the second peak wavelength 1 2 is not less than 0.15 and not more than 0.35.
- the relative light intensity at the third peak wavelength S 13 is 0.2 or more and 0.5 or less.
- the light specified by the emission spectrum 1 201 includes light of each of the three colors of red, green and blue at a ratio close to the spectrum of sunlight. As a result, it is possible to realize the light emitting device 1 that emits light close to sunlight in which light of all colors from blue to red is evenly scattered, particularly light close to sunlight at sunrise/sunset.
- the color rendering properties of the light emitting device 1 according to the present embodiment and the color rendering properties of the light emitting device according to the comparative example shown in the emission spectrum 1202 are described.
- the horizontal axis and the vertical axis represent the test color and color rendering index, respectively.
- Graph 1 3 0 1 is a graph obtained by plotting the color rendering index for each test color in Light-Emitting Device 1 with a solid line.
- Graph 1300 2 is a graph obtained by plotting a value obtained by plotting the color rendering index for each test color in the light emitting device according to the comparative example with a broken line.
- Color rendering is one of the indexes for evaluating the quality of a light source, and numerically expresses the appearance of color with a color rendering index with reference to natural light.
- Color rendering index is the average color rendering index Special color rendering index 9, Special color rendering index 0, special color rendering index 8 11 1, special color rendering index 8 12 2, special color rendering index 1 3, special color rendering index 8 1 4, special color rendering index 1 5, etc.
- the average color rendering index 3 is
- the special color rendering index of 9 is 85 or more.
- the special color rendering index 11 is about 9 5.
- the special color rendering index 8 12 is about 9 5.
- the special color rendering index 13 is about 100.
- the special color rendering index of 4 is 95 or more.
- the special color rendering index of 15 is 95 or more. ⁇ 2020/175 710 24 ⁇ (:171? 2020 /008543
- the special color rendering index of 9 is about 65.
- the special color rendering index 11 is 90 or more.
- the special color rendering index 8 12 is about 7 8.
- the special color rendering index 13 is over 90.
- the special color rendering index 14 is 9 5 or higher.
- the special color rendering index 15 is about 90.
- the color rendering index for each test color in the light emitting device 1 is all a value of 85 or more, and the variation is extremely small.
- the color rendering index for each test color in the light emitting device according to the comparative example is extremely variable, with values of 90 or more mixed with values of 70 or less. Therefore, it can be seen that the light emitting device 1 is superior in color rendering to the light emitting device according to the comparative example.
- the light emitting device 1 emits light having a special color rendering index 9 of 85 or more, and emits light having a special color rendering index 8 12 of 90 or more. This gives an average color rendering index of 8 3 and a special color rendering index of 9, 1, It is possible to realize a light emitting device 1 having excellent color rendering properties, all of which are 85 or more.
- the light emission spectrum is measured by using a spectroscopic method such as a spectrophotometer.
- the horizontal axis and the vertical axis respectively represent the wavelength and the relative light intensity of the light emitted by the light emitting device.
- the color temperature quantifies the color of the light emitted from the light source, and is expressed in the unit of ⁇ (Kelvin).
- Low color temperature means that the color of the light emitted by the light source is reddish.
- High color temperature means that the color of the light emitted by the light source is bluish.
- the color temperature of the light emitted by an incandescent light bulb is approximately 280 ⁇ .
- the color temperature of daylight white light is approximately 420 ⁇ .
- the light specified in the emission spectrum 1 401 has a color temperature of 2800 ⁇ ⁇ 2020/175 710 25 boxes (:171? 2020 /008543
- the light specified by the emission spectrum 1 402 has a color temperature of 300 ⁇ 0.
- the light specified by the emission spectrum 1403 has a color temperature of 400 ⁇ 0.
- the light specified in the emission spectrum 1440 has a color temperature of 500 ⁇ 0.
- the light specified in the emission spectrum 1450 has a color temperature of 6500 ⁇ .
- the relative light intensities in the emission spectra 1440, 1403, 1440 and 1405 are the maximum peaks when the light intensity at the maximum peak wavelength of the emission spectrum 1401 is 1. It is expressed as the ratio of light intensity to light intensity at the wavelength.
