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Life cycle assessment of a small-scale methanol production system: A Power-to-Fuel strategy for biogas plants

机译:小型甲醇生产系统的生命周期评估:沼气植物的电力燃料策略

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摘要

Power-to-Fuel (PtF) systems use carbon dioxide and hydrogen as feedstock together for renewable fuel production and can hence contribute to climate change mitigation. This study assesses the environmental performance, from cradle to gate, of an innovative PtF system for synthetic methanol production, which integrates a biogas plant based on manure and straw residues as well as a combined heat and power unit. Under this concept, the residual carbon dioxide from biogas production is used for the synthesis of methanol, whereas hydrogen is obtained via wind-based electrolysis. A life cycle assessment (LCA) is carried out here for 1 kg of methanol produced with the integrated system proposed, operated on a small scale. In view of the multi-functionality of the process, the uncertainty in LCA outcomes is assessed by considering different assumptions on co-product credits for both the electricity from cogeneration and the digestate from the anaerobic digestion of organic raw materials. Additionally, a sensitivity analysis is performed to examine the influence of variability in life cycle inventory data on the results. All the analysed scenarios show significant improvements compared with conventional methanol production from fossil resources (with only a few exceptions for acidification and eutrophication). The sensitivity analysis shows that parameters determining the overall energy requirements as well as methane losses from anaerobic digestion in the PtF system greatly influence its environmental performance, and should be carefully considered in process design and upscaling. In spite of the uncertainty inherent in LCA, the system is presented as an interesting option to produce renewable methanol while contributing towards a circular economy, provided that the economic performance is also beneficial relative to the fossil alternative. (C) 2020 Elsevier Ltd. All rights reserved.
机译:电力至燃料(PTF)系统使用二氧化碳和氢作为原料,用于可再生燃料生产,因此可以有助于减缓气候变化。本研究评估了来自摇篮到合成甲醇产量的创新PTF系统的环境性能,从粪便和秸秆残留以及组合的热量和动力单元集成了沼气厂。在这种概念下,来自沼气生产的残余二氧化碳用于合成甲醇,而氢通过基于风基电解获得。这里进行生命周期评估(LCA),在此进行1千克甲醇,其用综合系统提出,在小规模上操作。鉴于该过程的多功能性,通过考虑与来自有机原料的厌氧消化的厌氧消化的厌氧消化的厌氧消化,通过考虑不同假设的不同假设来评估LCA结果的不确定性。另外,执行灵敏度分析,以检查生命周期库存数据中变异性对结果的影响。所有分析的情景显示出与来自化石资源的常规甲醇生产相比的显着改善(仅酸化和富营养化的少数例外)。灵敏度分析表明,在PTF系统中确定总能量需求以及来自PTF系统中的厌氧消化的甲烷损失极大地影响了其环境性能,并应在工艺设计和上升中仔细考虑。尽管LCA中固有的不确定性,但该系统被呈现为有趣的选择,以产生可再生甲醇,同时有助于循环经济,因为经济绩效相对于化石替代方案也有益。 (c)2020 elestvier有限公司保留所有权利。

著录项

  • 来源
    《Journal of Cleaner Production》 |2020年第20期|122476.1-122476.12|共12页
  • 作者单位

    Forschungszentrum Julich Inst Energy & Climate Res Electrochem Proc Engn I Wilhelm Johnen Str D-52428 Julich Germany|Forschungszentrum Julich Staff Unit Sustainable Campus D-52428 Julich Germany;

    Univ Bonn Inst Food & Resource Econ ILR Nussallee 19 D-53115 Bonn Germany|Univ Bonn Ctr Dev Res ZEF Genscheralle 3 D-53113 Bonn Germany;

    Forschungszentrum Julich Inst Energy & Climate Res Electrochem Proc Engn I Wilhelm Johnen Str D-52428 Julich Germany;

    Forschungszentrum Julich Staff Unit Sustainable Campus D-52428 Julich Germany;

    Forschungszentrum Julich Inst Energy & Climate Res Inst Technoecon Syst Anal IEK 3 Wilhelm Johnen Str D-52428 Julich Germany|Rhein Westfal TH Aachen Chair Fuel Cells D-52072 Aachen Germany;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Advanced fuel; Biofuel; Circular economy; Environmental impact; Renewable energy; Uncertainty;

    机译:先进的燃料;生物燃料;循环经济;环境影响;可再生能源;不确定性;
  • 入库时间 2022-08-18 22:34:57

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