The Governors Bay community weren't going to accept a Christchurch council decision to close the 140 year old jetty following earthquake damage in 2011. Nick Harwood's part of the group and handily a geotechnical engineer.
A blog post from US Ambassador to New Zealand and Samoa, David Huebner, titled, "Embassy Science Fellowship Program Focuses on Earthquake Research".
An article from Army News, March 2011 titled, "Sappers Show Their Expertise in a City Under Siege".
Unreinforced masonry (URM) is a construction type that was commonly adopted in New Zealand between the 1880s and 1930s. URM construction is evidently vulnerable to high magnitude earthquakes, with the most recent New Zealand example being the 22 February 2011 Mw6.3 Christchurch earthquake. This earthquake caused significant damage to a majority of URM buildings in the Canterbury area and resulted in 185 fatalities. Many URM buildings still exist in various parts of New Zealand today, and due to their likely poor seismic performance, earthquake assessment and retrofit of the remaining URM building stock is necessary as these buildings have significant architectural heritage and occupy a significant proportion of the nation’s building stock. A collaborative research programme between the University of Auckland and Reid Construction Systems was conducted to investigate an economical yet effective solution for retrofitting New Zealand’s existing URM building stock. This solution adopts the shotcrete technique using an Engineered Cementitious Composite (ECC), which is a polyvinyl alcohol fibre reinforced mortar that exhibits strain hardening characteristics. Collaborations have been formed with a number of consulting structural engineers throughout New Zealand to develop innovative and cost effective retrofit solutions for a number of buildings. Two such case studies are presented in this paper. http://www.concrete2013.com.au/technical-program/
Photograph captioned by Fairfax, "Engineers from ECAN and other areas in New Zealand have been inspecting the Waimakariri River stop banks on the coast side of State Highway 1 after the September earthquake. Large cracks along the stop bank".
A photograph of a sign taped to one of the buildings in the School of Civil Engineering at the University of Canterbury. The sign indicates that the building has been inspected by a structural engineer and is safe to enter.
Photograph captioned by Fairfax, "Engineers from ECAN and other areas in New Zealand have been inspecting the Waimakariri River stop banks on the coast side of State Highway 1 after the September earthquake. Earthquake damage repair work on the stop bank".
A photograph of a mural on the corner of the Police Building, corner of Hereford Street and Cambridge Terrace. The mural is titled Intersection Point, and is a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
A photograph of a mural on the corner of the Police Building, corner of Hereford Street and Cambridge Terrace. The mural is titled Intersection Point, and is a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
A photograph of four women on a raised platform outside the Police Building, corner of Hereford Street and Cambridge Terrace. They are painting a mural titled Intersection Point, a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
A photograph of three women on a raised platform outside the Police Building, corner of Hereford Street and Cambridge Terrace. They are painting a mural titled Intersection Point, a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
A photograph of a mural on the corner of the Police Building, corner of Hereford Street and Cambridge Terrace. The mural is titled Intersection Point, and is a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
A photograph of a woman on a raised platform outside the Police Building, corner of Hereford Street and Cambridge Terrace. She is painting a mural titled Intersection Point, a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
A photograph of a mural on the corner of the Police Building, corner of Hereford Street and Cambridge Terrace. The mural is titled Intersection Point, and is a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
A photograph of a mural on the corner of the Police Building, corner of Hereford Street and Cambridge Terrace. The mural is titled Intersection Point, and is a collaboration between architect Amiria Kiddle and engineer Helen Trappitt for FESTA 2013.
Photograph captioned by Fairfax, "Jade Kirk, a director of Jade/Roberts Consulting Engineers Ltd, was attacked by the operator of a 20-ton digger while trying to protect the earthquake-damaged Trinity Church on the corner of Worcester and Manchester Streets".
Photograph captioned by Fairfax, "Jade Kirk, a director of Jade/Roberts Consulting Engineers Ltd, was attacked by the operator of a 20-ton digger while trying to protect the earthquake-damaged Trinity Church on the corner of Worcester and Manchester Streets".
