Lincoln University was commissioned by the Avon-Otakaro Network (AvON) to estimate the value of the benefits of a ‘recreation reserve’ or ‘river park’ in the Avon River Residential Red Zone (ARRRZ). This research has demonstrated significant public desire and support for the development of a recreation reserve in the Avon River Residential Red Zone. Support is strongest for a unique natural environment with native fauna and flora, healthy wetlands and rivers, and recreational opportunities that align with this vision, such as walking, cycling and water-based sporting and leisure activities. The research also showed support for a reserve that promotes and enables community interaction and wellbeing, and is evident in respondents’ desires for community gardens, regular festivals and markets, and the physical linking of the CBD with eastern suburbs through a green corridor. There is less support for children’s playgrounds, sports fields or open grassed areas, all of which could be considered as more typical of an urban park development. Benefits (willing to pay) to Christchurch residents (excluding tourists) of a recreation reserve could be as high as $35 million each year. Savings to public health costs could be as high as $50.3 million each year. The incorporation or restoration of various ecosystems services, including water quality improvements, flood mitigation and storm water management could yield a further $8.8 million ($19, 600) per hectare/year at 450 ha). Combined annual benefits of a recreational reserve in the ARRRZ are approximately $94.1 million per annum but this figure does not include potentially significant benefits from, for example, tourism, property equity gains in areas adjacent to the reserve, or the effects of economic rejuvenation in the East. Although we were not able to provide costing estimates for park attributes, this study does make available the value of benefits, which can be used as a guide to the scope of expenditure on development of each park attribute.
The 2013 Seddon earthquake (Mw 6.5), the 2013 Lake Grassmere earthquake (Mw 6.6), and the 2016 Kaikōura earthquake (Mw 7.8) provided an opportunity to assemble the most extensive damage database to wine storage tanks ever compiled worldwide. An overview of this damage database is presented herein based on the in-field post-earthquake damage data collected for 2058 wine storage tanks (1512 legged tanks and 546 flat-based tanks) following the 2013 earthquakes and 1401 wine storage tanks (599 legged tanks and 802 flat-based tanks) following the 2016 earthquake. Critique of the earthquake damage database revealed that in 2013, 39% and 47% of the flat-based wine tanks sustained damage to their base shells and anchors respectively, while due to resilience measures implemented following the 2013 earthquakes, in the 2016 earthquake the damage to tank base shells and tank anchors of flat-based wine tanks was reduced to 32% and 23% respectively and instead damage to tank barrels (54%) and tank cones (43%) was identified as the two most frequently occurring damage modes for this type of tank. Analysis of damage data for legged wine tanks revealed that the frame-legs of legged wine tanks sustained the greatest damage percentage among different parts of legged tanks in both the 2013 earthquakes (40%) and in the 2016 earthquake (44%). Analysis of damage data and socio-economic findings highlight the need for industry-wide standards, which may have socio-economic implications for wineries.
Recent advances in timber design at the University of Canterbury have led to new structural systems that are appropriate for a wide range of building types, including multi-storey commercial office structures. These buildings are competitive with more traditional construction materials in terms of cost, sustainability and structural performance. This paper provides seismic design recommendations and analytical modelling approaches, appropriate for the seismic design of post-tensioned coupled timber wall systems. The models are based on existing seismic design theory for precast post-tensioned concrete, modified to more accurately account for elastic deformation of the timber wall systems and the influence of the floor system. Experimental test data from a two storey post-tensioned timber building, designed, constructed and tested at the University of Canterbury is used to validate the analytical models.
A photograph of members from SPCA Canterbury meeting with Massey University's Veterinary Emergency Response Team (VERT). VERT travelled to Christchurch after the 22 February 2011 earthquake in order to assist with caring for animals.
A lecturer at Canterbury University's School of Forestry, Justin Morgenroth on new research into the lifesaving role played by trees in the Christchurch earthquakes - and the importance of urban forests for the future of the city.
A photograph of an installation titled 'Halo', which is part of the LUXCITY event.
A PDF copy of pages 260-261 of the book Christchurch: The Transitional City Pt IV. The pages document the transitional project 'Light Inspiration for Lyttelton'. Photos: Alan Povall
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
Photograph captioned by Fairfax, "Dr Mark Quigley is a lecturer in the department of Geological Sciences at the University of Canterbury. His lecture on the Canterbury earthquake drew such interest that 600 were turned away".
