JP4287775B2 - Industrial wastewater treatment method and apparatus - Google Patents

Industrial wastewater treatment method and apparatus Download PDF

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JP4287775B2
JP4287775B2 JP2004090421A JP2004090421A JP4287775B2 JP 4287775 B2 JP4287775 B2 JP 4287775B2 JP 2004090421 A JP2004090421 A JP 2004090421A JP 2004090421 A JP2004090421 A JP 2004090421A JP 4287775 B2 JP4287775 B2 JP 4287775B2
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浩嗣 手金
和寛 菅谷
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Maezawa Industries Inc
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本発明は、産業排水の処理方法及び装置に関し、詳しくは、メッキ工場等から排出される有害なシアン含有排水、特に、鉄、ニッケル等の金属シアン錯体を含有する排水を処理するのに好適な産業排水の処理方法及び装置に関する。   The present invention relates to a method and apparatus for treating industrial wastewater, and in particular, is suitable for treating harmful cyanogen-containing wastewater discharged from plating plants and the like, particularly wastewater containing metal cyanide complexes such as iron and nickel. The present invention relates to an industrial wastewater treatment method and apparatus.

メッキ工場から排出されるシアン含有排水の処理方法として、原水(排水)にオゾンを注入するとともに紫外線を照射したり、過酸化水素を注入したりすることによってシアンを分解するAOP法(促進酸化法)が知られている(例えば、特許文献1参照。)。 As the processing method of the cyan-containing waste water discharged from plating factories, raw ozone (drainage) or by irradiating the note input to Rutotomoni ultraviolet, AOP method degrades cyan by or injecting hydrogen peroxide (promoting (Oxidation method) is known (for example, refer to Patent Document 1).

しかし、従来のAOP処理では、一つの接触槽(処理槽)内でシアンを無害な窒素と二酸化炭素とに分解するようにしているため、大量のオゾンを必要とするだけでなく、紫外線照射にも多大な電力を必要としていた。また、従来の散気装置やエジェクターを利用したオゾン注入手段では、原水とオゾンとを十分に混合させることができず、原水中へのオゾンの注入効率が低く、水中へのオゾンの溶解量も十分とはいえなかった。さらに、接触槽内でのオゾンの利用効率も低いため、接触槽上部から大量の排オゾンが排出されることから、排オゾンを回収して無害化するためのオゾン処理装置にも大容量のものを必要としていた。   However, in the conventional AOP treatment, cyan is decomposed into harmless nitrogen and carbon dioxide in one contact tank (treatment tank), so not only a large amount of ozone is required, but also UV irradiation. Even needed a lot of power. In addition, the conventional ozone injection means using an air diffuser or ejector cannot sufficiently mix raw water and ozone, the efficiency of ozone injection into raw water is low, and the amount of ozone dissolved in water is also low. It was not enough. In addition, because the ozone utilization efficiency in the contact tank is low, a large amount of exhaust ozone is discharged from the upper part of the contact tank, so the ozone treatment device for recovering and detoxifying exhaust ozone has a large capacity. Needed.

そこで本発明は、金属シアン錯体の処理効率を向上させることによってオゾン使用量の削減や消費電力の削減が図れるとともに、オゾンの注入効率を高め、さらには排オゾンの有効利用も図れる産業排水の処理方法及び装置を提供することを目的としている。   Therefore, the present invention can reduce the amount of ozone used and reduce the power consumption by improving the treatment efficiency of the metal cyanide complex, increase the injection efficiency of ozone, and further improve the effective use of waste ozone. It is an object to provide a method and apparatus.

