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Energy Balance and Emissions Associated with Biochar Sequestration and Pyrolysis Bioenergy Production

机译:与生物炭固存和热解生物能源生产相关的能量平衡和排放

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摘要

The implications for greenhouse gas emissions of optimizing a slow pyrolysis-based bioenergy system for biochar and energy production rather than solely for energy production were assessed. Scenarios for feedstock production were examined using a life-cycle approach. We considered both purpose grown bioenergy crops (BEC) and the use of crop wastes (CW) as feedstocks. The BEC scenarios involved a change from growing winter wheat to purpose grown miscanthus, switchgrass, and corn as bioenergy crops. The CW scenarios consider both corn stover and winter wheat straw as feedstocks. Our findings show that the avoided emissions are between 2 and 5 times greater when biochar is applied to agricultural land (2-19 Mg CO_2 ha~(-1) y~(-1)) than used solely for fossil energy offsets. 41-64% of these emission reductions are related to the retention of C in biochar, the rest to offsetting fossil fuel use for energy, fertilizer savings, and avoided soil emissions other than CO_2. Despite a reduction in energy output of approximately 30% where the slow pyrolysis technology is optimized to produce biochar for land application, the energy produced per unit energy input at 2-7 MJ/MJ is greater than that of comparable technologies such as ethanol from corn. The C emissions per MWh of electricity production range from 91-360 kg CO_2 MWh~(-1), before accounting for C offset due to the use of biochar are considerably below the lifecycle emissions associated with fossil fuel use for electricity generation (600-900 kg CO_2 MWh~(-1)). Low-temperature slow pyrolysis offers an energetically efficient strategy for bioenergy production, and the land application of biochar reduces greenhouse emissions to a greater extent than when the biochar is used to offset fossil fuel emissions.
机译:评估了优化慢速热解型生物能源系统用于生物炭和能源生产而不是仅仅用于能源生产对温室气体排放的影响。使用生命周期方法检查了原料生产的情景。我们既考虑了有目的的生物能源作物(BEC),也考虑了使用作物废料(CW)作为原料。 BEC方案涉及从种植冬小麦到专用种植的桔梗,柳枝,和玉米作为生物能源作物的转变。 CW方案将玉米秸秆和冬小麦秸秆都视为原料。我们的研究结果表明,将生物炭应用于农田(2-19 Mg CO_2 ha〜(-1)y〜(-1))比仅用于化石能源补偿的情况下,避免的排放量高2到5倍。这些减排量的41-64%与生物炭中的碳保留有关,其余与抵消化石燃料的能源使用,节约化肥以及避免除CO_2以外的土壤排放有关。尽管在优化慢速热解技术以生产用于土地的生物炭的过程中减少了约30%的能量输出,但在2-7 MJ / MJ的单位能量输入下产生的能量却比可比技术(例如玉米乙醇)更大。每兆瓦时发电的碳排放量范围为91-360 kg CO_2兆瓦时〜(-1),在不考虑由于使用生物炭而造成的碳补偿之前,其排放量大大低于与化石燃料发电相关的生命周期排放量(600- 900 kg CO_2 MWh〜(-1))。低温慢速热解为生物能源生产提供了能源高效的策略,与使用生物炭来抵消化石燃料的排放相比,在土地上使用生物炭减少温室气体排放的程度更大。

著录项

  • 来源
    《Environmental Science & Technology》 |2008年第11期|p.4152-4158|共7页
  • 作者单位

    College of Agriculture and Life Sciences, Cornell University, Ithaca, NY 14850, and GY Associates Ltd;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 环境化学;
  • 关键词

  • 入库时间 2022-08-17 14:05:19

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