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高重力条件下云杉木屑生产乙醇的生命周期影响

Life cycle impacts of ethanol production from spruce wood chips under high-gravity conditions.

作者信息

Janssen Matty, Xiros Charilaos, Tillman Anne-Marie

机构信息

Department of Energy and Environment, Division of Environmental Systems Analysis, Chalmers University of Technology, Rännvägen 6B, SE-41296 Göteborg, Sweden.

Department of Biology and Biological Engineering, Industrial Biotechnology, Chalmers University of Technology, Kemigården 4, SE-41296 Göteborg, Sweden ; School of Agricultural, Forest and Food Sciences HAFL, Bern University of Applied Sciences, Länggasse 85, 3052 Zollikofen, Switzerland.

出版信息

Biotechnol Biofuels. 2016 Mar 5;9:53. doi: 10.1186/s13068-016-0468-3. eCollection 2016.

Abstract

BACKGROUND

Development of more sustainable biofuel production processes is ongoing, and technology to run these processes at a high dry matter content, also called high-gravity conditions, is one option. This paper presents the results of a life cycle assessment (LCA) of such a technology currently in development for the production of bio-ethanol from spruce wood chips.

RESULTS

The cradle-to-gate LCA used lab results from a set of 30 experiments (or process configurations) in which the main process variable was the detoxification strategy applied to the pretreated feedstock material. The results of the assessment show that a process configuration, in which washing of the pretreated slurry is the detoxification strategy, leads to the lowest environmental impact of the process. Enzyme production and use are the main contributors to the environmental impact in all process configurations, and strategies to significantly reduce this contribution are enzyme recycling and on-site enzyme production. Furthermore, a strong linear correlation between the ethanol yield of a configuration and its environmental impact is demonstrated, and the selected environmental impacts show a very strong cross-correlation ([Formula: see text] in all cases) which may be used to reduce the number of impact categories considered from four to one (in this case, global warming potential). Lastly, a comparison with results of an LCA of ethanol production under high-gravity conditions using wheat straw shows that the environmental performance does not significantly differ when using spruce wood chips. For this comparison, it is shown that eutrophication potential also needs to be considered due to the fertilizer use in wheat cultivation.

CONCLUSIONS

The LCA points out the environmental hotspots in the ethanol production process, and thus provides input to the further development of the high-gravity technology. Reducing the number of impact categories based only on cross-correlations should be done with caution. Knowledge of the analyzed system provides further input to the choice of impact categories.

摘要

背景

更可持续的生物燃料生产工艺的研发正在进行中,在高干物质含量(也称为高重力条件)下运行这些工艺的技术是一种选择。本文介绍了目前正在开发的一种从云杉木屑生产生物乙醇的技术的生命周期评估(LCA)结果。

结果

从摇篮到大门的生命周期评估使用了一组30个实验(或工艺配置)的实验室结果,其中主要工艺变量是应用于预处理原料的解毒策略。评估结果表明,一种工艺配置(其中对预处理浆料进行洗涤作为解毒策略)导致该工艺对环境的影响最小。酶的生产和使用是所有工艺配置中对环境影响的主要贡献因素,显著降低这种贡献的策略是酶回收和现场酶生产。此外,证明了一种配置的乙醇产量与其环境影响之间存在很强的线性相关性,并且所选的环境影响显示出非常强的相互相关性(在所有情况下[公式:见原文]),这可用于将考虑的影响类别数量从四个减少到一个(在这种情况下,全球变暖潜能值)。最后,与使用小麦秸秆在高重力条件下生产乙醇的生命周期评估结果进行比较表明,使用云杉木屑时环境性能没有显著差异。对于此比较,表明由于小麦种植中使用肥料,还需要考虑富营养化潜能值。

结论

生命周期评估指出了乙醇生产过程中的环境热点,从而为高重力技术进一步发展提供了依据。仅基于相互相关性减少影响类别数量时应谨慎行事。对分析系统的了解为影响类别的选择提供了进一步依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5c9d/4779266/eb9c3685d4af/13068_2016_468_Fig1_HTML.jpg

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