WO2013132927A1 - 紫外線水処理装置 - Google Patents

紫外線水処理装置 Download PDF

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Publication number
WO2013132927A1
WO2013132927A1 PCT/JP2013/052029 JP2013052029W WO2013132927A1 WO 2013132927 A1 WO2013132927 A1 WO 2013132927A1 JP 2013052029 W JP2013052029 W JP 2013052029W WO 2013132927 A1 WO2013132927 A1 WO 2013132927A1
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WO
WIPO (PCT)
Prior art keywords
ultraviolet
ultraviolet irradiation
water treatment
treatment apparatus
tubes
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
Application number
PCT/JP2013/052029
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English (en)
French (fr)
Japanese (ja)
Inventor
健志 出
法光 阿部
清一 村山
小林 伸次
竹内 賢治
相馬 孝浩
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Toshiba Corp
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Toshiba Corp
Priority date (The priority date 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 date listed.)
Filing date
Publication date
Application filed by Toshiba Corp filed Critical Toshiba Corp
Priority to IN7507DEN2014 priority Critical patent/IN2014DN07507A/en
Publication of WO2013132927A1 publication Critical patent/WO2013132927A1/ja
Priority to US14/479,199 priority patent/US20140374618A1/en
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F1/00Treatment of water, waste water, or sewage
    • C02F1/30Treatment of water, waste water, or sewage by irradiation
    • C02F1/32Treatment of water, waste water, or sewage by irradiation with ultraviolet light
    • C02F1/325Irradiation devices or lamp constructions
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2201/00Apparatus for treatment of water, waste water or sewage
    • C02F2201/32Details relating to UV-irradiation devices
    • C02F2201/322Lamp arrangement
    • C02F2201/3227Units with two or more lamps
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2201/00Apparatus for treatment of water, waste water or sewage
    • C02F2201/32Details relating to UV-irradiation devices
    • C02F2201/324Lamp cleaning installations, e.g. brushes

Definitions

  • the embodiment of the present invention relates to an ultraviolet water treatment apparatus.
  • UV rays have actions such as water sterilization, disinfection, decolorization, deodorization, and pulp bleaching.
  • ultraviolet rays have a feature that can respond immediately to changes in water quality and quantity by adjusting the output of the lamp. For this reason, an ultraviolet water treatment apparatus may be used to sterilize, disinfect, decolorize water and sewage, deodorize and decolorize industrial water, or bleach a pulp.
  • a cylindrical water cylinder and a cylindrical lamp housing having the same diameter as the water cylinder are cross-joined, and an ultraviolet lamp is accommodated inside the lamp housing in parallel with the lamp housing axis.
  • a structure in which a plurality of ultraviolet irradiation tubes made of quartz glass are attached is known. Since the ultraviolet water treatment apparatus of the first embodiment can be installed directly on the water to be treated main pipe of the water treatment facility, there is an advantage that an extra branching / merging pipe is unnecessary and the installation space can be reduced. On the other hand, the length and number of ultraviolet lamps are limited because of the compact structure of the ultraviolet water treatment apparatus of the first embodiment.
  • the diameter of the water passage cylinder is excessive or small with respect to the treatment flow rate, so that an expansion pipe or a reduction pipe for installation is necessary. And there is a disadvantage that the amount of ultraviolet irradiation is insufficient because the number of stored lamps is limited.
  • a cylindrical water cylinder and a lamp housing composed of a circular tube having a smaller diameter than the water cylinder are cross-joined, and an ultraviolet lamp is provided inside the lamp housing in parallel with the lamp housing axis.
  • an ultraviolet lamp is provided inside the lamp housing in parallel with the lamp housing axis.
  • the ultraviolet water treatment apparatus of the second embodiment has an advantage that it is suitable for a relatively large-scale treatment facility because the number of lamp housings can be appropriately increased or decreased even when the diameter of the water passage pipe is large and the required ultraviolet light amount is different. .
