利用地球物理和高光谱遥感技术推进地下断层共振

IF 0.7 4区 地球科学 Q4 GEOCHEMISTRY & GEOPHYSICS
Ayaz Mohmood Dar, Syed Kaiser Bukhari, Dar Sarvat Gull
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引用次数: 0

摘要

该研究利用地磁场和高光谱遥感技术获取地下特征信息并圈定断层。在这项研究中,在克什米尔山谷沿断层的不同地点进行了地面磁测量。研究发现,断层与磁极小值有关,表明沿断层面有潜在的水力活动。观测到的磁场异常归因于断层破裂带发生的氧化和马氏体化过程。这些过程导致铁含量降低,导致线性剖面异常。考虑到研究区的地壳厚度和岩性特征,总磁感应强度(TMI)变化约25 nT。这表明,对地壳的磁场研究可以非常有效地用于断层描绘。此外,本研究还采用了跨断层剖面的高光谱遥感分析。这一分析表明,断层面呈现出光谱变化。光谱反射率随波长的增加而增加,表明Fe3+向Fe2+转变。这些发现表明,高光谱研究可以很好地用于探测和验证地下断层。研究发现,将磁异常数据与高光谱遥感数据相结合,可以推断出断层的位置。这种综合方法可以改进断层描绘,更好地了解地下断层特征,这对地震学研究至关重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Advancing Subsurface Fault Resonance through Integrated Geophysical and Hyperspectral Remote Sensing Techniques

Advancing Subsurface Fault Resonance through Integrated Geophysical and Hyperspectral Remote Sensing Techniques

The study used the geomagnetic field and hyperspectral remote sensing techniques to acquire information about subsurface characteristics and delineate faults. In this study, ground magnetic surveys were conducted at various locations along the fault in the Kashmir Valley. The study found that the faults are associated with magnetic minima, indicating potential hydraulic activities along the fault planes. The anomalies observed in the magnetic field were attributed to oxidation and martitization processes occurring at fault rupture zones. These processes led to a reduction in iron content, resulting in anomalies in linear profiles. The total magnetic intensity (TMI) varied by approximately 25 nT, considering the crustal thickness and lithological characteristics of the study area. This suggests that magnetic studies of the Earth’s crust can be highly effective for fault delineation purposes. Additionally, this study employed hyperspectral remote sensing analysis across the fault profile. This analysis revealed that fault planes exhibited spectral variations. Specifically, spectral reflectance increased consistently with longer wavelengths, which indicates transformation of Fe3+ to Fe2+. These findings indicate that hyperspectral studies can be well-suited for detecting and validating subsurface faults. The study found that the fault location can be inferred by combining the magnetic anomaly data and hyperspectral remote sensing data. This integrated approach allows for improved fault delineation and a better understanding of subsurface fault characteristics, which are essential for seismological studies.

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来源期刊
Geomagnetism and Aeronomy
Geomagnetism and Aeronomy Earth and Planetary Sciences-Space and Planetary Science
CiteScore
1.30
自引率
33.30%
发文量
65
审稿时长
4-8 weeks
期刊介绍: Geomagnetism and Aeronomy is a bimonthly periodical that covers the fields of interplanetary space; geoeffective solar events; the magnetosphere; the ionosphere; the upper and middle atmosphere; the action of solar variability and activity on atmospheric parameters and climate; the main magnetic field and its secular variations, excursion, and inversion; and other related topics.
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