EP0970019A1 - Appareil pour le traitement electrochimique de l'eau et de solutions salines aqueuses - Google Patents

Appareil pour le traitement electrochimique de l'eau et de solutions salines aqueuses

Info

Publication number
EP0970019A1
EP0970019A1 EP98912629A EP98912629A EP0970019A1 EP 0970019 A1 EP0970019 A1 EP 0970019A1 EP 98912629 A EP98912629 A EP 98912629A EP 98912629 A EP98912629 A EP 98912629A EP 0970019 A1 EP0970019 A1 EP 0970019A1
Authority
EP
European Patent Office
Prior art keywords
chamber
working chamber
aqueous salt
salt solution
water
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
EP98912629A
Other languages
German (de)
English (en)
Inventor
Alexey Yurievich Popov
Dmitriy Alekseyevich Popov
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.)
Cantel Medical UK Ltd
Original Assignee
Sterilox Technologies International Ltd
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 Sterilox Technologies International Ltd filed Critical Sterilox Technologies International Ltd
Publication of EP0970019A1 publication Critical patent/EP0970019A1/fr
Ceased legal-status Critical Current

Links

Classifications

    • 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
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • C02F1/461Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
    • C02F1/467Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction
    • C02F1/4672Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction by electrooxydation
    • C02F1/4674Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction by electrooxydation with halogen or compound of halogens, e.g. chlorine, bromine
    • 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
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • C02F1/461Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
    • C02F1/467Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction
    • C02F1/4672Treatment of water, waste water, or sewage by electrochemical methods by electrolysis by electrochemical disinfection; by electrooxydation or by electroreduction by electrooxydation
    • 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
    • C02F1/001Processes for the treatment of water whereby the filtration technique is of importance
    • 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
    • C02F1/46Treatment of water, waste water, or sewage by electrochemical methods
    • C02F1/461Treatment of water, waste water, or sewage by electrochemical methods by electrolysis
    • C02F1/46104Devices therefor; Their operating or servicing
    • 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
    • C02F2201/46Apparatus for electrochemical processes
    • C02F2201/461Electrolysis apparatus
    • C02F2201/46105Details relating to the electrolytic devices
    • C02F2201/46115Electrolytic cell with membranes or diaphragms
    • 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
    • C02F2201/46Apparatus for electrochemical processes
    • C02F2201/461Electrolysis apparatus
    • C02F2201/46105Details relating to the electrolytic devices
    • C02F2201/46155Heating or cooling
    • CCHEMISTRY; METALLURGY
    • C02TREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02FTREATMENT OF WATER, WASTE WATER, SEWAGE, OR SLUDGE
    • C02F2301/00General aspects of water treatment
    • C02F2301/06Pressure conditions
    • C02F2301/066Overpressure, high pressure