  • the ultraviolet water treatment apparatus of the second embodiment when used in a treatment facility that requires a large amount of ultraviolet irradiation with a small amount of treatment, similarly, the ultraviolet water Since the diameter of the water pipe of the treatment apparatus is excessively large or small, there is an inconvenience that an expansion pipe or a reduction pipe for installation is required and an excessive installation space is required.
  • a plurality of irradiation tubes in which ultraviolet lamps are housed in a quartz glass tube are arranged in a rectangular ultraviolet irradiation cylinder in a direction orthogonal to the flow direction of the water to be treated, and a plurality of the same structure is provided.
  • Stage irradiation tube rows are arranged in the direction of flow, and the circular cross section of the main pipe diameter of the water to be treated and the rectangular cross section of the rectangular ultraviolet irradiation cylinder of the rectangular treatment section as the inflow and outflow of the water to be treated.
  • the UV water treatment device of the third embodiment has the advantage that the number of irradiation tube rows constituting the UV irradiation cylinder can be increased or decreased according to the required UV irradiation amount, and the inflow and outflow portions are changed according to the pipe diameter of the facility There are advantages you can do.
  • the third embodiment has a disadvantage that the installation space for the ultraviolet water treatment apparatus is increased by the cross-sectional shape conversion connecting portion for connecting the facility pipe diameter and the rectangular ultraviolet irradiation cylinder.
  • the conventional typical ultraviolet water treatment apparatus may have the disadvantage that an excessive installation space is required due to the expansion tube, the reduction tube, or the cross-sectional shape conversion connection part.
  • an ultraviolet lamp unit having a first flange joint for piping at both ends, an ultraviolet lamp having an ultraviolet lamp and a lamp protection tube for protecting the ultraviolet lamp inside, and both ends
  • an ultraviolet water treatment apparatus provided with a second flange joint for piping and a cleaning device driving unit for driving a cleaning device for cleaning the surface of the lamp protection tube.
  • the ultraviolet lamp unit and the cleaning device drive unit of the ultraviolet water treatment apparatus are connected by the first and second piping flange joint portions.
  • This UV water treatment device has the advantage that even if the type or amount of water changes, the UV lamp unit can be easily replaced with another UV lamp unit and can be easily introduced into existing water treatment facilities. For example, in a facility that requires three ultraviolet irradiation tubes, one ultraviolet lamp unit having three ultraviolet irradiation tubes is provided, and in a facility that requires six ultraviolet irradiation tubes, three ultraviolet irradiations are provided. Two UV lamp units with tubes are provided.
  • This ultraviolet water treatment apparatus has no problem, but according to the study by the present inventor, which number of ultraviolet irradiation tubes does not exceed the amount of water to be treated (type and amount of water). There is room for improvement in terms of how it is provided. Specifically, there is room for improvement in terms of how to install an ultraviolet lamp unit for a facility that requires a number of ultraviolet irradiation tubes other than a multiple of three. For example, an ultraviolet lamp unit having two ultraviolet irradiation tubes is provided in a facility that requires two ultraviolet irradiation tubes, and four ultraviolet irradiation tubes are provided in a facility that requires four ultraviolet irradiation tubes.
  • the problem to be solved by the present invention is that an expansion tube, a reduction tube, and a cross-sectional shape conversion connection portion are unnecessary, and even if the type or amount of water changes, it can be easily introduced into an existing water treatment facility, and the manufacturing cost It is providing the ultraviolet water treatment apparatus which can reduce.
  • the ultraviolet water treatment apparatus of the embodiment includes an ultraviolet irradiation tank, an inlet pipe for supplying water to be treated, and an outlet pipe for discharging treated water.
  • the ultraviolet irradiation tank includes a plurality of ultraviolet irradiation modules.
  • the plurality of ultraviolet irradiation modules include a plurality of ultraviolet irradiation tubes, a cleaning device, and a cleaning device drive unit.
  • the plurality of ultraviolet irradiation tubes have a plurality of ultraviolet lamps and a plurality of ultraviolet lamp protection tubes for individually protecting the ultraviolet lamps.
  • the cleaning device cleans the surface of each UV lamp protection tube.
