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Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius.

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Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius. / Manzella, Adele; Volpi, Gianni; Zaja, Annalisa et al.
In: Journal of Volcanology and Geothermal Research, Vol. 131, No. 1-2, 15.03.2004, p. 19-32.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Manzella, A, Volpi, G, Zaja, A & Meju, M 2004, 'Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius.', Journal of Volcanology and Geothermal Research, vol. 131, no. 1-2, pp. 19-32. https://doi.org/10.1016/S0377-0273(03)00313-5

APA

Manzella, A., Volpi, G., Zaja, A., & Meju, M. (2004). Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius. Journal of Volcanology and Geothermal Research, 131(1-2), 19-32. https://doi.org/10.1016/S0377-0273(03)00313-5

Vancouver

Manzella A, Volpi G, Zaja A, Meju M. Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius. Journal of Volcanology and Geothermal Research. 2004 Mar 15;131(1-2):19-32. doi: 10.1016/S0377-0273(03)00313-5

Author

Manzella, Adele ; Volpi, Gianni ; Zaja, Annalisa et al. / Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius. In: Journal of Volcanology and Geothermal Research. 2004 ; Vol. 131, No. 1-2. pp. 19-32.

Bibtex

@article{7c3a853ef98a45a3addef76eba006b68,
title = "Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius.",
abstract = "The conductivity structure of the top 2 km of the crust is examined using data from collocated magnetotelluric (MT) and time-domain electromagnetic (TDEM) soundings across the Vesuvius volcano. The MT data were corrected for static shift using dual-configuration TDEM data. The TEM and MT data were jointly inverted to yield 1D models while the TE and TM mode MT data were jointly inverted using a 2D inversion approach. The resulting models reveal the presence of a resistive cover layer underlain by an anomalous conductive layer (c. 250–500 m below the ground surface) that is shallowest underneath the caldera. We suggest that the conductive body below the caldera is related to enhanced hydrothermal circulation; outside the caldera, the conductor is consistent with the hydrological system and is interpreted as mapping a suggested aquifer system and underlying clayey deposits. Our results show that the aquifer hosted in the Vesuvius edifice is not homogeneous, but appears particularly conductive in the western and southern sectors of the volcano. It was found from 3D numerical modelling study that the presence of the shallow and thick conductors and the Tyrrhenian sea changes the penetration depth of MT data and must be taken into account during interpretation. Recommendations are made for any future MT field studies aimed at resolving the deep resistivity structure of Mt Somma-Vesuvius.",
keywords = "Mt Somma-Vesuvius, electromagnetic depth sounding, electromagnetic modelling, groundwater circulation",
author = "Adele Manzella and Gianni Volpi and Annalisa Zaja and Maxwell Meju",
year = "2004",
month = mar,
day = "15",
doi = "10.1016/S0377-0273(03)00313-5",
language = "English",
volume = "131",
pages = "19--32",
journal = "Journal of Volcanology and Geothermal Research",
issn = "0377-0273",
publisher = "Elsevier Science B.V.",
number = "1-2",

}

RIS

TY - JOUR

T1 - Combined TEM-MT investigation of shallow-depth resistivity structure of Mt. Somma-Vesuvius.

AU - Manzella, Adele

AU - Volpi, Gianni

AU - Zaja, Annalisa

AU - Meju, Maxwell

PY - 2004/3/15

Y1 - 2004/3/15

N2 - The conductivity structure of the top 2 km of the crust is examined using data from collocated magnetotelluric (MT) and time-domain electromagnetic (TDEM) soundings across the Vesuvius volcano. The MT data were corrected for static shift using dual-configuration TDEM data. The TEM and MT data were jointly inverted to yield 1D models while the TE and TM mode MT data were jointly inverted using a 2D inversion approach. The resulting models reveal the presence of a resistive cover layer underlain by an anomalous conductive layer (c. 250–500 m below the ground surface) that is shallowest underneath the caldera. We suggest that the conductive body below the caldera is related to enhanced hydrothermal circulation; outside the caldera, the conductor is consistent with the hydrological system and is interpreted as mapping a suggested aquifer system and underlying clayey deposits. Our results show that the aquifer hosted in the Vesuvius edifice is not homogeneous, but appears particularly conductive in the western and southern sectors of the volcano. It was found from 3D numerical modelling study that the presence of the shallow and thick conductors and the Tyrrhenian sea changes the penetration depth of MT data and must be taken into account during interpretation. Recommendations are made for any future MT field studies aimed at resolving the deep resistivity structure of Mt Somma-Vesuvius.

AB - The conductivity structure of the top 2 km of the crust is examined using data from collocated magnetotelluric (MT) and time-domain electromagnetic (TDEM) soundings across the Vesuvius volcano. The MT data were corrected for static shift using dual-configuration TDEM data. The TEM and MT data were jointly inverted to yield 1D models while the TE and TM mode MT data were jointly inverted using a 2D inversion approach. The resulting models reveal the presence of a resistive cover layer underlain by an anomalous conductive layer (c. 250–500 m below the ground surface) that is shallowest underneath the caldera. We suggest that the conductive body below the caldera is related to enhanced hydrothermal circulation; outside the caldera, the conductor is consistent with the hydrological system and is interpreted as mapping a suggested aquifer system and underlying clayey deposits. Our results show that the aquifer hosted in the Vesuvius edifice is not homogeneous, but appears particularly conductive in the western and southern sectors of the volcano. It was found from 3D numerical modelling study that the presence of the shallow and thick conductors and the Tyrrhenian sea changes the penetration depth of MT data and must be taken into account during interpretation. Recommendations are made for any future MT field studies aimed at resolving the deep resistivity structure of Mt Somma-Vesuvius.

KW - Mt Somma-Vesuvius

KW - electromagnetic depth sounding

KW - electromagnetic modelling

KW - groundwater circulation

U2 - 10.1016/S0377-0273(03)00313-5

DO - 10.1016/S0377-0273(03)00313-5

M3 - Journal article

VL - 131

SP - 19

EP - 32

JO - Journal of Volcanology and Geothermal Research

JF - Journal of Volcanology and Geothermal Research

SN - 0377-0273

IS - 1-2

ER -