Constraining helicopter electromagnetic models of the Okavango Delta with seismic-refraction and seismic-reflection data

Author:

Reiser Fabienne1,Podgorski Joel E.1,Schmelzbach Cedric1,Horstmeyer Heinrich1,Green Alan G.1,Kalscheuer Thomas2,Maurer Hansruedi1,Kinzelbach Wolfgang K. H.3,Tshoso Gomotsang4,Ntibinyane Onkgopotse4

Affiliation:

1. ETH Zürich, Institute of Geophysics, Zürich, Switzerland..

2. ETH Zürich, Institute of Geophysics, Zürich, Switzerland and Uppsala University, Department of Earth Sciences, Uppsala, Sweden..

3. ETH Zürich, Institute of Environmental Engineering, Zürich, Switzerland..

4. Department of Geological Survey, Lobatse, Botswana..

Abstract

Electrical resistivity models derived from exceptionally high-quality helicopter transient electromagnetic data recorded across the Okavango Delta in Botswana, one of the world’s great inland deltas or megafans, include three principal layers: (1) an upper heterogeneous layer of dry and water-saturated sand, (2) an intermediate electrically conductive layer that likely comprises saline-water-saturated sand and clay, and (3) a lower fan-shaped electrically resistive layer of freshwater-saturated sand/gravel and/or crystalline basement. If part of the lower layer comprises a freshwater aquifer, it would be evidence for a recently proposed Paleo Okavango Megafan and a major new source of freshwater. In an attempt to constrain the interpretation of the lower layer, we acquired two high-resolution seismic refraction and reflection data sets at each of two investigation sites: one near the center of the delta and one along its western edge. The interface between unconsolidated sediments and basement near the center of the delta is well defined by an [Formula: see text] to [Formula: see text] increase in P-wave velocities, a change in seismic reflection facies, and a strong continuous reflection. This interface is about 45 m deeper than the top of the lower resistive layer, thus providing support for the Paleo Okavango Megafan hypothesis. Subhorizontal seismic reflectors are additional evidence for a sedimentary origin of the upper part of the lower resistive layer. In contrast to the observations at the delta’s center, the interface between unconsolidated sediments and basement along its western edge, which is also defined by a [Formula: see text] to [Formula: see text] increase in P-wave velocities and a continuous reflection, coincides with the top of the resistive layer.

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

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