  • the cleaning device driving unit drives the cleaning device.
  • the inlet pipe has a central axis in a direction perpendicular to the central axis of each ultraviolet irradiation tube and is connected to one end of the ultraviolet irradiation tank.
  • the outlet pipe is connected to the other end of the ultraviolet irradiation tank.
  • Each of the ultraviolet irradiation modules has two ultraviolet irradiation tubes or three ultraviolet irradiation tubes.
  • FIG. 1 is a top view of the ultraviolet water treatment apparatus according to the first embodiment.
  • FIG. 2 is a front view of the ultraviolet water treatment device viewed from the direction of arrow Y in FIG.
  • FIG. 3 is a side view of the ultraviolet water treatment apparatus viewed from the direction of arrow X in FIG.
  • FIG. 4 is an explanatory diagram of a three-lamp ultraviolet irradiation module in the same embodiment.
  • FIG. 5 is an explanatory diagram of a two-lamp ultraviolet irradiation module in the same embodiment.
  • FIG. 6 is a diagram showing an example of specifications of a general medium-pressure ultraviolet lamp.
  • FIG. 7 is a diagram showing an example of the dimensions and flow rate of piping in JIS standards.
  • FIG. 1 is a top view of the ultraviolet water treatment apparatus according to the first embodiment.
  • FIG. 2 is a front view of the ultraviolet water treatment device viewed from the direction of arrow Y in FIG.
  • FIG. 3 is a side view of the ultraviolet water treatment apparatus
  • FIG. 8 is a diagram showing combinations of processing flow rate, pipe inner diameter, lamp type, and number in the same embodiment.
  • FIG. 9 is an explanatory diagram of an ultraviolet water treatment apparatus according to the second embodiment.
  • FIG. 10 is an explanatory diagram of an ultraviolet water treatment apparatus according to the third embodiment.
  • FIG. 11 is a front view of a conventional ultraviolet water treatment apparatus.
  • 12 is a cross-sectional view taken along line XX in FIG.
  • FIG. 1 is a top view of the ultraviolet water treatment apparatus according to the first embodiment
  • FIG. 2 is a front view of the ultraviolet water treatment apparatus as seen from the direction of arrow Y in FIG.
  • FIG. 3 is a side view of the ultraviolet water treatment apparatus viewed from the direction of arrow X in FIG.
  • the ultraviolet water treatment apparatus 21 includes an inlet pipe 22 for supplying non-treated water, an outlet pipe 23 for discharging treated water disposed coaxially with the inlet pipe 22, and an ultraviolet irradiation tank including a plurality of ultraviolet irradiation units 100. 100n.
  • the inlet tube 22 and the outlet tube 23 are coaxial, and the inlet tube 22 has a central axis in a direction perpendicular to the central axis of each ultraviolet irradiation tube 30 and is connected to one end of the ultraviolet irradiation tank 100n. Yes.
  • the outlet pipe 23 is connected to the other end of the ultraviolet irradiation tank 100n.
  • the ultraviolet irradiation tank 100n includes a plurality of (for example, three) ultraviolet lamps 31 and a plurality of (for example, three) ultraviolet lamp protection tubes 32 that individually protect each of the ultraviolet lamps 31 (for example, three).
  • a plurality of (for example, two) ultraviolet irradiations having a cleaning device 40 for cleaning the surface of each ultraviolet lamp protection tube 32, and a cleaning device drive unit 50 for driving the cleaning device 40.
  • a module 103 is provided.
  • the ultraviolet irradiation tank 100n includes a plurality of ultraviolet irradiation units 100 in which a plurality of ultraviolet irradiation modules 103 are individually incorporated, and the respective ultraviolet irradiation units 100 are integrally arranged in a row.
  • the ultraviolet irradiation tank is not limited to a structure composed of a plurality of ultraviolet irradiation units, but has an integral structure composed of a tube in which each ultraviolet irradiation module is incorporated, as described in the second and third embodiments. Also good.
  • FIG. 1 An enlarged view of the ultraviolet irradiation module 103 having the three ultraviolet irradiation tubes 30 is shown in FIG.
