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首页> 外文期刊>Geoscientific Instrumentation, Methods and Data Systems Discussions >Improvement of density models of geological structures by fusion of gravity data and cosmic muon radiographies
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Improvement of density models of geological structures by fusion of gravity data and cosmic muon radiographies

机译:通过重力数据和宇宙μ子射线照相的融合改进地质结构的密度模型

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This paper examines how the resolution of small-scale geological density models is improved through the fusion of information provided by gravity measurements and density muon radiographies. Muon radiography aims at determining the density of geological bodies by measuring their screening effect on the natural flux of cosmic muons. Muon radiography essentially works like a medical X-ray scan and integrates density information along elongated narrow conical volumes. Gravity measurements are linked to density by a 3-D integration encompassing the whole studied domain. We establish the mathematical expressions of these integration formulas a?? called acquisition kernels a?? and derive the resolving kernels that are spatial filters relating the true unknown density structure to the density distribution actually recovered from the available data. The resolving kernel approach allows one to quantitatively describe the improvement of the resolution of the density models achieved by merging gravity data and muon radiographies. The method developed in this paper may be used to optimally design the geometry of the field measurements to be performed in order to obtain a given spatial resolution pattern of the density model to be constructed. The resolving kernels derived in the joined muona??gravimetry case indicate that gravity data are almost useless for constraining the density structure in regions sampled by more than two muon tomography acquisitions. Interestingly, the resolution in deeper regions not sampled by muon tomography is significantly improved by joining the two techniques. The method is illustrated with examples for the La Soufri?¨re volcano of Guadeloupe.
机译:本文研究了如何通过融合重力测量和密度μ射线照相提供的信息来提高小规模地质密度模型的分辨率。 Muon射线照相术旨在通过测量地质体对宇宙μ子的自然通量的屏蔽作用来确定其密度。 Muon射线照相术基本上像医学X射线扫描一样工作,并沿细长的锥形体积整合密度信息。重力测量通过涵盖整个研究领域的3-D积分与密度相关联。我们建立这些积分公式的数学表达式称为采集内核??并导出解析内核,这些解析内核是将真正的未知密度结构与实际从可用数据中恢复的密度分布相关联的空间滤波器。解析核方法允许人们定量地描述通过合并重力数据和μ子射线照相获得的密度模型分辨率的提高。本文开发的方法可用于优化设计要执行的现场测量的几何形状,以获得要构造的密度模型的给定空间分辨率模式。在联合的μ-on重力法中得到的分辨核表明,重力数据对于约束两次以上μ子层析成像采集的采样区域中的密度结构几乎是无用的。有趣的是,通过结合使用这两种技术,可以显着提高未通过μon层析成像进行采样的更深区域的分辨率。该方法以瓜德罗普岛的拉苏弗里火山为例进行了说明。

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