David Wallis

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Assistant Professor

University of Cambridge
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United Kingdom

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David Wallis is an Assistant Professor at the University of Cambridge, UK. His research focuses on geomechanics, specifically investigating residual stress in geological materials and the microstructural evolution of minerals during deformation. Recent articles highlight his work on transient weakening in quartz and olivine and the dynamics of ice streams, contributing to our understanding of both seismogenic faults and glacial processes.

Recent Grants

Grant: Open

Conditions for earthquake nucleation in the lower crust

Open Date: 2023-01-01

Close Date: 2027-12-31

Grant: Close

Transient deformation in the upper mantle due to present-day deglaciation and earthquakes

Open Date: 2023-01-01

Close Date: 2025-12-31

Grant: Close

Microphysics of evolving rock viscosity in the seismic and glacial cycles

Open Date: 2021-10-01

Close Date:

Grant: Close

Transient deformation of the upper mantle from the crystal to the plate scales

Open Date: 2019-10-01

Close Date: 2022-09-01

Articles (21)

On-fault earthquake energy density partitioning from shocked garnet in an exhumed seismic midcrustal fault

The energy released during an earthquake is mostly dissipated in the fault zone and subordinately as radiated seismic waves. The on-fault energy budget is partitioned into frictional heat, generation of new grain surface by microfracturing, and crystal-lattice distortion associated with dislocation defects. The relative contribution of these components is debated and difficult to assess, but this energy partitioning strongly influences earthquake mechanics. We use high-resolution scanning-electron-microscopy techniques, especially to analyze shocked garnet in a fault wall-rock, to provide the first estimate of all three energy components for a seismic fault patch exhumed from midcrustal conditions. Fault single-jerk seismicity is recorded by the presence of pristine quenched frictional melt. The estimated value of energy per unit fault surface is ~13 megajoules per square meter for heat, which is predominant with respect to both surface energy (up to 0.29 megajoules per square meter) and energy associated with crystal lattice distortion (0.02 megajoules per square meter).

Year:

2024

Collaborators (21)

Antonio Langone

Professor

University of Pavia

ITALY

David Prior

University of Otago

NEW ZEALAND

Steven Reddy

Dean of Research

Curtin University

AUSTRALIA

Diana Avadanii

Karlsruhe Institute of Technology

GERMANY

Giorgio Pennacchioni

Full Professor

University of Padova

ITALY

Rick Verberne

Københavns Universitet

DENMARK

Michel Bestmann

Universität Wien

AUSTRIA

Katharina Marquardt

Senior Lecturer

Imperial College London

UNITED KINGDOM

Anders Svensson

Københavns Universitet

DENMARK

Ernest Rutter

The University of Manchester

UNITED KINGDOM

Paul D. Bons

Professor Structural Geology

Eberhard Karls Universität Tübingen

GERMANY

T. Broerse

-

NETHERLANDS

Jessica Warren

Associate Professor

University of Delaware

UNITED STATES

Lars Hansen

Stanford University

UNITED STATES

Marianne Negrini

-

NEW ZEALAND

Xin Zhong

Freie Universität Berlin

GERMANY

Angus J. Wilkinson

-

UNITED KINGDOM

David Armstrong

University of Oxford

UNITED KINGDOM

John Wheeler

Herdman Professor of Geology

University of Liverpool

UNITED KINGDOM

Luca Menegon

Professor of Geology

University of Oslo

NORWAY

Ilka Weikusat

Deputy Section Head

Alfred-Wegener-Institut für Polar und Meeresforschung

GERMANY
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