WO2010058607A1 - 屋外水の紫外線殺菌装置 - Google Patents
屋外水の紫外線殺菌装置 Download PDFInfo
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- WO2010058607A1 WO2010058607A1 PCT/JP2009/006295 JP2009006295W WO2010058607A1 WO 2010058607 A1 WO2010058607 A1 WO 2010058607A1 JP 2009006295 W JP2009006295 W JP 2009006295W WO 2010058607 A1 WO2010058607 A1 WO 2010058607A1
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- WIPO (PCT)
- Prior art keywords
- ultraviolet
- outdoor water
- uvc
- sterilizer
- uva
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- A—HUMAN NECESSITIES
- A01—AGRICULTURE; FORESTRY; ANIMAL HUSBANDRY; HUNTING; TRAPPING; FISHING
- A01K—ANIMAL HUSBANDRY; AVICULTURE; APICULTURE; PISCICULTURE; FISHING; REARING OR BREEDING ANIMALS, NOT OTHERWISE PROVIDED FOR; NEW BREEDS OF ANIMALS
- A01K63/00—Receptacles for live fish, e.g. aquaria; Terraria
- A01K63/04—Arrangements for treating water specially adapted to receptacles for live fish
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- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F1/00—Treatment of water, waste water, or sewage
- C02F1/30—Treatment of water, waste water, or sewage by irradiation
- C02F1/32—Treatment of water, waste water, or sewage by irradiation with ultraviolet light
- C02F1/325—Irradiation devices or lamp constructions
-
- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2103/00—Nature of the water, waste water, sewage or sludge to be treated
- C02F2103/007—Contaminated open waterways, rivers, lakes or ponds
-
- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2201/00—Apparatus for treatment of water, waste water or sewage
- C02F2201/32—Details relating to UV-irradiation devices
- C02F2201/322—Lamp arrangement
- C02F2201/3221—Lamps suspended above a water surface or pipe
-
- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2201/00—Apparatus for treatment of water, waste water or sewage
- C02F2201/32—Details relating to UV-irradiation devices
- C02F2201/322—Lamp arrangement
- C02F2201/3222—Units using UV-light emitting diodes [LED]
-
- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2201/00—Apparatus for treatment of water, waste water or sewage
- C02F2201/32—Details relating to UV-irradiation devices
- C02F2201/322—Lamp arrangement
- C02F2201/3225—Lamps immersed in an open channel, containing the liquid to be treated
-
- C—CHEMISTRY; METALLURGY
- C02—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F—TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
- C02F2201/00—Apparatus for treatment of water, waste water or sewage
- C02F2201/32—Details relating to UV-irradiation devices
- C02F2201/322—Lamp arrangement
- C02F2201/3227—Units with two or more lamps
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- Y—GENERAL TAGGING OF NEW TECHNOLOGICAL DEVELOPMENTS; GENERAL TAGGING OF CROSS-SECTIONAL TECHNOLOGIES SPANNING OVER SEVERAL SECTIONS OF THE IPC; TECHNICAL SUBJECTS COVERED BY FORMER USPC CROSS-REFERENCE ART COLLECTIONS [XRACs] AND DIGESTS
- Y02—TECHNOLOGIES OR APPLICATIONS FOR MITIGATION OR ADAPTATION AGAINST CLIMATE CHANGE
- Y02W—CLIMATE CHANGE MITIGATION TECHNOLOGIES RELATED TO WASTEWATER TREATMENT OR WASTE MANAGEMENT
- Y02W10/00—Technologies for wastewater treatment
- Y02W10/30—Wastewater or sewage treatment systems using renewable energies
- Y02W10/37—Wastewater or sewage treatment systems using renewable energies using solar energy
Definitions
- the present invention relates to an apparatus for sterilizing outdoor water, such as sewage, pool water, fish culture pond water, etc., which is drained outdoors and irradiated with sunlight.
- Sterilization is indispensable not only in our daily life but also in industry.
- chemical sterilization methods such as chlorine, heat sterilization, ultraviolet sterilization, and ozone sterilization are known as sterilization methods.
- Higher quality sterilization techniques are required from the standpoint of no residue and environmental friendliness. From such a background, a sterilization method using ultraviolet rays (UV), that is, ultraviolet sterilization has been widely used.
- UV ultraviolet rays
- UV sterilization unlike sterilization with chemicals, has no residue and is excellent in safety. In addition, since it destroys bacterial DNA, it has the advantage of not creating resistant bacteria unlike drug sterilization.
- the sterilization mechanism by UV is generally explained as follows. Nucleic acids (DNA) that control genetic information exist in cells of organisms, including bacteria, and when UV is irradiated, the nucleic acids absorb the light, and some pyrimidines (mainly thymines) are pyrimidine dimers. It is said that the transcriptional control from the gene is delayed and the metabolism is disturbed, resulting in death.
- DNA Nucleic acids
- pyrimidines mainly thymines
- Patent Document 1 An apparatus for sterilizing water using ultraviolet rays has been developed.
- the apparatus described in this publication sterilizes the treated water flowing in the tube with an ultraviolet light source provided outside the tube.
- the ultraviolet light source is a lamp or a light emitting diode, and sterilizes the treated water of the tube by irradiating it with ultraviolet light.
- This device can sterilize water without the use of chemicals.
- UV sterilization inactivates microorganisms by causing damage to intracellular DNA, but when irradiated with sunlight, microorganisms deactivated by UV irradiation are included in the sunlight. In other words, it regains its activity with near-ultraviolet rays or visible rays, and grows.
- the sterilizing power is reduced due to the light recovery phenomenon.
- the light recovery phenomenon occurs when light near 400 nm activates a gene repair enzyme (photolyase) to repair the formation of a pyrimidine dimer. Sterilization by ultraviolet light is due to chromosomal damage caused by directly damaging microbial DNA to form pyrimidine dimers. However, when the microorganisms inactivated by ultraviolet rays are irradiated with light of around 400 nm, the gene repair enzyme (photolyase) is activated and the formation of the pyrimidine dimer is repaired, and the microorganisms due to the light recovery phenomenon are recovered. Activation occurs.
- FIG. 1 is a graph showing that microorganisms sterilized by a light recovery phenomenon grow.
- the horizontal axis represents time (minutes), and the vertical axis represents the number of E. coli bacteria decreased by sterilization with the number of bacteria before sterilization being 1.
- This figure shows that UVC ultraviolet light having a main emission peak of 254 nm is irradiated with an intensity of 0.01 mW / cm 2 for about 30 minutes to reduce the number of bacteria to 1/2500, and then the main emission peak is 365 nm.
- the present invention was developed for the purpose of eliminating the above-mentioned adverse effects, and an important object of the present invention is to prevent an increase in the number of bacteria after sterilization due to a light recovery phenomenon and effectively sterilize with ultraviolet rays. It is to provide an ultraviolet sterilizer for outdoor water that can be used.
- the ultraviolet sterilizer of the present invention sterilizes the outdoor water 9 by irradiating it with ultraviolet rays.
- the ultraviolet sterilizer includes an ultraviolet light emitting diode 1 for irradiating UVA ultraviolet light having a main emission peak of 320 nm to 400 nm, and the outdoor water 9 is sterilized by sterilizing the outdoor water 9 with the UVA ultraviolet light emitted by the ultraviolet light emitting diode 1. Bacteria growth due to the light recovery phenomenon of the outdoor water 9 is prevented.
- the ultraviolet sterilization apparatus described above has the feature that it prevents the increase in the number of bacteria after sterilization due to the light recovery phenomenon, and can effectively sterilize outdoor water irradiated with sunlight with ultraviolet rays.
- FIG. 2 shows that the ultraviolet sterilization apparatus of the present invention can maintain an effective sterilization state even in a state where it is irradiated with sunlight by suppressing the light recovery phenomenon.
- This figure shows that UVA ultraviolet light having a main emission peak of 365 nm is irradiated with an ultraviolet light emitting diode at an intensity of 70 mW / cm 2 for 30 minutes to reduce the bacterial count of E.
