Paolo Ciampi, Leonardo Maria Giannini, Carlo Esposito, Siham Younsi
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引用次数: 0
Abstract
Cadastral maps represent invaluable assets for understanding urban landscapes, yet their integration with modern geospatial and geophysical techniques remains underexplored. In this study, we present a comprehensive analysis of Civita Castellana's subterranean landscape (a town in central Italy), employing a multi-temporal geomodelling approach to integrate dynamics with stratigraphic and morphometric evidence, and unravel the evolutionary framework of anthropogenic deposits. Leveraging historical cadastral maps, geological boreholes, and dynamic probing (DP) tests, we construct a 3D time-sensitive geological model, to shed light on the geological architecture and geometry of anthropogenic deposits and to understand the morphological evolution of urban landscapes over the past seven decades. Near-surface geophysical techniques, such as multichannel analysis of surface waves (MASW) and horizontal/vertical spectral ratio (HVSR) investigations, are performed to evaluate the robustness and accuracy of our digital geomodelling approach. The 3D multi-source and digital model reveals significant insights into the changes in hydrographic networks, distribution, and evolution in thickness of anthropogenic backfill materials driven by human processes. Geophysical investigations accurately characterize anthropogenic materials and validate the reliability of historical cadastral maps for modeling the geometry and thickness of anthropogenic deposits in urban environments. The 3D advanced multi-temporal modeling unveils previously unknown hidden valleys and elucidates the dynamic evolution of backfill materials. This study not only enhances our understanding of urban geomorphology but also emphasizes the potential of combining historical maps with geophysical techniques to reconstruct and track changes in urban environments, potentially reducing the requirement for invasive and expensive investigations, which are impractical in heavily urbanized areas.
期刊介绍:
Environmental Earth Sciences is an international multidisciplinary journal concerned with all aspects of interaction between humans, natural resources, ecosystems, special climates or unique geographic zones, and the earth:
Water and soil contamination caused by waste management and disposal practices
Environmental problems associated with transportation by land, air, or water
Geological processes that may impact biosystems or humans
Man-made or naturally occurring geological or hydrological hazards
Environmental problems associated with the recovery of materials from the earth
Environmental problems caused by extraction of minerals, coal, and ores, as well as oil and gas, water and alternative energy sources
Environmental impacts of exploration and recultivation – Environmental impacts of hazardous materials
Management of environmental data and information in data banks and information systems
Dissemination of knowledge on techniques, methods, approaches and experiences to improve and remediate the environment
In pursuit of these topics, the geoscientific disciplines are invited to contribute their knowledge and experience. Major disciplines include: hydrogeology, hydrochemistry, geochemistry, geophysics, engineering geology, remediation science, natural resources management, environmental climatology and biota, environmental geography, soil science and geomicrobiology.