A photograph of volunteers from the Wellington Emergency Management Office catering for the staff at the Mainland Foundation Ballpark. The ballpark was set up by Civil Defence as an Emergency Response Centre after the 4 September 2010 earthquake.
Damage to a house in Richmond. Bricks have fallen from a wall, and there is a visible gap between the foundation and the surrounding ground. The photographer comments, "The foundation and a section of the wall of the dining room have shifted and cracked. The dining room floor is very springy".
A photograph of volunteers from the Wellington Emergency Management Office at the canteen set up as part of a temporary Civil Defence headquarters after the 4 September 2010 earthquake. The headquarters was set up the Mainland Foundation Ballpark on Pages Road.
A photograph of the i-SITE Visitor Centre in Kaiapoi. The foundations have lifted at the back of the building giving it a forward lean. Tape has been placed across the footpath and road as a cordon.
A photograph of the earthquake damage to a house on Woodham Road. The house has come off its foundations as the bricks wall have crumbled, spilling onto the footpath in front. Road cones have been placed along the street to warn road users.
A photograph of the i-SITE Visitor Centre in Kaiapoi. The foundations have lifted at the back of the building giving it a forward lean. Tape has been placed across the footpath and road as a cordon.
A photograph of a volunteer laying a foundation for the Life in Vacant Spaces headquarters.
A PDF copy of a template letter to hospitality venue. The letter is written on behalf of Anglican Advocacy (previously Anglican Social Justice Unit) and the Problem Gambling Foundation and encourages the recipient to declare their venue 'Proudly Pokie Free'. Personal contact details have been redacted.
A photograph of Byron from the Wellington Emergency Management Office taking a phone call in one of the Mainland Foundation Ballpark offices. The ballpark was set up as a Emergency Report Centre by Civil Defence after the 4 September 2010 earthquake.
A photograph of members of the Wellington Emergency Management Office working in an office at the Mainland Foundation Ballpark on Pages Road. The ballpark was set up as an Emergency Report Centre by Civil Defence after the 4 September 2010 earthquake.
A photograph of volunteers from the Wellington Emergency Management Office at the canteen set up as part of a temporary Civil Defence headquarters after the 4 September 2010 earthquake. The headquarters was set up at the Mainland Foundation Ballpark on Pages Road.
A photograph of members of the Wellington Emergency Management Office working in an office at the Mainland Foundation Ballpark on Pages Road. The ballpark was set up as an Emergency Report Centre by Civil Defence after the 4 September 2010 earthquake.
A photograph of members of the Wellington Emergency Management Office working in an office at the Mainland Foundation Ballpark on Pages Road. The ballpark was set up as an Emergency Report Centre by Civil Defence after the 4 September 2010 earthquake.
A photograph of All Right? Campaign Manager Sue Turner (middle), Mental Health Foundation Southern Development Manager Freedom Preston-Clarke (right) and someone else. The photograph was taken at the All Right? Campaign Launch at the Pallet Pavilion.
A PDF copy of a presentation about a Positive Mental Health and Wellbeing Campaign in Canterbury. The presentation was created by Healthy Christchurch and the Mental Health Foundation of New Zealand, and outlines the stages of the creation of the All Right? social marketing campaign.
A photograph of All Right? Campaign Manager Sue Turner (middle), Mental Health Foundation Southern Development Manager Freedom Preston-Clarke (right) and someone else. The photograph was taken at the All Right? Campaign Launch at the Pallet Pavilion.
A PDF copy of a summary report of the research behind the All Right? wellbeing campaign for Canterbury. The report was created in April 2013, by Canterbury District Health Board, the Mental Health Foundation of New Zealand, and Healthy Christchurch.
A photograph of All Right? Campaign Manager Sue Turner (middle), Mental Health Foundation Southern Development Manager Freedom Preston-Clarke (right) and someone else. The photograph was taken at the All Right? Campaign Launch at the Pallet Pavilion.
A photograph captioned by BeckerFraserPhotos, "Foundation stones the way Christchurch does them in 2012".
A PDF copy of an article written All Right? that features Sandy Turner - "educator, clown doctor, and road cone wearing cyclist". In the article, Turner reflects on the All Right? campaign as a source of acceptance, inspiration and enjoyment. The article appears on the website for the Mental Health Foundation of New Zealand.
Photograph captioned by BeckerFraserPhotos, "Hereford Street - foundation stone from the building known as Kenton Chambers".
A photograph captioned by BeckerFraserPhotos, "Foundation stone in the chapel of Christ's College, Rolleston Avenue".
