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首页> 外文期刊>Journal of the Taiwan Institute of Chemical Engineers >Optimization of catalytic hydrodeoxygenation of oleic acid into biofuel using fluoroplatinum oxalate zeolite supported catalyst
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Optimization of catalytic hydrodeoxygenation of oleic acid into biofuel using fluoroplatinum oxalate zeolite supported catalyst

机译:草酸氟铂沸石负载油催化剂对油酸催化加氢脱氧制生物燃料的优化

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Optimization of hydrodeoxygenation (HDO) of oleic acid (OA) into paraffinic biofuel using zeolite supported fluoroplatinum oxalate (FPtOx/Zeol) catalyst is reported in this study. EPtOx/Zeol was synthesized via incorporation of HF modified oxalic acid (OxA) functionalized K2PtCl4 into zeolite A support. EPtOx/Zeol was characterized and the results showed highly dispersed tetrahedral and octahedral Pt species which are effective for sequential hydrogenation of the unsaturated OA bond and the HDO of OA, respectively. Furthermore, there was increase in Si/Al ratio of EPtOx/Zeol leading to loss of crystallinity due to dealumination of the extra framework and framework alumina as a result of acid attacks and calcination, respectively. EPtOx/Zeol activity was tested on the HDO of OA in a semi-batch reactor and the process parameters were optimized using validated quadratic models. The optimum conditions were 364 degrees C, 18 bar and 27.8 mg FPtOx/Zeol loading under reaction time of 58 min to produce 28.39% iso-C18H38 and 68.93% n-C18H38. The presence of the isomerized product was due to the combine effect of fluoride ion and oxalic acid functionalization on the catalyst. EPtOx/Zeol reusability studies showed consistency after three consecutive runs. These results are promising for further research toward commercialization of biofuel production. (C) 2014 Taiwan Institute of Chemical Engineers. Published by Elsevier B.V. All rights reserved.
机译:这项研究报道了使用沸石负载的草酸氟铂铂催化剂对油酸(OA)加氢脱氧(HDO)至石蜡生物燃料的优化。 EPtOx / Zeol是通过将HF改性草酸(OxA)功能化的K2PtCl4掺入沸石A载体中而合成的。对EPtOx / Zeol进行了表征,结果表明,高度分散的四面体和八面体Pt物种分别对不饱和OA键和OA的HDO顺序加氢有效。此外,EPtOx / Zeol的Si / Al比增加,由于额外的骨架和骨架氧化铝的脱铝,分别由于酸侵蚀和煅烧而导致结晶度降低。在半间歇式反应器中,在OA的HDO上测试了EPtOx / Zeol活性,并使用经过验证的二次模型对工艺参数进行了优化。最佳条件为364摄氏度,18 bar和27.8 mg FPtOx / Zeol负载,反应时间为58分钟,以生产28.39%的异C18H38和68.93%的C18H38。异构化产物的存在是由于氟化物离子和草酸官能化对催化剂的联合作用。 EPtOx / Zeol可重复使用性研究表明,连续运行三遍后,结果一致。这些结果对于进一步研究生物燃料生产的商业化是有希望的。 (C)2014台湾化学工程师学会。由Elsevier B.V.发布。保留所有权利。

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