Definitions

  • the present invention relates to the electrochemical treatment of water and aqueous solutions of salt with the aim of altering the oxidising and reducing properties of the water or the aqueous solutions of salt.
  • the water pressure in the working chamber is higher than that in the auxiliary chamber, and gaseous electrolysis products are vented from the gas-separating chamber by way of a gas-relief valve.
  • This method allows the pH value of the water being treated to be reduced from 7 to around 2 when the anode chamber is used as the working chamber. If instead the cathode chamber is used as the working chamber, the pH value of the water to be treated can be increased to around 12.
  • This known method of electrolytic treatment is applied only to water having a relatively low concentration of dissolved salts and minerals (less than lOgdm "3 ) , and the electricity supplied for the electrolytic treatment of water in the working chamber is only around 200 to 3000Cdrrf 3 .
  • the water to be treated has such a low concentration of dissolved salts and minerals, there is consequently a low concentration of useful electrolysis products (such as the chlorate (I) ion CIO " which is produced when a sodium chloride solution is used in the auxiliary chamber and which acts as a disinfecting agent) .
  • useful electrolysis products such as the chlorate (I) ion CIO " which is produced when a sodium chloride solution is used in the auxiliary chamber and which acts as a disinfecting agent.
  • water with a low concentration of salts and minerals tends to have a high ohmic resistance, which means that energy is used inefficiently when performing electrolysis.
  • the small amount of electricity (200 to 3000Cd ⁇ T 3 ) applied to the water in the working chamber is insufficient to ensure the full transformation of the ions of dissolved salts (such as chloride ions Cl " ) into useful electrolysis products (such as chlorate (I) ions CIO " ) .
  • the incomplete electrolysis of dissolved salts means that a greater than theoretically necessary amount of salt must initially be dissolved in order to provide a required concentration of electrolysis products. This excess of dissolved salt can mean that the output of the electrolytic cell is overly corrosive, and when used as a disinfectant wash, tends to leave a coating of crystalline salt on surfaces which have been washed.
  • Chloride ions transform into gaseous chlorine at the anode in accordance with the following equation: 2C1 " ⁇ Cl 2 + 2e "
  • Electrolysis of water takes place in the cathode chamber.
  • the equation is as follows: 2H 2 0 + 2e " ⁇ 20H “ + H 2 Consequently gaseous hydrogen is liberated at the cathode, and the concentration of hydroxide ions rises, thereby increasing the water pH in the cathode chamber.
  • the oxidizing ability of water is determined by the concentration of hypochlorous acid, and the reduction ability by the concentration of hydroxide ions.
  • Water which has been under electrolytic treatment according to the method described in GB 2253860 has a low concentration of hypochlorous acid and hydroxide ions due to the low mineralisation of the initial water.
  • One way of estimating the effectiveness of a sterilising solution produced by the electrolytic treatment of a salt solution is to measure the concentration of "free chlorine", by which is understood the concentration of hypochlorous acid in water and the concentration of the chlorate ion (formed by the dissociation of hypochlorous acid) .
  • the concentration of free chlorine in water which has been treated in the anode chamber of the electrolytic cell of GB 2253860 does not usually exceed 0.2 to 0.6gdm "3 , although the solubility of gaseous chlorine in water is much higher (7.3gdm "3 at 20°C) . It is therefore apparent that water which has been under electrolytic treatment in accordance with the known method has a concentration of free chlorine not more than 3 to 10% of the possible maximum. This low concentration is a result of the fact that only a small proportion of the chloride ions which are drawn across the permeable membrane from the cathode flow chamber to the anode flow chamber actually reach the anode to be combined so as to form gaseous chlorine . Most of the chloride ions in the anode chamber are carried out of the electrolytic cell with the output of the anode flow chamber before reaching the anode itself.
  • a method of treating an aqueous salt solution in an electrolytic cell comprising a working chamber and an auxiliary chamber separated from each other by a permeable membrane, one chamber including an anode and the other a cathode, and each chamber having an input line and an output line, wherein: i) a relatively concentrated aqueous salt solution is supplied under pressure to the working chamber through its respective input line; ii) a first proportion of the relatively concentrated solution is filtered under pressure through the permeable membrane into the auxiliary chamber; iii) an electric current is applied between the cathode and the anode through the aqueous salt solution and the permeable membrane so as to cause electrolysis of the aqueous salt solution; iv) a second proportion of the aqueous salt solution in the working chamber is output through the output line of the working chamber and directly recirculated to the input line of the working chamber; and v) gaseous electrolysis products from the working
  • a third proportion of the aqueous salt solution in the working chamber, together with any gaseous electrolysis products from the working chamber, is output through the output line of the working chamber to a gas/liquid separator.
  • the gaseous electrolysis products may then be dissolved in a supply of water, for example mains water, by way of a gas/liquid mixer such as a venturi or the like, and the third proportion of the aqueous salt solution either discharged or returned to the input line of the working chamber.
  • a proportion of the aqueous salt solution in the auxiliary chamber is output through the output line of the auxiliary chamber and recirculated, by way of a gas/liquid separation chamber, to the input line of the auxiliary chamber.
  • an apparatus for the electrolytic treatment of an aqueous salt solution comprising an electrolytic cell having a working chamber and an auxiliary chamber separated from each other by a permeable membrane, one chamber including an anode and the other a cathode, and each chamber having an input line and an output line, wherein: i) the input line of the working chamber is adapted to receive a supply of aqueous salt solution; ii) the working chamber is provided with a recirculation loop in the form of a conduit directly linking the output and the input lines of the working chamber; iii) the output line of the working chamber is additionally connected by way of a pressure regulator to a gas/liquid separator provided with a gas output line and a liquid output line, the gas output line being connected to a gas/liquid mixer.
  • an apparatus for the electrochemical treatment of aqueous salt solutions containing at least one midstream diaphragm electrolyser which contains in turn a working and an auxiliary chamber equipped with separate entry and exit nozzles, characterised in that: i) the working chamber is equipped with a closed circulation contour which takes the form of a pipe connecting the entry and exit nozzles of the anode chamber; ii) the entry nozzle is connected in its turn by a pipe for supplying aqueous salt solution to the working chamber with a device for increasing the pressure of the aqueous salt solution supplied to the working chamber; and iii) the exit nozzle of the working chamber is connected by a pipe equipped with a pressure regulator to a gas separation tank which is connected in an upper part to a gas and liquid mixer and in a lower part to a discharge pipe.
  • a filter is positioned on the pipe for supplying the aqueous salt solution to the working chamber.