上記目的を達成するため、本発明の産業排水の処理方法は、産業排水中に含まれる金属シアン錯体を分解処理する産業排水の処理方法において、第1接触槽に導入された前記産業排水中にオゾンを注入するとともに紫外線を照射し、主として前記金属シアン錯体から遊離シアンを生成する第1分解工程と、第2接触槽に導入された前記第1工程で生成した遊離シアン含有水にオゾンを注入して前記遊離シアンを窒素と二酸化炭素とに分解する第2分解工程とを含み、前記第1分解工程及び第2分解工程でのオゾンの注入は、該第2工程で遊離シアンの分解を終えた処理水の一部を昇圧して駆動流体として混気ジェットポンプの駆動流体導入部からポンプ本管内に噴出し、前記混気ジェットポンプの気体流入部から該駆動流体の噴出によって負圧となっている前記ポンプ本管内に、オゾン供給源からの新たなオゾンを気体流入部から吸い込むとともに第1及び第2接触槽から排出された排オゾンを吸引部から吸引し、前記駆動流体と、前記気体流入部からの新たなオゾン及び前記吸引部からの排オゾンとが混合したオゾン混合水を前記ポンプ本管内から吐出部に吐出して、前記両接触槽の底部から各槽内にそれぞれ注入することを特徴としている。さらに、本発明方法は、前記排オゾンの吸引に代えて、前記吸引部から過酸化水素を吸引することを特徴とし、または、前記第1分解工程及び第2分解工程の少なくともいずれか一方で、過酸化水素注入経路から前記第1接触槽及び第2接触槽の少なくともいずれか一方に過酸化水素を注入することを特徴としている。 In order to achieve the above object, an industrial wastewater treatment method of the present invention is an industrial wastewater treatment method for decomposing a metal cyanide complex contained in industrial wastewater, wherein the industrial wastewater introduced into the first contact tank is Injecting ozone into the water containing free cyanide generated in the first decomposition step, in which ozone is injected and ultraviolet rays are irradiated to generate free cyan mainly from the metal cyanide complex, and in the first step introduced into the second contact tank to look contains a second decomposition step for decomposing the free cyanide into nitrogen and carbon dioxide, said injection of ozone in the first decomposition step, and the second decomposition step, the decomposition of the free cyanide in the second step A part of the treated water is boosted and ejected as a driving fluid from the driving fluid introduction part of the mixed-jet pump into the pump main pipe, and negatively discharged by the ejection of the driving fluid from the gas inflow part of the mixed-jet pump. Into the pump main pipe, new ozone from the ozone supply source is sucked from the gas inflow portion and exhausted ozone discharged from the first and second contact tanks is sucked from the suction portion, and the driving fluid, Ozone mixed water mixed with new ozone from the gas inflow part and exhausted ozone from the suction part is discharged from the pump main pipe to the discharge part and injected into the tanks from the bottom of the both contact tanks. It is characterized in that. Furthermore, the method of the present invention is characterized in that hydrogen peroxide is sucked from the suction part instead of sucking the exhaust ozone , or at least one of the first decomposition step and the second decomposition step , Hydrogen peroxide is injected into at least one of the first contact tank and the second contact tank from a hydrogen peroxide injection path .

また、本発明の産業排水の処理装置は、産業排水中に含まれる金属シアン錯体を分解処理するための産業排水の処理装置において、前記産業排水が流入する槽内にオゾンを注入するオゾン注入手段及び紫外線を照射する紫外線照射手段を有する第1接触槽と、該第1接触槽から流出した第1処理水が流入する槽内にオゾンを注入するオゾン注入手段を有する第2接触槽とを備え、前記オゾン注入手段は、前記第2接触槽から抜き出した処理水の一部を昇圧して駆動流体としてポンプ本管内に噴出する駆動流体導入部と、該駆動流体導入部からの駆動流体の噴出によって負圧となっている前記ポンプ本管内に、オゾン供給源からの新たのオゾンを吸い込む気体流入部と第1及び第2接触槽から排出された排オゾンを吸引する吸引部と、前記駆動流体と、前記気体流入部からの新たなオゾン及び前記吸引部からの排オゾンとが混合したオゾン混合水を前記ポンプ本管内から吐出して、前記両接触槽の底部から各槽内にそれぞれ注入する吐出部とを備えた混気ジェットポンプであることを特徴としている。 Further, the industrial wastewater treatment apparatus of the present invention is an industrial wastewater treatment apparatus for decomposing a metal cyanide complex contained in industrial wastewater, and ozone injection means for injecting ozone into a tank into which the industrial wastewater flows. And a first contact tank having ultraviolet irradiation means for irradiating ultraviolet light, and a second contact tank having ozone injection means for injecting ozone into the tank into which the first treated water flowing out of the first contact tank flows. The ozone injecting means pressurizes a part of the treated water extracted from the second contact tank and ejects it into the pump main pipe as a driving fluid, and ejection of the driving fluid from the driving fluid introducing unit A gas inflow part for sucking new ozone from an ozone supply source, a suction part for sucking exhaust ozone discharged from the first and second contact tanks, and the drive The ozone mixed water mixed with the body, fresh ozone from the gas inflow part and exhausted ozone from the suction part is discharged from the pump main pipe and injected into the tanks from the bottom of the two contact tanks. And an air-jet jet pump having a discharge portion .