Photograph captioned by Fairfax, "Engineers from ECAN and other areas in New Zealand have been inspecting the Waimakariri River stop banks on the coast side of State Highway 1 after the September earthquake. A large crack at the base of the stop bank".
Photograph captioned by Fairfax, "Engineers from ECAN and other areas in New Zealand have been inspecting the Waimakariri River stop banks on the coast side of State Highway 1 after the September earthquake. Large cracks along the top of the stop bank".
The front of Liquidity Bar on Oxford Terrace, a yellow-sticker in the window. Inspecting engineers have spray-painted the windows with 'TF3 clear 24/2 0720' and 'USA 2'. A poster stuck on the front right wall advertises a music event from before the February 2011 earthquake.
In 1987, Jack Perkins recorded an award-winning documentary capturing the life, the sounds and the personalities of Cathedral Square in Christchurch. Thirty years on, Deborah Nation parallels that experience with the sounds of September 2011 as engineer Gabrielle Parker escorts her Shrough the earthquake Red Zone into the square as it is today.
With Adrian Regnault, the General Manager of Building Systems Performance at the Ministry of Business, Innovation and Employment; Stefano Pampanin, an Associate Professor in Structural Engineering at Canterbury University and the President of the NZ Society for Earthquake Engineering and John Finnegan - structural engineer, Aurecon.
A video of an interview with Mark Yetton, Engineering Geologist at the Port Hills Geotech Group, about their work to assess the risk of rock fall and cliff collapse on the Christchurch Port Hills.
Photograph captioned by Fairfax, "Jade Kirk, a director of Jade/Roberts Consulting Engineers Ltd, who was attacked by the operator of a 20-ton digger while trying to protect the earthquake-damaged Trinity Church on the corner of Worcester and Manchester Streets".
Photograph captioned by Fairfax, "Jade Kirk, a director of Jade/Roberts Consulting Engineers Ltd, who was attacked by the operator of a 20-ton digger while trying to protect the earthquake-damaged Trinity Church on the corner of Worcester and Manchester Streets".
This is how the building looked when it was built - fine indeed! democam.iopen.co.nz/ An engineer who owns a similar building in Dunedin, and is willing to put money into this building's restoration, is sure it could be stabilised, just like the Railway Clock Tower. And the t...
Following the 22nd February 2011, Mw 6.2 earthquake located along a previously unknown fault beneath the Port Hills of Christchurch, surface cracking was identified in contour parallel locations within fill material at Quarry Road on the lower slopes of Mount Pleasant. GNS Science, in the role of advisor to the Christchurch City Council, concluded that these cracks were a part of a potential rotational mass movement (named zone 11A) within the fill and airfall loess material present. However, a lack of field evidence for slope instability and an absence of laboratory geotechnical data on which slope stability analysis was based, suggested this conclusion is potentially incorrect. It was hypothesised that ground cracking was in fact due to earthquake shaking, and not mass movement within the slope, thus forming the basis of this study. Three soil units were identified during surface and subsurface investigations at Quarry Road: fill derived from quarry operations in the adjacent St. Andrews Quarry (between 1893 and 1913), a buried topsoil, and underlying in-situ airfall loess. The fill material was identified by the presence of organic-rich topsoil “clods” that were irregular in both size (∼10 – 200 mm) and shape, with variable thicknesses of 1 – 10 m. Maximum thickness, as indicated by drill holes and geophysical survey lines, was identified below 6 Quarry Road and 7 The Brae where it is thought to infill a pre-existing gully formed in the underlying airfall loess. Bearing strength of the fill consistently exceeded 300 kPa ultimate below ∼500 mm depth. The buried topsoil was 200 – 300 mm thick, and normally displayed a lower bearing strength when encountered, but not below 300 kPa ultimate (3 – 11 blows per 100mm or ≥100 kPa allowable). In-situ airfall loess stood vertically in outcrop due to its characteristic high dry strength and also showed Scala penetrometer values of 6 – 20+ blows per 100 mm (450 – ≥1000 kPa ultimate). All soils were described as being moist to dry during subsurface investigations, with no groundwater