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Spectral induced polarization for the characterisation of biochar in sand

机译:光谱诱导偏振,用于砂中Biochar的特征

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The use of biochar as a soil amendment attracts increasing research interest. However, the lack of methods to detect and monitor biochar in situ limits the validation of the field-scale application of biochar. Spectral induced polarization is a potential tool to characterise biochar in soil. The aim of this study is to investigate the sensitivity of spectral induced polarization to biochar in sand and to understand how the physicochemical properties of both the biochar and the surrounding matrix influence the spectral induced polarization response. To this end, spectral induced polarization measurements were conducted on four types of biochar with different mass fractions disseminated in saturated sand as a host media with changing electrical conductivity. In addition, it was investigated how the spectral induced polarization response depends on the particle size of biochar. The measured SIP data were interpreted by Debye decomposition to obtain values for the peak relaxation time, tau(peak); total chargeability, M; and normalised total chargeability, M-n. Spectral induced polarization showed a clear and specifically differentiated response to the presence of all four types of biochars. M was found to be proportional to the mass fraction of biochars, although relationships varied for each type of biochars. tpeak of biochars increased with increasing particle size. Increased electrolyte concentration enhanced M-n for all biochars, although again, the specific response was different for each biochar. In addition, higher electrolyte concentrations decreased tau(peak) for biochars derived from wood through pyrolysis but did not affect tau(peak) of biochar derived from miscanthus through hydrothermal carbonisation. It was concluded that the spectral induced polarization response of pyrolytic biochars resembled that of conductors or semiconductors, whereas the spectral induced polarization response of hydrothermal carbonisation biochar more closely resembled that of clay.
机译:生物炭作为土壤修正案吸引了越来越多的研究兴趣。然而,原位检测和监测生物炭的方法缺乏方法限制了Biochar的现场规模应用的验证。光谱诱导的极化是在土壤中表征生物炭的潜在工具。本研究的目的是研究光谱诱导偏振对沙子的生物炭的敏感性,并了解生物炭和周围基质的物理化学特性如何影响光谱诱导的极化响应。为此,在四种类型的生物炭中进行光谱诱导的极化测量,其具有不同的质量级分,作为具有变化导电性的宿主介质。此外,研究了光谱诱导的极化响应如何取决于生物炭的粒径。测量的SIP数据被去解说解释,以获得峰值松弛时间,TAU(峰)的值;总充电能力,M;并标准化总充电能力,M-N。光谱诱导的极化显示出对所有四种类型的生物触盘的存在的透明和特异性分化的反应。虽然对每种类型的生物脉内的关系变化,但发现M与Biochars的质量分数成比例。 Biochars的Tpeak随着粒径的增加而增加。增加电解质浓度增强的M-N对于所有Biochar,但同样,对于每个生物炭而言,特定的反应是不同的。此外,通过热解衍生自木瓜的生物脉(峰值)降低的电解质浓度降低,但不影响通过水热碳化衍生自体积的生物炭的Tau(峰)。得出结论是,热解生物谱的光谱诱导的偏振响应类似于导体或半导体的偏振响应,而水热碳化酶Biochar的光谱诱导的极化响应更像粘土。

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  • 来源
    《Near surface geophysics》 |2017年第6期|共12页
  • 作者单位

    Forschungszentrum Julich Inst Bio &

    Geosci Agrosphere IBG 3 D-52425 Julich Germany;

    Forschungszentrum Julich Inst Bio &

    Geosci Agrosphere IBG 3 D-52425 Julich Germany;

    Forschungszentrum Julich Inst Bio &

    Geosci Agrosphere IBG 3 D-52425 Julich Germany;

    Forschungszentrum Julich Inst Bio &

    Geosci Agrosphere IBG 3 D-52425 Julich Germany;

    Forschungszentrum Julich Cent Inst Engn Elect &

    Analyt Elect Syst ZEA 2 D-52425 Julich Germany;

    Forschungszentrum Julich Inst Bio &

    Geosci Agrosphere IBG 3 D-52425 Julich Germany;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 地球物理学;
  • 关键词

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