Airborne lidar change detection: An overview of Earth sciences applications

U Okyay, J Telling, CL Glennie, WE Dietrich - Earth-Science Reviews, 2019 - Elsevier
In the last two decades, airborne laser scanning (ALS) has found widespread application
and driven fundamental advances in the Earth sciences. With increasing availability and …

[HTML][HTML] Geological evidence for past large earthquakes and tsunamis along the Hikurangi subduction margin, New Zealand

K Clark, J Howarth, N Litchfield, U Cochran, J Turnbull… - Marine Geology, 2019 - Elsevier
Abstract The Hikurangi subduction margin, New Zealand, has not produced large
subduction earthquakes within the short written historic period (~ 180 years) and the …

Dynamic viability of the 2016 Mw 7.8 Kaikōura earthquake cascade on weak crustal faults

T Ulrich, AA Gabriel, JP Ampuero, W Xu - Nature communications, 2019 - nature.com
We present a dynamic rupture model of the 2016 Mw 7.8 Kaikōura earthquake to unravel the
event's riddles in a physics-based manner and provide insight on the mechanical viability of …

The New Zealand Community Fault Model–version 1.0: An improved geological foundation for seismic hazard modelling

H Seebeck, R Van Dissen, N Litchfield… - New Zealand Journal …, 2024 - Taylor & Francis
ABSTRACT The New Zealand Community Fault Model (NZ CFM) is a publicly available
representation of New Zealand fault zones that have the potential to produce damaging …

Earthquakes drive large-scale submarine canyon development and sediment supply to deep-ocean basins

JJ Mountjoy, JD Howarth, AR Orpin, PM Barnes… - Science …, 2018 - science.org
Although the global flux of sediment and carbon from land to the coastal ocean is well
known, the volume of material that reaches the deep ocean—the ultimate sink—and the …

Surface Rupture of Multiple Crustal Faults in the 2016  7.8 Kaikōura, New Zealand, Earthquake

NJ Litchfield, P Villamor… - Bulletin of the …, 2018 - pubs.geoscienceworld.org
Abstract Multiple (> 20) crustal faults ruptured to the ground surface and seafloor in the 14
November 2016 M w 7.8 Kaikōura earthquake, and many have been documented in detail …

[HTML][HTML] The 2016 Kaikōura earthquake: Simultaneous rupture of the subduction interface and overlying faults

T Wang, S Wei, X Shi, Q Qiu, L Li, D Peng… - Earth and Planetary …, 2018 - Elsevier
The distribution of slip during an earthquake and how it propagates among faults in the
subduction system play a major role in seismic and tsunami hazards, yet they are poorly …

Complex rupture process of the Mw 7.8, 2016, Kaikoura earthquake, New Zealand, and its aftershock sequence

S Cesca, Y Zhang, V Mouslopoulou, R Wang… - Earth and Planetary …, 2017 - Elsevier
Abstract The M7. 8 Kaikoura Earthquake that struck the northeastern South Island, New
Zealand, on November 14, 2016 (local time), is one of the largest ever instrumentally …

Transpressional Rupture Cascade of the 2016 Mw 7.8 Kaikoura Earthquake, New Zealand

W Xu, G Feng, L Meng, A Zhang… - Journal of …, 2018 - Wiley Online Library
Large earthquakes often do not occur on a simple planar fault but involve rupture of multiple
geometrically complex faults. The 2016 Mw 7.8 Kaikoura earthquake, New Zealand …

New Zealand Fault‐Rupture Depth Model v. 1.0: A Provisional Estimate of the Maximum Depth of Seismic Rupture on New Zealand's Active Faults

S Ellis, S Bannister, R Van Dissen… - Bulletin of the …, 2024 - pubs.geoscienceworld.org
We summarize estimates of the maximum rupture depth on New Zealand's active faults
(“New Zealand Fault‐Rupture Depth Model v. 1.0”), as used in the New Zealand Community …