A photograph of street art on the side of a building between Brighton Mall and Hawke Street.
A photograph of street art on the wall of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the side of a building between Brighton Mall and Hawke Street. This section of the artwork has been painted around a sign which warns that the building is under electronic surveillance. It also includes the Japanese characters for "mother" and "child".
A photograph of a detail of street art on a building in New Brighton. The artwork consists of political and earthquake-related newspaper clippings pasted to a brick wall.
A photograph of a detail of street art on a building in New Brighton. The artwork consists of political and earthquake-related newspaper clippings pasted to a brick wall.
A photograph of a section of an artwork on the wall of a building between New Brighton Mall and Beresford Street. The section depicts a range of native birds.
A photograph of section of an artwork on the wall of a building between New Brighton mall and Beresford Street. The section depicts two native birds on tree branches.
A photograph of section of an artwork on the wall of a building between New Brighton mall and Beresford Street. The section depicts a kokako on a tree branch.
A photograph of section of an artwork on the wall of a building between New Brighton mall and Beresford Street. The section depicts two native birds standing on rocks.
As part of a seismic retrofit scheme, surface bonded glass fiber-reinforced polymer (GFRP) fabric was applied to two unreinforced masonry (URM) buildings located in Christchurch, New Zealand. The unreinforced stone masonry of Christchurch Girls’ High School (GHS) and the unreinforced clay brick masonry Shirley Community Centre were retrofitted using surface bonded GFRP in 2007 and 2009, respectively. Much of the knowledge on the seismic performance of GFRP retrofitted URM was previously assimilated from laboratory-based experimental studies with controlled environments and loading schemes. The 2010/2011 Canterbury earthquake sequence provided a rare opportunity to evaluate the GFRP retrofit applied to two vintage URM buildings and to document its performance when subjected to actual design-level earthquake-induced shaking. Both GFRP retrofits were found to be successful in preserving architectural features within the buildings as well as maintaining the structural integrity of the URM walls. Successful seismic performance was based on comparisons made between the GFRP retrofitted GHS building and the adjacent nonretrofitted Boys’ High School building, as well as on a comparison between the GFRP retrofitted and nonretrofitted walls of the Shirley Community Centre building. Based on detailed postearthquake observations and investigations, the GFRP retrofitted URM walls in the subject buildings exhibited negligible to minor levels of damage without delamination, whereas significant damage was observed in comparable nonretrofitted URM walls. AM - Accepted Manuscript
Existing New Zealand (NZ) building stock contains a significant number of structures designed prior to 1995 with non-ductile reinforced concrete (RC) columns. Recent earthquakes and research show that columns with such details perform poorly when subjected to seismic demand, losing gravity load carrying capacity at drift levels lower than the expected one. Therefore, in order to have a better understanding of existing RC columns in NZ, the history of these elements is investigated in this paper. The evolution of RC column design guidelines in NZ standards since the 1970s is scrutinized. For this purpose, a number of RC columns from Christchurch buildings built prior to 1995 are assessed using the current code of practice.
People who want the Christchurch Town Hall restored are optimistic the City Council will today commit to saving the earthquake damaged building.
A photograph of street art on the side of a building in Brighton Mall. The photograph has been taken through chain-link fencing.
A photograph of a section of a piece of street art on the side of the Funky Pumpkin building in New Brighton. This section of the artwork includes the Funky Pumpkin logo.
A photograph of a section of a piece of street art on the side of a building in New Brighton. The photographer believes that the artwork was created by the artist 'Porta'.
A photograph of section of an artwork on the wall of a building between New Brighton mall and Beresford Street. The section depicts two native birds on the branches of a bush.
The effects of soil-foundation-structure interaction (SFSI) have been a topic of discussion amongst the structural and geotechnical community for many decades. The complexity of the mechanisms, as well as the need for inter-disciplinary knowledge of geotechnical and structural dynamics has plagued the advancement and the consequent inclusion of SFSI effects in design. A rigorous performance-based design methodology should not just consider the performance of the superstructure but the supporting foundation system as well. Case studies throughout history (eg. Kobe 1995, Kocaeli 1999 and Christchurch earthquakes 2010-2011) have demonstrated that a poor performance at the foundation level can result in a full demolition of the structure and, in general terms, that the extent of damage to, and repairability of, the building system as a whole, is given by the combination of the damage to the soil, foundation and superstructure. The lack of consideration of the modifying factors of SFSI and an absence of intuitive performance levels for controlling foundation and soil behaviour under seismic loads has resulted in inadequate designs for buildings sited on soft soil. For engineers to be satisfied that their designs meet the given performance levels they must first, understand how SFSI affects the overall system performance and secondly have tools available to adequately account for it in their design/assessment. This dissertation presents an integrated performance-based design procedure for buildingfoundation systems that considers all of the major mechanisms of SFSI. A new soil-foundation macro-element model was implemented into a nonlinear finite element software and validated against several experimental tests. The numerical model was used to provide insights in to the mechanisms of SFSI and statistical analysis on the results yielded simple expressions that allow the behaviour to be quantified. Particular attention was paid to the effects of shear force on the foundation response and the quantification of the rocking mode of response. The residual deformations of the superstructure and distribution of forces up the structure were also investigated. All of the major SFSI mechanisms are discussed in detail and targeted numerical studies are used to explain and demonstrate concepts. The design procedure was validated through the design and assessment of a series of concrete buildings that were designed to account for the effects of SFSI.
Churches are an important part of New Zealand's historical and architectural heritage. Various earthquakes around the world have highlighted the significant seismic vulnerability of religious buildings, with the extensive damage that occurred to stone and clay-brick unreinforced masonry churches after the 2010-2011 Canterbury earthquakes emphasising the necessity to better understand this structural type. Consequently, a country-wide inventory of unreinforced masonry churches is here identified. After a bibliographic and archival investigation, and a 10 000 km field trip, it is estimated that currently 297 unreinforced masonry churches are present throughout New Zealand, excluding 12 churches demolished in Christchurch because of heavy damage sustained during the Canterbury earthquake sequence. The compiled database includes general information about the buildings, their architectural features and structural characteristics, and any architectural and structural transformations that have occurred in the past. Statistics about the occurrence of each feature are provided and preliminary interpretations of their role on seismic vulnerability are discussed. The list of identified churches is reported in annexes, supporting their identification and providing their address.
A photograph of street art on a building in New Brighton. The artwork includes the phrases "No one is superior, everyone is special", "Occupy Equality Street", and "Love is the child of freedom".
A photograph of street art on a building between Brighton Mall and Beresford Street. There is a shopping trolley in front of the artwork.
A photograph of a section of a piece of street art on the wall of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the wall of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the wall of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the side of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the wall of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the wall of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the wall of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the side of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the side of a building between Brighton Mall and Hawke Street.
A photograph of a section of a piece of street art on the wall of a building between Brighton Mall and Hawke Street.