Parallel finite element modeling of earthquake ground response and liquefaction

被引:6
|
作者
Lu J. [1 ]
Peng J. [2 ]
Elgamal A. [1 ]
Yang Z. [1 ]
Law K.H. [2 ]
机构
[1] Department of Structural Engineering, University of California, San Diego
[2] Department of Civil Engineering, Stanford University, Stanford
基金
美国国家科学基金会;
关键词
Domain decomposition; Earthquake; Liquefaction; Parallel finite element; Parallel speedup; Site amplification;
D O I
10.1007/BF02668848
中图分类号
学科分类号
摘要
Parallel computing is a promising approach to alleviate the computational demand in conducting large-scale finite element analyses. This paper presents a numerical modeling approach for earthquake ground response and liquefaction using the parallel nonlinear finite element program, ParCYCLIC, designed for distributed-memory message-passing parallel computer systems, In ParCYCLIC, finite elements are employed within an incremental plasticity, coupled solid-fluid formulation, A constitutive model calibrated by physical tests represents the salient characteristics of sand liquefaction and associated accumulation of shear deformations. Key elements of the computational strategy employed in ParCYCLIC include the development of a parallel sparse direct solver, the deployment of an automatic domain decomposer, and the use of the Multilevel Nested Dissection algorithm for ordering of the finite element nodes. Simulation results of centrifuge test models using ParCYCLIC are presented. Performance results from grid models and geotechnical simulations show that ParCYCLIC is efficiently scalable to a large number of processors.
引用
收藏
页码:23 / 37
页数:14
相关论文
共 50 条
  • [1] Parallel finite element modeling of earthquake ground response and liquefaction
    陆金池
    彭军
    Ahmed Elgamal
    杨朝晖
    Kincho H.Law
    [J]. Earthquake Engineering and Engineering Vibration, 2004, 3 (01) : 23 - 37
  • [2] ParCYCLIC: finite element modelling of earthquake liquefaction response on parallel computers
    Peng, J
    Lu, JC
    Law, KH
    Elgamal, A
    [J]. INTERNATIONAL JOURNAL FOR NUMERICAL AND ANALYTICAL METHODS IN GEOMECHANICS, 2004, 28 (12) : 1207 - 1232
  • [3] Identification and modeling of earthquake ground response .2. Site liquefaction
    Zeghal, M
    Elgamal, AW
    Parra, E
    [J]. SOIL DYNAMICS AND EARTHQUAKE ENGINEERING, 1996, 15 (08) : 523 - 547
  • [4] Finite Element Analysis of Floatation of Rectangular Tunnels Following Earthquake Induced Liquefaction
    Madabhushi S.S.C.
    Madabhushi S.P.G.
    [J]. Ind. Geotech. J., 3 (233-242): : 233 - 242
  • [5] Parallel finite element modeling of solidification processes
    Wyrzykowski, R
    Sczygiol, N
    Olas, T
    Kanevski, J
    [J]. PARALLEL COMPUTATION, 1999, 1557 : 183 - 195
  • [6] Parallel octree-based finite element method for large-scale earthquake ground motion simulation
    Bielak, J
    Ghattas, O
    Kim, EJ
    [J]. CMES-COMPUTER MODELING IN ENGINEERING & SCIENCES, 2005, 10 (02): : 99 - 112
  • [7] Finite element response sensitivity analysis in earthquake engineering
    Conte, JP
    [J]. EARTHQUAKE ENGINEERING FRONTIERS IN THE NEW MILLENNIUM, 2001, : 395 - 401
  • [8] The analysis of the composite beam in the earthquake response by the finite element
    Yu Bao-chu
    Wang Gong-dong
    [J]. MODERN TECHNOLOGIES IN MATERIALS, MECHANICS AND INTELLIGENT SYSTEMS, 2014, 1049 : 342 - 345
  • [9] The dynamic simulation of ground motion of Lushan earthquake by finite element method
    Bai, Y. Z.
    Xu, X. W.
    Zhou, Q.
    [J]. ROCK DYNAMICS: FROM RESEARCH TO ENGINEERING, 2016, : 397 - 402
  • [10] EARTHQUAKE SOURCE MODELING, GROUND MOTION, AND STRUCTURAL RESPONSE
    DATTA, SK
    [J]. JOURNAL OF PRESSURE VESSEL TECHNOLOGY-TRANSACTIONS OF THE ASME, 1984, 106 (03): : 302 - 302