University of Canterbury students walk along University Drive to get to lectures, after most pathways through campus were cordoned off while buildings were structurally tested. The photographer comments, "Lawns beside University Drive became main walkways".
Abstract This study provides a simplified methodology for pre-event data collection to support a faster and more accurate seismic loss estimation. Existing pre-event data collection frameworks are reviewed. Data gathered after the Canterbury earthquake sequences are analysed to evaluate the relative importance of different sources of building damage. Conclusions drawns are used to explore new approaches to conduct pre-event building assessment.
Welcome to the Recover newsletter Issue 6 from the Marine Ecology Research Group (MERG) of the University of Canterbury. Recover is designed to keep you updated on our MBIE-funded earthquake recovery project called RECOVER (Reef Ecology, Coastal Values & Earthquake Recovery). This 6th instalment features the ‘new land’ created by the earthquake uplift of the coastline, recreational uses of beaches in Marlborough, and pāua survey work and hatchery projects with our partners in Kaikōura.
A document outlining the history of the Townsend Telescope and Observatory at the Christchurch Arts Centre.
Members of the University of Canterbury's E-Learning team in their temporary office space in the NZi3 building. The photographer comments, "E-Learning group meeting; Jess Hollis, Antoine Monti, Susan Tull, Alan Hoskin, Herbert Thomas".
Tents set up in the Fine Arts car park at the University of Canterbury, used for teaching while lecture theatres were closed for structural testing. The photographer comments, "The 'tent city' on the Arts car park".
1. Background and Objectives This poster presents results from ground motion simulations of small-to-moderate magnitude (3.5≤Mw≤5.0) earthquake events in the Canterbury, New Zealand region using the Graves and Pitarka (2010,2015) methodology. Subsequent investigation of systematic ground motion effects highlights the prediction bias in the simulations which are also benchmarked against empirical ground motion models (e.g. Bradley (2013)). In this study, 144 earthquake ruptures, modelled as point sources, are considered with 1924 quality-assured ground motions recorded across 45 strong motion stations throughout the Canterbury region, as shown in Figure 1. The majority of sources are Mw≥4.0 and have centroid depth (CD) 10km or shallower. Earthquake source descriptions were obtained from the GeoNet New Zealand earthquake catalogue. The ground motion simulations were performed within a computational domain of 140km x 120km x 46km with a finite difference grid spacing of 0.1km. The low-frequency (LF) simulations utilize the 3D Canterbury Velocity Model while the high-frequency (HF) simulations utilize a generic regional 1D velocity model. In the LF simulations, a minimum shear wave velocity of 500m/s is enforced, yielding a maximum frequency of 1.0Hz.
A document outlining the history of the Townsend Telescope and Observatory at the Christchurch Arts Centre. The document was written by Karen Pollard, Associate Professor in the Department of Physics and Astronomy at the University of Canterbury.
Staff meet in temporary office space set up in the NZi3 building. The photographer comments, "University of Canterbury administration all fits into one building! Well, sort of. Two meeting spaces in the middle of the floor".
A woman sits reading beside the "University of Canterbury" sign on Clyde Road. In the background are the tents used while lecture theatres were closed for structural testing. The photographer comments, "From Clyde Rd, all seemed intact".
A scan of page 44 of the Townsend Telescope Visitors' Book.
A scan of page 89 of the Townsend Telescope Visitors' Book.
A scan of page 224 of the Townsend Telescope Visitors' Book.
A scan of page 240 of the Townsend Telescope Visitors' Book.
A scan of page 138 of the Townsend Telescope Visitors' Book.
A scan of page 120 of the Townsend Telescope Visitors' Book.
A scan of page 271 of the Townsend Telescope Visitors' Book.
A scan of page 274 of the Townsend Telescope Visitors' Book.
A scan of page 184 of the Townsend Telescope Visitors' Book.
A scan of page 190 of the Townsend Telescope Visitors' Book.
A scan of page 141 of the Townsend Telescope Visitors' Book.
A scan of page 40 of the Townsend Telescope Visitors' Book.
A scan of page 3 of the Townsend Telescope Visitors' Book.
A scan of page 144 of the Townsend Telescope Visitors' Book.
A scan of page 218 of the Townsend Telescope Visitors' Book.
A scan of page 1 of the Townsend Telescope Visitors' Book.
A scan of page 179 of the Townsend Telescope Visitors' Book.
A scan of page 109 of the Townsend Telescope Visitors' Book.
A scan of page 222 of the Townsend Telescope Visitors' Book.
A scan of page 25 of the Townsend Telescope Visitors' Book.