Retaining Wall Assessment and Prioritisation Paper
Articles, UC QuakeStudies
A paper which shares the process followed for the assessment and prioritisation of the retaining walls within the Port Hills in Christchurch.
A paper which shares the process followed for the assessment and prioritisation of the retaining walls within the Port Hills in Christchurch.
A document which outlines the processes involved in the Multi Criteria Analysis Asset Prioritisation tool. It also talks about assumptions made and potential gaps.
A presentation to the IPWEA conference of a paper which shares the process followed for the assessment and prioritisation of the retaining walls within the Port Hills in Christchurch.
A document which describes SCIRT's framework, principles and process of defining projects and the process of prioritising those projects.
A document which outlines how SCIRT prioritised the 634 construction projects within its programme of work.
A plan which describes the framework, principles and process for determining project prioritisation and the sequence in which those projects are carried out. The first version of this plan was produced on 23 September 2011.
An example of the five year rebuild schedule map created as part of the prioritisation process detailing where and when construction would start. The data behind this map was updated every quarter.
A map showing the actual construction start dates.
A presentation given at the New Zealand Geospatial Research Conference 2015.
A pdf copy of a presentation delivered by Elizabeth McNaughton and Duncan Gibb at the SCIRT and New Zealand Red Cross humaneers action learning group.
Study region: Christchurch, New Zealand. Study focus: Low-lying coastal cities worldwide are vulnerable to shallow groundwater salinization caused by saltwater intrusion and anthropogenic activities. Shallow groundwater salinization can have cascading negative impacts on municipal assets, but this is rarely considered compared to impacts of salinization on water supply. Here, shallow groundwater salinity was sampled at high spatial resolution (1.3 piezometer/km²), then mapped and spatially interpolated. This was possible due to a uniquely extensive set of shallow piezometers installed in response to the 2010–11 Canterbury Earthquake Sequence to assess liquefaction risk. The municipal assets located within the brackish groundwater areas were highlighted. New hydrological insights for the region: Brackish groundwater areas were centred on a spit of coastal sand dunes and inside the meander of a tidal river with poorly drained soils. The municipal assets located within these areas include: (i) wastewater and stormwater pipes constructed from steel-reinforced concrete, which, if damaged, are vulnerable to premature failure when exposed to chloride underwater, and (ii) 41 parks and reserves totalling 236 ha, within which salt-intolerant groundwater-dependent species are at risk. This research highlights the importance of determining areas of saline shallow groundwater in low-lying coastal urban settings and the co-located municipal assets to allow the prioritisation of sites for future monitoring and management.