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2016 | 25 | 2 |

Tytuł artykułu

The use of phenolic wastewater in coke production

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
The huge amount of phenolic wastewater generated at coke oven plants is nowadays partially utilized during the wet coke quenching process. The stream, however, contains a range of inorganic compounds (i.e., chlorides, alkali and sulphates), the presence of which in the coke is highly undesired. Moreover, the impact on the quenching water composition on the final quality of coke, considering the concentrations of mineral contaminants, is unknown. Our paper investigates the composition of quenching water – in particular the impact of chlorides and sodium ion content on the final quality of wet-quenched coke. We used dry-quenched coke, treated rainfall, and treated phenolic wastewater generated at one the largest coke plants in Poland. Our study showed the existence of linear dependences between chlorides and sodium ion content in quenching water, and their fi nal amount in the wet-quenched coke. We developed the calculation procedure of the maximum share of the treated phenolic wastewater in the quenching water stream, at which the contract parameter of coke could be held, based on the basis of our experimental results.

Słowa kluczowe

Wydawca

-

Rocznik

Tom

25

Numer

2

Opis fizyczny

p.465-470,fig.,ref.

Twórcy

  • Institute for Chemical Processing of Coal, Zamkowa 1, 41-803 Zabrze, Poland
autor
  • Institute for Chemical Processing of Coal, Zamkowa 1, 41-803 Zabrze, Poland
autor
  • Institute for Chemical Processing of Coal, Zamkowa 1, 41-803 Zabrze, Poland

Bibliografia

  • 1. VAZQUEZ I., RODRIGUEZ J., MARANON E., CASTRI;;PM L., FERNANDEZ Y., Simultaneous removal of phenol, ammonium, thiocyanate from coke wastewater by means of aerobic biodegradation, Journal of Hazardous Materials B137, 1773, 2006.
  • 2. WEI X., ZHANG Z., FAN Q., YUAN X., GUO D., The effect of treatment stages on the coking wastewater hazardous compounds and their toxicity, Journal of Hazardous Materials 230-240, 135, 2012.
  • 3. PARK D., KIM Y., LEE D., PARK J., Chemical treatment for treating cyanides-containing effluent from biological cokes wastewater treatment process, Chemical Engineering Journal 143, 141, 2008.
  • 4. CHENG Y., FAN W., GUO L., Coking wastewater treatment using a magnetic porous ceramsite carrier, Separation and Purification Technology 130, 167, 2014.
  • 5. SHEN J., ZHAO H., CAO H., ZNAHG Y., CHEN Y., Removal of total cyanide in coking wastewater during a coagulation process: Significance of organic polymers, Journal of Environmental Sciences 26, 231, 2014.
  • 6. MARANON E., VAZQUEZ I., RODRIGUEZ J., CASTRILLON L., FENANDEZ Y., LOPEZ H., Treatment of coke wastewater in a sequential batch reactor (SBR) at pilot plant scale, Bioresource Technology 99, 4192, 2008.
  • 7. DÍEZ M.A., ALVAREZ R., BARRIOCANAL C., Coal for metallurgical coke production: predictions of coke quality and future requirements for cokemaking, Coal Geology 50, 389, 2002.
  • 8. OZGA-BLASCHKE U., Coking coal management, IGSMiE Publisher, Cracow, 2010 [In Polish].
  • 9. BLASCHKE W., GRUDZIŃSKI Z., LORENZ U., OZGA BLASCHKE U., OLKUSKI T., STALA-SZLUGAJ K., The origin, form and content of chlorine in black coal, Scientific Papers of IGSMiE of Polish Academy of Science, 77, 23, 2010 [In Polish].
  • 10. OSMÓLSKI J., The role of the equalization tank in industrial wastewater treatment at „Przyjaźń" cokemaking plant, Coke Magazin, 10 (20), 4, 2013 [In Polish].
  • 11. TATARA M., TATARA A., HUMMER W., KOMOSIŃSKI B., The method of the wet coke quenching: current state and development perspectives in reffer to BAT requirement change, conference materials „Koksownictwo 2010", Zakopane, 2010 [in Polish].
  • 12. GERASOMOV S.V., KOZYREVA S.V., NEKRASOV N.S., Laboratory monitoring of biochemical wastewater treatment. 2. Quantitative chemical analysis: A review, Coke and Chemistry, 57 (2), 75, 2014.
  • 13. WASIELEWSKI R., SOBOLEWSKI A., Industrial utilization of spent ion-exchange resin in the coke battery, Coke and Chemistry, 54 (2), 66, 2011.
  • 14. FIGA J., STELMACH S., Prediction of chlorine content in coke, Karbo, 3 (2), 159, 2006 [In Polish]
  • 15. ZHANG Q., WU X., FENG A., SHI M., Prediction of coke quality at Baosteel, Fuel Proces. Technol., 86, 1, 2004.
  • 16. MIELCZAREK K., BOHDZIEWICZ B., KWARCIAK-KOZŁOWSKA A., Coking plant wastewater treatment in integrated system combining volume coagulation and advanced oxidation with pressure membrane techniques, Civil and Envi. Engin. Rep., 7, 83, 2011.
  • 17. QI R., YANG K., YU Z., Treatment of cokeplant wastewater by SND fixed biofilm hybrid system, Journal of Envi. Sci., 19 (2), 153, 2006.

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

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