さらに、本発明の産業排水の処理装置は、前記排オゾンの吸引部に代えて、また、過酸化水素を吸引する過酸化水素吸引部を備えていることを特徴としている。さらに、前記第1接触槽及び第2接触槽の少なくともいずれか一方に槽内に過酸化水素を注入する過酸化水素注入経路が設けられていることを特徴としている。 Furthermore, the industrial wastewater treatment apparatus of the present invention is characterized in that a hydrogen peroxide suction unit for sucking hydrogen peroxide is provided instead of the exhaust ozone suction unit . Furthermore, a hydrogen peroxide injection path for injecting hydrogen peroxide into the tank is provided in at least one of the first contact tank and the second contact tank.

本発明のによれば、金属シアン錯体から遊離シアンを生成する工程と、遊離シアンを窒素と二酸化炭素とに分解する工程との2段階の工程でシアンを分解するので、シアンの分解効率を向上させることができ、従来のに比べて少量のオゾンで効果的な処理を行うことができる。また、遊離シアンを分解する工程では紫外線を照射しなくてもよいから、紫外線を照射するためのランプに要する電力を削減することができる。また、両工程で過酸化水素を注入することにより、両工程における処理効率を更に向上させることができる。   According to the present invention, cyan is decomposed in two steps: a process of generating free cyan from a metal cyan complex and a process of decomposing free cyan into nitrogen and carbon dioxide. Therefore, it is possible to perform an effective treatment with a small amount of ozone as compared with the conventional case. Moreover, since it is not necessary to irradiate ultraviolet rays in the process of decomposing free cyanide, the power required for the lamp for irradiating ultraviolet rays can be reduced. Further, by injecting hydrogen peroxide in both steps, the processing efficiency in both steps can be further improved.

さらに、接触槽内にオゾンを注入する手段として混気ジェットポンプを用いることにより、水中へのオゾンの注入効率を高めることができる。さらに、混気ジェットポンプが有する吸引部で排オゾンを回収して循環再利用することにより、オゾンの利用効率を大幅に向上させることができる。また、混気ジェットポンプで過酸化水素を吸引してオゾンと混合することにより、ヒドロキシラジカルの生成を促進できる。   Furthermore, by using an air-fueled jet pump as means for injecting ozone into the contact tank, the efficiency of injecting ozone into water can be increased. Furthermore, the ozone utilization efficiency can be greatly improved by recovering and recycling the exhausted ozone at the suction part of the air-fueled jet pump. Moreover, the production | generation of a hydroxyl radical can be accelerated | stimulated by attracting hydrogen peroxide with an air-jet pump and mixing with ozone.

図1は本発明の参考例を示す産業排水処理装置の系統図である。この産業排水処理装置は、原水であるシアン含有排水が流入する第1接触槽11と、この第1接触槽11で処理された一次処理水が流入する第2接触槽12とを備えており、第1接触槽11には紫外線照射手段13が設けられている。また、各接触槽11,12の底部には、オゾン注入経路14がそれぞれ設けられており、槽上部には、排オゾンを回収してオゾン処理装置15で無害化してから排気する排気経路16がそれぞれ設けられている。さらに、接触槽11,12の上部には、過酸化水素を注入するための過酸化水素注入経路17が設けられている。 FIG. 1 is a system diagram of an industrial wastewater treatment apparatus showing a reference example of the present invention. The industrial wastewater treatment apparatus includes a first contact tank 11 into which cyan-containing wastewater that is raw water flows, and a second contact tank 12 into which primary treated water treated in the first contact tank 11 flows, The first contact tank 11 is provided with ultraviolet irradiation means 13. In addition, an ozone injection path 14 is provided at the bottom of each contact tank 11, 12, and an exhaust path 16 for exhausting exhaust ozone after collecting exhaust ozone and detoxifying the ozone treatment apparatus 15 at the top of the tank. Each is provided. Furthermore, a hydrogen peroxide injection path 17 for injecting hydrogen peroxide is provided above the contact tanks 11 and 12.

