首页> 外文期刊>Journal of Cleaner Production >Catalytic pyrolysis of rice straw: Screening of various metal salts, metal basic oxide, acidic metal oxide and zeolite catalyst on products yield and characterization
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Catalytic pyrolysis of rice straw: Screening of various metal salts, metal basic oxide, acidic metal oxide and zeolite catalyst on products yield and characterization

机译:稻草催化热解:筛选各种金属盐,金属碱性氧化物,酸性金属氧化物和沸石催化剂对产物产量和表征

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Lignocellulosic biomass is a promising renewable feedstock for the production of chemicals and fuels in light of the extensive use of fossil fuels associated with increasingly serious environmental problems. In this study, pyrolysis of rice straw with different types of catalyst such as metal salts (FeCl3, CuCl2, MgCl2 and MnCl2), metal basic oxides (MgO, CaO, MgCO3 and CaCO3), acidic metals (ZnO, ZrO2, CeO2 and TiO2), zeolites catalysts (ZSM-5, Y-Zeolite, Mordenite and SBA-15), catalyst amount (5, 10, 15 and 20 wt%) and reaction temperatures (350, 400, 450 and 500 degrees C) were examined on product yield and products characterization. The maximum bio-oil (38.5 wt%) was obtained for non-catalytic reaction at 450 degrees C. However for catalytic reaction highest bio-oil yield were observed 55.2, 52.1, 48.7 and 48.4 wt% with Y-zeolite, MgO, ZrO2 and MgCl2 catalyst at 450 degrees C respectively. GC-MS, FT-IR, NMR, GPC, TGA, and CHNS were used for bio-oil characterization. Y-zeolite effectively produced phenolics monomers as compare to basic (MgO), acidic (CeO2) and metal salt (MgCl2) catalyst. The use of catalysts was increased the boiling point range and the higher boiling point range was observed in case of Y-zeolite and MgO catalytic bio-oil. The highest higher heating value (HHV) 36.7 MJ/kg and highest carbon 75.2% was observed for zeolite catalytic bio-oil. Moreover lower molecular weight in the catalytic bio-oil was observed as compare to non catalytic bio-oil. (C) 2020 Published by Elsevier Ltd.
机译:木质纤维素生物质是一种有前途的可再生原料,用于生产化学品和燃料,鉴于与越来越严重的环境问题相关的化石燃料的广泛使用。在这项研究中,用不同类型的催化剂如金属盐(FECL3,CuCl2,MgCl 2和MnCl 2),金属碱性氧化物(MgO,CaO,MgCO 3和CaCO 3),酸性金属(ZnO,ZrO2,CeO2和TiO2,酸性碱性分解),检查沸石催化剂(ZSM-5,Y-沸石,丝硝和SBA-15),催化剂量(5,10,15和20wt%)和反应温度(350,400,450和500℃)产品产量和产品表征。在450℃下获得最大生物油(38.5wt%)在450℃下获得非催化反应。然而,对于催化反应,最高的生物油产率为55.2,52.1,48.7和48.4wt%,Y-沸石,MgO,ZrO2和MgCl2分别在450℃下催化剂。 GC-MS,FT-IR,NMR,GPC,TGA和CHN用于生物油特征。 Y-沸石有效地产生与碱(MgO),酸性(CeO2)和金属盐(MgCl2)催化剂相比的酚类单体。催化剂的使用增加了沸点范围,并且在Y-沸石和MgO催化生物油的情况下观察到较高的沸点范围。对于沸石催化生物油,观察到最高的加热值(HHV)36.7mJ / kg和最高碳75.2%。此外,催化生物油中的较低分子量被观察到与非催化生物油相比。 (c)2020由elestvier有限公司发布

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