A photograph of a cleared building site between High Street and Lichfield Street. Graffiti can be seen on the brick wall at the back of the site.
An aerial photograph of Cambridge Terrace near Manchester Street. In the centre of the photograph is the site of the PGC Building, now a patch of grass.
At the start of an archaeological investigation we often consult historical documents to learn as much as we can about a site’s past. Such research can identify the buildings that were once present, the people associated with the site through … Continue reading →
A tribute left on the cordon fence around the CTV Building site. The card shows a photograph of rescuers working on the CTV site, and reads, "Some of the guys who found you!! Thank you!".
A empty site in Bexley where a house once stood. The foundations for the house can still be seen. A sign reading, 'Danger construction site' hangs on the security fence that surrounds the area.
The demolition site of the Holiday Inn City Centre on Cashel Street. Reinforcement cabling protrudes from the top of the concrete posts. Rubble from the demolition surrounds the site.
In our last post, Jeremy talked about the site of H. F. Stevens, wholesale druggist, on Worcester Street near Cathedral Square. We excavated the site in 2011 and found a number of artefacts, including the Udolpho Wolfe’s bottles featured last … Continue reading →
A photograph of a cleared building site between Hereford Street and Cashel Street. Part of the site has been fenced off and an excavator can be seen behind a partially-demolished brick building.
A photograph of a cleared building site between Hereford Street and Cashel Street. Part of the site has been fenced off and an excavator can be seen behind a partially-demolished brick building.
A photograph of a cleared building site between Hereford Street and Cashel Street. Part of the site has been fenced off and an excavator can be seen behind a partially-demolished brick building.
A photograph of the former site of a block of apartments at 440 Oxford Terrace. The apartments were demolished after the land was zoned Red. Grass has begun to grow over the site. The number 466 has been spray-painted on the footpath in front, as well as the numbers of each apartment. This number is the incorrect street number for the site.
Empty sites along High Street.
Empty sites along High Street.
An aerial photograph of Kilmore Street in the central city with the Town Hall complex in the centre and Gap Filler's Pallet Pavilion on the cleared site of the Crowne Plaza Hotel.
A photograph of the former site of Siobhan Murphy's house at 436 Oxford Terrace. Murphy's house was demolished after her land was zoned Red. Grass has grown over the site.
A view of Manchester Street, looking south, from the corner of Manchester Street and Hereford Street. On the left is the former site of the Manchester Courts building, and on the right the former site of Cash Converters.
A photograph of the former site of Siobhan Murphy's house at 436 Oxford Terrace. Murphy's house was demolished after her land was zoned Red. Grass has grown over the site.
A photograph of the former site of the house at 466 Oxford Terrace. The house was demolished after the land was zoned Red. Wire fencing has been placed in front of the site.
A photograph of the former site of a house at 466 Oxford Terrace. The house was demolished after the land was zoned Red. Grass has begun to grow on the site.
A photograph of the former site of a house at 58 Bangor Street. The house was demolished after the land was zoned Red. The grass has begun to grow over the site.
A photograph of the former site of the Locke family's house at 392 Oxford Terrace. The Locke's house was deconstructed after their land was zoned Red. Grass has grown over the site.
A photograph of the former site of Siobhan Murphy's house at 436 Oxford Terrace. Murphy's house was demolished after her land was zoned Red. Grass has grown over the site.
A photograph of the former site of the houses at 422, 424, and 426 Oxford Terrace. The houses were demolished after the land was zoned Red. Grass has begun to grow over the sites.
