A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
A photograph captioned by Paul Corliss, "38 Belleview Terrace, Mount Pleasant. Post 22 February earthquake".
Seismic isolation is an effective technology for significantly reducing damage to buildings and building contents. However, its application to light-frame wood buildings has so far been unable to overcome cost and technical barriers such as susceptibility to movement during high-wind loading. The precursor to research in the field of isolation of residential buildings was the 1994 Northridge Earthquake (6.7 MW) in the United States and the 1995 Kobe Earthquake (6.9 MW) in Japan. While only a small number of lives were lost in residential buildings in these events, the economic impact was significant with over half of earthquake recovery costs given to repair and reconstruction of residential building damage. A value case has been explored to highlight the benefits of seismically isolated residential buildings compared to a standard fixed-base dwellings for the Wellington region. Loss data generated by insurance claim information from the 2011 Christchurch Earthquake has been used by researchers to determine vulnerability functions for the current light-frame wood building stock. By further considering the loss attributed to drift and acceleration sensitive components, and a simplified single degree of freedom (SDOF) building model, a method for determining vulnerability functions for seismic isolated buildings was developed. Vulnerability functions were then applied directly in a loss assessment using the GNS developed software, RiskScape. Vulnerability was shown to dramatically reduce for isolated buildings compared to an equivalent fixed-base building and as a result, the monetary savings in a given earthquake scenario were significant. This work is expected to drive further interest for development of solutions for the seismic isolation of residential dwellings, of which one option is further considered and presented herein.
This thesis investigates life-safety risk in earthquakes. The first component of the thesis utilises a dataset of earthquake injuries and deaths from recent earthquakes in New Zealand to identify cause, context, and risk factors of injury and death in the 2011 MW6.3 Christchurch earthquake and 2016 MW7.8 Kaikōura earthquake. Results show that nearly all deaths occurred from being hit by structural elements from buildings, while most injuries were caused by falls, strains and being hit by contents or non-structural elements. Statistical analysis of injured cases compared to an uninjured control group found that age, gender, building damage, shaking intensity, and behaviour during shaking were the most significant risk factors for injury during these earthquakes. The second part of the thesis uses the empirical findings from the first section to develop two tools for managing life-safety risk in earthquakes. The first tool is a casualty estimation model for health system and emergency response planning. An existing casualty model used in New Zealand was validated against observed data from the 2011 Christchurch earthquake and found to underestimate moderate and severe injuries by an order of magnitude. The model was then updated to include human behaviour such as protective actions, falls and strain type injuries that are dependent on shaking intensity, as well as injuries and deaths outside buildings. These improvements resulted in a closer fit to observed casualties for the 2011 Christchurch earthquake. The second tool that was developed is a framework to set seismic loading standards for design based on fatality risk targets. The proposed framework extends the risk-targeted hazard method, by moving beyond collapse risk targets, to fatality risk targets for individuals in buildings and societal risk in cities. The framework also includes treatment of epistemic uncertainty in seismic hazard to allow this uncertainty to be used in risk-based decision making. The framework is demonstrated by showing how the current New Zealand loading standards could be revised to achieve uniform life-safety risk across the country and how the introduction of a new loading factor can reduce risk aggregation in cities. Not on Alma, moved and emailed. 1/02/2023 ce