- Curves A, B, and C indicate that the number of bacteria changes after sterilizing the number of bacteria to 1/800, and then irradiating with UV intensity of 0.01 mW / cm 2 , 0.09 mW / cm 2 , and 0.30 mW / cm 2. It shows the state to do.
- the chain line in this figure shows a state in which light is not irradiated after sterilization to 1/800.
- UVA ultraviolet rays are irradiated to sterilize the E. coli bacteria count to 1/800, and then UVA rays contained in solar rays are irradiated. Proliferation does not occur.
- the number of bacteria may be further reduced by irradiation with UVA light.
- FIG. 3 is a graph showing the sterilized state of Vibrio parahaemolyticus. This figure shows that UVC ultraviolet light with a main emission peak of 254 nm is irradiated and sterilized until the number of Vibrio parahaemolyticus bacteria is reduced to about 1/700, and then UVA light of 405 nm contained in sunlight is irradiated.
- the UVA contained in sunlight It shows a state in which Vibrio parahaemolyticus is increased by irradiation with 405 nm light.
- Curve A shows the number of bacteria of Vibrio parahaemolyticus sterilized with UVC
- curve B shows the number of bacteria of Vibrio parahaemolyticus sterilized with UVA UV light.
- the chain line C is in a state in which the number of bacteria is sterilized to 1/700 with UVC and is not irradiated with light
- the chain line D is in a state in which the number of bacteria is sterilized with UVA to 1/700 and is not irradiated with light.
- the number of bacteria in Vibrio parahaemolyticus sterilized with UVC ultraviolet rays increases to 1/50 after 180 minutes due to the light recovery phenomenon. That is, the number of bacteria grows about 10 times or more by the light recovery phenomenon.
- Vibrio parahaemolyticus sterilized with UVA ultraviolet rays hardly grows after 180 minutes and does not increase bacteria due to the light recovery phenomenon, as in the case where light is not irradiated after sterilization.
- the above sterilization apparatus also realizes the following incidental features. Since the sterilizer uses UVA ultraviolet light emitting diodes that are close to visible light as ultraviolet rays, effective sterilization can be realized while preventing adverse effects on human eyes. Although conventional UV sterilization uses invisible UV rays, it is necessary to turn off the UV irradiation and stop the UV irradiation when a person is in the area. While checking the sterilization state, it is not necessary to turn on / off even when a person is present, and the sterilization effect can be exhibited by continuously lighting for 24 hours. Moreover, it can be installed without providing a special shielding material even in a place such as a wall that is visible to the human eye.
- the outdoor water 9 can be any one of sewage, outdoor pool water, and fish culture pond water.
- the above ultraviolet sterilizers are characterized in that they can be effectively sterilized even when they are exposed to sunlight by draining sewage, outdoor pool water, and fish culture pond water outdoors.
- an apparatus for sterilizing sewage with ultraviolet rays has an excellent feature that the sterilized sewage is drained into a natural river or sea and does not adversely affect the natural environment like a medicine.
- outdoor pool water can be effectively sterilized without adding chemicals such as chlorine, and therefore has no phytotoxicity to swimmers and can be used safely and safely.
- fish farming in order to prevent fish death, a huge amount of antibiotics is added to the feed. Fish cultivated in this state is not preferable for food because antibiotics remain.
- the sterilization apparatus of the present invention can effectively sterilize fish culture pond water, it can effectively prevent killing caused by fish bacteria. For this reason, the amount of antibiotics added to the bait can be significantly reduced, and the remaining amount of antibiotics can be limited. For this reason, it is possible to cultivate fish that can be eaten safely and safely.
- the main light emission peak of the ultraviolet light-emitting diode 1 can be 350 nm to 380 nm.
- the outdoor water ultraviolet sterilizer of the present invention can have a UVC light source 2 that emits UVC ultraviolet light.
- FIGS. 4 to 6 are graphs showing a state in which the number of bacteria is changed by a light recovery phenomenon after sterilizing sewage with ultraviolet rays. These figures show the state in which the number of bacteria changes by irradiating with 365-nm UVA rays contained in sunlight with an intensity of 0.30 mW / cm 2 after sterilizing with ultraviolet rays, and irradiating the rays after sterilizing. The number of bacteria in the absence is shown by a chain line.
- FIG. 4 shows a state where the number of bacteria is changed by irradiating UVC ultraviolet light having a main emission peak of 254 nm with an intensity of 0.02 mW / cm 2 by a solid line.
- the bacteria sterilized with UVC ultraviolet rays are irradiated with sunlight and the number of bacteria rapidly increases. That is, the number of bacteria increases remarkably by the light recovery phenomenon.
- FIG. 5 irradiates the UVA rays contained in the sun rays after sterilization by irradiating UVA ultraviolet rays having a main emission peak of 365 nm with an intensity of 70 mW / cm 2 . Proliferation due to the light recovery phenomenon of sterilized bacteria does not occur.
- FIG. 6 the main emission peak and 254 nm, along with ultraviolet UVC to 0.02 mW / cm 2 intensity, the main emission peak and 365 nm, both UVA ultraviolet to strength and 70 mW / cm 2 This shows a state in which the number of bacteria is increased by sterilizing sewage by irradiating with water.
- the ultraviolet sterilizer for outdoor water of the present invention can make the output of the UVC light source 2 smaller than the output of the ultraviolet light emitting diode 1.
- the above sterilizer can effectively sterilize the UVC light source by making the output of the UVC light source smaller than the output of the UV light emitting diode, and can effectively sterilize by synergistic effect of the UVC light source and the ultraviolet light emitting diode.
- the UV sterilizer shown in FIGS. 7 to 10 sterilizes the outdoor water of any one of sewage, outdoor pool water, and fish pond water by irradiating UVA ultraviolet rays.
- 7 and FIG. 8 is set above the surface of the outdoor water 9 stored in the water tank 10 and irradiates UVA ultraviolet rays toward the outdoor water 9.
- the ultraviolet sterilizer of FIG. 9 and FIG. 10 has a waterproof structure and is disposed in the liquid of the outdoor water 9 to irradiate the outdoor water 9 with ultraviolet rays.
- an ultraviolet light emitting diode 1 that irradiates UVA ultraviolet rays is provided on the outer case 3.
- 8 and 10 includes a UVC light source 2 that emits UVC ultraviolet light in addition to the ultraviolet light-emitting diode 1 in the exterior case 3.
- the outer case 3 is provided with a reflective layer 4 that reflects ultraviolet rays on the inner surface.
- the exterior case 3 shown in these figures is provided with a peripheral wall 5 around it, and effectively reflects the ultraviolet rays emitted from the ultraviolet light emitting diode 1 and the UVC light source 2 to irradiate the outdoor water 9.
- the outer case 3 containing the UVC light source 2 prevents UVC ultraviolet rays from leaking outside through the peripheral wall 5.
- the exterior case 3 incorporates a circuit board 6, and a plurality of ultraviolet light emitting diodes 1 are fixed to the circuit board 6.
- the circuit board 6 shown in the figure has an elongated plate shape, and a plurality of ultraviolet light-emitting diodes 1 are arranged and fixed on the circuit board 6 in a plurality of rows.
- the circuit boards 6 are arranged in a plurality of rows to increase the irradiation area of the ultraviolet light emitting diode 1.
- the exterior case can incorporate a single circuit board, and a plurality of ultraviolet light emitting diodes can be fixed to the circuit board. Further, as shown in the perspective view of FIG. 11, the outer case 3 of FIGS.
- FIG. 8 and 10 is an elongated plate-like circuit board 6 to which a plurality of ultraviolet light emitting diodes 1 are fixed, and a cylindrical elongated ultraviolet lamp.
- a certain UVC light source 2 is alternately arranged and incorporated.
- This structure has a feature that it can irradiate ultraviolet rays uniformly over a wide range from the plurality of ultraviolet light emitting diodes 1 and the UVC light source 2 fixed to the circuit board 6.
- the opening of the outer case 3 is closed with a light-transmitting plate 7 in order to have a waterproof structure.
