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Time-variant reliability-based design optimization using sequential kriging modeling

delete2018-03-21
delete29
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李
李铭洋 (Mingyang Li)
G
Guangxing Bai
Z
Zequn Wang *
DOI:10.1007/s00158-018-1951-1delete
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摘要

摘要

En 中文
This paper presents a sequential Kriging modeling approach (SKM) for time-variant reliability-based design optimization (tRBDO) involving stochastic processes. To handle the temporal uncertainty, time-variant limit state functions are transformed into time-independent domain by converting the stochastic processes and time parameter to random variables. Kriging surrogate models are then built and enhanced by a design-driven adaptive sampling scheme to accurately identify potential instantaneous failure events. By generating random realizations of stochastic processes, the time-variant probability of failure is evaluated by the surrogate models in Monte Carlo simulation (MCS). In tRBDO, the first-order score function is employed to estimate the sensitivity of time-variant reliability with respect to design variables. Three case studies are introduced to demonstrate the efficiency and accuracy of the proposed approach.
Keyword:
Time-variant reliability analysis
Design optimization
Stochastic processes
Simulation-based
Kriging surrogate model
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Structural and Multidisciplinary Optimization 封面图
Structural and Multidisciplinary Optimization
IF:
4
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4.9K
被引数:
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Wichita State University 封面图
Wichita State University
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Michigan Technological University
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