  • This filter helps to remove insoluble impurities which may be present in the supply of aqueous salt solution and which might otherwise clog the permeable membrane .
  • the working chamber contains the anode and the auxiliary chamber contains the cathode, although this arrangement may be reversed in certain applications.
  • the Figure shows an electrolytic cell comprising an anode chamber 1 which is bounded by an anode 2 and a ceramic semi-permeable diaphragm 3, and a cathode chamber 4 which is bounded by a cathode 5 and the diaphragm 3.
  • the electrolytic cell also has anode and cathode chamber entry nozzles 6 and 7 and exit nozzles
  • the entry nozzle 6 of the anode chamber 1 is connected to a supply pipe 10 which supplies aqueous salt solution (supply A in the Figure) and means 11 for increasing the pressure of the aqueous salt solution.
  • the exit nozzle 8 of the anode chamber 1 is connected to the entry nozzle 6 by a pipe 12 which forms the recirculation loop of the anode chamber 1.
  • the exit nozzle 8 of the anode chamber 1 is additionally connected by a pipeline 13 equipped with a pressure regulator 14 to a gas separation tank 15.
  • This tank 15 is connected by a pipe 16 to a gas and liquid mixer 17 positioned on the pipe 18 which is used for supplying water being given oxidising properties to the mixer 17 (shown as supply C in the Figure 1) .
  • In the lower part of the gas separation tank 15 is a discharge pipe 19.
  • a pipe 20 with a stop cock 21 is connected to the exit nozzle 7 of the cathode chamber 4 for supplying auxiliary water or aqueous salt solution to the cathode chamber 4 (shown as supply B in the Figure) .
  • the exit nozzle 9 of the cathode chamber 4 is connected by a pipe 22 to a gas separation tank 23, which is connected to the entry nozzle 7 by a pipe 24 which creates a recirculation loop for the cathode chamber 4.
  • the gas separation tank 23 is equipped with a discharge pipe 25 and an outlet 26 for releasing the gaseous products of electrolysis into the atmosphere.
  • a filter 27 may be positioned on the pipe 10 for supplying aqueous salt solution to the anode chamber 1.
  • aqueous salt solution with a high mineral content (shown as supply A in the Figure) , for example a saturated solution of sodium chloride, is supplied to the anode chamber 1 under excess pressure with the help of the device 11. Under the action of this pressure, the aqueous salt solution from the anode chamber 1 penetrates through the ceramic diaphragm 3 and fills the cathode chamber 4. After the anode and cathode chambers 1,4 are filled with aqueous salt solution, an electric current is supplied across the anode 2 and the cathode 5.
  • supply A shown as supply A in the Figure
  • chloride ions on the surface of the anode 2 are turned into gaseous chlorine, which is partially dissolved in the aqueous salt solution and, partly in the form of gas bubbles together with bubbles of oxygen formed during the electrolysis of the water, is raised into the upper part of the anode chamber 1.
  • the anolyte obtained during the anodic treatment of the aqueous salt solution is drawn along with the gaseous products of electrolysis and leaves the anode chamber 1 by way of the exit nozzle 8.
  • a greater proportion of the anolyte is separated from the gas and is directly returned, by way of pipe 12, to the entry nozzle 6, through which it is returned to the anode chamber 1.
  • the greater part of the anolyte circulates around a closed contour formed by the anode chamber 1 and the pipe 12 which connects the nozzles 8 and 6.
  • the gaseous products of electrolysis together with a lesser proportion of the anolyte, enter the gas separation tank 15 by way of pipe 13 and a pressure regulator 14 (which maintains the pressure, necessary for the anolyte to pass through the diaphragm 3 into the cathode chamber 4 from the anode chamber 1) .
  • the gaseous products of electrolysis are separated from the anolyte in a tank 15 and enter a gas and liquid mixer 17 (for which a water-jet pump, venturi or similar may be used) by way of a pipe 16.
  • the mixer 17 is positioned on a pipe 18 through which water, for example mains water, enters as supply C. Oxidising properties are given to this water after the gaseous products of electrolysis formed in the anode chamber 1 are dissolved therein.
  • the captured anolyte is discharged from the gas separation tank 15 by way of a pipe 19 and may be returned to the anode chamber 1 for repeated treatment for a fuller use of the remaining dissolved salt.
  • the return of the anolyte from the tank 15 to the anode chamber 1 is carried out with the help of the device 11 for increasing the water pressure.
  • This device may take the form of a pump connected to an aqueous salt solution supply tank, or a hermetic tank containing such a solution in which excess pressure is created using compressed air, or a tank with containing such a solution which is positioned at a higher level than the electrolytic cell .
  • aqueous salt solution supply tank or a hermetic tank containing such a solution in which excess pressure is created using compressed air, or a tank with containing such a solution which is positioned at a higher level than the electrolytic cell .
  • hydrogen bubbles are formed at the cathode 5 under the action of the electric current.
  • the catholyte obtained during the processing of aqueous salt solution in the cathode chamber 4, is saturated with hydroxide ions and takes on reducing properties.
  • the hydrogen is separated from the catholyte and is passed out into the atmosphere through an outlet 25.
  • the catholyte may be returned from the gas separation tank 23 into the cathode chamber 4 by way of a pipe 22 and the entry nozzle 7. Excess catholyte is discharged from the gas separation tank 23 by way of a pipe 24.
  • the catholyte discharged takes the form of water with reducing properties.
  • Auxiliary aqueous solution (supply B in the Figure) is supplied to the cathode chamber 4 through the entry nozzle 7 by way of a pipe 20.
  • An acid solution intended for removing cathode deposits from the surface of the cathode 5, or mains water supplied to the cathode chamber 4 for cooling the electrolyser in the event of its overheating, may be used as the auxiliary aqueous solution.
  • a filter 27 may be used for removing insoluble pollutants from the supply A of aqueous salt solution.
  • the aqueous salt solution for example sodium chloride solution
  • the aqueous salt solution is efficiently processed in the present invention, firstly because the anolyte is subjected to repeated anodic treatment due to the direct recirculation of the aqueous salt solution, and secondly because the anolyte which is carried away from the anode chamber 1 by the gaseous products of electrolysis is separated therefrom in the gas separation tank 15 and returned to the anode chamber 1 for repeated treatment.
  • a saving of electrical energy is also achieved, because the anode and cathode chambers 1,4 are filled with aqueous salt solutions with a relatively high mineral content and consequent low ohmic resistance. Furthermore, the device 11 for increasing the pressure of the aqueous salt solution supplied to the anode chamber 1 and the pressure regulator 14 positioned on the pipe 13 which connects the exit nozzle 8 of the anode chamber 1 to the gas separation tank 14 helps to ensure that the cathode chamber 4 is supplied through the ceramic diaphragm 3 with aqueous salt solution having a relatively high mineral content.
  • a filter 27 on the pipe 10 supplying aqueous salt solution to the anode chamber 1 helps to prevent insoluble impurities in the supply of aqueous salt solution from blocking the pores of the ceramic diaphragm 3.
  • the performance of an embodiment of the present invention has been experimentally compared with the performance of the device disclosed in GB 2253860.
  • the consumption of sodium chloride in the embodiment of the present invention was 7.5 times lower than in the prior art device.
  • the consumption of electrical energy was one half of that of the prior art device.