  • Each ultraviolet irradiation unit 100 has a box-like shape having sides longer than the outer diameter of the inlet tube 22 and the outlet tube 23, and is connected to each other by welding. Ribbed to reinforce the strength.
  • the ultraviolet irradiation tank 100n including each ultraviolet irradiation unit 100 also has a box shape.
  • Each ultraviolet irradiation unit 100 is not limited to a box shape, and may be changed to a unit having a cylindrical shape having an inner diameter equal to or larger than the outer diameter of the inlet tube 22 and the outlet tube 23.
  • the inlet tube 22 is connected to the side surface of one ultraviolet irradiation unit 100, and the outlet tube 23 is connected to the side surface opposite to the surface where the inlet tube 22 of the other ultraviolet irradiation unit 100 is connected.
  • An opening is provided in front of each ultraviolet irradiation unit 100 so that each ultraviolet irradiation module 103 can be installed.
  • each lid flange 101 of each ultraviolet irradiation module 103 is screwed in a watertight structure with a watertight rubber packing or the like (not shown). Thereby, each ultraviolet irradiation module 103 is removed as needed, and the inside of each ultraviolet irradiation unit 100 can be opened.
  • Three ultraviolet lamp protection tubes 32 one screw-shaped cleaning device drive shaft (rotating shaft) 51 that moves the cleaning device 40, and the lid flange 101 (front surface) and the back surface of each ultraviolet irradiation unit 100,
  • the guide rail 52 is parallel to the central axis of the ultraviolet irradiation unit 100 by the ultraviolet lamp (protection tube) fixture 53, the drive shaft fixture 54, and the guide rail fixture 55 (the central axis of the inlet tube 22 and the outlet tube 23). Is fixed vertically).
  • each of the ultraviolet irradiation modules 102 and 103 has two ultraviolet irradiation tubes 30 or three ultraviolet irradiation tubes 30.
  • the length along the central axis of each ultraviolet irradiation tube 30 is, for example, within a range of ⁇ 200 mm from the light emission length of each ultraviolet lamp 31. It is preferable that the light emission length be equal to 31.
  • the ultraviolet irradiation module 102 includes two ultraviolet irradiation tubes 30 having two ultraviolet lamps 31 and two ultraviolet lamp protection tubes 32 that individually protect each ultraviolet lamp 31.
  • the cleaning device 40 for cleaning the surface of each UV lamp protection tube 32 and the cleaning device drive unit 50 for driving the cleaning device 40 are provided.
  • Each ultraviolet irradiation unit 100 can be attached with an ultraviolet irradiation module 102 having two ultraviolet irradiation tubes 30 instead of the ultraviolet irradiation module 103 having three ultraviolet irradiation tubes 30.
  • the ultraviolet irradiation unit 100 has a two-stage configuration.
  • the ultraviolet irradiation unit can be added to any number of stages, such as three stages, four stages,... 103 (three ultraviolet irradiation tubes) and the ultraviolet irradiation module 102 (two ultraviolet irradiation tubes) can be changed for each unit.
  • the ultraviolet irradiation module 102 having the two ultraviolet irradiation tubes 30 and the ultraviolet irradiation module 103 having the three ultraviolet irradiation tubes 30 are incorporated.
  • FIG. 6 shows an example of specifications for medium-pressure ultraviolet rays.
  • the discharge input power Pi is a power value supplied to the ultraviolet lamp. The greater the discharge input power Pi, the longer the emission length Li, and the greater the UV output UVC emitted.
  • the diameter of a pipe used in a water treatment facility or the like generally has a maximum water flow velocity of about 2.5 to 3.0 [m / sec] in consideration of treatment flow rate and pressure loss reduction in the pipe.
  • the inlet pipe 22 and the outlet pipe 23 of this embodiment are selected to have an inner diameter within the range of 2.5 to 3.5 [m / sec] with respect to the maximum amount of treated water in the ultraviolet irradiation tank 100n.
  • FIG. 7 shows the dimensions of the pipe defined by the JIS standard and the flow rate when the flow velocity is 3.0 [m / sec].