原水は、第1接触槽11の上部に設けられた原水流入経路18から第1接触槽11内に導入され、過酸化水素注入経路17から注入される過酸化水素と混合した状態で、オゾン注入経路14から散気手段やエジェクター等を介して注入されたオゾンと交流接触しながら下降するとともに、紫外線照射手段13から紫外線が照射される。この第1接触槽11での第1分解工程では、紫外線の光分解作用、オゾン、紫外線及び過酸化水素の相互作用で生成したヒドロキシラジカルの酸化作用により、金属シアン錯体が分解して遊離シアンが解離生成するとともに、生成した遊離シアンの一部が酸化されて窒素及び二酸化炭素に分解する。   The raw water is introduced into the first contact tank 11 from the raw water inflow path 18 provided in the upper part of the first contact tank 11 and mixed with the hydrogen peroxide injected from the hydrogen peroxide injection path 17 in the ozone injection. While descending while making alternating current contact with ozone injected from the path 14 via an air diffuser, an ejector, or the like, ultraviolet rays are irradiated from the ultraviolet irradiation unit 13. In the first decomposition step in the first contact tank 11, the metal cyanide complex is decomposed and free cyanide is generated by the photodecomposing action of ultraviolet rays and the oxidizing action of hydroxy radicals generated by the interaction of ozone, ultraviolet rays and hydrogen peroxide. Along with the dissociation and generation, a part of the generated free cyanide is oxidized and decomposed into nitrogen and carbon dioxide.

第1接触槽11での第1分解工程を終えた一次処理水は、第1接触槽11の下部と第2接触槽12の上部とを接続する中継経路19を通って第2接触槽12に流入し、過酸化水素注入経路17から注入される過酸化水素と混合し、オゾン注入経路14から注入されたオゾンと交流接触しながら下降する。この第2接触槽12での第2分解工程では、オゾン及び過酸化水素から生成したヒドロキシラジカルの酸化作用により、水中に残存する遊離シアンが窒素及び二酸化炭素に分解する。遊離シアンの分解処理を終えた処理水は、第2接触槽12下部に設けられた処理水流出経路20から流出する。   The primary treated water that has finished the first decomposition step in the first contact tank 11 passes through the relay path 19 that connects the lower part of the first contact tank 11 and the upper part of the second contact tank 12 to the second contact tank 12. It flows in, mixes with hydrogen peroxide injected from the hydrogen peroxide injection path 17, and descends while making alternating current contact with ozone injected from the ozone injection path. In the second decomposition step in the second contact tank 12, free cyanide remaining in the water is decomposed into nitrogen and carbon dioxide by the oxidizing action of hydroxy radicals generated from ozone and hydrogen peroxide. The treated water that has undergone the free cyanide decomposition treatment flows out from the treated water outflow path 20 provided in the lower part of the second contact tank 12.

前記第1分解工程の遊離シアン生成プロセスは、基本は紫外線照射による金属シアン錯体の光分解反応であるが、ここにオゾンを注入することにより、遊離シアンへの分解が促進されるだけでなく、オゾンと紫外線との相互作用で強力な酸化剤であるヒドロキシラジカルが生成するので、このヒドロキシラジカルにより、遊離シアンの窒素及び二酸化炭素への分解も効果的に行われる。さらに、この工程に適量の過酸化水素を添加することにより、ヒドロキシラジカルの生成が促進され、金属シアン錯体の酸化分解及び生成した遊離シアンの分解が促進されて処理効率が更に向上する。   The free cyanide generation process of the first decomposition step is basically a photodecomposition reaction of a metal cyanide complex by ultraviolet irradiation, but not only the decomposition to free cyanide is promoted by injecting ozone into this, Hydroxyl radicals, which are powerful oxidants, are generated by the interaction between ozone and ultraviolet rays, so that the free radicals are effectively decomposed into nitrogen and carbon dioxide by the hydroxy radicals. Furthermore, by adding an appropriate amount of hydrogen peroxide to this step, the generation of hydroxy radicals is promoted, the oxidative decomposition of the metal cyan complex and the decomposition of the generated free cyanogen are promoted, and the processing efficiency is further improved.