- the relative light intensity in the wavelength range from 440 n to 470 n and the relative light intensity in the wavelength range from 560 n to 550 n are It can be seen that it is extremely large compared to the light intensity. That is, it is understood that the red light is dominant in the light having the color temperature of 280 ⁇ .
- the light emission spectrum 1 4 0 2 has a wavelength range of 360 0 n to 780 n.
- the relative light intensities in the wavelength range from 440 n to 470 n and the relative light intensity in the wavelength range from 550 n to 550 n are compared. I understand that it is a little big. That is, it is understood that the red light is dominant in the light having the color temperature of 300 ⁇ 0.
- the light emission spectrum 1403 has a wavelength of 600 nm in the wavelength range from 360 n to 780 nm.
- the relative light intensities in the wavelength range from 440 to n are compared with the relative light intensity in the wavelength range from 440 to n and 470 to n. I understand that it is a little big. That is, it is found that the red light is dominant in the light having the color temperature of 400.
- the emission spectrum 1440 is 6400 in the wavelength region from 360n to 780n. Up to the wavelength range ⁇ 2020/175 710 26 boxes (:171? 2020 /008543
- Relative intensity in the wavelength range of 440 n to 470 n and relative light intensity in the wavelength range of 510 n to 550 n are not so different from each other. I understand. That is, it can be seen that light having a color temperature of 500 ⁇ 0 contains a large amount of green and blue light, respectively, as compared with the spectrums 1401, 1402, and 1403.
- the emission spectrum 1450 has a wavelength of 600 nm in the wavelength range from 360 n to 780 n.
- the relative light intensities in the wavelength range from 440 n to 470 n and the relative light intensity in the wavelength range from 550 n to 550 n are compared. It turns out that it is a little small. That is, it is understood that the blue light is dominant in the light having the color temperature of 650 ⁇ .
- the luminous spectrum 1440 corresponding to the color temperature of 500 ⁇ is less green and blue than the spectra 1401, 1402 and 1403. The light of is stronger than that of red. Further, it can be seen that the light emission spectrum 1450 corresponding to the color temperature of 6500 ⁇ has blue light stronger than green light and red light.
- the relative light intensities of the emission spectra 1401, 1402 and 1403 are included in the range shown as the relative light intensity of the emission spectrum 1201. ..
- the color rendering index and the special color rendering index of the light specified by the luminous spectra 1 4 0 1, 1 4 0 2 and 1 4 0 3 are the color rendering of the light specified by the luminous spectra 1 2 0 1. It shall be included in the range shown as the evaluation number and the special color rendering evaluation number.
- the light emitting device 1 according to the present embodiment emits light having a color temperature within the range of 2800 ⁇ to 400000. As a result, the light emitting device 1 capable of emitting red light more strongly than green light and blue light can be realized. In addition, by mounting the light emitting device 1 according to the present embodiment on the lighting device 100 described later, ⁇ 2020/175 710 27 ⁇ (:171? 2020 /008543
- the user 150 in particular, will be able to perform highly accurate inspections of the red part, which is also called “red meat”.
- an illuminating device 100 includes a light emitting device 1, a main body part 101, a collar part 102, and a power supply cover 103. And are equipped with.
- the number of light emitting devices 1 mounted on the lighting device 100 is not particularly limited. A detailed description of each component is as described with reference to FIGS. 108 and 90, and is omitted here.
- the lighting device 100 may further include a reflector 1 06 as shown in Fig. 15.
- the reflector 106 is made of, for example, glass, resin, or the like.
- the reflector 106 has a reflection layer formed of a reflective material such as aluminum on the inner peripheral surface, and the inner peripheral surface functions as a reflective surface.
- the reflector 106 has, for example, a bowl shape.
- the reflector 106 has openings on both the side where the light emitting device 1 is provided and the side opposite to the side where the light emitting device 1 is provided.
- the reflector 10 6 is provided so that its central axis overlaps with the central axis ⁇ !_ of the lens 10 4.
- the shape of the reflector 106 can be appropriately designed according to the area of the irradiation region 1502 and the like.
- the lighting device 10000 has the lens 104. All you have to do is (see Fig. 108 and Fig. 10).
