Regional-scale development of opening-mode calcite veins due to silica diagenesis
The formation and distribution of natural fractures in Cretaceous–Paleogene strata in Jordan are strongly tied to diagenetic processes, which in turn reflect the lithology of the host material. Observations collected from subsurface cores show that widespread fracturing began before compaction of th...
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Format: | Journal article |
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American Geophysical Union
2017
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_version_ | 1826268795898953728 |
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author | Hooker, J Huggett, J Cartwright, J Ali Hussein, M |
author_facet | Hooker, J Huggett, J Cartwright, J Ali Hussein, M |
author_sort | Hooker, J |
collection | OXFORD |
description | The formation and distribution of natural fractures in Cretaceous–Paleogene strata in Jordan are strongly tied to diagenetic processes, which in turn reflect the lithology of the host material. Observations collected from subsurface cores show that widespread fracturing began before compaction of the host sediment was complete, based on ptygmatic folding of one set of mineral-filled fractures (veins). Non-folded veins are preferentially developed within heavily cemented layers. Calcium carbonate is the greatest volumetric component of the host sediment, and most fractures are at least partially filled by calcite. Dolomite- and silica-bearing fractures are present in dolomitized and silicified host beds, respectively. Horizontal veins are filled by cone-in-cone calcite or, rarely, silica or dolomite. The stratigraphic arrangement and degree of compaction around ptygmatically folded calcite veins and chert nodules suggest that silica diagenesis was an important driver of early fractures. Nevertheless, those fractures were filled with carbonate cements as they opened, based on crack-seal texture of the vein fill. The volume loss associated with silica diagenesis created fracture porosity, which was filled coevally by carbonate cements. The distribution of later veins reflects embrittlement of host layers by cementation and is consistent with crustal deformation as the primary fracture driver. |
first_indexed | 2024-03-06T21:15:06Z |
format | Journal article |
id | oxford-uuid:3f84379f-2160-486f-a134-48eb52086c60 |
institution | University of Oxford |
last_indexed | 2024-03-06T21:15:06Z |
publishDate | 2017 |
publisher | American Geophysical Union |
record_format | dspace |
spelling | oxford-uuid:3f84379f-2160-486f-a134-48eb52086c602022-03-26T14:32:33ZRegional-scale development of opening-mode calcite veins due to silica diagenesisJournal articlehttp://purl.org/coar/resource_type/c_dcae04bcuuid:3f84379f-2160-486f-a134-48eb52086c60Symplectic Elements at OxfordAmerican Geophysical Union2017Hooker, JHuggett, JCartwright, JAli Hussein, MThe formation and distribution of natural fractures in Cretaceous–Paleogene strata in Jordan are strongly tied to diagenetic processes, which in turn reflect the lithology of the host material. Observations collected from subsurface cores show that widespread fracturing began before compaction of the host sediment was complete, based on ptygmatic folding of one set of mineral-filled fractures (veins). Non-folded veins are preferentially developed within heavily cemented layers. Calcium carbonate is the greatest volumetric component of the host sediment, and most fractures are at least partially filled by calcite. Dolomite- and silica-bearing fractures are present in dolomitized and silicified host beds, respectively. Horizontal veins are filled by cone-in-cone calcite or, rarely, silica or dolomite. The stratigraphic arrangement and degree of compaction around ptygmatically folded calcite veins and chert nodules suggest that silica diagenesis was an important driver of early fractures. Nevertheless, those fractures were filled with carbonate cements as they opened, based on crack-seal texture of the vein fill. The volume loss associated with silica diagenesis created fracture porosity, which was filled coevally by carbonate cements. The distribution of later veins reflects embrittlement of host layers by cementation and is consistent with crustal deformation as the primary fracture driver. |
spellingShingle | Hooker, J Huggett, J Cartwright, J Ali Hussein, M Regional-scale development of opening-mode calcite veins due to silica diagenesis |
title | Regional-scale development of opening-mode calcite veins due to silica diagenesis |
title_full | Regional-scale development of opening-mode calcite veins due to silica diagenesis |
title_fullStr | Regional-scale development of opening-mode calcite veins due to silica diagenesis |
title_full_unstemmed | Regional-scale development of opening-mode calcite veins due to silica diagenesis |
title_short | Regional-scale development of opening-mode calcite veins due to silica diagenesis |
title_sort | regional scale development of opening mode calcite veins due to silica diagenesis |
work_keys_str_mv | AT hookerj regionalscaledevelopmentofopeningmodecalciteveinsduetosilicadiagenesis AT huggettj regionalscaledevelopmentofopeningmodecalciteveinsduetosilicadiagenesis AT cartwrightj regionalscaledevelopmentofopeningmodecalciteveinsduetosilicadiagenesis AT alihusseinm regionalscaledevelopmentofopeningmodecalciteveinsduetosilicadiagenesis |