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纳米纤维素与粪便制沼气的环境生命周期评估

Environmental life cycle assessment of nano-cellulose and biogas production from manure.

作者信息

Krexner Theresa, Bauer Alexander, Zollitsch Werner, Weiland Kathrin, Bismarck Alexander, Mautner Andreas, Medel-Jiménez Francisco, Gronauer Andreas, Kral Iris

机构信息

Institute of Agricultural Engineering, University of Natural Resources and Life Sciences Vienna, Peter Jordan Str. 82, 1190, Vienna, Austria.

Division of Livestock Sciences, University of Natural Resources and Life Sciences Vienna, Gregor-Mendel-Straße 33, 1180, Vienna, Austria.

出版信息

J Environ Manage. 2022 Jul 15;314:115093. doi: 10.1016/j.jenvman.2022.115093. Epub 2022 Apr 23.

Abstract

Due to its unique properties, nano fibrillated cellulose (NFC) has been a popular topic of research in recent years. Nevertheless, literature assessing environmental impacts of NFC production is scarce, especially for using other starting materials than wood pulp. Hence, in this study, a new approach of cascaded use of manure to produce biogas and subsequently use the cellulose containing digestate for NFC production (manure scenario) is compared to the production from Kraft pulp from hardwood chips (wood chips scenario) via life cycle assessment (LCA). To produce comparable outputs (NFC and biogas) in both scenarios a typical Austrian biogas plant with maize silage and pig slurry as input material is included in the wood chips scenario. A proxy approach is used to upscale the manure scenario from laboratory to an industrial scale (except for the pulp to NFC step) to ensure comparability of both scenarios. The impact categories global warming potential (GWP), fossil resource scarcity, freshwater eutrophication, human toxicity, terrestrial acidification (TAP) and terrestrial ecotoxicity potential are analysed referring to the functional unit of 1 kg NFC. Results show that the manure scenario has at least 45% lower impacts in all assessed categories. GWP is 4.41 kg CO eq./kg NFC in the manure and 9.74 kg CO eq./kg NFC in the wood chips scenario. The transformation step from pulp to NFC is identified as environmental hotspot due to the high electricity demand in both scenarios. Results are additionally assessed only for the industrial scale part (includes biogas and pulp production). In the latter the main difference can be found in the substrate production. While it plays a subordinate role in the manure scenario (up to 8%) as manure is seen as a waste stream with no upstream environmental impacts attached, the production of maize silage is one of the hotspots in the industrial part in the wood chips scenario. This difference is especially prominent in TAP, where the substrate production is responsible for 91% of the 0.06 kg SO eq. impact, which is tenfold the impact of the manure scenario. This underlines the issue of using energy crops as substrate in biogas plants. It also highlights the importance of further research of using waste streams as inputs for the electricity production and subsequent use in the pulp and paper industry. This LCA demonstrates that NFC production from manure is a sustainable alternative to the production from hardwood Kraft pulp.

摘要

由于其独特的性能,纳米原纤化纤维素(NFC)近年来一直是热门的研究课题。然而,评估NFC生产对环境影响的文献却很匮乏,尤其是使用木浆以外的其他原材料时。因此,在本研究中,通过生命周期评估(LCA),将一种新的级联利用粪便生产沼气,随后使用含纤维素的沼渣生产NFC的方法(粪便方案)与使用硬木片制硫酸盐浆生产NFC的方法(木片方案)进行了比较。为了在两种方案中产生可比的产出(NFC和沼气),木片方案中纳入了一个以玉米青贮饲料和猪粪为输入材料的典型奥地利沼气厂。采用一种代理方法将粪便方案从实验室规模扩大到工业规模(制浆到NFC步骤除外),以确保两种方案具有可比性。针对1千克NFC的功能单元,分析了全球变暖潜能值(GWP)、化石资源稀缺性、淡水富营养化、人体毒性、陆地酸化(TAP)和陆地生态毒性潜能等影响类别。结果表明,在所有评估类别中,粪便方案的影响至少低45%。粪便方案中GWP为4.41千克二氧化碳当量/千克NFC,木片方案中为9.74千克二氧化碳当量/千克NFC。由于两种方案中电力需求都很高,从浆到NFC的转化步骤被确定为环境热点。结果还仅针对工业规模部分(包括沼气和制浆生产)进行了评估。在后者中,主要差异体现在底物生产上。在粪便方案中,底物生产起次要作用(高达8%),因为粪便被视为一种无上游环境影响的废物流,而在木片方案的工业部分,玉米青贮饲料的生产是热点之一。这种差异在TAP中尤为突出,在TAP中,底物生产对0.06千克二氧化硫当量影响的贡献率为91%,是粪便方案影响的十倍。这凸显了在沼气厂中使用能源作物作为底物的问题。它还强调了进一步研究将废物流用作电力生产的输入并随后用于制浆造纸工业的重要性。这项LCA表明,用粪便生产NFC是用硬木硫酸盐浆生产NFC的可持续替代方案。

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