- the translucent plate 7 is fixed to the outer case 3 with a waterproof member (not shown) such as packing interposed at the boundary with the end surface of the peripheral wall 5 in order to close the opening edge of the outer case 3 in a watertight manner.
- the translucent plate 7 transmits the ultraviolet rays emitted from the ultraviolet light emitting diode 1 and the UVC light source 2 built in the outer case 3 and irradiates the outside. Therefore, quartz glass excellent in ultraviolet transmittance is used for the translucent plate 7.
- quartz glass excellent in ultraviolet transmittance is used for the translucent plate 7.
- calcium fluoride, magnesium fluoride, or the like can be used for the translucent plate.
- the outer case 3 described above has a box-like container shape as a whole, and a circuit board 6 to which a plurality of ultraviolet light-emitting diodes 1 are fixed is disposed, or a plurality of ultraviolet light-emitting diodes 1 are fixed.
- the circuit board 6 and the UVC light source 2 are arranged.
- the ultraviolet sterilizer of the present invention does not specify the shape of the outer case or the arrangement of the ultraviolet light emitting diode and the UVC light source as the above structure.
- the ultraviolet sterilization apparatus attaches a plurality of ultraviolet light emitting diodes side by side to the surface and / or the back surface of an attachment member having a flat shape, a rod shape, a cylinder shape, a box shape, a spherical shape, or an arbitrary shape.
- ultraviolet rays emitted from the ultraviolet light-emitting diode can be emitted to the surroundings according to the shape of the mounting member, and can be irradiated to outdoor water.
- the ultraviolet sterilizer of FIGS. 12 and 13 has a cylindrical outer case 23 coaxially piped with a translucent transfer tube 25 and a plurality of ultraviolet light emitting diodes 1 built in the outer case 23.
- the UV light of UVA is irradiated from these ultraviolet light emitting diodes 1 to the transfer tube 25 to sterilize the outdoor water 9 transferred by the transfer tube 25.
- this ultraviolet sterilizer transfers outdoor water 9 to a transfer pipe 25 through a circulator 28 such as a pump, and irradiates the outdoor water 9 passing through the transfer pipe 25 with ultraviolet rays. Sterilize the water 9.
- the cylindrical outer case 23 is provided with a reflective layer 24 on the inner surface.
- the transfer tube 25 is a cylindrical pipe and is made of quartz glass so that it can efficiently transmit ultraviolet rays emitted from the ultraviolet light emitting diode 1.
- the plurality of ultraviolet light emitting diodes 1 are fixed to a circuit board 26 as an attachment member, and the circuit board 26 is fixed to the inside of a cylindrical outer case 23 at equal intervals.
- the ultraviolet sterilization apparatus shown in the drawing is disposed inside the outer case 23, and the UVC light source 2 is disposed between the plurality of circuit boards 6. This ultraviolet sterilizer can irradiate UVA ultraviolet rays from the ultraviolet light emitting diode 1 and UVC ultraviolet rays simultaneously from the UVC light source 2 and sterilize the outdoor water 9 transferred by the transfer pipe 25 more effectively.
- the ultraviolet sterilizer shown in FIGS. 14 and 15 has a plurality of ultraviolet light emitting diodes in a transparent container 33 that has a hermetic and waterproof property against water and transmits ultraviolet rays emitted from the ultraviolet light emitting diodes 1. 1 is built-in. As shown in FIG. 14, this ultraviolet sterilizer is disposed in a solution of outdoor water 9 and sterilizes by irradiating the outdoor water 9 with ultraviolet rays.
- the container 33 has a cylindrical shape whose bottom is closed, and its upper opening is water-tightly closed with a lid 35.
- the container 33 is made of quartz glass so that the ultraviolet rays emitted from the ultraviolet light emitting diode 1 can be efficiently transmitted.
- the plurality of ultraviolet light emitting diodes 1 are arranged in the container 33 in a posture in which the irradiation direction is the outside, and have a structure that radiates ultraviolet rays emitted from the ultraviolet light emitting diodes 1 in all directions.
- the ultraviolet sterilizer of FIG. 15 fixes a plurality of ultraviolet light emitting diodes 1 to the outer peripheral surface of a fixed cylinder 36 as an attachment member at a predetermined interval, and the fixed cylinder 36 is coaxial with the inside of a cylindrical container 33. Is arranged.
- the illustrated fixed cylinder 36 is provided with a reflective layer 34 on the outer peripheral surface, and effectively reflects ultraviolet rays to irradiate the outdoor water 9.
- the ultraviolet sterilization apparatus having this structure is small and has a feature that a sterilization effect can be realized in a wide range. Further, as shown by the chain line in the figure, the ultraviolet sterilizer disposes the UVC light source 2 on the outside of the fixed cylinder 36 and irradiates the UVA ultraviolet rays and the UVC ultraviolet rays, so that the outdoor water 9 is more effectively used. It can also be sterilized.
- the ultraviolet light emitting diode 1 emits UVA ultraviolet light having a main light emission peak in a wavelength range of 320 nm to 400 nm. More preferably, the main emission peak of ultraviolet rays emitted from the ultraviolet light emitting diode 1 is 350 to 380 nm, which is an even narrower wavelength range.
- the ultraviolet light emitting diode 1 having the main light emission peak in these wavelength regions is realized by a gallium nitride compound semiconductor light emitting element.
- the ultraviolet light emitting diode 1 irradiates light including a boundary region between visible light and near ultraviolet light. This is because visible light is in a wavelength region of 380 nm or more.
- the output of the ultraviolet light-emitting diode 1, the radiation intensity on the center line away 1cm from the tip for example 10 mW / cm 2 or more, preferably 50 mW / cm 2 or more, further preferably 60 mW / cm 2 or more.
- the UVC light source 2 is an ultraviolet lamp that emits UVC ultraviolet light in a wavelength range of less than 280 nm.
- the UVC light source 2 shown in the drawing uses a cylindrical elongated lamp as the most general ultraviolet lamp.
- the ultraviolet sterilization apparatus provided with the UVC light source 2 has a synergistic effect by irradiating UVC ultraviolet rays from the UVC light source 2 in addition to sterilization by irradiating UVA ultraviolet rays from the ultraviolet light emitting diodes 1.
- UVC ultraviolet rays are effectively applied to UVC and UVA while suppressing the light recovery phenomenon by irradiating the ultraviolet light emitting diode 1 with UVA ultraviolet rays, thereby realizing more effective sterilization.
- the output of the UVC light source 2 can be made smaller than the output of the ultraviolet light emitting diode 1.
- the output of the UVC light source 2 is, for example, 1 ⁇ W / cm 2 or more, preferably 5 ⁇ W / cm 2 or more, and more preferably 10 ⁇ W / cm 2 or more.
- UV light-emitting diodes and UVC light sources can be reflected and indirectly irradiated to the outdoor water without directly irradiating the ultraviolet light toward the outdoor water.
- the photocatalyst can be irradiated with a part of the ultraviolet rays emitted from the ultraviolet light emitting diode or the UVC light source, and sterilized by a synergistic effect with the photocatalyst.
- a wavelength conversion material such as a phosphor can be irradiated with a part of the ultraviolet rays, and the wavelength of the ultraviolet rays can be converted with the wavelength conversion material.
- the ultraviolet sterilizer of the present invention can activate a photocatalyst with ultraviolet rays emitted from an ultraviolet light-emitting diode or a UVC light source, and can use a synergistic effect of ultraviolet rays and active oxygen when used together with the photocatalyst.
- a photocatalyst when used in combination, the dispersion and deterioration of the catalyst performance, as well as material costs and processing costs increase. Therefore, effective sterilization can be realized by irradiating the outdoor water with the ultraviolet rays emitted from the ultraviolet light emitting diode or the UVC light source as efficiently as possible without using a photocatalyst or a wavelength conversion material.
- FIG. 16 shows the survival rate by single or combined irradiation using UVA and UVC.