  • Each ultraviolet irradiation unit 100 uses the standard water tank shown in FIG. 7 from the relationship between the ultraviolet lamp shown in FIG. 6 and the piping standard shown in FIG. 7, and the water pipe inner diameter and the light emission length Li are the same. It is composed of a combination of ultraviolet lamps. Specifically, for example, a pipe having a nominal diameter of 250A (inlet pipe 22, outlet pipe 23), a pipe of lamp A, 500A, a pipe of lamp C, 1000A (inlet pipe 22, outlet pipe 23), and a lamp F, The inner diameter and the light emission length of the inlet tube 22 and the outlet tube 23 are configured to be equal.
  • FIG. 8 shows a combination of the processing flow rate to be processed, the above-mentioned combined piping (inlet pipe 22, outlet pipe 23) inner diameter, lamp type and number.
  • the indicator bacterium (E. coli phage MS2) is irradiated with ultraviolet rays, and the converted ultraviolet ray irradiation (RED) obtained by biologically converting the ultraviolet ray irradiation amount from the inactivation amount of the indicator bacterium is 40 [mJ. / Cm 2 ], the difference in water quality is taken into account when installing the ultraviolet lamps 31 having the number of lamps equal to or greater than the value.
  • This water quality means the ultraviolet transmittance (UVT) of water to be treated.
  • the total number of lamps of the ultraviolet water treatment device 21 varies depending on the treatment flow rate, water quality, and the selected lamp output. For example, if the flow rate is 50,000 to 200,000 m 3 / d, the ultraviolet transmittance (UVT) is 70% or more, and the selected lamps C, E, and F are used, it is necessary to install 4 to 21 lamps.
  • UVT ultraviolet transmittance
  • the ultraviolet water treatment apparatus for water purification is often designed with an ultraviolet transmittance (UVT) of 95% or more, and in that case, a combination of 4 to 9 ultraviolet lamps 31 is used.
  • UVT ultraviolet transmittance
  • an ultraviolet lamp having a light emission length in the range of ⁇ 200 mm of the pipe diameter is selected as a combination in which the inner diameter and the light emission length of the inlet tube 22 and the outlet tube 23 are equivalent.
  • the ultraviolet irradiation module 103 (three ultraviolet irradiation tubes) and the ultraviolet irradiation module 102 (two ultraviolet irradiation tubes) are selected and incorporated in the ultraviolet irradiation unit 100 so as to have a predetermined number of lamps.
  • the number of lamps having a converted ultraviolet ray irradiation (RED) of 40 [mJ / cm 2 ] or more with Escherichia coli phage MS2 as an indicator bacterium is used.
  • the ultraviolet irradiation module 103 (three ultraviolet irradiation tubes) is used so that the total number of lamps can be irradiated with an irradiation amount equal to or greater than the converted ultraviolet irradiation amount obtained from the inactivation amount of the bacteria. ) And the ultraviolet irradiation module 102 (two ultraviolet irradiation tubes) may be combined.
  • the cleaning device 40 includes a cleaning brush 41 installed to rub the surface of the ultraviolet lamp protection tube 32 and a lamp protection tube cleaning plate 42 for fixing the cleaning brush 41.
  • the lamp protection tube cleaning plate 42 is fixed in the box-shaped ultraviolet irradiation unit 100 via a cleaning device drive shaft 51 and a guide rail 52.
  • the lamp protection tube cleaning plate 42 has a hole in which a female screw is cut, and a screw-like cleaning device drive shaft 51 is fitted into this hole by a screw action. That is, the lamp protection tube cleaning plate 42 is screwed to the screw-shaped cleaning device drive shaft 51.
  • the cleaning device drive shaft 51 is fixed to each lid flange 101 on the front surface of each ultraviolet irradiation module 103 and the back surface of each ultraviolet irradiation unit 100 with a structure that rotates while maintaining water tightness by a drive shaft fixing tool 54. Yes.
  • a drive motor (not shown) is connected to one end of the cleaning device drive shaft 51.
