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Research papers, University of Canterbury Library

Research Report: 2010-02The objective in writing this report is to provide a guide to structural engineers on how to assess the potential seismic performance of existing hollow-core floors in buildings and the steps involved in the design of new floors. Hollow-core units in New Zealand do not contain stirrups within the precast concrete section. This is due to the way that they are manufactured. The only reinforcement in the great majority of hollow-core units consists of pretensioned strands that are located close to the soffit. A consequence of this is that hollow-core units have a number of potential brittle failure modes that can occur when adverse structural actions are induced in the units. These adverse actions can be induced in a major earthquake due to the relative vertical, horizontal and rotational displacements that occur between hollow-core units and adjacent structural elements, such as beams or structural walls. A number of large scale structural tests backed up by analytical research has shown that extensive interaction occurs between floors containing prestressed precast units and other structural elements, such as walls and beams. The constraint that prestressed units in a floor can apply to adjacent beams can result in an increase in strength of the beams to a considerably greater strength than that indicated in editions of the New Zealand Structural Concrete Standard published prior to 2006. The extent of this increase is such that it could in some cases result in the development of a non-ductile failure mechanism instead of the ductile failure mechanism assumed in the design. Prestressed floor units tie the floor bays together leaving a weak section where the floor joins to supporting structural elements. The restraint provided by the prestress restricts the opening of cracks within the bay. In the event of an earthquake this restraint can result in wide cracks developing at some of the boundaries to floor bays. These cracks may have a significant influence on the performance of the floor when it acts as a diaphragm to transfer seismic forces to the lateral force resisting structural elements in the building. The report contains details of; 1. The different failure modes, which may be induced in hollow-core floors, and the failure modes that may develop in a buildings due to the presence of hollow-core units in the floors; 2. Criteria that may be used to assess the magnitude of the design earthquake which may be safely resisted by a hollow-core floor in a building; 3. Details of how construction practice related to the use of hollow-core floors in New Zealand has changed over the last five decades. This highlights particular aspects that need to be considered in carrying out an assessment of existing hollow-core floors; 4. Information on how a new hollow-core floor may be designed to be consistent with the Earthquake Actions Standard, NZS1170.5: 2004 and the Structural Concrete Standard, NZS3101: 2006 (plus Amendment 2); 5. A review of the research findings relevant to the behaviour of New Zealand hollow-core floors under earthquake conditions. Research that was used to develop the assessment and design criteria is described together with details of how the different criteria were developed from this work.

Images, UC QuakeStudies

Photograph captioned by Fairfax, "A unit of about 15 New Zealand Territorial Army soldiers prepare to sandbag a broken pumping station in New Brighton to stop water pouring into neighbouring properties. The pumping station on the corner of Palmers Road and New Brighton Road was badly damaged and water was pouring onto both streets".

Images, UC QuakeStudies

Photograph captioned by Fairfax, "A unit of about 15 New Zealand Territorial Army soldiers prepare to sandbag a broken pumping station in New Brighton to stop water pouring into neighbouring properties. The pumping station on the corner of Palmers Road and New Brighton Road was badly damaged and water was pouring onto both streets".

Research papers, University of Canterbury Library

This report describes in-plane experimental testing and numerical modelling of timberconcrete floor diaphragms. The experimental tests investigated the in-plane stiffness of the diaphragm and the stiffness and strength of different connections between the diaphragm and the lateral load resisting system. The test model was 1/3 scale and three meters square in plan. Seven tests with a different kind of connection between the floor and the rigid lateral supports (which simulated a timber lateral load resisting system) have been performed. The results of the experimental testing are used to calibrate numerical models which are used to investigate the effects of the floor flexibility on the seismic behaviour of post-tensioned timber buildings. For the experimental tests, screw and nail fasteners were used to connected to floor unit to the lateral supports. These fasteners were embedded into the concrete slab or timber edge joints at different orientations. The stiffness of the diaphragm connections was vastly different for each detail. Screws installed at a 45? angle (inclined) to the lateral supports were four times stiffer than the screws installed orthogonal to the lateral supports. The initial stiffness of the inclined fasteners was similar for timber-to-timber and concrete-to-timber connections. For the timberto- timber connections the orientation did not seem to influence the strength of the connection. The tested diaphragm had an uncracked stiffness of 4000 kN/mm and a cracked stiffness of 300 kN/mm. For the tested floor unit it was concluded that the influence of the diaphragm flexibility was negligible compared to the connector flexibility. The floor flexibility can be idealized as three different parts, the deformation of the connectors, the shear deformation of the diaphragm and the flexural deformation of the diaphragm. The numerical analyses showed that in most perceivable situations the connection deformation will govern the in-plane seismic response of the floor. Hence, it is justified to model it as a single-degree-of-freedom (SDOF) element. The influence of the floor flexibility on the seismic response of post-tensioned timber buildings is small. In most cases neglecting the floor flexibility is a conservative approach for the structural design of the building. However, structures with stiff walls and long floor spans there can be a significant amplification of the seismic response. For that case, a simple SDOF representation is proposed. Code-based recommendations for predicting the peak floor accelerations are found to be inadequate. A methodology is proposed to more accurately predict the expected peak floor accelerations for design

Audio, Radio New Zealand

Questions to Ministers 1. Hon ANNETTE KING to the Minister for Canterbury Earthquake Recovery: Does he agree with the Canterbury Employers' Chamber of Commerce chief executive Peter Townsend that the reconstruction of Canterbury following the earthquake requires someone "to co-ordinate and oversee" reconstruction? 2. COLIN KING to the Minister of Finance: What steps is the Government taking to ensure the Earthquake Commission can meet claims arising from the Canterbury earthquake? 3. Hon DAVID CUNLIFFE to the Minister of Finance: What was the earliest date that Treasury formed the conclusion that South Canterbury Finance could fail, and when and by whom was that first raised with him? 4. DAVID GARRETT to the Attorney-General: Does he agree that "tikanga" as it is described in the Marine and Coastal Area (Takutai Moana) Bill will differ in meaning from iwi to iwi and hapū to hapū? 5. Hon RUTH DYSON to the Minister of Health: Are doctors and nurses having more say in how the health system is run? 6. NICKY WAGNER to the Minister for the Environment: What reports has he received on responses to the Canterbury earthquake, particularly with respect to the region's flood and waste management systems? 7. TE URUROA FLAVELL to the Attorney-General: What is the burden of proof under the Marine and Coastal Area (Takutai Moana) Bill in relation to applications for customary interests, and what type of evidence would the Crown be required to produce to prove that a customary interest had been extinguished? 8. Hon DAVID PARKER to the Attorney-General: When he answered yesterday that "hopefully" the new foreshore and seabed bill "will settle the protracted controversy around the issues of the foreshore and seabed", was he aware that the Government's confidence and supply partner Hon Pita Sharples told TV3 that he was "not entirely happy" with the new bill? 9. JO GOODHEW to the Minister for Social Development and Employment: How have Government social services been supporting the people of Canterbury? 10. PHIL TWYFORD to the Minister of Local Government: Why did the Auckland Transition Agency award the $53.8 million contract for the Auckland Council's Enterprise Resource Planning computer system without a competitive tender? 11. Dr JACKIE BLUE to the Minister of Women's Affairs: Why is the Ministry of Women's Affairs celebrating Suffrage Day? 12. CATHERINE DELAHUNTY to the Minister of Women's Affairs: How will New Zealand's forthcoming report to the UN under the Convention on the Elimination of All Forms of Discrimination Against Women explain the Government's decision to axe the Pay and Employment Equity Unit?