- this figure shows the state in which the viability of Vibrio parahaemolyticus changes when UVA and UVC are irradiated, that is, the Vibrio parahaemolyticus is sterilized by UVA and UVC irradiation against the number of Vibrio parahaemolyticus that are not irradiated with UVA and UVC.
- the ratio at which the number of bacteria is reduced is shown as the survival rate.
- UVA is irradiated for 6 minutes and the integrated light amount is 36 J / cm 2
- UVC is irradiated for 6 minutes and the integrated light amount is 0.024 J / cm 2 .
- the Vibrio parahaemolyticus is sterilized to about 1/5 with respect to the state not irradiated with UVA alone.
- Vibrio parahaemolyticus is sterilized to about 1/10 with respect to irradiation that is not irradiated.
- the state of irradiating UVC after irradiating UVA it is sterilized to about 1/46 with respect to the state not irradiated, and sterilized to about 1/21 in the state of irradiating UVA after irradiating UVC.
- the germicidal effect is synergistically enhanced by irradiating UVA and UVC at the same time by sterilizing to about 1/130 of the state not irradiating. Becomes clear.
- FIG. 17 is a graph showing that the sterilizing effect of Vibrio parahaemolyticus is improved by increasing the integrated amount of light irradiated with UVA.
- UVC is irradiated for 6 minutes
- the integrated light quantity is set to a constant 0.024 J / cm 2
- the UVA irradiation intensity is set to 100 mW / cm 2
- the irradiation time is changed to change the integrated light quantity from 0 to It shows the survival rate in which the Vibrio parahaemolyticus is sterilized and the number of bacteria is reduced in a state of changing to 100 J / cm 2 .
- This figure shows the ratio at which the number of bacteria is reduced by sterilizing Vibrio parahaemolyticus by irradiating UVA and UVC with respect to the number of bacteria of Vibrio parahaemolyticus not irradiated with UVA and UVC.
- the bactericidal effect by UVA and UVC simultaneous irradiation is remarkably enhanced by increasing the cumulative amount of UVA.
- the survival rate in the state that the survival rates of about 1 / 10,36J / cm 2 in a state that the integrated light amount of UVA and 25 J / cm 2 is in a state to be about 1 / 100,90J / cm 2 The survival rate is about 1 / 50,000 and the bactericidal effect is extremely strong.
- the integrated light quantity of UVC and 0.024J / cm 2 in the state in which the 25 J / cm 2 the integrated light quantity of UVA UVA / UVC is about 1000 times, the integrated light quantity of UVA 36J / cm
- the UVA / UVC in the state of 2 is 1500 times
- the UVA / UVC in the state of 90 J / cm 2 in the state where the UVA integrated light amount is 3750 times the UVA integrated light amount is 500 times or more of the UVC integrated light amount.
- the sterilization effect can be remarkably improved by irradiating both UVA and UVC by setting it to 1000 times or more, more preferably 1500 times or more.
- the ratio of the integrated light quantity of UVA / UVC is the ratio of the irradiation intensity of UVA / UVC in an apparatus that irradiates UVA and UVC simultaneously.
- FIG. 18 shows the bactericidal effect using titanium oxide as a photocatalyst and UVA in combination.
- this figure shows the rate at which the number of Vibrio parahaemolyticus decreases when 200 ⁇ l of Vibrio parahaemolyticus is placed in a 96-well plate at a concentration of 10 6 / ml, that is, the survival rate. .
- the bottom of the well is coated with 0.5 cm 2 of titanium oxide.
- the survival rate of irradiation with only UVA is about 1/5
- the survival rate of only titanium oxide is about 1/2
- the survival rate when UVA is irradiated to titanium oxide is about 1/6. From this figure, it is clear that the synergistic effect of sterilization of titanium oxide and UVA is very weak.
- a plurality of ultraviolet light emitting diodes 1 are arranged in a predetermined arrangement in the outer case 3.
- the plurality of ultraviolet light emitting diodes 1 are fixed to the inside of the outer case 3 through the circuit board 6 so as to face downward.
- the ultraviolet light-emitting diode 1 (manufactured by Nichia Corporation) has a main emission peak wavelength of 365 nm, an emission spectrum half-width of 10 nm, and an optical output of 100 mW.
- the plurality of ultraviolet light emitting diodes 1 are connected in series and in parallel to a power source (PAS40-9 manufactured by Kikusui Electronics Co., Ltd.).
- the power source is a DC stabilized power source that stabilizes the output.
- This power supply is used in a constant current mode in which a current is applied at a rated current of 500 mA where the light output of the ultraviolet light emitting diode 1 is 100 mW.
- LB medium is used for culture of bacteria.
- a method for preparing a liquid medium and an agar medium (LB plate) will be described below.
- -Composition of LB medium tryptone 1% 10 g / l yeast extract 0.5% 5g / l NaCl 1% 10g / l
- agar is added to this so that it may become 1.5% (W / V).
- LB medium is dissolved in deionized water and then sterilized (121 ° C., 20 minutes) in an autoclave.
- a stirrer bar For the agar medium, add a stirrer bar, stir uniformly with a stirrer after autoclaving, and cool to about 65 ° C. Dispense an appropriate amount into a 10 cm disposable plastic petri dish (Eiken Equipment Co., Ltd.) Set to solidify.
- a non-pathogenic Escherichia coli DH5 ⁇ strain is used as an indicator for outdoor water to be sterilized.
- the Escherichia coli is cultured for 16 hours in a 37 ° C. shaking incubator using 5 ml of LB medium.
- Method for adjusting the number of bacteria In the experiment, a plate culture method is used to measure the number of bacteria. This is to count the number of colonies produced by smearing and culturing a certain amount of bacterial solution on an agar medium. A colony is a group of the same bacteria, and one cell cannot be seen with the naked eye, but the colony can be confirmed with the naked eye. To adjust the number of bacteria, first measure the approximate number of bacteria with a spectrophotometer, and then perform serial dilution.
- Spectrophotometer Assume that the intensity of light having a certain wavelength changes from I 0 (intensity of incident light) to I (intensity of transmitted light) while passing through a solution layer of a substance. In this case, the ratio of I to I 0 (I / I 0) the permeability; says (t Transmittance), those representing the permeability in percentage transmittance; say (T percent transmittance). Optical density (OD) is the common logarithm of the inverse of transmission.
- 100 ⁇ l of the sample stock solution is mixed with 900 ⁇ l of PBS to make a 10-fold diluted solution, and further 100 ⁇ l of 10-fold diluted solution is mixed with 900 ⁇ l of PBS to make a 100-fold diluted solution.
- dilution was carried out sequentially to adjust up to 6 levels.
- the bacterial solution diluted 10 5 times or 10 6 times is suitable for the measurement of the number of bacteria before UV irradiation, so 100 ⁇ l of each was dropped onto the LB plate, smeared evenly with a large stick, and 37 ° C. Incubate for 16 hours. Thereafter, the number of colonies appearing on the LB agar medium is measured. To count the number of colonies, count all colonies with the naked eye from the back of the petri dish. The number of bacteria is obtained by multiplying the number of colonies of each dilution factor by the dilution factor and averaging. The number of bacteria in the bacterial solution is adjusted to be, for example, 5 ⁇ 10 9 cells / ml.
- Sterilization step 200 ⁇ l of the bacterial solution prepared by the above-described adjustment method is placed in a sterilized well plate (Becton Dickinson Labware). There are about 10 9 E. coli in 200 ⁇ l of this bacterial solution.
- the bacterial solution is irradiated with UVA ultraviolet light having a main emission peak of 365 nm with the ultraviolet light emitting diode 1 at an intensity of 70 mW / cm 2 for 30 minutes.
- the UVA irradiation in this step is performed in order to sterilize Escherichia coli, which is the indicator bacterium. The number of bacteria after UV irradiation is measured.
- UVA rays contained in solar rays having a main light emission peak of 365 nm were changed to 0.01 mW / cm 2 , 0.09 mW / cm 2 , and 0.30 mW / cm 2 .
