Lithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UK

The spatial arrangement of gypsum veins as preserved natural hydraulic fractures have been characterized in the Triassic Keuper Marl Formation (UK), a caprock for hydrocarbon reservoirs and CO 2 sequestration. The marls cropping out are subdivided into five discrete fracture units based on the prese...

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Main Authors: Meng, Q, Hooker, J, Cartwright, J
Format: Journal article
Published: Cambridge University Press 2017
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author Meng, Q
Hooker, J
Cartwright, J
author_facet Meng, Q
Hooker, J
Cartwright, J
author_sort Meng, Q
collection OXFORD
description The spatial arrangement of gypsum veins as preserved natural hydraulic fractures have been characterized in the Triassic Keuper Marl Formation (UK), a caprock for hydrocarbon reservoirs and CO 2 sequestration. The marls cropping out are subdivided into five discrete fracture units based on the presence and abundance of gypsum veins. The nodular gypsum in evaporite horizons provides excess gypsum for nodule-rooted horizontal gypsum veins. Our petrographic observations demonstrate that the development of gypsum veins in beds lacking macroscopic evaporites is closely associated with disseminated gypsum cement in the marls. We interpret that the gypsum veins in marl are sourced from disseminated gypsum cements in the host rocks, based on stratigraphic correlations, and much lower Sr concentrations than gypsum nodules. Gypsum was transported to adjacent veins mainly through diffusion in the low-permeability marls. The localization of gypsum veins and varied Sr concentrations of veins and nodules indicate that the diagenetic fluids are a mix of connate water with meteoric water rather than brines transported from evaporite beds along faults to non-evaporite beds. This results in the absence of gypsum fillings in fractures in rocks without primary gypsum cements. The study implies that the cementation of natural fractures in low-permeability rocks can highly depend on the presence of cement minerals in the host rock.
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spelling oxford-uuid:f5d00a45-9846-47da-a309-5610dda622402022-03-27T12:30:19ZLithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UKJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:f5d00a45-9846-47da-a309-5610dda62240Symplectic Elements at OxfordCambridge University Press2017Meng, QHooker, JCartwright, JThe spatial arrangement of gypsum veins as preserved natural hydraulic fractures have been characterized in the Triassic Keuper Marl Formation (UK), a caprock for hydrocarbon reservoirs and CO 2 sequestration. The marls cropping out are subdivided into five discrete fracture units based on the presence and abundance of gypsum veins. The nodular gypsum in evaporite horizons provides excess gypsum for nodule-rooted horizontal gypsum veins. Our petrographic observations demonstrate that the development of gypsum veins in beds lacking macroscopic evaporites is closely associated with disseminated gypsum cement in the marls. We interpret that the gypsum veins in marl are sourced from disseminated gypsum cements in the host rocks, based on stratigraphic correlations, and much lower Sr concentrations than gypsum nodules. Gypsum was transported to adjacent veins mainly through diffusion in the low-permeability marls. The localization of gypsum veins and varied Sr concentrations of veins and nodules indicate that the diagenetic fluids are a mix of connate water with meteoric water rather than brines transported from evaporite beds along faults to non-evaporite beds. This results in the absence of gypsum fillings in fractures in rocks without primary gypsum cements. The study implies that the cementation of natural fractures in low-permeability rocks can highly depend on the presence of cement minerals in the host rock.
spellingShingle Meng, Q
Hooker, J
Cartwright, J
Lithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UK
title Lithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UK
title_full Lithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UK
title_fullStr Lithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UK
title_full_unstemmed Lithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UK
title_short Lithological control on fracture cementation in the Keuper Marl (Triassic), north Somerset, UK
title_sort lithological control on fracture cementation in the keuper marl triassic north somerset uk
work_keys_str_mv AT mengq lithologicalcontrolonfracturecementationinthekeupermarltriassicnorthsomersetuk
AT hookerj lithologicalcontrolonfracturecementationinthekeupermarltriassicnorthsomersetuk
AT cartwrightj lithologicalcontrolonfracturecementationinthekeupermarltriassicnorthsomersetuk