Optimization of Bio-Hydrogenated Gasoline Production from Rice Bran Oil via Catalytic Hydrocracking over Pd/Al2O3 Catalyst

IF 0.2 Q4 ENERGY & FUELS Journal of The Japan Institute of Energy Pub Date : 2021-08-20 DOI:10.3775/jie.100.152
Wiphada Attaphaiboon, Sutasinee Neramittagapong, S. Theerakulpisut, Arthit Neramittagapong
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Abstract

This work aims to study biofuel production from rice bran oil (RBO) using a hydrocracking reaction over 0.5%Pd/Al 2 O 3 catalyst. The Central Composite Design (CCD) was used to find optimal bio-hydrogenated gasoline (BHG) production conditions. The effects of pressure and temperature, including the interaction of the parameters under the constant liquid hourly space velocity (LHSV), were determined by the statistical methodology of surface response (RSM). The yields of liquid biofuel products and BHG, as well as BHG selectivity, were used as response values for optimizing BHG production. The results remarkably showed that pressure and temperature significantly influenced BHG production in terms of yield and selectivity. The optimal condition for BHG production was found to be at 516 ° C and 4.8 MPa, with the BHG yield of 44.21%. However, the optimal BHG selectivity was found to be at 532 ° C and 4.4 MPa with a selectivity of 69.74%. Moreover, temperature appeared to be a more dominant parameter on biofuel product yield than the pressure. This parameter had greater effects on both linear and square terms in ANOVA analysis of the biofuel product yield. Furthermore, hydrocracking was discovered to improve the heat of combustion of BHG as compared with the initial feedstock and commercial gasoline. The total acid value of BHG was also found to increase because the reaction could break the ester bond between glycerol and carboxyl groups; thus, free fatty acids were formed, causing the high value of total acid in the sample.
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Pd/Al2O3催化剂催化米糠油加氢裂化生产生物加氢汽油的优化研究
本研究旨在研究使用0.5%Pd/Al 2o3催化剂加氢裂化反应从米糠油(RBO)生产生物燃料。采用中心复合设计(CCD)方法寻找生物加氢汽油(BHG)的最佳生产条件。采用表面响应(RSM)的统计方法,确定了压力和温度的影响,包括在液体时空速(LHSV)恒定条件下各参数的相互作用。以液体生物燃料产品的产率和六氢丁酸的选择性为响应值,优化六氢丁酸的生产。结果表明,压力和温度对BHG的收率和选择性有显著影响。结果表明,在516℃、4.8 MPa的温度下生产BHG的最佳条件下,BHG的收率为44.21%。结果表明,在532℃、4.4 MPa条件下,BHG选择性最佳,选择性为69.74%。此外,温度似乎是生物燃料产品产量的主要参数,而不是压力。在生物燃料产品产量的方差分析中,该参数对线性项和平方项都有较大的影响。此外,与初始原料和商品汽油相比,发现加氢裂化提高了BHG的燃烧热。由于反应会破坏甘油与羧基之间的酯键,BHG的总酸值也会增加;因此,游离脂肪酸形成,造成样品中总酸的高值。
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0.60
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发文量
46
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