The UC CEISMIC Canterbury Earthquakes Digital Archive was built following the devastating earthquakes that hit the Canterbury region in the South Island of New Zealand from 2010 – 2012. 185 people were killed in the 6.3 magnitude earthquake of February 22nd 2011, thousands of homes and businesses were destroyed, and the local community endured over 10,000 aftershocks. The program aims to document and protect the social, cultural, and intellectual legacy of the Canterbury community for the purposes of memorialization and enabling research. The nationally federated archive currently stores 75,000 items, ranging from audio and video interviews to images and official reports. Tens of thousands more items await ingestion. Significant lessons have been learned about data integration in post-disaster contexts, including but not limited to technical architecture, governance, ingestion process, and human ethics. The archive represents a model for future resilience-oriented data integration and preservation products.
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A video of an interview with Andreas Duenser, research scientist at the Human Interface Technology Laboratory, about an earthquake simulator at the University of Canterbury. The simulator was developed to help treat people suffering from post-traumatic stress disorder after the 2010 and 2011 Canterbury earthquakes. It allows people to relive their earthquake experiences in a safe environment to help them overcome their ordeals.
In the period between September 2010 and December 2011, Christchurch was shaken by a series of strong earthquakes including the MW7.1 4 September 2010, Mw 6.2 22 February 2011, MW6.2 13 June 2011 and MW6.0 23 December 2011 earthquakes. These earthquakes produced very strong ground motions throughout the city and surrounding areas that resulted in soil liquefaction and lateral spreading causing substantial damage to buildings, infrastructure and the community. The stopbank network along the Kaiapoi and Avon River suffered extensive damage with repairs projected to take several years to complete. This presented an opportunity to undertake a case-study on a regional scale of the effects of liquefaction on a stopbank system. Ultimately, this information can be used to determine simple performance-based concepts that can be applied in practice to improve the resilience of river protection works. The research presented in this thesis draws from data collected following the 4th September 2010 and 22nd February 2011 earthquakes. The stopbank damage is categorised into seven key deformation modes that were interpreted from aerial photographs, consultant reports, damage photographs and site visits. Each deformation mode provides an assessment of the observed mechanism of failure behind liquefaction-induced stopbank damage and the factors that influence a particular style of deformation. The deformation modes have been used to create a severity classification for the whole stopbank system, being ‘no or low damage’ and ‘major or severe damage’, in order to discriminate the indicators and factors that contribute to ‘major to severe damage’ from the factors that contribute to all levels of damage a number of calculated, land damage, stopbank damage and geomorphological parameters were analysed and compared at 178 locations along the Kaiapoi and Avon River stopbank systems. A critical liquefiable layer was present at every location with relatively consistent geotechnical parameters (cone resistance (qc), soil behaviour type (Ic) and Factor of Safety (FoS)) across the study site. In 95% of the cases the critical layer occurred within two times the Height of the Free Face (HFF,). A statistical analysis of the geotechnical factors relating to the critical layer was undertaken in order to find correlations between specific deformation modes and geotechnical factors. It was found that each individual deformation mode involves a complex interplay of factors that are difficult to represent through correlative analysis. There was, however, sufficient data to derive the key factors that have affected the severity of deformation. It was concluded that stopbank damage is directly related to the presence of liquefaction in the ground materials beneath the stopbanks, but is not critical in determining the type or severity of damage, instead it is merely the triggering mechanism. Once liquefaction is triggered it is the gravity-induced deformation that causes the damage rather than the shaking duration. Lateral spreading and specifically the depositional setting was found to be the key aspect in determining the severity and type of deformation along the stopbank system. The presence or absence of abandoned or old river channels and point bar deposits was found to significantly influence the severity and type of deformation. A review of digital elevation models and old maps along the Kaiapoi River found that all of the ‘major to severe’ damage observed occurred within or directly adjacent to an abandoned river channel. Whilst a review of the geomorphology along the Avon River showed that every location within a point bar deposit suffered some form of damage, due to the depositional environment creating a deposit highly susceptible to liquefaction.
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A photograph of an installation titled 'In Your Face'. The installation is part of the LUXCITY event. Tutor: Fraser Horton
An artist's impression of the installation 'eLITE', created as part of the LUXCITY event. Tutors: Cameron Rowe, Kate Rogan
An artist's impression of the LUXCITY event. The image depicts installations on Gloucester and Colombo Streets. Student: Erica Austin
An artist's impression of the installation 'In Your Face', created as part of the LUXCITY event. Tutor: Fraser Horton
An artist's impression of the installation 'Atmosphere', created as part of the LUXCITY event. Tutor: Sue Hillery
An artist's impression of the installation 'In Your Face', created as part of the LUXCITY event. Tutor: Fraser Horton
Photograph captioned by Fairfax, "After the recent earthquake in Christchurch, Environment Waikato has released information that shows the Waikato people are under-prepared for a natural disaster. Adrian Pittari, University of Waikato Volcanologist".