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Improvement of DeNOx efficiency of SNCR Process with Chemical Additives in Urea Soution

환원제로 우레아를 사용하는 SNCR 공정에서 첨가제 적용에 따른 탈질효율 향상 연구

  • Yoo, Kyung Seun (Department of Environmental Engineering, Kwangwoon university) ;
  • Park, Sung Woo (Department of Environmental Engineering, Kwangwoon university)
  • 유경선 (광운대학교 환경공학과) ;
  • 박성우 (광운대학교 환경공학과)
  • Received : 2017.07.31
  • Accepted : 2017.10.13
  • Published : 2017.10.31

Abstract

Dye waste water generated in the dye industry is categorized as hazardous waste water that requires appropriate treatment. The pilot scale experimental trials were carried out using dye waste water as an effective additive for the selective non-catalytic reduction (SNCR) of NOx in combustion flue gases. The additives were waste liquor obtained from the dye industry and several purification steps were taken to make a standardized reagents. The dye waste water was shown to possess valuable SNCR qualities (at least 87% NOx reduction efficiency) considering its availability as a waste product, which has to be strictly treated, and have little effects on CO removal. The results indicated that the NO removal efficiency increased first and then decreased with increasing temperature within $750-1150^{\circ}C$. The maximum NO reduction efficiency was approximately 87% at the optimal reaction temperature. A more than 10% increase in NO reduction was achieved in the presence of 1000 ppm Na-additives (dye waste water) compared to that without additives. The Na-based additives have also a significant promoting effect on $N_2O$ reduction and within the SNCR temperature window.

염색 산업에서 발생하는 염색폐수는 적절한 처리가 필요한 유해 폐수로 분류된다. 파이롯트 규모의 선택적 무촉매 환원반응 (SNCR) 실험 장치에서 염색폐수를 연소 배가스에 포함된 질소산화물을 효과적으로 저감할 수 있는 첨가제로 사용하는 연구를 수행하였다. 염색 산업에서 배출되는 염색폐수는 환원제의 첨가제로 사용되기 위해서는 표준화된 제제 형태이어야 하며 이를 위해 여러 단계의 정제과정을 거쳤다. 엄격하게 처리되어야 할 염색폐수는 적어도 유용성 면에서 약 87%의 NO 저감 효율을 보일 정도로 만족할 만한 효율을 보이나, CO 제거에서는 거의 효과가 없는 것으로 나타났다. 첨가제 첨가효과는 $750-1150^{\circ}C$ 구간에서 처음에는 온도가 증가함에 NO 제거 효율이 증가하다가 그 다음에는 감소하는 형태를 보인다. 최적의 온도조건에서 최대의 NO 제거 효율은 87% 이었다. 염색폐수에 포함된 약 1000ppm의 Na 화합물의 영향으로 NO 저감 효율 면에서 약 10%의 효율 향상이 있었으며, 이와 더불어 첨가제를 첨가하지 않은 경우에 비해 $N_2O$ 저감 효율과 SNCR 반응의 반응온도 확장 면에서 뚜렷한 효율 증진을 얻을 수 있었다.

Keywords

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