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Influence of fast pyrolysis temperature on biochar labile fraction and short-term carbon loss in a loamy soil

机译:快速热解温度对壤土生物炭不稳定组分和短期碳损失的影响

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摘要

Production of bio-oil, gas and biochar from pyrolysis of biomass is considered a promising technology for combined production of bioenergy and recalcitrant carbon (C) suitable for sequestration in soil. Using a fast pyrolysis centrifuge reactor (PCR) the present study investigated the relation between fast pyrolysis of wheat straw at different reactor temperatures and the short-term degradability of biochar in soil. After 115 days incubation 3-12% of the added biochar-C had been emitted as CO2. On average, 90% of the total biochar-C loss occurred within the first 20 days of the experiment, emphasizing the importance of knowing the biochar labile fraction when evaluating a specific biochars C sequestration potential. The pyrolysis temperature influenced the outputs of biochar, bio-oil and syngas significantly, as well as the stability of the biochar produced. Contrary to slow pyrolysis a fast pyrolysis process may result in incomplete conversion of biomass due to limitations to heat transfer and kinetics. In our case chemical analysis of the biochars revealed unconverted cellulosic and hemicellulosic fractions, which in turn were found to be proportional with the short-term biochar degradation in soil. As these labile carbohydrates are rapidly mineralized, their presence lowers the biochar-C sequestration potential. By raising the pyrolysis temperature, biochar with none or low contents of these fractions can be produced, but this will be on the expense of the biochar quantity. The yield of CO2 neutral bio-oil is the other factor to optimize when adjusting the pyrolysis temperature settings to give the overall greatest climate change mitigation effect.
机译:从生物质的热解生产生物油,天然气和生物炭被认为是一种有前途的技术,可以结合生产生物能源和顽固性碳(C),适合固存在土壤中。本研究使用快速热解离心反应器(PCR),研究了在不同反应器温度下小麦秸秆的快速热解与土壤中生物炭的短期降解之间的关系。孵育115天后,已将3-12%的添加的生物炭C排放为二氧化碳。平均而言,总生物炭损失的90%发生在实验的前20天内,强调了评估特定生物炭C隔离潜力时了解生物不稳定组分的重要性。热解温度显着影响生物炭,生物油和合成气的产量以及所产生生物炭的稳定性。与慢速热解相反,由于热传递和动力学的限制,快速热解过程可能导致生物质转化不完全。在我们的案例中,对生物炭的化学分析显示出未转化的纤维素和半纤维素部分,反过来,这与土壤中短期生物炭的降解成比例。由于这些不稳定的碳水化合物迅速矿化,它们的存在降低了生物炭-C螯合的潜力。通过提高热解温度,可以生产出这些馏分中没有或含量低的生物炭,但这将以生物炭量为代价。调整热解温度设置以提供总体上最大的减缓气候变化影响时,CO2中性生物油的产量是要优化的另一个因素。

著录项

  • 来源
    《Biomass & bioenergy》 |2011年第3期|p.1182-1189|共8页
  • 作者单位

    Biosystems Division, Ris0 National Laboratory for Sustainable Energy, Technical University of Denmark, DK-4000 Rosfeilde, Denmark;

    Biosystems Division, Ris0 National Laboratory for Sustainable Energy, Technical University of Denmark, DK-4000 Rosfeilde, Denmark;

    Chemical Engineering and Biochemical Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark,Department of Gas engineering, Faculty of Petroleum and Renewable Energy Engineering, Universiti Teknologi Malaysia, 81310 UTM Skudai, Malaysia;

    Biosystems Division, Ris0 National Laboratory for Sustainable Energy, Technical University of Denmark, DK-4000 Rosfeilde, Denmark;

    Biosystems Division, Ris0 National Laboratory for Sustainable Energy, Technical University of Denmark, DK-4000 Rosfeilde, Denmark;

    Chemical Engineering and Biochemical Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark;

    Chemical Engineering and Biochemical Engineering, Technical University of Denmark, DK-2800 Lyngby, Denmark;

  • 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

    biochar; charcoal; carbon sequestration; biochar stability; pyrolysis centrifuge reactor; triticum aestiuum;

    机译:生物炭;木炭;固碳;生物炭稳定性;热解离心反应器;小麦;

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