table identified during any investigation into volcanic bedrock. In-situ moisture contents were established using bulk disturbed samples from hand augers and test pitting. Average moisture contents were low at 9% within the fill, 11 % within the buried topsoil, and 8% within the airfall loess: all were below the associated average plastic limit of 17, 15, and 16, respectively, determined during Atterberg limit analysis. Particle size distributions, identified using the sieve and pipette method, were similar between the three soil units with 11 – 20 % clay, 62 – 78 % silt, and 11 – 20 % fine sand. Using these results and the NZGS soil classification, the loess derived fill and in-situ airfall loess are termed SILT with some clay and sand, and the buried topsoil is SILT with minor clay and sand. Dispersivity of the units was found using the Emerson crumb test, which established that the fill can be non- to completely dispersive (score 0 – 4). The buried topsoil was always non-dispersive (score 0), and airfall loess completely dispersive (score 4). Values for cohesion (c) and internal friction angle (φ) of the three soil units were established using the direct shear box at field moisture contents. Results showed all soil units had high shear strengths at the moisture contents tested (c = 18 – 24 kPa and φ = 42 – 50°), with samples behaving in a brittle fashion. Moisture content was artificially increased to 16% within the buried topsoil, which reduced the shear strength (c = 10 kPa, φ = 18°) and allowed it to behave plastically. Observational information indicating stability at Quarry Road included: shallow, discontinuous, cracks that do not display vertical offset; no scarp features or compressional zones typical of landsliding; no tilted or deformed structures; no movement in inclinometers; no basal shear zone identified in logged core to 20 m depth; low field moisture contents; no groundwater table; and high soil strength using Scala penetrometers. Limit equilibrium analysis of the slope was conducted using Rocscience software Slide 5.0 to verify the slope stability identified by observational methods. Friction, cohesion, and density values determined during laboratory were input into the two slope models investigated. Results gave minimum static factor of safety values for translational (along buried topsoil) and rotational (in the fill) slides of 2.4 – 4.2. Sensitivity of the slope to reduced shear strength parameters was analysed using c = 10 kPa and φ = 18° for the translational buried topsoil plane, and a cohesion of 0 kPa within the fill for the rotational plane. The only situation that gave a factor of safety <1.0 was in nonengineered fill at 0.5 m depth. Pseudostatic analysis based on previous peak ground acceleration (PGA) values for the Canterbury Earthquake Sequence, and predicted PGAs for future Alpine Fault and Hope Fault earthquakes established minimum factor of safety values between 1.2 and 3.3. Yield acceleration PGAs were computed to be between 0.8g and 1.6g. Based on all information gathered, the cracking at Quarry Road is considered to be shallow deformation in response to earthquake shaking, and not due to deep-seated landsliding. It is recommended that the currently bare site be managed by smoothing the land, installing contour drainage, and bioremediation of the surface soils to reduce surface water infiltration and runoff. Extensive earthworks, including removal of the fill, are considered unnecessary. Any future replacement of housing would be subject to site-specific investigations, and careful foundation design based on those results.
Earthquake Minister Gerry Brownlee trundles heavily through debris left after the Canterbury earthquake of 4th September 2010. An engineer tells him to 'Tread lightly' as they 'don't want any more aftershocks..' Gerry Brownlee is not a slight man. Quantity: 1 digital cartoon(s).
A green notice on a building on Manchester Street, indicating that it has been assessed by structural engineers and is safe. Every building in Christchurch was assessed in this way, a green, yellow or red notice placed on the front door or window. Green means ok to enter; yellow, restricted use; red, not safe to enter.
Photograph captioned by Fairfax, "Engineers from ECAN and other areas in New Zealand have been inspecting the Waimakariri River stop banks on the coast side of State Highway 1 after the September earthquake. TV crew film the inside of the crack on the stop bank while John McCombe (photographer) looks on".