- the lens 104 is, for example, a collecting lens.
- the lighting device 100 can use the lens 104 and the reflector. You only need to prepare for evening 106 (see Figure 15).
- the lens 104 is, for example, a diffusing lens.
- the type of the illumination device 100 is not particularly limited.
- the lighting device 100 is not limited to the handy lit as shown in Fig. 108, Fig. 10 and Fig. 15 but also, for example, a down light installed on a ceiling, a wall, a pillar, or the like. ⁇ 2020/175 710 28 ⁇ (:171? 2020 /008543
- It may be a ceiling light, a pendant light, a bracket light, or the like.
- the light emitted to the irradiation area 1 502 is, for example, 60% as shown in FIG.
- the light irradiated to the irradiation region 1 502 has a relative light intensity at the second peak wavelength when the light intensity at the first peak wavelength is 1, for example. Is greater than or equal to 0.15 and less than or equal to 0.35.
- the relative light intensity at the third peak wavelength may be 0.2 or more and 0.5 or less.
- the light with which the irradiation region 1 502 is irradiated may be, for example, light having a color temperature of 3000 ⁇ , as shown in Figs. 12 and 14.
- the light irradiated to the irradiation area 1 502 is, for example, light with a special color rendering index 89 of 85 or more, a special color rendering index. 2 may be 95 or more lights.
- User 1500 uses illumination device 100 to irradiate irradiation area 1502 with the above-described light, and inspects fresh fish 1501.
- the user 1 500 clearly recognizes the red portion of the fresh fish 1 501, which is also called the “red meat”, and the white portion of the fresh fish 1 501, which is also called the “sashimi,” and in particular, the “red meat” of the fresh fish 1 501, It is possible to inspect the part of “” with high accuracy.
- the illumination device 100 has the first peak wavelength in the wavelength region of 600 nm to 660 n, Has a second peak wavelength in the wavelength range from 360 n to 430 n and a third peak wavelength in the wavelength range from 360 n to 430 n. ⁇ 2020/175 710 29 ⁇ (: 171-1? 2020 /008543
- a light emitting device 1 that emits light specified by a light emitting spectrum having a peak wavelength is mounted. Further, the emission spectrum has a relative light intensity at the second peak wavelength of 0.15 or more and 0.25 or less and a relative light intensity at the third peak wavelength of 0.2 or more and 0.5 or less. is there. As a result, a lighting system 100 with improved inspection accuracy for fresh fish can be realized.
- the user 1500 uses the lighting device 100 including the light emitting device 1 according to the present embodiment and the lighting device including the light emitting device according to the comparative example described above.
- the light emitting device 1 according to the present embodiment emits light having a color temperature of 2800 ⁇ to 6500 ⁇ .
- the light emitting device according to the comparative example emitted the light specified by the emission spectrum 1202.
- Table 2 shows a list of inspection results when illuminated by the illumination device 100 according to the present embodiment. This inspection result is a judgment result by multiple users 150.
- the user 1500 is a fresh fish illuminated with light having a color temperature of 300 ⁇ 100.
- the inspection result was evaluated as ⁇ (double circle mark).
- the ⁇ (double circle mark) representing the inspection result means that the light associated with the mark is extremely suitable for inspection of fresh fish 1501. That is, it can be said that light having a color temperature of 300 ⁇ 0 is extremely suitable for inspection of fresh fish 1501.
- ⁇ light to be associated to (double circle mark) it is, corresponding to that which will be described later
- ⁇ (single round Ma _ click) ⁇ 2020/175 710 30 boxes (:171? 2020 /008543
- the inspection result was evaluated as ⁇ (single circle mark).
- the ⁇ ( _ double circle mark) representing the inspection result means that the light with the mark is suitable for the inspection of the fresh fish 1501. That is, light having a color temperature of 2800 ⁇ and 400000 ⁇ is suitable for inspection of fresh fish 1501. That is, it was proved that the inspection accuracy was high when the fresh fish 1501 was illuminated with light having a color temperature of 2800 and 4000 ⁇ .
- User 1 500 is a light emitting spectrum 1 2 emitted by the light emitting device according to the comparative example.
