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바이오가스 이용 기술지침 마련을 위한 연구(II) - 정밀모니터링 결과 중심으로

A Study on Establishment of Technical Guideline of the Installation and Operation for the Biogas Utilization of Power generation and Stream - Results of the Precision Monitoring

  • 문희성 (국립환경과학원 환경자원연구부) ;
  • 배지수 (국립환경과학원 환경자원연구부) ;
  • 박호연 (국립환경과학원 환경자원연구부) ;
  • 전태완 (국립환경과학원 환경자원연구부) ;
  • 이영기 (국립환경과학원 환경자원연구부) ;
  • 이동진 (국립환경과학원 환경자원연구부)
  • Moon, HeeSung (Environmental Resource Research Department, National Institute of Environmental Research) ;
  • Bae, Jisu (Environmental Resource Research Department, National Institute of Environmental Research) ;
  • Park, Hoyeun (Environmental Resource Research Department, National Institute of Environmental Research) ;
  • Jeon, Taewan (Environmental Resource Research Department, National Institute of Environmental Research) ;
  • Lee, Younggi (Environmental Resource Research Department, National Institute of Environmental Research) ;
  • Lee, Dongjin (Environmental Resource Research Department, National Institute of Environmental Research)
  • 투고 : 2018.03.09
  • 심사 : 2018.03.14
  • 발행 : 2018.03.30

초록

본 연구는 유기성폐자원(가축분뇨, 음식물류폐기물, 음식물류폐수 등)의 바이오가스 이용에 대한 적정 설계 및 운전 기술지침서 마련하고자 현장조사와 정밀모니터링 등을 실시하였다. 정부의 중장기 바이오가스화 정책에 따라 폐자원의 자원화 시설 확충이 활발히 추진되고 있다. 하지만 생산된 바이오가스를 이용하여 발전 및 스팀으로 활용하는 시설은 효율이 아직은 저조하고 잦은 고장이 발생되고 있다. 전국 11개소 유기성폐자원 바이오가스화 시설을 대상으로 정밀모니터링을 실시하였다. 사계절 평균으로 정밀모니터링 결과를 정리하였을 때, 유기성폐자원 별 효율성 분석에서 유기성분해율은 VS기준 음식물/음폐수는 68.2 %, 가축분뇨는 66.8 %, 하수슬러지의 경우 46.2 %로 전체 평균 58.8 %로 분석되었다. 전처리 전후 바이오가스 성상을 분석한 결과 철염 및 탈황(건식, 습식)을 이용하여 전체 시설의 $H_2S$ 평균은 560 ppm으로 측정되었으며, 저감효율이 90% 이상인 경우 약 40 ppm 까지 감소할 수 있는 것을 확인하였다. 특히 소화조 내에 철염을 투입하면 처리효율 약 93 %이며, 평균 150 ppm까지 감소하는 것을 확인하였다. 제습의 경우 노점온도를 적용한 절대습도와 가스온도에 따른 상대습도를 분석하였으며, 제습설비가 유지보수가 잘되어 가동 중인 시설의 노점온도는 $14^{\circ}C$, 절대습도는 $12.6g/m^3$이며, 상대습도는 35 %로 측정되었다. 따라서 유기성폐자원의 바이오가스화 시설의 단점을 보완하고 바이오가스 이용 최적화 방안을 마련하기 위하여 정밀모니터링을 실시하였다.

According to the in social aspects such as population growth, urbanization and industrialization, development of livestock industry by meat consumption, amount of organic wastes (containing sewage sludge and food waste, animal manure, etc) has been increased annually in South Korea. Precise monitoring of 11 organic wastes biogas facilities were conducted. The organic decomposition rate of organic wastewater was 68.2 % for food wastes, 66.8 % for animal manure and 46.2 % for sewage sludge and 58.8 % for total organic wastes. As a result of analyzing the biogas characteristics before and after the pretreatment, the total average of the whole facility was measured to be 560 ppm using iron salts and desulfurization, and decreased to 40 ppm when the reduction efficiency was above 90 %. Particularly, when iron salt is injected into the digester, the treatment efficiency is about 93 %, and the average is reduced to 150 ppm. In the case of dehumidification, the absolute humidity and the relative humidity were analyzed. The dew point temperature of the facility where the dehumidification facility was well maintained as $14^{\circ}C$, the absolute humidity was $12.6g/m^3$, and the relative humidity was 35 %. Therefore, it is necessary to compensate for the disadvantages of biogasification facilities of organic waste resources and optimize utilization of biogas and improve operation of facilities. This study was conducted to optimize biogas utilization of type of organic waste(containing sewage sludge and food waste, animal manure) through precision monitoring.

키워드

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