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生命周期评估作为预处理木质纤维素生物质生物甲烷潜力的展望阶段。

Life-cycle assessment as a prospection stage for the biochemical methane potential of pretreated lignocellulosic biomass.

机构信息

Laboratory of Technological and Environmental Chemistry, Department of Chemistry, Federal University of Ouro Preto. Campus Universitário Morro do Cruzeiro, Bauxita, Ouro Preto, Brazil.

Laboratory of Technological and Environmental Chemistry, Department of Chemistry, Federal University of Ouro Preto. Campus Universitário Morro do Cruzeiro, Bauxita, Ouro Preto, Brazil.

出版信息

Bioresour Technol. 2023 Oct;386:129584. doi: 10.1016/j.biortech.2023.129584. Epub 2023 Jul 27.

Abstract

The goal of neutrality in greenhouse gas emissions has intensified the search for renewable fuels. However, it is crucial to ensure sustainability of new technologies before proposing their implementation. This study proposes the use of life-cycle assessment (LCA) as an intermediary tool to identify critical hotspots in the exploration of hydrothermal pretreatment of lignocellulosic biomass, followed by biochemical methane potential assessment. Brewer s spent grain (BSG) was investigated, and laboratory-scale results were applied in an attributional assessment model with business-as-usual serving as the baseline. The LCA revealed that assumptions made in the lab could pose limitations. In Brazil, the two-stage co-digestion of pretreated hydrothermal BSG showed promising prospects, with a reduction to a new value of -54 kg CO-eq Ton BSG compared to 90 kg CO-eq Ton BSG in the business-as-usual scenario. Within the top ten global beer producing countries, only Brazil and Spain demonstrated potential for exploring this proposal.

摘要

温室气体排放中立目标加剧了对可再生燃料的探索。然而,在提出新技术的实施之前,确保其可持续性至关重要。本研究提出使用生命周期评估(LCA)作为中间工具,以确定木质纤维素生物质水热预处理探索中的关键热点,然后进行生物化学甲烷潜力评估。研究了啤酒糟(BSG),并将实验室规模的结果应用于常规情景作为基准的归因评估模型中。LCA 表明实验室中的假设可能存在局限性。在巴西,预处理水热 BSG 的两段共消化显示出有前景的前景,与常规情景中的 90 公斤 CO-eq Ton BSG 相比,新的价值降低了-54 公斤 CO-eq Ton BSG。在全球十大啤酒生产国中,只有巴西和西班牙有潜力探索这一建议。

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