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  • Chemical & Material Sciences (AREA)
  • Chemical Kinetics & Catalysis (AREA)
  • Electrochemistry (AREA)
  • General Chemical & Material Sciences (AREA)
  • Life Sciences & Earth Sciences (AREA)
  • Hydrology & Water Resources (AREA)
  • Engineering & Computer Science (AREA)
  • Environmental & Geological Engineering (AREA)
  • Water Supply & Treatment (AREA)
  • Organic Chemistry (AREA)
  • Electrolytic Production Of Non-Metals, Compounds, Apparatuses Therefor (AREA)
  • Water Treatment By Electricity Or Magnetism (AREA)

Abstract

On décrit un procédé et un appareil pour traiter l'eau et des solutions salines aqueuses par électrolyse. Une solution saline aqueuse (A) relativement concentrée est placée, sous pression, à l'intérieur de la chambre de travail (1) d'une cellule électrolytique, laquelle cellule étant constituée d'une chambre de travail (1) et d'une chambre secondaire (4) séparées par une membrane perméable (3). Une première partie de la solution (A) est passée dans la chambre secondaire (4) à travers la membrane (3), tandis qu'une deuxième partie de la solution (A) est extraite de la chambre de travail (1) et recirculée directement dans ladite chambre par le biais d'un tuyau (12). Des gaz (tels que le chlore), libérés dans la chambre de travail pendant l'électrolyse, sont dissouts dans un apport d'eau (C) de manière à générer une source d'approvisionnement en eau ayant des propriétés d'oxydation.
EP98912629A 1997-03-24 1998-03-24 Appareil pour le traitement electrochimique de l'eau et de solutions salines aqueuses Ceased EP0970019A1 (fr)