- Irradiate in steps of UV intensity The UVA irradiation in this step is performed to measure the change in the number of bacteria due to the light recovery phenomenon after sterilization. For irradiation at each ultraviolet intensity, the number of bacteria after 30 minutes, 60 minutes, 120 minutes and 180 minutes has been measured.
- the number of bacteria of E. coli that decreases by ultraviolet irradiation is shown as a ratio, where the number of bacteria before ultraviolet irradiation (before sterilization) is 1.
- FIG. 1 shows that the bacteria count of E. coli is reduced to about 1/800 by the sterilization process in which UVA ultraviolet light having a main emission peak of 365 nm is irradiated at an intensity of 70 mW / cm 2 for 30 minutes, and then in the light recovery process, A state in which the number of bacteria is changed by irradiating with UVA light contained in sunlight is shown.
- curves A, B, and C show the state in which the number of bacteria changes with the intensity of ultraviolet rays irradiated after sterilization being 0.01 mW / cm 2 , 0.09 mW / cm 2 , and 0.30 mW / cm 2. Yes.
- the chain line in the figure shows the change in the number of bacteria in a state where the UVA light contained in the sunlight is not irradiated.
- UVA ultraviolet rays are irradiated to sterilize the number of E. coli bacteria to 1/800, and then UVA rays contained in sunlight are irradiated with various ultraviolet intensities.
- curve C the number of bacteria may be further reduced by irradiation with UVA light.
- Vibrio parahaemolyticus is used in place of non-pathogenic Escherichia coli as an indicator bacterium for outdoor water to be sterilized, and the UV intensity of the UVA light contained in the sunlight irradiated in the light recovery process after the sterilization process is 0.30 mW.
- the change in the number of bacteria is measured in the same manner as in Example 1 except that / cm 2 is used.
- FIG. This figure shows that the number of bacteria of Vibrio parahaemolyticus is reduced to about 1/700 by the sterilization process in which UVA ultraviolet light having a main emission peak of 365 nm is irradiated at an intensity of 70 mW / cm 2. It shows a state in which the number of bacteria of Vibrio parahaemolyticus changes by irradiating with 365 nm UVA light contained in the light.
- the curve B shows a state in which the number of bacteria is changed with the ultraviolet ray intensity irradiated in the light recovery step being 0.30 mW / cm 2
- the chain line D in the figure does not irradiate the UVA rays contained in the sunlight. It shows the change in the number of bacteria in the state.
- an exterior case 3 having a plurality of ultraviolet light emitting diodes 1 and a UVC light source 2 is used, and sewage is used as outdoor water to be sterilized.
- UVA ultraviolet light having a main emission peak of 365 nm is irradiated with the ultraviolet light emitting diode 1 at an intensity of 70 mW / cm 2 for 15 minutes to sterilize.
- UVA light contained in sunlight with a main emission peak of 365 nm is irradiated at an ultraviolet intensity of 0.30 mW / cm 2 and the number of bacteria after 180 minutes is measured. .
- FIG. This figure shows a state in which the number of bacteria contained in the sewage is reduced to about 1/20 by the sterilization process, and then the number of bacteria is changed in the light recovery process.
- the solid line in the figure shows a state in which the number of bacteria is changed by irradiating UVA light contained in sunlight in the light recovery process, and the chain line in the figure shows a state in which UVA light contained in sunlight is not irradiated. It shows changes in the number of bacteria.
- the main emission peak as 254 nm, the ultraviolet UVC that the strength and 0.02 mW / cm 2 was irradiated from the UVC light source 2, a primary emission peak as 365 nm, UVA ultraviolet to strength and 70 mW / cm 2 Is measured in the same manner as in Example 3, except that both UVC ultraviolet rays and UVA ultraviolet rays are irradiated together for 15 minutes to sterilize the sewage.
- FIG. This figure shows a state in which the number of bacteria contained in the sewage is reduced to about 1/5000 by the sterilization process, and then the number of bacteria is changed in the light recovery process.
- the solid line in the figure shows a state in which the number of bacteria is changed by irradiating UVA light contained in sunlight with an ultraviolet intensity of 0.30 mW / cm 2 in the light recovery process. The change of the number of bacteria in the state which does not irradiate the UVA light contained is shown.
- Example 1 In the sterilization step, the change in the number of bacteria is measured in the same manner as in Example 2 except that UVC ultraviolet light having a main emission peak of 254 nm is irradiated at an intensity of 70 mW / cm 2 .
- Curve A in FIG. 3 shows a state in which the number of bacteria is changed by irradiating UVA rays contained in sunlight with an ultraviolet intensity of 0.30 mW / cm 2 in the light recovery process after sterilization by UVC ultraviolet rays.
- the chain line C in the figure shows the change in the number of bacteria in a state where the UVA light contained in the sunlight is not irradiated.
- UVC ultraviolet rays are irradiated to sterilize Vibrio parahaemolyticus to 1/700
- UVA rays contained in sunlight are then irradiated.
- the number of bacteria increases to 1/50 after 180 minutes due to the light recovery phenomenon. That is, it can be seen that the number of bacteria grows about 10 times or more by the light recovery phenomenon.
- Example 2 In the sterilization step, the change in the number of bacteria is measured in the same manner as in Example 3 except that UVC ultraviolet light having a main emission peak of 254 nm is irradiated at an intensity of 70 mW / cm 2 .
- the solid line in FIG. 4 shows a state in which the number of bacteria is changed by irradiating UVA light contained in sunlight with an ultraviolet intensity of 0.30 mW / cm 2 in the light recovery process after sterilization by UVC ultraviolet rays.
- the chain line in the figure shows the change in the number of bacteria in a state where the UVA light contained in the sunlight is not irradiated.
- UVC ultraviolet rays are irradiated to sterilize until the number of bacteria contained in the sewage is reduced to 1/800, and then UVA rays contained in sunlight are irradiated.
- the number of bacteria increases to 1/50 after 180 minutes due to the light recovery phenomenon. That is, it can be seen that the number of bacteria grows about 10 times or more by the light recovery phenomenon.
- the present invention can be used in various fields such as sterilizing outdoor water with ultraviolet rays, such as sewage, pool water, and fish culture pond water.
- FIG. 8 It is a schematic sectional drawing which shows the use condition of the ultraviolet sterilizer concerning the other Example of this invention. It is a perspective view which shows the internal structure of the ultraviolet sterilizer shown in FIG. 8 and FIG. It is a schematic sectional drawing which shows the use condition of the ultraviolet sterilizer concerning the other Example of this invention. It is an expanded horizontal sectional view which shows the internal structure of the ultraviolet sterilizer shown in FIG. It is a schematic sectional drawing which shows the use condition of the ultraviolet sterilizer concerning the other Example of this invention. It is an expanded cross-sectional view which shows the internal structure of the ultraviolet sterilizer shown in FIG. It is a graph which shows the survival rate of the bacteria by single and combined irradiation using UVA and UVC.
