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Distribution of specific greenhouse gas emissions from combined heat-and-power production in agricultural biogas plants

机译:农业沼气厂热电联产产生的特定温室气体排放量分布

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摘要

From model and case studies based on small samples it is clear that specific greenhouse gas (GHG) emissions of energy supply from biogas are strongly dependent of system characteristics and scope. We derive prescriptive statistics for the GHG balance of electricity production from agricultural biogas systems on the basis of a large audit data set. System boundaries include upstream processes, the production of energy crops (EC), the anaerobic digestion process, the storage of digestate, and the utilization of biogas in a combined heat-and-power-unit (CHPU). For our sample of 593 biogas systems the calculated specific CO_2-equivalent-emissions of electricity fed into the public grid range from -1,730 to 821 g kWh~(-1) (mean value ± standard deviation: 307 ± 125 g kWh~(-1); interquartile range: 249-384 g kWh~(-1)). For the sample as a whole, the mix of input materials on a mass basis consists of 58% EC and 42% animal manure (AM). With this mix, the substrate supply chain contributes 56.3% to the total GHG-emissions of the biogas systems. To fully compensate GHG-emissions from EC production by avoided emissions from AM storage, the ratio AM/EC would need to be increased about fivefold. This result shows that in order to be sustainable, a biogas system in agriculture needs to be understood more as a servicing function to farming rather than the purpose of farming. Other dominant sources of GHG-emissions are the methane slip from the CHPU, biogas losses and parasitic electricity demand.
机译:从基于小样本的模型和案例研究中可以明显看出,沼气能源供应的特定温室气体(GHG)排放强烈依赖于系统特性和范围。我们基于大型审核数据集,从农业沼气系统中获取电力生产中温室气体平衡的说明性统计数据。系统边界包括上游过程,能源作物的生产(EC),厌氧消化过程,消化物的存储以及热电联产(CHPU)中沼气的利用。对于我们的593个沼气系统的样本,计算出的进入公共电网的特定CO_2等效排放量范围为-1,730至821 g kWh〜(-1)(平均值±标准偏差:307±125 g kWh〜(- 1);四分位间距:249-384 g kWh〜(-1))。对于整个样本,按质量计的输入物料混合物包括58%的EC和42%的动物粪便(AM)。通过这种混合,底物供应链占沼气系统总温室气体排放的56.3%。为了通过避免AM储存引起的排放来完全补偿EC生产中的温室气体排放,AM / EC的比例需要增加大约五倍。该结果表明,为了实现可持续发展,农业中的沼气系统需要更多地理解为对农业的服务功能,而不是农业目的。其他主要的温室气体排放源是来自CHPU的甲烷泄漏,沼气损失和寄生电力需求。

著录项

  • 来源
    《Biomass & bioenergy》 |2020年第2期|105443.1-105443.12|共12页
  • 作者

  • 作者单位

    Technical University of Munich Arcisstr. 21 80333 Miinchen Germany;

    Bavarian State Research Center for Agriculture (LfL) Institute for Agricultural Engineering and Animal Husbandry Voettinger Str. 36 85354 Freising Germany;

    LfL Institute for Agro-Economy Menzinger Str. 54 80638 Miinchen Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Agriculture; Biogas; Electricity; Energy; Greenhouse gas; Manure;

    机译:农业;沼气电力;能源;温室气体;肥料;

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