Remote sensing in geology involves the exploration of minerals, studies in geological engineering, environmental geology, and analysis of geohazards.
Thermal remote sensing is utilized for the discrimination of rock types and geological mapping. Rocks exhibit different thermal responses to temperature changes, with high thermal inertia rocks appearing brighter in nighttime images. Anticlines and synclines show distinct warmer and cooler signatures based on differences in thermal inertia. Weak zones like faults and fractures manifest as cool linear anomalies in both day and night thermal images.
Example: In a nighttime thermal image, rocks with high thermal inertia will appear brighter compared to rocks with lower thermal inertia.
Microwave remote sensing, operating in the range of about 1 cm to 1 m, provides valuable information on surface roughness, complex dielectric constants, surface geometry, soil moisture, topography, and drainage patterns. Synthetic Aperture Radar (SAR) is used to capture this information, including details about in-situ rock types and sub-surface structures.
Example: SAR techniques offer relatively coarser resolution data that suppress minor variations, providing a broader view of geological terrain.
Remote sensing plays a crucial role in lithological mapping, which involves studying the physical characteristics of rocks. Spectral signatures of rocks are determined by the nature of parent elements and internal molecular structures. Various elements and compounds, such as Fe, Mn, Cu, Ni, Cr, hydroxyl ions, carbonates, and water molecules, exhibit distinctive signatures in different regions of the electromagnetic spectrum.
Example: Transitional metals like Fe and Mn are identified in the visible and near-infrared regions, while hydroxyl ions and carbonates are detected in the short-wavelength infrared region.
Remote sensing and GIS play a crucial role in the field of geology, enabling the identification and mapping of geological features with precision and efficiency.
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Prospecting for mineral deposits or suitable host rocks is crucial for identifying potential mineral reserves. Remote sensing data, in conjunction with geological maps, geochemical data, and geophysical data, is utilized to model mineral reserve potential.
Example: Using satellite imagery like the WorldView-3 SWIR data for mineral exploration.
The field of geology is multidisciplinary and has evolved over more than 200 years. The integration of multi-spectral remote sensing and Geographical Information Systems (GIS) has provided new tools for geological mapping.
Geo-engineering involves applying engineering principles to geological studies, as geological factors influence the location, design, construction, operation, and maintenance of engineering works.
Example: Engineering geologists provide geological and geotechnical recommendations, as well as analysis and design services for construction projects.
Remote sensing plays a significant role in engineering geology by offering valuable insights into geological features that impact engineering projects.
Geoengineering involves assessing the environmental impact of engineering projects and incorporating measures to mitigate any negative effects.
During the construction phase, geoengineering ensures that engineering works are implemented according to geological and geotechnical recommendations.
Value engineering principles are applied to optimize the cost-effectiveness and efficiency of engineering projects within geological constraints.
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