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플라스틱 고형 연료의 가스화 특성

Characteristics of Gasification for a Refused Plastic Fuel

  • Chun, Young Nam (Department of Environmental Engineering, Chosun University) ;
  • Lim, Mun Sup (Department of Environmental Engineering, Chosun University) ;
  • Jo, Dae Young (Department of Environmental Engineering, Chosun University)
  • 투고 : 2015.01.16
  • 심사 : 2015.11.30
  • 발행 : 2015.11.30

초록

폐기물을 고체재생연료(SRF: Solid Refuse Fuel) 에너지로 전환하는 것은 화석에너지의 대체효과는 물론 온실가스 저감에도 기여한다. 그러나 플라스틱이 많이 함유한 SRF의 직접연소의 경우 검뎅(soot), 다이옥신 등의 생성문제가 있으므로 열분해/가스화 처리의 적용이 효과적이다. 본 연구에서는 플라스틱이 다량 함유된 SRF를 열분해 가스화의 특성을 파악하여 새로운 형태의 열분해 가스화 처리장치 개발을 위한 열적 기본자료을 제공하고자 한다. 이를 위해 새로이 벤치규모의 장치를 설계 제작하여, 설정된 일정 온도에서 공기비 변화에 대한 가스, 타르, 촤 생성특성에 대해 규명하였다. SRF 샘플 2 g, 가스화 공기비 0.691, 홀딩시간(Holding time) 32분일 때, 생성가스는 $H_2$ 1.36%, $CH_4$ 2.18%, CO 1.88%, $Cl_2$ 15.9 ppm, HCl 26.4 ppm로 생성되었으며, 중량타르(Gravimetric tar) $18g/Nm^3$와 경질타르는 Benzene $4.03g/m^3$, Naphthalene $0.39g/m^3$, Anthracene $0.11g/m^3$, Pyrene $0.06g/m^3$ 그리고 촤는 0.29 g 생성되었다.

Waste energy conversion to SRF (Solid Refuse Fuel) has the effects not alternative fossil fuel usage but also the reduction of greenhouse gas. But the direct burning of the SRF including a plastic waste generates air pollution problem like soot, dioxin, etc. so that an application of pyrolysis and gasification treatment should be needed. The purpose of this study is to supply a basic thermal data of the pyrolysis gasification characteristics in the plastic-rich SRF which are needed for developing the novel pyrolyser or gasifier. To do so, a bench-scale test rig was newly engineered, and then experiments were achieved for the production characteristics of gas, tar, and char. While SRF sample, gasification air ratio, holding time changed as 2 g, 0.691, 32 min respectively, the $H_2$ 1.36%, $CH_4$ 2.18%, CO 1.88%, $Cl_2$ 15.9 ppm, HCl 6.4 ppm were composed. Also light tar benzene $4.03g/m^3$, naphthalene $0.39g/m^3$, anthracene $0.11g/m^3$, pyrene $0.06g/m^3$, gravimetric tar $18g/m^3$, and char 0.29 g was formed.

키워드

참고문헌

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