一方、前記第2分解工程は、オゾンを注入して酸化処理することにより、水中に残存する遊離シアンを分解するものであるが、このときも、適量の過酸化水素を注入してヒドロキシラジカルを生成させることにより、遊離シアンの分解を効果的にかつ確実に行うことができる。   On the other hand, the second decomposition step decomposes free cyanide remaining in the water by injecting ozone and oxidizing it. At this time, an appropriate amount of hydrogen peroxide is also injected to remove hydroxy radicals. By generating it, free cyanide can be effectively and reliably decomposed.

このように、金属シアン錯体の分解処理を2段階に分けて行い、第1分解工程では主として金属シアン錯体の分解を、第2分解工程段階では残留している遊離シアンの分解を行うようにしたことにより、1段階で分解処理を行う場合に比べて各分解工程の処理効率を向上させることができる。すなわち、第1分解工程では、オゾンは光分解反応の補助的な作用成分として用いられることから、比較的少量のオゾンで十分な効果を得ることができ、第2分解工程では金属シアン錯体の分解処理を行う必要がないので紫外線照射手段が不要となることから、設備コストや運転コストの削減を図ることができる。同時に、処理装置全体の小型化を図ることもできる。   As described above, the decomposition process of the metal cyanide complex is performed in two stages, the metal cyanide complex is mainly decomposed in the first decomposition process, and the remaining free cyanide is decomposed in the second decomposition process stage. Thus, the processing efficiency of each decomposition process can be improved as compared with the case where the decomposition process is performed in one stage. That is, in the first decomposition step, ozone is used as an auxiliary component for the photodecomposition reaction, so that a sufficient effect can be obtained with a relatively small amount of ozone. In the second decomposition step, the metal cyanide complex is decomposed. Since it is not necessary to perform the treatment, the ultraviolet irradiation means is not required, and therefore the equipment cost and the operation cost can be reduced. At the same time, the entire processing apparatus can be reduced in size.

図2は本発明の形態例を示す産業排水処理装置の系統図である。なお、以下の説明において、前記参考例で示した産業排水処理装置における構成要素と同一の構成要素には、それぞれ同一符号を付して詳細な説明は省略する。 FIG. 2 is a system diagram of an industrial wastewater treatment apparatus showing an embodiment of the present invention. In the following description, the same components as those in the industrial wastewater treatment apparatus shown in the reference example are denoted by the same reference numerals, and detailed description thereof is omitted.

本形態例は、第1接触槽11及び第2接触槽12にオゾンを注入する手段として混気ジェットポンプ31を使用した例を示している。この混気ジェットポンプ31は、従来から様々な形式のものが用いられてきているが、基本的には、駆動流体導入部32から高圧の駆動流体を導入し、ポンプ本管33内に噴流として噴出させることにより、ポンプ本管33に設けられた気体流入部34から気体を吸入して気液混合状態(混気状態)の噴流を形成し、さらに、この混気状態の噴流によってポンプ本管33の側方に設けられた吸引部35から気体、液体、粉粒体等を吸引し、これらを撹拌混合した状態で吐出部36から吐出するように形成されている。   This embodiment shows an example in which an air-mix jet pump 31 is used as means for injecting ozone into the first contact tank 11 and the second contact tank 12. Conventionally, various types of mixed gas jet pumps 31 have been used. Basically, a high-pressure driving fluid is introduced from the driving fluid introduction section 32 and is injected into the pump main pipe 33 as a jet. By jetting, gas is sucked from the gas inflow portion 34 provided in the pump main pipe 33 to form a jet in a gas-liquid mixed state (mixed state), and further, the pump main pipe is generated by this mixed-phase jet. A gas, a liquid, a granular material, and the like are sucked from a suction portion 35 provided on the side of 33, and are discharged from a discharge portion 36 in a state where they are agitated and mixed.