Applications Claiming Priority (3)

Application Number Priority Date Filing Date Title
RU97104808A RU2110483C1 (ru) 1997-03-24 1997-03-24 Устройство для электрохимической обработки воды
RU97104808 1997-03-24
PCT/GB1998/000895 WO1998042625A1 (fr) 1997-03-24 1998-03-24 Appareil pour le traitement electrochimique de l'eau et de solutions salines aqueuses

Publications (1)

Publication Number Publication Date
EP0970019A1 true EP0970019A1 (fr) 2000-01-12

Family

ID=20191264

Family Applications (1)

Application Number Title Priority Date Filing Date
EP98912629A Ceased EP0970019A1 (fr) 1997-03-24 1998-03-24 Appareil pour le traitement electrochimique de l'eau et de solutions salines aqueuses

Country Status (4)

Country Link
EP (1) EP0970019A1 (fr)
AU (1) AU6740998A (fr)
RU (1) RU2110483C1 (fr)
WO (1) WO1998042625A1 (fr)

Families Citing this family (15)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
RU2142917C1 (ru) * 1998-06-30 1999-12-20 Попов Алексей Юрьевич Способ и устройство для электрохимической обработки воды
RU2157793C1 (ru) * 1999-02-01 2000-10-20 Бахир Витольд Михайлович Способ получения дезинфицирующего раствора - нейтрального анолита
RU2148027C1 (ru) * 1999-02-01 2000-04-27 Бахир Витольд Михайлович Способ получения дезинфицирующего раствора - нейтрального анолита анд
EP1074515B1 (fr) 1999-08-06 2007-10-03 PuriCore International Limited Traitement chimique d une solution aqueuse
GB9918458D0 (en) * 1999-08-06 1999-10-06 Sterilox Med Europ Ltd Method and apparatus for the electrochemical processing of aqueous salt solutions
RU2215698C2 (ru) * 2000-12-25 2003-11-10 Кобец Федор Михайлович Способ разделения диссоциированных водных растворов и устройство для его осуществления
RU2241683C2 (ru) * 2001-04-24 2004-12-10 Габленко Вячеслав Георгиевич Способ синтеза оксидантов из водного раствора хлорида натрия и устройство для его реализации
JP5140218B2 (ja) 2001-09-14 2013-02-06 有限会社コヒーレントテクノロジー 表面洗浄・表面処理に適した帯電アノード水の製造用電解槽及びその製造法、並びに使用方法
US8062500B2 (en) 2001-12-05 2011-11-22 Oculus Innovative Sciences, Inc. Method and apparatus for producing negative and positive oxidative reductive potential (ORP) water
US9168318B2 (en) 2003-12-30 2015-10-27 Oculus Innovative Sciences, Inc. Oxidative reductive potential water solution and methods of using the same
CA2602411C (fr) 2005-03-23 2015-02-24 Oculus Innovative Sciences, Inc. Procede de traitement de brulures des deuxieme et de troisieme degres mettant en oeuvre une solution aqueuse a potentiel d'oxydoreduction
US9498548B2 (en) 2005-05-02 2016-11-22 Oculus Innovative Sciences, Inc. Method of using oxidative reductive potential water solution in dental applications
EP1993572A2 (fr) 2006-01-20 2008-11-26 Oculus Innovative Sciences, Inc. Procédés pour traiter ou prévenir la sinusite au moyen d'une solution aqueuse à potentiel d'oxydo-réduction
CA2765696C (fr) 2009-06-15 2018-03-06 Oculus Innovative Sciences, Inc. Solution contenant de l'acide hypochloreux, et procedes d'utilisation de cette solution
JP6506730B2 (ja) * 2016-11-01 2019-04-24 株式会社日本トリム 電解水サーバー

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US4767511A (en) * 1987-03-18 1988-08-30 Aragon Pedro J Chlorination and pH control system
GB2253860B (en) * 1991-03-12 1995-10-11 Kirk And Charashvili Internati The electrochemical treatment of water and a device for electrochemically treating water
JP3227921B2 (ja) * 1993-08-06 2001-11-12 株式会社日立製作所 エステルからなる油分を含んだ排水の処理装置およびその処理方法
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Also Published As

Publication number Publication date
RU2110483C1 (ru) 1998-05-10
AU6740998A (en) 1998-10-20
WO1998042625A1 (fr) 1998-10-01

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