  • the guide rail 52 is fixed to the ultraviolet irradiation unit 100 by a guide rail fixture 55.
  • the treated water 60 passes through each ultraviolet irradiation unit 100 while being irradiated with ultraviolet rays from the left side in FIG. 1 and FIG. 2 (front side in FIG. 3), and the right side in FIG. 1 and FIG. To the back of the paper surface) as treated water 61.
  • the drive motor is driven, the screw-shaped cleaning device drive shaft 51 connected to the drive motor rotates, and the lamp protection tube cleaning plate 42 attached to the cleaning device drive shaft 51 extends along the guide rail 52. It reciprocates inside the ultraviolet irradiation unit 100.
  • the cleaning brush 41 fixed to the lamp protection tube cleaning plate 42 reciprocates while being in contact with the ultraviolet lamp protection tube 32, and the surface of the ultraviolet lamp protection tube 32 is cleaned.
  • a plurality of ultraviolet irradiation units each including the two ultraviolet irradiation tubes 30 or the plurality of ultraviolet irradiation modules 102 and 103 each having the three ultraviolet irradiation tubes 30 are incorporated.
  • an ultraviolet irradiation tank 100n consisting of 100, it is possible to easily introduce into an existing water treatment facility even if the type or amount of water changes, while eliminating the need for an expansion tube, a reduction tube, and a cross-sectional shape conversion connection portion, In addition, the manufacturing cost can be reduced.
  • the manufacturing cost can be reduced.
  • two ultraviolet irradiation tubes having two ultraviolet irradiation tubes are provided in a facility requiring four ultraviolet irradiation tubes in contrast to a facility requiring two to five ultraviolet irradiation tubes.
  • the module 102 may be provided, and if an ultraviolet irradiation module 102 having two ultraviolet irradiation tubes and an ultraviolet irradiation module 103 having three ultraviolet irradiation tubes are provided in a facility that requires five ultraviolet irradiation tubes. Therefore, the manufacturing cost can be reduced as compared with the conventional case.
  • the ultraviolet ray generated from the ultraviolet lamp 31 is irradiated to the treated water 60 without waste, It can contribute to disinfection (sterilization) or oxidation treatment of microorganisms, organic substances, and inorganic substances to be treated in the water 60 to be treated.
  • the ultraviolet water treatment apparatus 21 is targeted only by changing the number of units that combine the ultraviolet module 103 of the three ultraviolet irradiation tubes and the two ultraviolet irradiation modules 102 in particular.
  • a sufficient irradiation amount is obtained regardless of whether the total number of lamps is odd or even with respect to all the processing conditions (ultraviolet ray irradiation amount, treatment flow rate, water quality (ultraviolet light transmittance (UVT) of water to be treated)). be able to.
  • FIG. 11 is a front view of an ultraviolet water treatment apparatus using a medium-pressure ultraviolet lamp
  • FIG. 12 is a sectional view taken along line XX in FIG.
  • the ultraviolet water treatment apparatus 1 includes a tubular water trunk 3 through which water 2 to be treated flows, a tubular water trunk 3 cross-joined at the center of the tubular water trunk 3, and a lamp housing 4 having the same tube diameter.
  • the lamp housing 4 is provided with a lamp protection tube 5 made of quartz glass and six UV irradiation tubes 7 in which UV lamps 6 are arranged in the protection tube 5 at equal intervals. Both ends of each ultraviolet irradiation tube 7 are sealed with a lamp housing lid 8 by a watertight O-ring (not shown) and an O-ring retainer 9.
  • the lamp housing 4 incorporates a cleaning device including a screw-shaped cleaning plate drive shaft 10, a drive motor 11, a cleaning plate 12, and a lamp protection tube cleaning wiper 13.
  • a cleaning device including a screw-shaped cleaning plate drive shaft 10, a drive motor 11, a cleaning plate 12, and a lamp protection tube cleaning wiper 13.
  • ultraviolet lamps having the same specifications are used.
  • symbol "14" in a figure shows treated water.
