Rock physics characterization of chalk by combining acoustic and electromagnetic properties

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Rock physics characterization of chalk by combining acoustic and electromagnetic properties. / Yuan, Hemin; Looms, Majken C.; Nielsen, Lars.

In: Geophysics, Vol. 87, No. 1, 22.09.2021, p. MR1-MR11.

Research output: Contribution to journalJournal articleResearchpeer-review

Harvard

Yuan, H, Looms, MC & Nielsen, L 2021, 'Rock physics characterization of chalk by combining acoustic and electromagnetic properties', Geophysics, vol. 87, no. 1, pp. MR1-MR11. https://doi.org/10.1190/geo2020-0317.1

APA

Yuan, H., Looms, M. C., & Nielsen, L. (2021). Rock physics characterization of chalk by combining acoustic and electromagnetic properties. Geophysics, 87(1), MR1-MR11. https://doi.org/10.1190/geo2020-0317.1

Vancouver

Yuan H, Looms MC, Nielsen L. Rock physics characterization of chalk by combining acoustic and electromagnetic properties. Geophysics. 2021 Sep 22;87(1):MR1-MR11. https://doi.org/10.1190/geo2020-0317.1

Author

Yuan, Hemin ; Looms, Majken C. ; Nielsen, Lars. / Rock physics characterization of chalk by combining acoustic and electromagnetic properties. In: Geophysics. 2021 ; Vol. 87, No. 1. pp. MR1-MR11.

Bibtex

@article{936ee36f6a2041a393a4e6921035016e,
title = "Rock physics characterization of chalk by combining acoustic and electromagnetic properties",
abstract = "The characterization of shallow subsurface formations is essential for geological mapping and interpretation, reservoir characterization, and prospecting related to mining/quarrying. To analyze elastic and electromagnetic properties, we characterize near-surface chalk formations deposited on a shallow seabed during the Late Cretaceous-Early Paleogene (Maastrichtian-Danian). Electromagnetic and elastic properties, both of which are related to mineralogy, porosity, and water saturation, are combined to characterize the physical properties of chalk formations. We also perform rock physics modeling of elastic velocities and permittivity and analyze their relationships. We then use measured ground penetrating radar and P-wave velocity field data to determine the key model parameters, which are essential for the validity of the models and can be used to evaluate the consolidation degree of the rocks. Based on the models, a scheme is developed to estimate the porosity and water saturation by combining the two rock physics templates. The predictions are consistent with previous findings. Our templates facilitate fast mapping of near-surface porosity and saturation distributions and represent an efficient and cost-effective method for near-surface hydrological, environmental, and petrophysical studies. In the current formulation, the method is only applicable to rock type (chalk) comprising a single mineral (pure calcite). It is possible to tailor the formulation to include more than one mineral; however, this will increase the uncertainty of the results. ",
keywords = "acoustic, electromagnetics, rock physics",
author = "Hemin Yuan and Looms, {Majken C.} and Lars Nielsen",
note = "Publisher Copyright: {\textcopyright} 2022 Society of Exploration Geophysicists.",
year = "2021",
month = sep,
day = "22",
doi = "10.1190/geo2020-0317.1",
language = "English",
volume = "87",
pages = "MR1--MR11",
journal = "Geophysics",
issn = "0016-8033",
publisher = "Society of Exploration Geophysicists",
number = "1",

}

RIS

TY - JOUR

T1 - Rock physics characterization of chalk by combining acoustic and electromagnetic properties

AU - Yuan, Hemin

AU - Looms, Majken C.

AU - Nielsen, Lars

N1 - Publisher Copyright: © 2022 Society of Exploration Geophysicists.

PY - 2021/9/22

Y1 - 2021/9/22

N2 - The characterization of shallow subsurface formations is essential for geological mapping and interpretation, reservoir characterization, and prospecting related to mining/quarrying. To analyze elastic and electromagnetic properties, we characterize near-surface chalk formations deposited on a shallow seabed during the Late Cretaceous-Early Paleogene (Maastrichtian-Danian). Electromagnetic and elastic properties, both of which are related to mineralogy, porosity, and water saturation, are combined to characterize the physical properties of chalk formations. We also perform rock physics modeling of elastic velocities and permittivity and analyze their relationships. We then use measured ground penetrating radar and P-wave velocity field data to determine the key model parameters, which are essential for the validity of the models and can be used to evaluate the consolidation degree of the rocks. Based on the models, a scheme is developed to estimate the porosity and water saturation by combining the two rock physics templates. The predictions are consistent with previous findings. Our templates facilitate fast mapping of near-surface porosity and saturation distributions and represent an efficient and cost-effective method for near-surface hydrological, environmental, and petrophysical studies. In the current formulation, the method is only applicable to rock type (chalk) comprising a single mineral (pure calcite). It is possible to tailor the formulation to include more than one mineral; however, this will increase the uncertainty of the results.

AB - The characterization of shallow subsurface formations is essential for geological mapping and interpretation, reservoir characterization, and prospecting related to mining/quarrying. To analyze elastic and electromagnetic properties, we characterize near-surface chalk formations deposited on a shallow seabed during the Late Cretaceous-Early Paleogene (Maastrichtian-Danian). Electromagnetic and elastic properties, both of which are related to mineralogy, porosity, and water saturation, are combined to characterize the physical properties of chalk formations. We also perform rock physics modeling of elastic velocities and permittivity and analyze their relationships. We then use measured ground penetrating radar and P-wave velocity field data to determine the key model parameters, which are essential for the validity of the models and can be used to evaluate the consolidation degree of the rocks. Based on the models, a scheme is developed to estimate the porosity and water saturation by combining the two rock physics templates. The predictions are consistent with previous findings. Our templates facilitate fast mapping of near-surface porosity and saturation distributions and represent an efficient and cost-effective method for near-surface hydrological, environmental, and petrophysical studies. In the current formulation, the method is only applicable to rock type (chalk) comprising a single mineral (pure calcite). It is possible to tailor the formulation to include more than one mineral; however, this will increase the uncertainty of the results.

KW - acoustic

KW - electromagnetics

KW - rock physics

U2 - 10.1190/geo2020-0317.1

DO - 10.1190/geo2020-0317.1

M3 - Journal article

AN - SCOPUS:85115931157

VL - 87

SP - MR1-MR11

JO - Geophysics

JF - Geophysics

SN - 0016-8033

IS - 1

ER -

ID: 285317626