A photograph of a map of Christchurch in a temporary Civil Defence headquarters set up at the Mainland Foundation Ballpark after the 4 September 2010 earthquake. Red, green and blue markings on the map indicate where flooding, sand and closures are located. Post-it notes and a key with a tag reading, "Manchester" are attached to the map.
The foundation stone removed from the Church Hall at 165 Papanui Road. The stone reads, "A.D.1902".
Photograph captioned by BeckerFraserPhotos, "Cannon Hill Crescent".
A house in Richmond being demolished. Part of the foundation has been broken up. The photographer comments, "The end of 393 River Rd".
The influence of nonlinear soil-foundation-structure interaction (SFSI) on the performance of multi-storey buildings during earthquake events has become increasingly important in earthquake resistant design. For buildings on shallow foundations, SFSI refers to nonlinear geometric effects associated with uplift of the foundation from the supporting soil as well as nonlinear soil deformation effects. These effects can potentially be beneficial for structural performance, reducing forces transmitted from ground shaking to the structure. However, there is also the potential consequence of residual settlement and rotation of the foundation. This Thesis investigates the influence of SFSI in the performance of multi-storey buildings on shallow foundations through earthquake observations, experimental testing, and development of spring-bed numerical models that can be incorporated into integrated earthquake resistant design procedures. Observations were made following the 22 February 2011 Christchurch Earthquake in New Zealand of a number of multi-storey buildings on shallow foundations that performed satisfactorily. This was predominantly the case in areas where shallow foundations, typically large raft foundations, were founded on competent gravel and where there was no significant manifestation of liquefaction at the ground surface. The properties of these buildings and the soils they are founded on directed experimental work that was conducted to investigate the mechanisms by which SFSI may have influenced the behaviour of these types of structure-foundation systems. Centrifuge experiments were undertaken at the University of Dundee, Scotland using a range of structure-foundation models and a layer of dense cohesionless soil to simulate the situation in Christchurch where multi-storey buildings on shallow foundations performed well. Three equivalent single degree of freedom (SDOF) models representing 3, 5, and 7 storey buildings with identical large raft foundations were subjected to a range of dynamic Ricker wavelet excitations and Christchurch Earthquake records to investigate the influence of SFSI on the response of the equivalent buildings. The experimental results show that nonlinear SFSI has a significant influence on structural response and overall foundation deformations, even though the large raft foundations on competent soil meant that there was a significant reserve of bearing capacity available and nonlinear deformations may have been considered to have had minimal effect. Uplift of the foundation from the supporting soil was observed across a wide range of input motion amplitudes and was particularly significant as the amplitude of motion increased. Permanent soil deformation represented by foundation settlement and residual rotation was also observed but mainly for the larger input motions. However, the absolute extent of uplift and permanent soil deformation was very small compared to the size of the foundation meaning the serviceability of the building would still likely be maintained during large earthquake events. Even so, the small extent of SFSI resulted in attenuation of the response of the structure as the equivalent period of vibration was lengthened and the equivalent damping in the system increased. The experimental work undertaken was used to validate and enhance numerical modelling techniques that are simple yet sophisticated and promote interaction between geotechnical and structural specialists involved in the design of multi-storey buildings. Spring-bed modelling techniques were utilised as they provide a balance between ease of use, and thus ease of interaction with structural specialists who have these techniques readily available in practice, and theoretically rigorous solutions. Fixed base and elastic spring-bed models showed they were unable to capture the behaviour of the structure-foundation models tested in the centrifuge experiments. SFSI spring-bed models were able to more accurately capture the behaviour but recommendations were proposed for the parameters used to define the springs so that the numerical models closely matched experimental results. From the spring-bed modelling and results of centrifuge experiments, an equivalent linear design procedure was proposed along with a procedure and recommendations for the implementation of nonlinear SFSI spring-bed models in practice. The combination of earthquake observations, experimental testing, and simplified numerical analysis has shown how SFSI is influential in the earthquake performance of multi-storey buildings on shallow foundations and should be incorporated into earthquake resistant design of these structures.
A house in Richmond being demolished. A gap between the foundation and the bottom of a wall. The photographer comments, "The end of 393 River Rd".
A retaining wall supports a bank on London Street in Lyttelton. The original stone wall that supported the foundation of the house has been removed.
A photograph of workers from ADT Security sitting outside the temporary Civil Defence headquarters set up at the Mainland Foundation Ballpark after the 4 September earthquake.