The Avon-Heathcote Estuary is of significant value to Christchurch due to its high productivity, biotic diversity, proximity to the city, and its cultural, recreational and aesthetic qualities. Nonetheless, it has been subjected to decades of degradation from sewage wastewater discharges and encroaching urban development. The result was a eutrophied estuary, high in nitrogen, affected by large blooms of nuisance macroalgae and covered by degraded sediments. In March 2010, treated wastewater was diverted from the estuary to a site 3 km offshore. This quickly reduced water nitrogen by 90% within the estuary and, within months, there was reduced production of macroalgae. However, a series of earthquakes beginning in September 2010 brought massive changes: tilting of the estuary, changes in channels and water flow, and a huge influx of liquefied sediments that covered up to 65% of the estuary floor. Water nitrogen increased due to damage to sewage infrastructure and the diversion pipeline being turned off. Together, these drastically altered the estuarine ecosystem. My study involves three laboratory and five in situ experiments that investigate the base of the food chain and responses of benthic microalgae to earthquake-driven sediment and nutrient changes. It was predicted that the new sediments would be coarser and less contaminated with organic matter and nutrients than the old sediments, would have decreased microalgal biomass, and would prevent invertebrate grazing and bioturbation activities. It was believed that microalgal biomass would become similar across new and old sediments types as the unstable new sediments were resuspended and distributed over the old sediments. Contact cores of the sediment were taken at three sites, across a eutrophication gradient, monthly from September 2011 to March 2012. Extracted chlorophyll a pigments showed that microalgal biomass was generally lower on new liquefied sediments compared to old sediments, although there was considerable site to site variation, with the highly eutrophic sites being the most affected by the emergence of the new sediments. Grazer experiments showed that invertebrates had both positive and negative site-specific effects on microalgal biomass depending on their identity. At one site, new sediments facilitated grazing by Amphibola crenata, whereas at another site, new sediments did not alter the direct and indirect effects of invertebrates (Nicon aestuariensis, Macropthalmus hirtipes, and A. crenata) on microalgae. From nutrient addition experiments it was clear that benthic microalgae were able to use nutrients from within both old and new sediments equally. This implied that microalgae were reducing legacy nutrients in both sediments, and that they are an important buffer against eutrophication. Therefore, in tandem with the wastewater diversion, they could underpin much of the recovery of the estuary. Overall, the new sediments were less favourable for benthic microalgal growth and recolonisation, but were less contaminated than old sediments at highly eutrophic sites. Because the new sediments were less contaminated than the old sediments, they could help return the estuary to a noneutrophic state. However, if the new sediments, which are less favourable for microalgal growth, disperse over the old sediments at highly eutrophic sites, they could become contaminated and interfere with estuarine recovery. Therefore, recovery of microalgal communities and the estuary was expected to be generally long, but variable and site-specific, with the least eutrophic sites recovering quickly, and the most eutrophic sites taking years to return to a pre-earthquake and non-eutrophied state. changes in channels and water flow, and a huge influx of liquefied sediments that covered up to 65% of the estuary floor. Water nitrogen increased due to damage to sewage infrastructure and the diversion pipeline being turned off. Together, these drastically altered the estuarine ecosystem. My study involves three laboratory and five in situ experiments that investigate the base of the food chain and responses of benthic microalgae to earthquake-driven sedimen tand nutrient changes. It was predicted that the new sediments would be coarser and less contaminated with organic matter and nutrients than the old sediments, would have decreased microalgal biomass, and would prevent invertebrate grazing and bioturbation activities. It was believed that microalgal biomass would become similar across new and old sediments types as the unstable new sediments were resuspended and distributed over the old sediments. Contact cores of the sediment were taken at three sites, across a eutrophication gradient, monthly from September 2011 to March 2012. Extracted chlorophyll a pigments showed that microalgal biomass was generally lower on new liquefied sediments compared to old sediments, although there was considerable site to site variation, with the highly eutrophic sites being the most affected by the emergence of the new sediments. Grazer experiments showed that invertebrates had both positive and negative site-specific effects on microalgal biomass depending on their identity. At one site, new sediments facilitated grazing by Amphibola crenata, whereas at another site, new sediments did not alter the direct and indirect effects of invertebrates (Nicon aestuariensis, Macropthalmus hirtipes, and A. crenata) on microalgae. From nutrient addition experiments it was clear that benthic microalgae were able to use nutrients from within both old and new sediments equally. This implied that microalgae were reducing legacy nutrients in both sediments, and that they are
A photograph captioned by Paul Corliss, "Town Hall from Durham Street".
A PDF copy of The Star newspaper, published on Wednesday 14 August 2013.
A photograph of the former site of the houses at 422, 424, and 426 Oxford Terrace. The houses were demolished after the land was zoned Red. Grass has begun to grow over the sites.
A photograph of a cleared building site between Hereford Street and Cashel Street. Part of the site has been fenced off. In the distance there is an excavator behind a partially-demolished brick building, and there is a crane across the road on Hereford Street.
A photograph of the former site of Doug Sexton's house at 378 Oxford Terrace. Sexton's house was demolished after his land was zoned Red. Grass has begun to grow in the site.
A video of an interview with artefact analyst Gwen Jackson, about the artefacts found at the site of the Theatre Royal. Hundreds of artefacts were found under the Isaac Theatre Royal, including bottles and ceramic shards. This was part of a greater project by archaeologists to examine pre-1900 sites in the Christchurch central city before work is conducted on them. Archaeological assessment of pre-1900 buildings is required by the 1993 Historic Places Act before work can be done on the site.