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Abstract
Description
この公報に記載される装置は、チューブ内を流れる処理水を、チューブの外側に設けている紫外線光源で殺菌する。紫外線光源はランプや発光ダイオードで、チューブの処理水に紫外線を照射して殺菌する。この装置は、薬剤を使用しないで水を殺菌できる。ただ、紫外線殺菌は、細胞内のDNAに損傷を超して微生物を不活性化するものであるが、太陽光線に照射されると、紫外線照射によって不活性化された微生物が、太陽光線に含まれる近紫外光線や可視光線で活性を取り戻して増殖する、すなわち光回復現象による殺菌力の低下がおこる。光回復現象は、400nm付近の光が遺伝子修復酵素(photolyase)を活性化して、ピリミジン2量体の形成を修復することで起こる。紫外線による殺菌は、直接に微生物のDNAを傷害してピリミジン2量体を形成することにより引き起こされる染色体の傷害による。ところが、紫外線で不活性化された微生物に、400nm付近の光が照射されると、遺伝子修復酵素(photolyase)が活性化されて、ピリミジン2量体の形成が修復されて光回復現象による微生物の活性化が起こる。
図7に示すように、外装ケース3に複数の紫外線発光ダイオード1を所定の配列で配置する。複数の紫外線発光ダイオード1は真下に向く姿勢で、回路基板6を介して外装ケース3の内部に固定される。紫外線発光ダイオード1(日亜化学工業株式会社製)は、主発光ピーク波長を365nm、発光スペクトルの半値幅を10nm、光出力を100mWとするものである。複数の紫外線発光ダイオード1は、直列と並列に接続して電源(菊水電子工業株式会社製PAS40-9)に接続される。電源は、出力を安定化している直流安定化電源である。この電源は、紫外線発光ダイオード1の光出力を100mWとする定格電流の500mAで通電する定電流モードで使用する。
[培養液の作成法]
細菌の培養には、LB培地を用いる。液体培地と寒天培地(LBプレート)の作成方法を次に述べる。
・LB培地の組成;tryptone 1% 10g/l
yeast extract 0.5% 5g/l
NaCl 1% 10g/l
寒天培地の場合は、これにagarを1.5%(W/V)になるように加える。
殺菌される屋外水の指標菌として、非病原性大腸菌DH5α株を使用する。実験で作製した紫外線殺菌装置の大腸菌に対する殺菌効果の検討を行うために、大腸菌はLB培地5mlを用いて、37℃の振盪培養器で16時間培養したものを使用する。
実験では、菌数の測定に、平板培養法を用いる。これは、寒天培地上に一定量の菌液を塗抹し培養して生成したコロニー数を数えるというものである。コロニーとは同一の細菌から成る集団のことで、1個の菌体は肉眼では見えないが、コロニーは肉眼で確認できる。菌数の調整には、まず分光光度計でおよその菌数を測定し、その後、段階希釈を行う。
ある波長の光がある物質の溶液層を通過する間に、その強さがI0(入射光の強さ)からI(透過光の強さ)に変化したとする。このとき、I0に対するIの比(I/I0)を透過度(t;transmittance)と言い、透過度を百分率で表したものを透過率(T;percent transmittance)と言う。光学密度(O.D.;optical density)は、透過度の逆数の常用対数である。
大腸菌の数を測定するためには、波長600nmの光を用いて計測する。その結果をOD600と書く。
実験には、菌液を試料として、PBS[phosphate-buffeved saline(リン酸緩衝液)以下PBSという]を対照にOD600を計測する。菌液に希釈液(PBS)を混合し、OD600の値が1.0となるように調整する。OD600=1.0に調整した菌液を原液とし、これをPBSにより106倍まで段階希釈する。試料原液100μlをPBS900μlに混合し、10倍希釈液とし、さらに10倍希釈液100μlをPBS900μlに混合し100倍希釈液とする。同様に順次希釈し6段階まで調整した。
予備実験により、105倍、106倍に希釈した菌液が紫外線照射前の菌数の測定に適しているので、それぞれを100μlずつLBプレートに滴下し、コンラージ棒でまんべんなく塗抹し、37℃、16時間培養する。その後、LB寒天培地上に出現したコロニー数の測定を行う。コロニー数を数えるには、シャーレの裏側から全てのコロニーを肉眼で数える。菌数は、各希釈倍数のプレートのコロニー数にその希釈倍数を乗じ、平均して求める。菌液中の菌数は、例えば、5×109個/mlとなるように調整する。
(1) 殺菌工程
前述した調整法にて調整した菌液を、滅菌済ウェルプレート(BectonDickinson Labware)に200μl入れる。この菌液200μl中には、約109個の大腸菌が存在する。この菌液に、主発光ピークを365nmとするUVAの紫外線を紫外線発光ダイオード1でもって70mW/cm2の強度で30分照射する。この工程におけるUVAの紫外線の照射は、指標菌である大腸菌を殺菌するために行う。紫外線を照射後の細菌数を測定する。
さらに、その後、主発光ピークを365nmとする、太陽光線に含まれるUVAの光線を、0.01mW/cm2、0.09mW/cm2、0.30mW/cm2の3段階の紫外線強度に分けて照射する。この工程におけるUVAの紫外線の照射は、殺菌後における光回復現象による細菌数の変化を測定するために行う。各紫外線強度における照射について、30分経過後、60分経過後、120分経過後、180分経過後の細菌数をそれぞれ測定する。
紫外線照射後の菌数の測定は、紫外線照射後の菌液を取り出しPBSにより10倍、100倍に希釈する。そして、希釈なし(原液)、10倍希釈、100倍希釈した菌液をそれぞれ100μlずつLBプレートに滴下しコンラージ棒でまんべんなく塗抹する。これを37℃、16時間培養した後、LB寒天培地上に出現したコロニー数の測定を行い、各条件下における紫外線照射後の残存している菌数を算定する。
紫外線発光ダイオード1による紫外線照射における殺菌効果を評価するために、紫外線照射前(殺菌前)の細菌数を1として、紫外線の照射によって減少する大腸菌の細菌数を比率で示す。
殺菌工程において、主発光ピークを365nmとするUVAの紫外線を紫外線発光ダイオード1でもって70mW/cm2の強度で15分照射して殺菌する。この殺菌後に、光回復工程として、主発光ピークを365nmとする、太陽光線に含まれるUVAの光線を、0.30mW/cm2の紫外線強度で照射し、180分経過後の細菌数を測定する。
殺菌工程において、主発光ピークを254nmとするUVCの紫外線を70mW/cm2の強度で照射する以外、実施例2と同様にして細菌数の変化を測定する。
殺菌工程において、主発光ピークを254nmとするUVCの紫外線を70mW/cm2の強度で照射する以外、実施例3と同様にして細菌数の変化を測定する。
2…UVC光源
3…外装ケース
4…反射層
5…周壁
6…回路基板
7…透光プレート
9…屋外水
10…水槽
23…外装ケース
24…反射層
25…移送管
26…回路基板
28…循環器
33…容器
34…反射層
35…蓋体
36…固定筒
Claims (23)
- 屋外水(9)に紫外線を照射して殺菌する紫外線殺菌装置であって、
主発光ピークを320nmないし400nmとするUVAの紫外線を照射する紫外線発光ダイオード(1)を備え、この紫外線発光ダイオード(1)が照射するUVAの紫外線で屋外水(9)が殺菌され、殺菌された屋外水(9)の光回復現象による細菌の増殖を防止するようにしてなる屋外水の紫外線殺菌装置。 - 前記屋外水(9)が汚水、屋外プール水、魚の養殖池水のいずれかである請求項1に記載される屋外水の紫外線殺菌装置。
- 前記紫外線発光ダイオード(1)の主発光ピークが350nmないし380nmである請求項1に記載される屋外水の紫外線殺菌装置。
- 前記紫外線発光ダイオード(1)の出力が、先端から1cm離れた中心線上の放射強度を10mW/cm2以上とする請求項1に記載される屋外水の紫外線殺菌装置。
- 前記紫外線発光ダイオード(1)に加えて、UVCの紫外線を放射するUVC光源(2)を有する請求項1に記載される屋外水の紫外線殺菌装置。
- 前記UVC光源(2)の出力が前記紫外線発光ダイオード(1)の出力よりも小さい請求項5に記載される屋外水の紫外線殺菌装置。
- 前記UVC光源(2)の出力が、1cm離れた放射強度を1μW/cm2以上としてなる請求項6に記載される屋外水の紫外線殺菌装置。
- 前記UVAの照射強度がUVCの照射強度の500倍以上である請求項1に記載される屋外水の紫外線殺菌装置。
- 前記UVAの照射強度がUVCの照射強度の1000倍以上である請求項1に記載される屋外水の紫外線殺菌装置。
- 前記UVAの照射強度がUVCの照射強度の1500倍以上である請求項1に記載される屋外水の紫外線殺菌装置。
- UVAの紫外線を照射する紫外線発光ダイオード(1)を内蔵してなる外装ケース(3)を有する請求項1に記載される屋外水の紫外線殺菌装置。
- 前記紫外線発光ダイオード(1)とUVC光源(2)とを内蔵する外装ケース(3)を有する請求項5に記載される屋外水の紫外線殺菌装置。
- 前記外装ケース(3)が、内面で紫外線を反射する反射層(4)を有する請求項12に記載される屋外水の紫外線殺菌装置。
- 前記外装ケース(3)が周囲に周壁(5)を有し、前記紫外線発光ダイオード(1)とUVC光源(2)から放射される紫外線を反射して屋外水(9)に照射するようにしてなる請求項12に記載される屋外水の紫外線殺菌装置。
- 前記外装ケース(3)が防水構造で、屋外水(9)の液中に配置されてなる請求項12に記載される屋外水の紫外線殺菌装置。
- 前記外装ケース(3)が、複数の紫外線発光ダイオード(1)を固定している回路基板(6)と、円筒状の細長い紫外線ランプであるUVC光源(2)とを交互に並べて配置している請求項12に記載される屋外水の紫外線殺菌装置。
- 互いに同軸に配置されてなる、円筒状の外装ケース(23)と透光性を有する移送管(25)とを備え、前記外装ケース(23)の内側であって、前記移送管(25)の外側に複数の紫外線発光ダイオード(1)とUVC光源(2)を配置しており、前記移送管(25)で移送される屋外水(9)を殺菌するようにしてなる請求項12に記載される屋外水の紫外線殺菌装置。
- 前記移送管(25)に屋外水(9)を移送する循環器(28)を備え、移送管(25)を通過する屋外水(9)に紫外線を照射して屋外水(9)を殺菌する請求項17に記載される屋外水の紫外線殺菌装置。
- 前記円筒状の外装ケース(23)が内面に反射層(24)を有する請求項18に記載される屋外水の紫外線殺菌装置。
- 水に対する密閉性と防水性を備え、かつ紫外線発光ダイオード(1)から放射される紫外線を透過させる透明性のある容器(33)を備え、この容器(33)に複数の紫外線発光ダイオード(1)とUVC光源(2)を内蔵しており、屋外水(9)の液中に配置されて、屋外水(9)に紫外線を照射して殺菌するようにしてなる請求項5に記載される屋外水の紫外線殺菌装置。