このような混気ジェットポンプ31は、ポンプ37で加圧した液体からなる駆動流体を噴流として噴出させることにより、複数の流体を誘引して送出することができ、ポンプ本管33内で強力な撹拌混合作用が得られるので、液体(駆動流体)と誘引した気体又は液体との混合を効率よく行えるとともに、ポンプ本管33内の圧力を高くしておくことができるので、液体に対する気体の溶解度を上昇させることが可能であるという利点を有している。したがって、従来の散気装置やエジェクターを利用してオゾンを注入する場合に比べてオゾンの注入効率を大幅に向上させることができる。この結果、各接触槽11,12内でのオゾンの利用効率も向上し、酸化分解処理の効率も大幅に向上するので、オゾンの消費量を大幅に削減することができる。   Such an air-fueled jet pump 31 is capable of attracting and delivering a plurality of fluids by ejecting a driving fluid made of liquid pressurized by the pump 37 as a jet, and is powerful within the pump main pipe 33. Since the stirring and mixing action is obtained, the liquid (driving fluid) and the attracted gas or liquid can be mixed efficiently, and the pressure in the pump main pipe 33 can be kept high, so the solubility of the gas in the liquid It has the advantage that it can be raised. Therefore, compared with the case where ozone is injected using a conventional diffuser or ejector, the ozone injection efficiency can be greatly improved. As a result, the utilization efficiency of ozone in each of the contact tanks 11 and 12 is improved and the efficiency of the oxidative decomposition treatment is greatly improved, so that the consumption of ozone can be greatly reduced.

処理水流出経路20から分岐循環経路38に分岐した処理水の一部は、ポンプ37で所定の圧力に昇圧されて混気ジェットポンプ31の駆動流体となり、混気ジェットポンプ31の駆動流体導入部32からポンプ本管33内に噴出する。この駆動流体の噴出によってポンプ本管33内が負圧となり、オゾン発生源からのオゾンが気体流入部34を通ってポンプ本管22内に吸い込まれる。さらに、吸引部35からは、排気経路16から排オゾン回収経路39を介して各接触槽11,12の上部から排出された排オゾンが吸引されて混合する。   A part of the treated water branched from the treated water outflow path 20 to the branch circulation path 38 is boosted to a predetermined pressure by the pump 37 to be a driving fluid of the mixed jet pump 31, and a driving fluid introduction part of the mixed jet pump 31. 32 is ejected into the pump main pipe 33. Due to the ejection of the driving fluid, the inside of the pump main pipe 33 becomes negative pressure, and ozone from the ozone generation source passes through the gas inflow portion 34 and is sucked into the pump main pipe 22. Further, exhaust ozone discharged from the upper portions of the contact tanks 11 and 12 from the exhaust passage 16 through the exhaust ozone recovery passage 39 is sucked and mixed from the suction portion 35.

したがって、処理水の一部は、気体流入部34からの新たなオゾン及び吸引部35からの排オゾンが混合したオゾン混合水となって吐出部36に吐出され、各接触槽11,12の底部に設けられたオゾン混合水注入経路40を通って各接触槽11,12内にそれぞれ注入される。このとき、排オゾンを吸引混合しているので、新たなオゾンのみを注入する場合に比べて、混気ジェットポンプ31での単位体積当たりに占める気体量が増加することから、ポンプ本管33の出口近傍の圧力が高まり、処理水(駆動流体)中に溶解するオゾンの溶解度を上昇させることができる。また、排オゾンを循環再利用することにより、オゾンの利用効率を大幅に向上させることができ、気体流入部34を通して供給される新たなオゾンの供給量を削減できるとともに、オゾン処理装置15の負荷も軽減できる。   Therefore, a part of the treated water is discharged into the discharge unit 36 as ozone mixed water in which new ozone from the gas inflow unit 34 and exhausted ozone from the suction unit 35 are mixed, and the bottom of each contact tank 11, 12. Is injected into each of the contact tanks 11 and 12 through the ozone mixed water injection path 40 provided in FIG. At this time, since exhaust ozone is sucked and mixed, the amount of gas occupied per unit volume in the mixed-air jet pump 31 is increased as compared with the case where only new ozone is injected. The pressure in the vicinity of the outlet is increased, and the solubility of ozone dissolved in the treated water (driving fluid) can be increased. Further, by recirculating and reusing exhaust ozone, the efficiency of ozone utilization can be greatly improved, the amount of new ozone supplied through the gas inlet 34 can be reduced, and the load on the ozone treatment device 15 can be reduced. Can also be reduced.

各接触槽11,12内に流入したオゾン混合水は、原水あるいは一次処理水と混合し、さらに、過酸化水素注入経路17から注入された過酸化水素と混合する。これにより、オゾン混合水中のオゾンと過酸化水素とからヒドロキシラジカルが生成し、金属シアン錯体の分解や遊離シアンの分解を効率よく行うことができる。   The ozone mixed water flowing into the contact tanks 11 and 12 is mixed with raw water or primary treated water, and further mixed with hydrogen peroxide injected from the hydrogen peroxide injection path 17. Thereby, hydroxy radicals are generated from ozone and hydrogen peroxide in the ozone mixed water, and the metal cyanide complex and the free cyanide can be efficiently decomposed.