  • the total length, light emission length, and thickness of the ultraviolet lamp 6 are determined by the power consumption (or ultraviolet output) of the ultraviolet lamp 6 (FIG. 6). Therefore, in the case of a circular cross section such as a tubular water trunk, the width of the center line portion is maximum and gradually becomes narrower in the vertical direction of the cross section. Therefore, when selecting the UV lamp 6 to be installed, as shown in FIG. 12, when selecting according to the vertical position width of the cross section, the UV lamp 6 at the center position has an UV lamp with respect to the water passage width. The light emission length of 6 is shortened. As a result, sufficient ultraviolet light is not applied to the water to be treated 2 flowing through the region F at both ends of the ultraviolet lamp 6.
  • the ultraviolet lamp 6 when the ultraviolet lamp 6 is selected according to the width of the central portion of the cross section of the tubular water tank, the ultraviolet lamp 6 is formed with respect to the width of the tubular water tank in the upper section and the lower section.
  • the light emission length of becomes longer. For this reason, the ultraviolet rays are unnecessarily irradiated even in a region that does not contribute to the treatment of the water to be treated 2.
  • an ultraviolet lamp 31 having a long light emission length (equivalent to the pipe diameter) is selected in advance, and the inlet pipe 22 and the outlet pipe 23 are connected to a box-type unit that is larger than the pipe diameter. Therefore, it is possible to disinfect (sterilize) or oxidize by efficiently irradiating the water to be treated 60 with all ultraviolet rays emitted from the ultraviolet lamp 31.
  • Three or two ultraviolet lamps 31 and the cleaning device 40 are integrated as an ultraviolet irradiation module 103 (three ultraviolet irradiation tubes) or an ultraviolet irradiation module 102 (two ultraviolet irradiation tubes).
  • the ultraviolet irradiation modules 103 and 102 are fixed to each ultraviolet irradiation unit 100 by a lid flange 101, an ultraviolet lamp (protection tube) fixture 53, a drive shaft fixture 54, and a guide rail fixture 55. Since each ultraviolet irradiation module 100 can be pulled out together with the lid flange 101 only by removing the fixtures 53 to 55, the inside of the ultraviolet irradiation unit 100, in particular, the maintenance of the cleaning device 40 becomes easy.
  • the ultraviolet irradiation module 103 (three ultraviolet irradiation tubes) or the ultraviolet irradiation module 102 (two ultraviolet irradiation tubes) is downsized by modularizing the three or two ultraviolet irradiation tubes 30. Therefore, the modules 102 and 103 can be easily pulled out from the ultraviolet irradiation unit 100, and maintenance of the inside of the unit, in particular, the cleaning device 40 is facilitated.
  • FIG. 9 is an explanatory diagram of the ultraviolet water treatment apparatus according to the second embodiment.
  • the same parts as those in the above-mentioned drawings are denoted by the same reference numerals, detailed description thereof is omitted, and different parts are mainly described here. In the following embodiments, the same description is omitted.
  • the second embodiment is a modification of the first embodiment.
  • the ultraviolet irradiation tank 100n including the ultraviolet irradiation units 100 shown in FIGS. 1 to 5, four ultraviolet water treatment apparatuses 71 are provided.
  • An ultraviolet irradiation tank 72 having an integral structure composed of a rectangular tube in which an ultraviolet irradiation module 102 (two ultraviolet irradiation tubes) is incorporated is provided.
  • This rectangular tube has a box shape having sides with a length equal to or greater than the outer diameter of the inlet tube 22 and the outlet tube 23.
  • Each ultraviolet irradiation module 102 is incorporated in the ultraviolet irradiation tank 72 so that the positions of the ultraviolet irradiation tubes 30 in the height direction are shifted from each other.
  • the number of ultraviolet irradiation modules 102 to be incorporated is not limited to four, and any number can be incorporated. Further, some or all of the ultraviolet modules 102 may be replaced with ultraviolet irradiation modules 103 (three ultraviolet irradiation tubes). Each ultraviolet irradiation module 102 may have a fixed height position (for example, a position where the central axis of the ultraviolet irradiation module 102 and the central axes of the inlet tube 22 and the outlet tube 23 are orthogonal to each other). In particular, in the first embodiment, it is necessary to manufacture a plurality of ultraviolet irradiation units 100. In this case, it is possible to mass-produce units having the same shape by making the height constant, so that manufacturing costs can be reduced.