- 前記容器(33)が、石英ガラスである請求項20に記載される屋外水の紫外線殺菌装置。
- 前記容器(33)の内側に、紫外線発光ダイオード(1)とUVC光源(2)とを取り付けてなる固定筒(36)を有し、固定筒(36)の外側に、紫外線発光ダイオード(1)とUVC光源(2)とを固定してなる請求項21に記載される屋外水の紫外線殺菌装置。
- 前記固定筒(36)の外周面に反射層(34)を設けてなる請求項22に記載される屋外水の紫外線殺菌装置。
Priority Applications (3)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US13/130,574 US8324595B2 (en) | 2008-11-21 | 2009-11-21 | Outdoor water treatment apparatus to kill bacteria with ultraviolet light |
| JP2010539163A JPWO2010058607A1 (ja) | 2008-11-21 | 2009-11-21 | 屋外水の紫外線殺菌装置 |
| EP09827388.1A EP2394963B1 (en) | 2008-11-21 | 2009-11-21 | Ultraviolet sterilization device for outdoor water |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| JP2008-298593 | 2008-11-21 | ||
| JP2008298593 | 2008-11-21 |
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| Publication Number | Publication Date |
|---|---|
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| US (1) | US8324595B2 (ja) |
| EP (1) | EP2394963B1 (ja) |
| JP (1) | JPWO2010058607A1 (ja) |
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Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2003154379A (ja) * | 2001-11-20 | 2003-05-27 | Japan Science & Technology Corp | 殺菌水製造方法 |
| JP2004057845A (ja) * | 2002-07-24 | 2004-02-26 | Ishikawajima Harima Heavy Ind Co Ltd | 飲料物殺菌方法及びその装置 |
| JP2007069204A (ja) * | 2005-08-12 | 2007-03-22 | Toray Ind Inc | 水処理方法、水処理装置、及び再生水の製造方法 |
| WO2007043592A1 (ja) * | 2005-10-11 | 2007-04-19 | K2R Co., Ltd | 光触媒反応水生成装置 |
| JP2007152304A (ja) * | 2005-12-08 | 2007-06-21 | Hitachi Ltd | 液体処理方法および液体処理装置 |
| JP2007307544A (ja) * | 2006-05-20 | 2007-11-29 | Koshu Shinyo Koshin Gijutsu Yugenkoshi | 紫外線液体浄化処理器 |
| JP2008136940A (ja) | 2006-12-01 | 2008-06-19 | Toshiba Corp | 紫外線消毒装置 |
Family Cites Families (18)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US6010727A (en) * | 1997-12-31 | 2000-01-04 | Rosenthal; Richard A. | Actinic process for cold pasteurization of fresh foods and beverages |
| US6254625B1 (en) * | 1998-07-02 | 2001-07-03 | Cenayda V. Rosenthal | Hand sanitizer |
| US6403030B1 (en) * | 2000-07-31 | 2002-06-11 | Horton, Iii Isaac B. | Ultraviolet wastewater disinfection system and method |
| US6447720B1 (en) * | 2000-07-31 | 2002-09-10 | Remotelight, Inc. | Ultraviolet fluid disinfection system and method |
| US6569386B1 (en) * | 2000-10-05 | 2003-05-27 | Jong Ho Ko | Process for providing a titanium dioxide layer on a material that contains a light absorbing substance and the product so formed |
| CA2428332C (en) * | 2000-11-13 | 2010-05-25 | Bayer Aktiengesellschaft | Method of inactivating microorganisms in a fluid using ultraviolet radiation |
| US20080206095A1 (en) * | 2001-07-11 | 2008-08-28 | Duthie Robert E | Micro-organism reduction in liquid by use of a metal halide ultraviolet lamp |
| US7118852B2 (en) * | 2002-04-11 | 2006-10-10 | Throwleigh Technologies, L.L.C. | Methods and apparatus for decontaminating fluids |
| EP1586539A1 (de) * | 2004-04-13 | 2005-10-19 | Araiza, Rafael | Vorrichtung zur Behandlung eines flüssigen oder gasförmigen Mediums mittels UV-Strahlen |
| US8186004B2 (en) * | 2006-02-22 | 2012-05-29 | Oreck Holdings Llc | Disinfecting device utilizing ultraviolet radiation |
| GB0606604D0 (en) * | 2006-04-01 | 2006-05-10 | P W Circuts Ltd | Treatment apparatus |
| US7396491B2 (en) * | 2006-04-06 | 2008-07-08 | Osram Sylvania Inc. | UV-emitting phosphor and lamp containing same |
| US8067778B2 (en) * | 2006-09-28 | 2011-11-29 | Seoul Opto Device Co., Ltd. | Ultraviolet light emitting diode package |
| US8203124B2 (en) * | 2007-04-27 | 2012-06-19 | Hand Held Products, Inc. | Sterilization apparatus |
| WO2010058607A1 (ja) * | 2008-11-21 | 2010-05-27 | 国立大学法人徳島大学 | 屋外水の紫外線殺菌装置 |
| CN102361823B (zh) * | 2009-03-26 | 2015-03-04 | 皇家飞利浦电子股份有限公司 | Uv消毒设备 |
| DE102009034359A1 (de) * | 2009-07-17 | 2011-02-17 | Forschungsverbund Berlin E.V. | P-Kontakt und Leuchtdiode für den ultravioletten Spektralbereich |
| US8662705B2 (en) * | 2010-03-30 | 2014-03-04 | Virwall Systems, Inc. | Flexible ultraviolet LED sanitizing apparatus |
-
2009
- 2009-11-21 WO PCT/JP2009/006295 patent/WO2010058607A1/ja not_active Ceased
- 2009-11-21 JP JP2010539163A patent/JPWO2010058607A1/ja active Pending
- 2009-11-21 EP EP09827388.1A patent/EP2394963B1/en active Active
- 2009-11-21 US US13/130,574 patent/US8324595B2/en active Active
Patent Citations (7)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| JP2003154379A (ja) * | 2001-11-20 | 2003-05-27 | Japan Science & Technology Corp | 殺菌水製造方法 |
| JP2004057845A (ja) * | 2002-07-24 | 2004-02-26 | Ishikawajima Harima Heavy Ind Co Ltd | 飲料物殺菌方法及びその装置 |
| JP2007069204A (ja) * | 2005-08-12 | 2007-03-22 | Toray Ind Inc | 水処理方法、水処理装置、及び再生水の製造方法 |
| WO2007043592A1 (ja) * | 2005-10-11 | 2007-04-19 | K2R Co., Ltd | 光触媒反応水生成装置 |
| JP2007152304A (ja) * | 2005-12-08 | 2007-06-21 | Hitachi Ltd | 液体処理方法および液体処理装置 |
