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Improved ice quantification at alpine permafrost sites based on electrical and electromagnetic measurements of spectral induced polarization

Improved ice quantification at alpine permafrost sites based on electrical and electromagnetic measurements of spectral induced polarization
基于光谱诱发极化的电学和电磁测量改进高山永久冻土区的冰量化
批准号:
403089687
负责人:
Professor Dr. Andreas Kemna
金额:
$0.0万
依托单位:
依托单位国家:
德国
项目类别:
Research Grants
财政年份:
2018
资助国家:
德国
项目状态:
已结题
起止时间:
2017-12-31 至 2022-12-31

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中文摘要
翻译
由于气候变化,山区永久冻土目前正在经历重大变化,在世界各地的许多地点都观察到了持续的升温和融化。由于无法从地表或通过标准遥感技术直观地评估多年冻土,特别是其地面冰的含量,地球物理方法正越来越多地被用于研究多年冻土的时空动力学。特别是,电阻率层析成像(ERT)已被证明是描述和监测永久冻土产状的合适工具。然而,由于岩石的电阻率不仅取决于冰/水含量,还取决于孔隙度、孔隙连通性、矿物学、水化学和温度,因此很难通过ERT测量可靠地量化冰含量。利用冰表现出的特征电极化特征这一事实,我们提出了一种基于光谱激发极化(SIP)空间分辨测量的高山永久冻土区地下冰含量成像和量化的新地球物理方法。与冰显示最大极化(100赫兹至100千赫)的频率范围相对应,我们计划通过使用时域电磁感应法(TEM)的间接SIP测量来补充直接SIP测量,以弥补在更高频率的直接SIP测量中可能缺乏的信息。SIP谱将被描述为背景信号和特征冰响应的叠加,并将基于新开发的(部分)冻结岩石的SIP属性的岩石物理模型来确定冰含量。拟议的定量、空间分辨确定冰含量的新方法将在阿尔卑斯山具有典型高山永久冻土特征的选定地点进行测试,其中用于校准和验证的独立信息来自先前的地球物理调查和现有的监测数据。所涉及的岩石物理模型将通过在受控冻融实验过程中对所考虑的野外地点的岩石样品进行的SIP实验室测量来验证,并将被独立地分析以获得相关的模型参数。据我们所知,该项目是第一个基于SIP/TEM联合测量的高山永久冻土地区地下冰含量定量成像的全面研究。虽然实验室研究和岩石物理模型的开发有助于更好地了解(部分)冻结多孔介质的电学性质,但通过考虑各种类型的高山永久冻土产状,实地研究对于在全球变暖的背景下进行有效的永久冻土监测具有很高的相关性。
英文摘要
Mountain permafrost is currently undergoing substantial changes due to climate change, and consistent warming and thawing has been observed at many sites worldwide. As permafrost and especially its ground ice content can neither be assessed visually from the surface nor by standard remote sensing techniques, geophysical methods are increasingly being used to investigate the spatio-temporal dynamics of permafrost. In particular electrical resistivity tomography (ERT) has been proven a suitable tool to characterize and monitor permafrost occurrences. However, since the resistivity of rocks depends not only on ice/water content but also on porosity, pore connectivity, mineralogy, water chemistry and temperature, it is hardly possible to reliably quantify ice content from ERT measurements.Utilizing the fact that ice exhibits a characteristic electrical polarization signature, we propose a new geophysical methodology for the imaging and quantification of subsurface ice content at alpine permafrost sites based on the spatially resolved measurement of spectral induced polarization (SIP). Corresponding to the frequency range in which ice shows a maximum polarization (100 Hz to 100 kHz), we plan to complement direct SIP measurements by indirect SIP measurements by means of the time-domain electromagnetic induction method (TEM), in order to compensate a possible lack of information in the direct SIP measurements at higher frequencies. The SIP spectrum will be described as a superposition of the background signal and the characteristic ice response, and ice content will be determined on the basis of a newly developed petrophysical model of the SIP properties of (partially) frozen rocks.The proposed new methodology for the quantitative, spatially resolved determination of ice content will be tested at selected sites in the Alps with typical alpine permafrost characteristics, where independent information for calibration and validation is available from previous geophysical investigations and existing monitoring data. The involved petrophysical model will be validated by means of SIP laboratory measurements in the course of controlled freeze-thaw experiments on rock samples from the considered field sites, which will be independently analyzed for relevant model parameters.To our knowledge the project represents the first comprehensive study on the quantitative imaging of subsurface ice content in alpine permafrost terrain based on combined SIP/TEM measurements. While the laboratory studies and the petrophysical model development contribute to an improved fundamental understanding of the electrical properties of (partially) frozen porous media, by considering various types of alpine permafrost occurrences the field studies are highly relevant with a view to an effective permafrost monitoring in the context of global warming.
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