また、前記混気ジェットポンプ31では、吸引部35から過酸化水素を吸引することも可能であり、ここから過酸化水素を吸引することにより、過酸化水素とオゾンとの混合を効果的に行ってヒドロキシラジカルの生成をより促進させることができる。   In the mixed-air jet pump 31, it is also possible to suck hydrogen peroxide from the suction portion 35, and by mixing the hydrogen peroxide from here, hydrogen peroxide and ozone are mixed effectively. Thus, the production of hydroxy radicals can be further promoted.

本発明の参考例を示す産業排水処理装置の系統図である。It is a systematic diagram of an industrial wastewater treatment apparatus showing a reference example of the present invention. 本発明の形態例を示す産業排水処理装置の系統図である。It is a systematic diagram of the industrial waste water treatment equipment which shows one example of the present invention.

符号の説明Explanation of symbols

11…第1接触槽、12…第2接触槽、13…紫外線照射手段、14…オゾン注入経路、15…オゾン処理装置、16…排気経路、17…過酸化水素注入経路、18…原水流入経路、19…中継経路、20…処理水流出経路、31…混気ジェットポンプ、32…駆動流体導入部、33…ポンプ本管、34…気体流入部、35…吸引部、36…吐出部、37…ポンプ、38…分岐循環経路、39…排オゾン回収経路、40…オゾン混合水注入経路   DESCRIPTION OF SYMBOLS 11 ... 1st contact tank, 12 ... 2nd contact tank, 13 ... Ultraviolet irradiation means, 14 ... Ozone injection path, 15 ... Ozone processing apparatus, 16 ... Exhaust path, 17 ... Hydrogen peroxide injection path, 18 ... Raw water inflow path , 19 ... relay path, 20 ... treated water outflow path, 31 ... mixed gas jet pump, 32 ... drive fluid introduction part, 33 ... pump main pipe, 34 ... gas inflow part, 35 ... suction part, 36 ... discharge part, 37 ... Pump, 38 ... Branch circulation path, 39 ... Exhaust ozone recovery path, 40 ... Ozone mixed water injection path

Claims (6)