  • the pipe diameter of a large flow rate and low UVT is 1000A or more and the number of lamps is large, it is possible to shorten the manufacturing period by manufacturing only the module and processing the ultraviolet irradiation tank 72 so that the module can be fixed. Moreover, the manufacturing cost can be reduced.
  • each of the ultraviolet irradiation modules 102 and 103 when the piping system of a large flow rate and low UVT is 1000 A and the number of lamps is large, the upper and lower portions of the ultraviolet irradiation tank 72 are separated from the ultraviolet lamp 31. Sufficient ultraviolet rays can be irradiated to the basin, and the processing efficiency can be improved. As a result, the power cost can be reduced and the total number of lamps required can be reduced, so that the manufacturing cost can be reduced.
  • FIG. 10 is an explanatory diagram of an ultraviolet water treatment apparatus according to the third embodiment.
  • the third embodiment is a modification of the first embodiment.
  • the ultraviolet irradiation tank 100n including the ultraviolet irradiation units 100 shown in FIGS. 1 to 5, four ultraviolet water treatment apparatuses 81 are provided.
  • An ultraviolet irradiation tank 82 having an integral structure composed of a cylindrical tube in which an ultraviolet irradiation module 102 (two ultraviolet irradiation tubes) is incorporated is provided.
  • the cylindrical tube has a cylindrical shape having an inner diameter equal to or larger than the outer diameter of the inlet tube 22 and the outlet tube 23.
  • Each ultraviolet irradiation module 102 is incorporated in the ultraviolet irradiation tank 82 so that the positions of the ultraviolet irradiation tubes 30 in the height direction are shifted from each other.
  • the number of ultraviolet irradiation modules 102 to be incorporated is not limited to four, and any number can be incorporated. Further, some or all of the ultraviolet modules 102 may be replaced with ultraviolet irradiation modules 103 (three ultraviolet irradiation tubes). Each ultraviolet irradiation module 102 may have a fixed height position (for example, a position where the central axis of the ultraviolet irradiation module 102 and the central axes of the inlet tube 22 and the outlet tube 23 are orthogonal to each other).
  • a normal commercially available cylindrical tube can be used as the ultraviolet irradiation tank 82, and the manufacturing period can be shortened and the manufacturing cost can be reduced. .
  • each of the ultraviolet irradiation modules 102 and 103 by changing the height of each of the ultraviolet irradiation modules 102 and 103, a large flow rate, low UVT piping system is far from the ultraviolet lamp 31 when the number of lamps is 1000A and the number of lamps is large. Sufficient ultraviolet rays can be irradiated to the upper and lower basins of the ultraviolet irradiation tank 82, and the processing efficiency can be improved. As a result, the power cost can be reduced and the total number of lamps required can be reduced, so that the manufacturing cost can be reduced.
  • the ultraviolet irradiation tanks 100n and 72 each of which includes a plurality of ultraviolet irradiation modules 102 and 103 each having two ultraviolet irradiation tubes 30 or three ultraviolet irradiation tubes 30 are individually incorporated.
  • 82 eliminates the need for expansion pipes, reduction pipes, and cross-sectional shape conversion connections, and can be easily introduced into existing water treatment facilities even if the type or amount of water changes, and reduces manufacturing costs. can do.

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PCT/JP2013/052029 2012-03-08 2013-01-30 紫外線水処理装置 Ceased WO2013132927A1 (ja)

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IN7507DEN2014 IN2014DN07507A (enExample) 2012-03-08 2013-01-30
US14/479,199 US20140374618A1 (en) 2012-03-08 2014-09-05 Ultraviolet water treatment device

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JP2012-052150 2012-03-08
JP2012052150A JP2013184127A (ja) 2012-03-08 2012-03-08 紫外線水処理装置

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