Structural Steel Performance Following Severe Earthquake Loading

被引:1
|
作者
Ferguson, W. G. [1 ]
Seal, C. K. [1 ]
Hodgson, M. A. [1 ]
Clifton, G. C. [2 ]
机构
[1] Univ Auckland, Dept Chem & Mat Engn, Auckland, New Zealand
[2] Univ Auckland, Dept Civil & Environm Engn, Auckland 1, New Zealand
来源
关键词
Earthquake; Charpy; cyclic; prestrain; damage; strain-ageing; FRACTURE;
D O I
10.1142/S0217979211066465
中图分类号
O59 [应用物理学];
学科分类号
摘要
The second Christchurch earthquake on February 22, 2011, Magnitude 6.35, generated more intense shaking in the Central Business District than the September 4, 2010 Darfield earthquake, Magnitude 7.1. The second earthquake was closer to the CBD and at shallow depth, resulting in peak ground accelerations 3 times higher. There was significant failure of unreinforced masonry buildings and collapse of a few reinforced concrete buildings, leading to loss of life. Steel structures on the whole performed well during the earthquake and the plastic, inelastic deformation was less than expected given the strength of the recorded ground accelerations. For steel buildings designed to withstand earthquake loading, a design philosophy is to have some structural elements deform plastically, absorbing energy in the process. Typically elements of beams are designed to plastically deform while the columns remain elastic. In the earthquake some of these elements deformed plastically and the buildings were structurally undamaged. The question which then arises is; the building may be safe, but will it withstand a further severe earthquake? In other words how much further plastic work damage can be absorbed without failure of the structural element? Previous research at Auckland on modern structural steel, where the steel was prestrained various levels, to represent earthquake loading, the toughness was determined, as a function of prestrain for the naturally strain-aged steel. Further research, on the same steel, investigated life to failure for cyclic plastic straining in tension and compression loading at various plastic strain amplitudes. This work has shown that provided the plastic strain in the structural element is in the range 2 - 5% the steel will still meet the relevant NZ Standards. To determine the remaining life the plastic strain must be determined then the decision made; to use the building as is, replace the structural element or demolish.
引用
收藏
页码:4149 / 4153
页数:5
相关论文
共 50 条
  • [41] The effects of soil types on structural response of buildings under earthquake loading
    Peker, K
    PROCEEDINGS OF THE INTERNATIONAL CONFERENCE ON STEEL STRUCTURES OF THE 2000'S, 2000, : 275 - 280
  • [42] Structural performance of a steel cable -stayed bridge under blast loading considering different stay patterns
    Tetougueni, Cyrille Denis
    Zampieri, Paolo
    Pellegrino, Carlo
    ENGINEERING STRUCTURES, 2020, 219
  • [43] PERFORMANCE OF STEEL STRUCTURES DURING THE 1994 NORTHRIDGE EARTHQUAKE
    TREMBLAY, R
    TIMLER, P
    BRUNEAU, M
    FILIATRAULT, A
    CANADIAN JOURNAL OF CIVIL ENGINEERING, 1995, 22 (02) : 338 - 360
  • [44] Effect of damage on steel frame mechanical behavior under severe earthquake
    Wang, Meng
    Shi, Yongjiu
    Wang, Yuanqing
    Jianzhu Jiegou Xuebao/Journal of Building Structures, 2012, 33 (10): : 94 - 101
  • [45] Ant colony optimisation of spatial steel structures under static and earthquake loading
    Rajasekaran, S.
    Chitra, J. Sakthi
    CIVIL ENGINEERING AND ENVIRONMENTAL SYSTEMS, 2009, 26 (04) : 339 - 354
  • [46] Deterioration Modeling of Steel Components in Support of Collapse Prediction of Steel Moment Frames under Earthquake Loading
    Lignos, Dimitrios G.
    Krawinkler, Helmut
    JOURNAL OF STRUCTURAL ENGINEERING, 2011, 137 (11) : 1291 - 1302
  • [47] AN ALGORITHM FOR THE OPTIMUM DESIGN OF BRACED AND UNBRACED STEEL FRAMES UNDER EARTHQUAKE LOADING
    GULAY, G
    BODUROGLU, H
    EARTHQUAKE ENGINEERING & STRUCTURAL DYNAMICS, 1989, 18 (01): : 121 - 128
  • [48] Analytical studies of steel MRFs with CFT columns under earthquake loading conditions
    Herrera, R
    Ricles, JM
    Sause, R
    STESSA 2003: BEHAVIOUR OF STEEL STRUCTURES IN SEISMIC AREAS, 2003, : 519 - 525
  • [50] Composite action in steel girder bridge superstructures subjected to transverse earthquake loading
    Carden, LP
    Itani, AM
    Buckle, IG
    DESIGN OF STRUCTURES 2002: BRIDGES, OTHER STRUCTURES, AND HYDRAULICS AND HYDROLOGY, 2002, (1814): : 245 - 252