産業排水中に含まれる金属シアン錯体を分解処理する産業排水の処理方法において、第1接触槽に導入された前記産業排水中にオゾンを注入するとともに紫外線を照射し、主として前記金属シアン錯体から遊離シアンを生成する第1分解工程と、第2接触槽に導入された前記第1工程で生成した遊離シアン含有水にオゾンを注入して前記遊離シアンを窒素と二酸化炭素とに分解する第2分解工程とを含み、前記第1分解工程及び第2分解工程でのオゾンの注入は、該第2工程で遊離シアンの分解を終えた処理水の一部を昇圧して駆動流体として混気ジェットポンプの駆動流体導入部からポンプ本管内に噴出し、前記混気ジェットポンプの気体流入部から該駆動流体の噴出によって負圧となっている前記ポンプ本管内に、オゾン供給源からの新たなオゾンを気体流入部から吸い込むとともに第1及び第2接触槽から排出された排オゾンを吸引部から吸引し、前記駆動流体と、前記気体流入部からの新たなオゾン及び前記吸引部からの排オゾンとが混合したオゾン混合水を前記ポンプ本管内から吐出部に吐出して、前記両接触槽の底部から各槽内にそれぞれ注入することを特徴とする産業排水の処理方法。 In an industrial wastewater treatment method for decomposing a metal cyanide complex contained in industrial wastewater, ozone is injected into the industrial wastewater introduced into the first contact tank, and ultraviolet rays are irradiated to release mainly from the metal cyanide complex. A first decomposition step for generating cyan, and a second decomposition for injecting ozone into the free cyanide-containing water generated in the first step introduced into the second contact tank to decompose the free cyan into nitrogen and carbon dioxide. and a step viewed including the injection of ozone in the first decomposition step, and the second decomposition step, admission jet a portion of the treated water in the second step was completed decomposition of free cyanide as a boost to drive fluid A new supply from an ozone supply source is injected into the pump main from the pump's driving fluid introduction section and into the pump main, which is negative pressure due to the ejection of the driving fluid from the gas inflow section of the mixed jet pump. Fresh ozone from the gas inflow section and exhausted ozone discharged from the first and second contact tanks from the suction section, and the drive fluid, new ozone from the gas inflow section and exhaust from the suction section. A method for treating industrial wastewater, characterized in that ozone mixed water mixed with ozone is discharged from the inside of the pump main pipe to a discharge section and injected into each tank from the bottom of the both contact tanks . 前記排オゾンの吸引に代えて、前記吸引部から過酸化水素を吸引することを特徴とする請求項1記載の産業排水の処理方法。 The industrial wastewater treatment method according to claim 1 , wherein hydrogen peroxide is sucked from the suction section instead of the exhaust ozone suction . 前記第1工程及び第2工程の少なくともいずれか一方で、過酸化水素注入経路から前記第1接触槽及び第2接触槽の少なくともいずれか一方に過酸化水素を注入することを特徴とする請求項1記載の産業排水の処理方法 In at least one of said first and second steps, claims, characterized in that to inject the hydrogen peroxide to at least one of hydrogen peroxide injected the first contact vessel from the path and a second contact tank The method for treating industrial wastewater according to 1 . 産業排水中に含まれる金属シアン錯体を分解処理するための産業排水の処理装置において、前記産業排水が流入する槽内にオゾンを注入するオゾン注入手段及び紫外線を照射する紫外線照射手段を有する第1接触槽と、該第1接触槽から流出した第1処理水が流入する槽内にオゾンを注入するオゾン注入手段を有する第2接触槽とを備え、前記オゾン注入手段は、前記第2接触槽から抜き出した処理水の一部を昇圧して駆動流体としてポンプ本管内に噴出する駆動流体導入部と、該駆動流体導入部からの駆動流体の噴出によって負圧となっている前記ポンプ本管内に、オゾン供給源からの新たのオゾンを吸い込む気体流入部と第1及び第2接触槽から排出された排オゾンを吸引する吸引部と、前記駆動流体と、前記気体流入部からの新たなオゾン及び前記吸引部からの排オゾンとが混合したオゾン混合水を前記ポンプ本管内から吐出して、前記両接触槽の底部から各槽内にそれぞれ注入する吐出部とを備えた混気ジェットポンプであることを特徴とする産業排水の処理装置。 In an industrial wastewater treatment apparatus for decomposing a metal cyanide complex contained in industrial wastewater, the wastewater treatment apparatus has first ozone injection means for injecting ozone into the tank into which the industrial wastewater flows and ultraviolet irradiation means for irradiating ultraviolet rays. A contact tank; and a second contact tank having ozone injection means for injecting ozone into the tank into which the first treated water flowing out of the first contact tank flows, wherein the ozone injection means is the second contact tank. A part of the treated water extracted from the pump and pumping it into the pump main pipe as a driving fluid, and the pump main pipe having a negative pressure due to the ejection of the driving fluid from the driving fluid inlet A gas inflow part for sucking in new ozone from the ozone supply source, a suction part for sucking out exhaust ozone discharged from the first and second contact tanks, the drive fluid, and a new ozone from the gas inflow part. Emissions and ozone mixing water and exhaust ozone are mixed from the suction unit by discharging from the pump the tube, admission jet pump and a discharge portion for injecting each of the from the bottom of both contact vessel in each tank Industrial wastewater treatment equipment characterized by 前記排オゾンの吸引部に代えて、過酸化水素を吸引する過酸化水素吸引部を備えていることを特徴とする請求項4記載の産業排水の処理装置。 The industrial wastewater treatment apparatus according to claim 4, further comprising a hydrogen peroxide suction unit that sucks hydrogen peroxide instead of the exhaust ozone suction unit . 前記第1接触槽及び第2接触槽の少なくともいずれか一方に、槽内に過酸化水素を注入する過酸化水素注入経路が設けられていることを特徴とする請求項4記載の産業排水の処理装置。 The industrial wastewater treatment according to claim 4, wherein a hydrogen peroxide injection path for injecting hydrogen peroxide into the tank is provided in at least one of the first contact tank and the second contact tank. apparatus.
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