A photograph of the rubble from a block of demolished shops on Cranford Street.
A photograph of workers in a crane-raise platform removing bricks from the earthquake-damaged Christchurch Chinese Methodist Church on Papanui Road.
A photograph of a crack in a bank next to a motorway in Christchurch. A tape measure in the crack indicates that it is over six feet deep.
A photograph of a pile of silt from liquefaction in a garden and driveway.
A photograph of a sewer pipe under repair in Christchurch.
A photograph of a large crack along the edge of a footpath near the Kaiapoi River. The ground has slumped, taking the fence posts with it.
A photograph of the i-SITE Visitor Centre in Kaiapoi. The foundations have lifted at the back of the building giving it a forward lean. Tape has been placed across the footpath and road as a cordon.
A photograph of large cracks in the ground near the Kaiapoi River.
A photograph of the earthquake damage to a group of shops on the corner of Barbadoes Street and Edgeware Road. The second storey of the shops has collapsed, and the bricks have fallen to the footpath, taking the awnings with them. Police tape and road cones have been placed around the buildings as a cordon.
A photograph of a sign for the Kaiapoi Sewage Treatment Plant in Kaiapoi.
A photograph of piles of silt on the side of a road in Christchurch. This has been dug out of people's properties and placed on the road to be picked up by the Council.
A photograph of a sign on the door of the Botanic Gardens Cafe. The sign indicates that the premises have been assessed by the Christchurch City Council after the 4 September 2010 earthquake and no apparent food safety issues were found.
A photograph of the staff in the C Block Lecture Theatre at the University of Canterbury. The staff are waiting to be briefed about the staff working bee.
A photograph of Colombo Street looking south from the bridge near Moorhouse Avenue. Road cones have been placed across the road as well as wire fencing beyond. In the distance, a cordon can also be seen near Brougham Street.
A photograph of liquefaction in a paddock.
A photograph of a cracks and liquefaction on a bank next to a motorway in Christchurch.
A photograph of an earthquake-damaged chimney on a house in Christchurch. The bricks have crumbled to reveal the flue.
A photograph of large cracks in the ground near the Kaiapoi River.
A photograph of liquefaction volcanos in a garden.
A photograph of the tower of the former Trinity Church on the corner of Manchester Street and Worcester Street
A photograph of an earthquake-damaged building on the corner of Montreal Street and Moorhouse Avenue. The top of the brick facade has crumbled onto the footpath below. Wire fencing has been placed around the building as a cordon.
A photograph of a liquefaction volcano in a garden. A pen has been placed on the mound as a size reference.
A photograph of liquefaction volcanos in a garden.
A photograph of the earthquake damage to a group of shops on the corner of Barbadoes Street and Edgeware Road. The second storey of the shops has collapsed, and the bricks have fallen to the footpath, taking the awnings with them. Police tape and road cones have been placed around the buildings as a cordon.
A photograph of the Pills for Thrills building on Worcester Street which suffered damage from a fire caused by the 4 September 2010 earthquake.
Earthquakes impacting on the built environment can generate significant volumes of waste, often overwhelming existing waste management capacities. Earthquake waste can pose a public and environmental health hazard and can become a road block on the road to recovery. Specific research has been developed at the University of Canterbury to go beyond the current perception of disaster waste as a logistical hurdle, to a realisation that disaster waste management is part of the overall recovery process and can be planned for effectively. Disaster waste decision-makers, often constrained by inappropriate institutional frameworks, are faced with conflicting social, economic and environmental drivers which all impact on the overall recovery. Framed around L’Aquila earthquake, Italy, 2009, this paper discusses the social, economic and environmental effects of earthquake waste management and the impact of existing institutional frameworks (legal, financial and organisational). The paper concludes by discussing how to plan for earthquake waste management.
This paper presents the probabilistic seismic performance and loss assessment of an actual bridge– foundation–soil system, the Fitzgerald Avenue twin bridges in Christchurch, New Zealand. A two-dimensional finite element model of the longitudinal direction of the system is modelled using advanced soil and structural constitutive models. Ground motions at multiple levels of intensity are selected based on the seismic hazard deaggregation at the site. Based on rigorous examination of several deterministic analyses, engineering demand parameters (EDP’s), which capture the global and local demand, and consequent damage to the bridge and foundation are determined. A probabilistic seismic loss assessment of the structure considering both direct repair and loss of functionality consequences was performed to holistically assess the seismi risk of the system. It was found that the non-horizontal stratification of the soils, liquefaction, and soil–structure interaction had pronounced effects on the seismic demand distribution of the bridge components, of which the north abutment piles and central pier were critical in the systems seismic performance. The consequences due to loss of functionality of the bridge during repair were significantly larger than the direct repair costs, with over a 2% in 50 year probability of the total loss exceeding twice the book-value of the structure.
Vicki O'Sullivan stands by the sign pointing through a fern garden to the temporary new entrance to the School of Engineering office. Asbestos is currently being removed from areas within the building.
The Resilient Organisations Research Programme and the University of Canterbury are undertaking a longitudinal study to examine the resilience and recovery of organisations within the Canterbury region following the 4 September Canterbury earthquake. The preliminary data suggest the physical, economic and social effects of the earthquake were varied across industry sectors within Canterbury. These preliminary results catalogue organisations’ perceptions of the: - disruptions to their ability to do business - challenges faced in the aftermath of the earthquake - factors that have helped mitigate the effects of the earthquake - revenue changes and projections for the duration of this change - financing options for recovery
On 4 September 2010, a magnitude Mw 7.1 earthquake struck the Canterbury region on the South Island of New Zealand. The epicentre of the earthquake was located in the Darfield area about 40 km west of the city of Christchurch. Extensive damage was inflicted to lifelines and residential houses due to widespread liquefaction and lateral spreading in areas close to major streams, rivers and wetlands throughout Christchurch and Kaiapoi. Unreinforced masonry buildings also suffered extensive damage throughout the region. Despite the severe damage to infrastructure and residential houses, fortunately, no deaths occurred and only two injuries were reported in this earthquake. From an engineering viewpoint, one may argue that the most significant aspects of the 2010 Darfield Earthquake were geotechnical in nature, with liquefaction and lateral spreading being the principal culprits for the inflicted damage. Following the earthquake, an intensive geotechnical reconnaissance was conducted to capture evidence and perishable data from this event. This paper summarizes the observations and preliminary findings from this early reconnaissance work.