• 제목/요약/키워드: 반탄화 바이오매스

검색결과 32건 처리시간 0.026초

오일팜 바이오매스의 자원화 연구 V - 오일팜 바이오매스 펠릿의 반탄화 연구 - (Study of Oil Palm Biomass Resources (Part 5) - Torrefaction of Pellets Made from Oil Palm Biomass -)

  • 이지영;김철환;성용주;남혜경;박형훈;권솔;박동훈;주수연;임현택;이민석;김세빈
    • 펄프종이기술
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    • 제48권2호
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    • pp.34-45
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    • 2016
  • Global warming and climate change have been caused by combustion of fossil fuels. The greenhouse gases contributed to the rise of temperature between $0.6^{\circ}C$ and $0.9^{\circ}C$ over the past century. Presently, fossil fuels account for about 88% of the commercial energy sources used. In developing countries, fossil fuels are a very attractive energy source because they are available and relatively inexpensive. The environmental problems with fossil fuels have been aggravating stress from already existing factors including acid deposition, urban air pollution, and climate change. In order to control greenhouse gas emissions, particularly CO2, fossil fuels must be replaced by eco-friendly fuels such as biomass. The use of renewable energy sources is becoming increasingly necessary. The biomass resources are the most common form of renewable energy. The conversion of biomass into energy can be achieved in a number of ways. The most common form of converted biomass is pellet fuels as biofuels made from compressed organic matter or biomass. Pellets from lignocellulosic biomass has compared to conventional fuels with a relatively low bulk and energy density and a low degree of homogeneity. Thermal pretreatment technology like torrefaction is applied to improve fuel efficiency of lignocellulosic biomass, i.e., less moisture and oxygen in the product, preferrable grinding properties, storage properties, etc.. During torrefacton, lignocelluosic biomass such as palm kernell shell (PKS) and empty fruit bunch (EFB) was roasted under an oxygen-depleted enviroment at temperature between 200 and $300^{\circ}C$. Low degree of thermal treatment led to the removal of moisture and low molecular volatile matters with low O/C and H/C elemental ratios. The mechanical characteristics of torrefied biomass have also been altered to a brittle and partly hydrophobic materials. Unfortunately, it was much harder to form pellets from torrefied PKS and EFB due to thermal degradation of lignin as a natural binder during torrefaction compared to non-torrefied ones. For easy pelletization of biomass with torrefaction, pellets from PKS and EFB were manufactured before torrefaction, and thereafter they were torrefied at different temperature. Even after torrefaction of pellets from PKS and EFB, their appearance was well preserved with better fuel efficiency than non-torrefied ones. The physical properties of the torrefied pellets largely depended on the torrefaction condition such as reaction time and reaction temperature. Temperature over $250^{\circ}C$ during torrefaction gave a significant impact on the fuel properties of the pellets. In particular, torrefied EFB pellets displayed much faster development of the fuel properties than did torrefied PKS pellets. During torrefaction, extensive carbonization with the increase of fixed carbons, the behavior of thermal degradation of torrefied biomass became significantly different according to the increase of torrefaction temperature. In conclusion, pelletization of PKS and EFB before torrefaction made it much easier to proceed with torrefaction of pellets from PKS and EFB, leading to excellent eco-friendly fuels.

철 기반 촉매의 Fischer-Tropsch 합성에서 γ-Al2O3/SiO2 혼합 지지체 조성의 영향 (Effect of Composition of γ-Al2O3/SiO2 Mixed Support on Fischer-Tropsch Synthesis with Iron Catalyst)

  • 민선기;노성래;유성식
    • Korean Chemical Engineering Research
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    • 제55권3호
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    • pp.436-442
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    • 2017
  • Fischer-Tropsch 합성(F-T 합성)은 석탄, 바이오매스, 천연가스 등을 개질하여 얻은 합성 가스(CO, $H_2$)를 촉매를 이용하여 탄화수소로 전환 하는 기술이다. Fischer-Tropsch 합성에 이용되는 촉매는 활성 금속, 조촉매, 지지체로 구성되는데 이들의 종류와 조성은 반응의 활성 및 생성물 선택도에 영향을 미친다. 본 연구에서는 ${\gamma}-Al_2O_3$$SiO_2$ 혼합 지지체의 조성이 Fiscsher-Tropsch 반응의 활성과 생성물 선택도에 미치는 영향을 알아 보기위해, ${\gamma}-Al_2O_3/SiO_2$ 혼합 지지체를(100/0 wt%, 75/25 wt%, 50/50 wt%, 25/75 wt%, 0/100 wt%) 이용하여 함침(impregnation)법으로 철 촉매를 제조하였다. 촉매의 물리적 특성은 질소 물리 흡착 법과 X-선 회절 분석법을 통해 분석 하였고, 고정층 반응기에서 Fischer-Trosch 반응을 $300^{\circ}C$, 20bar에서, 60시간 동안 수행 하였다. 촉매의 물리적 특성 분석 결과 촉매의 BET 표면적은 ${\gamma}-Al_2O_3$의 조성이 감소함에 따라 감소하였으며, 촉매 기공의 부피 및 평균 크기는 지지체 조성이 ${\gamma}-Al_2O_3/SiO_2$ (50/50 wt%)인 경우를 제외 하고 증가하는 경향을 보였다. 또한, X-선 회절 분석법을 통해 ${\alpha}-Fe_2O_3$의 입자 크기를 계산한 결과 ${\gamma}-Al_2O_3$의 조성이 감소함에 따라 입자 크기가 감소 하였다. Fischer-Tropsch 합성 결과 ${\gamma}-Al_2O_3$의 조성이 감소함에 따라 CO 전환율은 감소 하였으며, C1-C4의 선택도는 ${\gamma}-Al_2O_3$의 조성이 25 wt%일 때 까지 감소하였으며 이와 반대로, C5+의 선택도는 ${\gamma}-Al_2O_3$의 조성이 25 wt%일 때 까지 증가 하였다.