- the inspection result was evaluated as having a low inspection accuracy as compared with the case where the color temperature of the same degree of the embodiment of the present invention was 2800 to 4000 ⁇ . That is, it can be said that the light specified by the emission spectrum 1202 is not suitable for the inspection of fresh fish 1501. In other words, it was proved that the inspection accuracy when illuminating the fresh fish 1501 with the light specified by the emission spectrum 1202 was extremely low.
- the lighting device 100 equipped with the light emitting device 1 that emits light having a color temperature within the range of 0 ⁇ can increase the inspection accuracy of fresh fish 1501.
- the inspection accuracy of fresh fish 150 1 was low. That is, it was proved that the inspection accuracy of the illumination device equipped with the light emitting device that emits light having a color temperature higher than 400 or light specified by the emission spectrum 1202 is low.
- the lighting device 100 equipped with the light emitting device 1 that emits light having a color temperature in the range of 2800 ⁇ to 4000 while red light is strong in an appropriate range. And blue light is never too strong. Therefore, the lighting device 100 equipped with the light emitting device 1 that emits light having a color temperature in the range of 2800 ⁇ to 400000 ⁇ is suitable for inspection of fresh fish 1501. It can be seen that it emits light. Further, it can be seen that the illumination device 100 equipped with the light emitting device 1 that emits light having a color temperature of 300 ⁇ 0 emits the light most suitable for the inspection of the fresh fish 1501.
- an illuminating device equipped with a light emitting device that emits light having a color temperature higher than 400 ⁇ 0> has a blue light that is too strong or a red light that is too weak. It can be seen that it emits light that is not suitable for inspection.
- the light emitting device 1 when the color temperature in the embodiment of the present invention is in the range of 280 ⁇ 0 to 4,000, the light emitting device 1 emits light suitable for the inspection of fresh fish 1501. You can see that it emits light. In particular, it can be seen that when the color temperature is 300 ⁇ , the light emitting device 1 emits light most suitable for the inspection of the fresh fish 1501. Also, the color temperature ⁇ 2020/175 710 32 units (: 171? 2020 /008543
- the lighting device 100 is a light emitting device that emits light close to sunlight.
- the lighting device 100 according to the present embodiment is equipped with the light emitting device 1 having excellent color rendering properties, so that the inspection accuracy of the fresh fish 1501 can be improved. Further, the lighting device 100 according to the present embodiment is equipped with the light emitting device 1 that emits light having a color temperature suitable for the inspection of the fresh fish 1501, so that the inspection accuracy of the fresh fish 1501 can be improved. Can be increased.
- the lighting device 100 has a color temperature
- the lighting device 100 By mounting the light emitting device 1 that emits light within the range up to, it is possible to improve the inspection accuracy of the fresh fish 1501.
- the lighting device 100 according to the present embodiment is equipped with the light emitting device 1 that emits light having a color temperature of 300 0 ⁇ , so that the inspection accuracy of the fresh fish 150 1 can be significantly improved. You can
- the illuminating device 100 includes a plurality of light emitting elements 3 that emit light having a peak wavelength in a wavelength range from 360 nm to 430 nm, and a first fluorescent light.
- a light emitting device 1 including a wavelength conversion member 6 containing a body 61, a second phosphor 62, and a third phosphor 63 is mounted. That is, a light-emitting element 3 that emits light having a peak wavelength in the violet light region, a wavelength in which the first phosphor 61, the second phosphor 62, and the third phosphor 63 are mixed in an optimal balance.
- the conversion member 6 it is possible to significantly improve the inspection accuracy of the fresh fish 1501.
- the description such as “first” and “second” is an identifier for distinguishing the configuration.
- the configurations distinguished by the description such as “first” and “second” in the present disclosure can exchange the numbers in the configurations.
- the first phosphor can exchange the identifiers "first” and “second” for the second phosphor.
- the exchange of identifiers is done simultaneously.
- the structures are distinguished.
- the identifier may be deleted.
- the structure in which the identifier is deleted is distinguished by the code.
