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Heterogeneous crust and upper mantle across southern Kenya and the relationship to surface deformation as inferred from magnetoteluric imaging.

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Heterogeneous crust and upper mantle across southern Kenya and the relationship to surface deformation as inferred from magnetoteluric imaging. / Meju, Maxwell; Sakkas, V.
In: Journal of Geophysical Research: Solid Earth, Vol. 112, No. B4, 01.03.2007, p. B04103.

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Meju M, Sakkas V. Heterogeneous crust and upper mantle across southern Kenya and the relationship to surface deformation as inferred from magnetoteluric imaging. Journal of Geophysical Research: Solid Earth. 2007 Mar 1;112(B4):B04103. doi: 10.1029/2005JB004028

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@article{c48f2c7176af4dd88a36bbb1d7c56c42,
title = "Heterogeneous crust and upper mantle across southern Kenya and the relationship to surface deformation as inferred from magnetoteluric imaging.",
abstract = "We have used magnetotelluric data imaging to determine the resistivity structure across southern Kenya and our results suggest the presence of a buckled blocky or segmented lithosphere across the region. Prominent steep conductive zones at the Oloololo (OLO) escarpment and eastern rift margin allow us to subdivide the region into three crustal domains. West of OLO, a bow-shaped conductor underlies a 10 km thick resistive upper crustal unit spatially correlating with an exposed Archaean greenstone belt. Between OLO and the eastern rift margin are found steeply dipping alternating conductive and resistive zones that appear buckled. East of this belt are found prominent, 5 to 20 km deep, subhorizontal conductors atop steep resistive blocks with flanking conductors. The main steep features in the crust appear to extend below the seismic Moho and thus suggest the presence of anomalously thick crust across the region. A 50 km-wide and 4–8 km deep w-shaped (double half-graben) structure is suggested at the position of the Kenyan rift. We show that our inferred lateral zoning is consistent with collocated gravity and seismic measurements. We propose a link between the deep resistivity heterogeneity and surface deformation pattern in the area.",
keywords = "electrical conductivity, Precambrian tectonics, Mozambique orogenic belt.",
author = "Maxwell Meju and V. Sakkas",
note = "Copyright (2007) American Geophysical Union. Further reproduction or electronic distribution is not permitted. We show that the crust and upper mantle across the Precambrian collision-mountain belt of southern Kenya consist of steeply dipping blocks contrary to previously held views of near-horizontal layering. We propose that lithospheric heterogeneity controlled the deformation seen at the surface. Original ideas from first author, co-author analysed field data. RAE_import_type : Journal article RAE_uoa_type : Earth Systems and Environmental Sciences",
year = "2007",
month = mar,
day = "1",
doi = "10.1029/2005JB004028",
language = "English",
volume = "112",
pages = "B04103",
journal = "Journal of Geophysical Research: Solid Earth",
publisher = "Wiley-Blackwell",
number = "B4",

}

RIS

TY - JOUR

T1 - Heterogeneous crust and upper mantle across southern Kenya and the relationship to surface deformation as inferred from magnetoteluric imaging.

AU - Meju, Maxwell

AU - Sakkas, V.

N1 - Copyright (2007) American Geophysical Union. Further reproduction or electronic distribution is not permitted. We show that the crust and upper mantle across the Precambrian collision-mountain belt of southern Kenya consist of steeply dipping blocks contrary to previously held views of near-horizontal layering. We propose that lithospheric heterogeneity controlled the deformation seen at the surface. Original ideas from first author, co-author analysed field data. RAE_import_type : Journal article RAE_uoa_type : Earth Systems and Environmental Sciences

PY - 2007/3/1

Y1 - 2007/3/1

N2 - We have used magnetotelluric data imaging to determine the resistivity structure across southern Kenya and our results suggest the presence of a buckled blocky or segmented lithosphere across the region. Prominent steep conductive zones at the Oloololo (OLO) escarpment and eastern rift margin allow us to subdivide the region into three crustal domains. West of OLO, a bow-shaped conductor underlies a 10 km thick resistive upper crustal unit spatially correlating with an exposed Archaean greenstone belt. Between OLO and the eastern rift margin are found steeply dipping alternating conductive and resistive zones that appear buckled. East of this belt are found prominent, 5 to 20 km deep, subhorizontal conductors atop steep resistive blocks with flanking conductors. The main steep features in the crust appear to extend below the seismic Moho and thus suggest the presence of anomalously thick crust across the region. A 50 km-wide and 4–8 km deep w-shaped (double half-graben) structure is suggested at the position of the Kenyan rift. We show that our inferred lateral zoning is consistent with collocated gravity and seismic measurements. We propose a link between the deep resistivity heterogeneity and surface deformation pattern in the area.

AB - We have used magnetotelluric data imaging to determine the resistivity structure across southern Kenya and our results suggest the presence of a buckled blocky or segmented lithosphere across the region. Prominent steep conductive zones at the Oloololo (OLO) escarpment and eastern rift margin allow us to subdivide the region into three crustal domains. West of OLO, a bow-shaped conductor underlies a 10 km thick resistive upper crustal unit spatially correlating with an exposed Archaean greenstone belt. Between OLO and the eastern rift margin are found steeply dipping alternating conductive and resistive zones that appear buckled. East of this belt are found prominent, 5 to 20 km deep, subhorizontal conductors atop steep resistive blocks with flanking conductors. The main steep features in the crust appear to extend below the seismic Moho and thus suggest the presence of anomalously thick crust across the region. A 50 km-wide and 4–8 km deep w-shaped (double half-graben) structure is suggested at the position of the Kenyan rift. We show that our inferred lateral zoning is consistent with collocated gravity and seismic measurements. We propose a link between the deep resistivity heterogeneity and surface deformation pattern in the area.

KW - electrical conductivity

KW - Precambrian tectonics

KW - Mozambique orogenic belt.

U2 - 10.1029/2005JB004028

DO - 10.1029/2005JB004028

M3 - Journal article

VL - 112

SP - B04103

JO - Journal of Geophysical Research: Solid Earth

JF - Journal of Geophysical Research: Solid Earth

IS - B4

ER -