Minimum magnitude boundaries in probabilistic seismic hazard analysis: an insight from structural engineering

被引:0
|
作者
Azarbakht, Alireza [1 ]
机构
[1] Univ Greenwich, Sch Engn, Medway Campus, Chatham ME4 4TB, England
关键词
Performance-based earthquake engineering; Nuclear power plant; Mean annual frequency; Limit state; Incremental dynamic analysis; Numerical fragility; SDOF; MDOF; EDP; Near-field ground motion record; GROUND MOTION; INTENSITY MEASURES; SCALAR; EARTHQUAKES; PREDICTION; SELECTION; COLLAPSE; MODEL;
D O I
10.1007/s10518-024-01972-3
中图分类号
P5 [地质学];
学科分类号
0709 ; 081803 ;
摘要
In order to systematically advance our understanding of the minimum magnitude limit (Mmin) in the probabilistic seismic hazard analysis (PSHA) calculations, a novel and useful approach utilising a broad range of Single-Degree-of-Freedom oscillators and hazard conditions is being developed and tested. We have determined the most reasonable Mmin value for a variety of structures by examining the impact of Mmin on the mean annual frequency (MAF) of various limit states (LSs) (including the collapse capacity). The originality of the suggested methodology in the current work, known as the MAF saturation strategy, is the recommended Mmin, which is the cut-off value at which lesser magnitude events do add to the hazard but do not significantly change the MAF. The current work is the first to offer the MAF saturation strategy methodology, which searches for the cut-off magnitude at which the MAF value essentially remains constant even when smaller values of this cut-off are utilised as Mmin for hazard assessments. Therefore, given a series of carefully chosen ground motions in each oscillator instance, an incremental dynamic analysis is carried out (by applying the Hunt and Fill algorithm), and the appropriate LS (including the collapse capacity defined as global instability) points are calculated. Thus, the relationship between the distribution of LSs and the Engineering Demand Parameter and intensity measure is found. A simple point source hazard curve is convoluted with this distribution, yielding the structure-specific MAF. In order to find the cut-off lower magnitude (Mmin), this convolution is repeated for several Mmin values. This cut-off is defined as the point at which, when lower values are utilised as Mmin in the PSHA computation, the MAF's values do not change considerably (with a five per cent threshold). The acquired data were thoroughly discussed in relation to various structural features and seismic input factors. The primary findings showed that each of the structures under consideration requires a Mmin value in the range of 4-4.3. Put otherwise, the suggestions seen in technical literature, which range from 4.5 to 5, are not cautious, at least not when it comes to probabilistic structural limit state frequency. The derived Mmin value is mostly controlled by the natural period of the structure and is largely unaffected by other structural characteristics like ductility, damping ratio and overstrength factor.
引用
收藏
页码:5299 / 5320
页数:22
相关论文
共 50 条
  • [1] The hazard in using probabilistic seismic hazard analysis for engineering
    Krinitzsky, EL
    [J]. ENVIRONMENTAL & ENGINEERING GEOSCIENCE, 1998, 4 (04): : 425 - 443
  • [2] SELECTION OF MINIMUM MAGNITUDE FOR USE IN SEISMIC HAZARD ANALYSIS
    BENDER, B
    CAMPBELL, KW
    [J]. BULLETIN OF THE SEISMOLOGICAL SOCIETY OF AMERICA, 1989, 79 (01) : 199 - 204
  • [3] Magnitude-distance contours for probabilistic seismic hazard analysis
    Bazzurro, P
    Winterstein, SR
    Ude, TC
    Cornell, CA
    [J]. PROBABILISTIC MECHANICS & STRUCTURAL RELIABILITY: PROCEEDINGS OF THE SEVENTH SPECIALTY CONFERENCE, 1996, : 202 - 205
  • [4] A New Insight into Probabilistic Seismic Hazard Analysis for Central India
    Mandal, H. S.
    Shukla, A. K.
    Khan, P. K.
    Mishra, O. P.
    [J]. PURE AND APPLIED GEOPHYSICS, 2013, 170 (12) : 2139 - 2161
  • [5] A New Insight into Probabilistic Seismic Hazard Analysis for Central India
    H. S. Mandal
    A. K. Shukla
    P. K. Khan
    O. P. Mishra
    [J]. Pure and Applied Geophysics, 2013, 170 : 2139 - 2161
  • [6] Probabilistic Seismic Hazard Analysis Using the New Correlation Relationships for Magnitude Scales
    Alizadeh, Behrooz
    Pourzeynali, Saeid
    [J]. CIVIL ENGINEERING JOURNAL-TEHRAN, 2018, 4 (04): : 872 - 885
  • [7] THE HAZARD IN USING PROBABILISTIC SEISMIC HAZARD ANALYSIS
    KRINITZSKY, EL
    [J]. CIVIL ENGINEERING, 1993, 63 (11): : 60 - 61
  • [8] LOWER BOUND EARTHQUAKE MAGNITUDE FOR PROBABILISTIC SEISMIC HAZARD EVALUATION
    MCCANN, MW
    REED, JW
    [J]. NUCLEAR ENGINEERING AND DESIGN, 1990, 123 (2-3) : 143 - 153
  • [9] Seismic Hazard Analysis from a Bayesian Probabilistic Perspective
    Yuen, Ka-Veng
    Mu, He-Qing
    [J]. DISASTER ADVANCES, 2009, 2 (04): : 36 - 42
  • [10] Including Non-Stationary Magnitude–Frequency Distributions in Probabilistic Seismic Hazard Analysis
    Mauricio Reyes Canales
    Mirko van der Baan
    [J]. Pure and Applied Geophysics, 2019, 176 : 2299 - 2319