- the disclosure of identifiers such as “first” and “second” in this disclosure ⁇ 2020/175 710 33 ⁇ (: 171-1? 2020 /008543
- the lighting device 100 may be used not only for inspecting the meat 501 as described above, but also for inspecting fresh fish, for example. Similar to the meat inspection, the red and white areas can be clearly seen, so the prescribed inspection can be performed with high accuracy.
- the fresh fish are raw fish in a fresh state, and may be, for example, tuna or bonito.
- the lighting device 100 may be used not only indoors such as in a building or a house, but also outdoors.
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Abstract
Description
Claims
Priority Applications (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2021502673A JP7142145B2 (ja) | 2019-02-28 | 2020-02-28 | 照明装置 |
| EP20763428.8A EP3933256A4 (en) | 2019-02-28 | 2020-02-28 | LIGHT EMITTING DEVICE AND LIGHTING DEVICE |
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| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2019035200 | 2019-02-28 | ||
| JP2019-035200 | 2019-02-28 | ||
| JP2019064769 | 2019-03-28 | ||
| JP2019-064769 | 2019-03-28 |
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| WO2020175710A1 true WO2020175710A1 (ja) | 2020-09-03 |
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/JP2020/008543 Ceased WO2020175710A1 (ja) | 2019-02-28 | 2020-02-28 | 発光装置及び照明装置 |
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| EP (1) | EP3933256A4 (ja) |
| JP (1) | JP7142145B2 (ja) |
| WO (1) | WO2020175710A1 (ja) |
Cited By (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2022091243A (ja) * | 2020-12-09 | 2022-06-21 | 株式会社エヌエステイー | 色温度可変型照明装置 |
Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2000029613A (ja) * | 1998-07-13 | 2000-01-28 | Tko:Kk | 表示パネル照明用タッチペン |
| JP2005233636A (ja) * | 2004-02-17 | 2005-09-02 | Shimadzu Corp | 食肉の脂肪交雑検査方法及び装置 |
| JP2012015471A (ja) | 2010-07-05 | 2012-01-19 | Panasonic Electric Works Co Ltd | 照明装置、照明システム及び照明方法 |
| JP2018017674A (ja) * | 2016-07-29 | 2018-02-01 | 株式会社イシダ | 光検査装置 |
| JP2018107471A (ja) * | 2012-10-04 | 2018-07-05 | 株式会社東芝 | 白色発光装置、照明装置、および歯科用照明装置 |
Family Cites Families (1)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP4128564B2 (ja) * | 2004-04-27 | 2008-07-30 | 松下電器産業株式会社 | 発光装置 |
-
2020
- 2020-02-28 EP EP20763428.8A patent/EP3933256A4/en not_active Withdrawn
- 2020-02-28 WO PCT/JP2020/008543 patent/WO2020175710A1/ja not_active Ceased
- 2020-02-28 JP JP2021502673A patent/JP7142145B2/ja active Active
Patent Citations (5)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2000029613A (ja) * | 1998-07-13 | 2000-01-28 | Tko:Kk | 表示パネル照明用タッチペン |
| JP2005233636A (ja) * | 2004-02-17 | 2005-09-02 | Shimadzu Corp | 食肉の脂肪交雑検査方法及び装置 |
| JP2012015471A (ja) | 2010-07-05 | 2012-01-19 | Panasonic Electric Works Co Ltd | 照明装置、照明システム及び照明方法 |
| JP2018107471A (ja) * | 2012-10-04 | 2018-07-05 | 株式会社東芝 | 白色発光装置、照明装置、および歯科用照明装置 |
| JP2018017674A (ja) * | 2016-07-29 | 2018-02-01 | 株式会社イシダ | 光検査装置 |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP3933256A4 |
Cited By (2)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2022091243A (ja) * | 2020-12-09 | 2022-06-21 | 株式会社エヌエステイー | 色温度可変型照明装置 |
| JP7237317B2 (ja) | 2020-12-09 | 2023-03-13 | 株式会社エヌエステイー | 色温度可変型照明装置 |
Also Published As
| Publication number | Publication date |
|---|---|
| EP3933256A4 (en) | 2022-11-23 |
| JP7142145B2 (ja) | 2022-09-26 |
| EP3933256A1 (en) | 2022-01-05 |
| JPWO2020175710A1 (ja) | 2020-09-03 |
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