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Life-cycle analysis of bio-based aviation fuels

机译:生物基航空燃料的生命周期分析

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摘要

Well-to-wake (WTWa) analysis of bio-based aviation fuels, including hydroprocessed renewable jet (HRJ) from various oil seeds, Fischer–Tropsch jet (FTJ) from corn-stover and co-feeding of coal and corn-stover, and pyrolysis jet from corn stover, is conducted and compared with petroleum jet. WTWa GHG emission reductions relative to petroleum jet can be 41–63% for HRJ, 68–76% for pyrolysis jet and 89% for FTJ from corn stover. The HRJ production stage dominates WTWa GHG emissions from HRJ pathways. The differences in GHG emissions from HRJ production stage among considered feedstocks are much smaller than those from fertilizer use and N_2O emissions related to feedstock collection stage. Sensitivity analyses on FTJ production from coal and corn-stover are also conducted, showing the importance of biomass share in the feedstock, carbon capture and sequestration options, and overall efficiency. For both HRJ and FTJ, coproduct handling methods have significant impacts on WTWa results.
机译:对基于生物的航空燃料进行的清醒(WTWa)分析,包括来自各种油料种子的加氢处理可再生喷射流(HRJ),玉米秸秆的费歇尔特罗普喷气(FTJ)以及煤和玉米秸秆的共同进料,进行了玉米秸秆热解射流的研究,并与石油射流进行了比较。与HRJ相比,WTWa的温室气体排放量减少了41%至63%,热解喷气机的减少了68%至76%,FTJ从玉米秸秆中减少了89%。 HRJ生产阶段主导着HRJ途径产生的WTWa温室气体排放。在考虑的原料之间,HRJ生产阶段产生的GHG排放差异远小于肥料使用和与原料收集阶段相关的N_2O排放造成的温室气体排放差异。还对煤和玉米秸秆生产的FTJ进行了敏感性分析,显示了原料中生物质份额,碳捕获和封存方案以及整体效率的重要性。对于HRJ和FTJ而言,副产品处理方法对WTWa结果有重大影响。

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