| JP2007307544A (ja) * | 2006-05-20 | 2007-11-29 | Koshu Shinyo Koshin Gijutsu Yugenkoshi | 紫外線液体浄化処理器 |
| JP2008136940A (ja) | 2006-12-01 | 2008-06-19 | Toshiba Corp | 紫外線消毒装置 |
Non-Patent Citations (1)
| Title |
|---|
| See also references of EP2394963A4 * |
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| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
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| NL2006265C2 (nl) * | 2011-02-21 | 2012-08-22 | Stichting Wetsus Ct Excellence Sustainable Water Technology | Inrichting en werkwijze voor het fotokatalytisch behandelen van een fluã¯dum. |
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| FR2972005A1 (fr) * | 2011-02-24 | 2012-08-31 | Univ Provence Aix Marseille 1 | Reacteur utilisable pour la depollution des fluides et procede d'utilisation |
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| US9303841B2 (en) | 2012-10-30 | 2016-04-05 | Tokuyama Corporation | Ultraviolet light-emitting module and ultraviolet irradiation device |
| JP2014089898A (ja) * | 2012-10-30 | 2014-05-15 | Tokuyama Corp | 紫外線発光モジュール及び紫外線照射装置 |
| WO2014068912A1 (ja) * | 2012-10-30 | 2014-05-08 | 株式会社トクヤマ | 紫外線発光モジュール及び紫外線照射装置 |
| CN104736921A (zh) * | 2012-10-30 | 2015-06-24 | 株式会社德山 | 紫外线发光模块以及紫外线照射装置 |
| JP2014087544A (ja) * | 2012-10-31 | 2014-05-15 | Tokuyama Corp | 紫外線殺菌装置 |
| WO2014068913A1 (ja) * | 2012-10-31 | 2014-05-08 | 株式会社トクヤマ | 紫外線殺菌装置及び殺菌方法 |
| JP2016511138A (ja) * | 2013-01-24 | 2016-04-14 | アトランティウム テクノロジーズ リミテッド | 発光ダイオードから放射された光による液体消毒方法及び装置 |
| CN105164056A (zh) * | 2013-01-24 | 2015-12-16 | 安特蓝德公司 | 用于通过从发光二极管发射的光进行液体消毒的方法和装置 |
| WO2014115146A1 (en) * | 2013-01-24 | 2014-07-31 | Atlantium Technologies Ltd. | Method and apparatus for liquid disinfection by light emitted from light emitting diodes |
| CN105164056B (zh) * | 2013-01-24 | 2017-09-29 | 安特蓝德公司 | 用于通过从发光二极管发射的光进行液体消毒的方法和装置 |
| US10294124B2 (en) | 2013-01-24 | 2019-05-21 | Atlantium Technologies Ltd. | Method and apparatus for liquid disinfection by light emitted from light emitting diodes |
| JP2022001366A (ja) * | 2013-05-22 | 2022-01-06 | コーニンクレッカ フィリップス エヌ ヴェKoninklijke Philips N.V. | 表面汚染防止のための方法及びシステム |
| JP2016525932A (ja) * | 2013-05-22 | 2016-09-01 | コーニンクレッカ フィリップス エヌ ヴェKoninklijke Philips N.V. | 表面汚染防止のための方法及びシステム |
| JP2014233712A (ja) * | 2013-06-05 | 2014-12-15 | Ckd株式会社 | 紫外線殺菌装置 |
| JP2015136686A (ja) * | 2014-01-24 | 2015-07-30 | シャープ株式会社 | 水処理装置及び当該水処理装置を用いたウエット清掃機 |
| US10221080B2 (en) | 2014-02-11 | 2019-03-05 | Philips Lighting Holding B.V. | Recipient with variable geometry for UV water purification |
| JP2017505227A (ja) * | 2014-02-11 | 2017-02-16 | フィリップス ライティング ホールディング ビー ヴィ | Uvによる浄水用の可変幾何形状を有する受容器 |
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| JP7508131B2 (ja) | 2015-03-02 | 2024-07-01 | 株式会社飯田照明 | 紫外線照射装置 |
| JP2022189926A (ja) * | 2015-03-02 | 2022-12-22 | 株式会社飯田照明 | 紫外線照射装置 |
| JP2017192433A (ja) * | 2016-04-18 | 2017-10-26 | 三菱電機株式会社 | 殺菌装置及び空調装置 |
| JP2019517305A (ja) * | 2016-05-31 | 2019-06-24 | シーダーズ−サイナイ メディカル センター | 内部の紫外線治療法 |
| US12390660B2 (en) | 2016-05-31 | 2025-08-19 | Cedars-Sinai Medical Center | Internal ultraviolet therapy |
| JP2023106524A (ja) * | 2016-05-31 | 2023-08-01 | シーダーズ-サイナイ メディカル センター | 内部の紫外線治療法 |
| JP2018023935A (ja) * | 2016-08-10 | 2018-02-15 | 学校法人立命館 | 水処理方法 |
| US20220118140A1 (en) * | 2018-01-31 | 2022-04-21 | Sensor Electronic Technology, Inc. | Humidifier Disinfection Using Ultraviolet Light |
| US12128149B2 (en) * | 2018-01-31 | 2024-10-29 | Sensor Electronic Technology, Inc. | Humidifier disinfection using ultraviolet light |
| JP2020179376A (ja) * | 2019-04-26 | 2020-11-05 | 三菱電機株式会社 | 殺菌装置および給湯装置 |
| JP2020185515A (ja) * | 2019-05-13 | 2020-11-19 | 三菱ケミカルアクア・ソリューションズ株式会社 | 放射線モジュールを用いた水処理方法、放射線モジュールが配置された水槽、及び液体殺菌用放射線モジュール |
| KR102070000B1 (ko) * | 2019-08-16 | 2020-01-23 | 김태유 | 물 살균 장치 |
| US11992699B2 (en) | 2019-10-15 | 2024-05-28 | Cedars-Sinai Medical Center | Internal ultraviolet therapy |
| JP2021137695A (ja) * | 2020-03-02 | 2021-09-16 | 学校法人関東学院 | 菌糸体等発生防止方法及び菌糸体等発生防止装置 |
| US12409339B2 (en) | 2020-08-13 | 2025-09-09 | Cedars-Sinai Medical Center | Internal ultraviolet therapy |
| JP7286034B1 (ja) * | 2022-05-19 | 2023-06-02 | 三菱電機株式会社 | 紫外光照射装置、およびこれを用いた空気調和装置 |
| WO2024106532A1 (ja) * | 2022-11-18 | 2024-05-23 | 株式会社シェルタージャパン | 二酸化炭素削減インテリア |
| JP2024073860A (ja) * | 2022-11-18 | 2024-05-30 | 株式会社シェルタージャパン | 二酸化炭素削減インテリア |
Also Published As
| Publication number | Publication date |
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| JPWO2010058607A1 (ja) | 2012-04-19 |
| US20110226966A1 (en) | 2011-09-22 |
| US8324595B2 (en) | 2012-12-04 |
| EP2394963A4 (en) | 2012-12-05 |
| EP2394963A1 (en) | 2011-12-14 |
| EP2394963B1 (en) | 2016-02-17 |
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