喷气燃料
环境科学
棕榈油
比例(比率)
生物量(生态学)
替代燃料
工艺工程
过程(计算)
下降(电信)
废物管理
工程类
计算机科学
机械工程
农林复合经营
海洋学
操作系统
物理
地质学
柴油
量子力学
作者
Seba AlAreeqi,Ismail I.I. Alkhatib,Lourdes F. Vega
摘要
Abstract Palm oil-based biorefinery has the potential to generate renewable drop-in fuels based on a UAE-viable biomass resource. The objective of this work is to reduce the process scalability cost through implementing a "self-H2 supply-consumption" strategy. We have coupled the thermodynamic properties of effective BEA zeolite-based material evaluated using reactive molecular dynamics simulations to large- scale process modeling for producing drop-in fuels. Technoeconomic assessment (TEA) was implemented to quantify the process feasibility for commercialization. A sustainable aviation fuel (SAF) with a 76.75% wt. of undecene (C11H22) and a HHV of 44.96 MJ/kg was achieved. The deoxygenation reactor incurred the largest segment (76.1%) of the total capital investment marked as $6.71 million. Other equipment in line were the heating/cooling heat exchangers ($1.38 million, 15.6%), followed by the distillation column ($0.414 million, 4.7%). Exploring variations attributed to parameter sensitivity, the OPEX was found heavily reliant on the feedstock cost, which was optimized considering industrial symbiosis from a local palm oil production refinery. Compared to biomass-to-fuel processes in literature, this work reports a cost-competitive MFSP with a 3.38 $ L-1 for SAF production. Graphical Abstract
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