The Role of Chemistry in Fracture Pattern Development and Opportunities to Advance Interpretations of Geological Materials
Роль химии в развитии закономерностей трещинообразования и возможности для совершенствования интерпретаций геологических материалов
2019-08-22
SCID: 54.1/53sg52nb
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chemical processes in fracture developmentdiagenetic fractures (~50–200 °C)fracture cementation and chemically assisted fracture growthmachine learning and 3-D imaging for fracture reconstructionsubcritical crack propagation
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Abstract (AI)
Abstract Fracture pattern development has been a challenging area of research in the Earth sciences for more than 100 years. Much has been learned about the spatial and temporal complexity inherent to these systems, but severe challenges remain. Future advances will require new approaches. Chemical processes play a larger role in opening‐mode fracture pattern development than has hitherto been appreciated. This review examines relationships between mechanical and geochemical processes that influence the fracture patterns recorded in natural settings. For fractures formed in diagenetic settings (~50 to 200 °C), we review evidence of chemical reactions in fractures and show how a chemical perspective helps solve problems in fracture analysis. We also outline impediments to subsurface pattern measurement and interpretation, assess implications of discoveries in fracture history reconstruction for process‐based models, review models of fracture cementation and chemically assisted fracture growth, and discuss promising paths for future work. To accurately predict the mechanical and fluid flow properties of fracture systems, a processes‐based approach is needed. Progress is possible using observational, experimental, and modeling approaches that view fracture patterns and properties as the result of coupled mechanical and chemical processes. A critical area is reconstructing patterns through time. Such data sets are essential for developing and testing predictive models. Other topics that need work include models of crystal growth and dissolution rates under geological conditions, cement mechanical effects, and subcritical crack propagation. Advances in machine learning and 3‐D imaging present opportunities for a mechanistic understanding of fracture formation and development, enabling prediction of spatial and temporal complexity over geologic timescales. Geophysical research with a chemical perspective is needed to correctly identify and interpret fractures from geophysical measurements during site characterization and monitoring of subsurface engineering activities.
Key Findings
1
Accurate prediction of mechanical and fluid-flow properties of fracture systems requires a process-based approach that couples mechanical and chemical processes.
2
Advances in machine learning and 3-D imaging, plus geophysical studies with a chemical perspective, offer opportunities to predict fracture spatial and temporal complexity and improve fracture identification during subsurface monitoring.
3
Chemical processes play a larger role in opening-mode fracture pattern development than previously appreciated and significantly influence natural fracture patterns.
4
Critical research needs include reconstructing fracture patterns through time, measuring crystal growth/dissolution rates under geological conditions, cement mechanical effects, and subcritical crack propagation.
5
For fractures formed in diagenetic settings (~50–200 °C), evidence of chemical reactions in fractures helps resolve problems in fracture analysis and history reconstruction.
Research Object
Fracture patterns in geological/subsurface materials (especially opening-mode fractures formed in diagenetic settings)
Research Subject
Influence of chemical processes and coupled mechanical–geochemical interactions on fracture pattern development, history reconstruction, cementation, growth mechanisms, and implications for mechanical and fluid-flow properties and predictive modeling
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2019-08-22
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