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Structural optimization oriented time-dependent reliability methodology under static and dynamic uncertainties

delete2017-10-18
delete29
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L
Lei Wang *
王晓军 (Xiaojun Wang)
吴迪 cover
吴迪 (Di Wu)
M
Menghui Xu
Z
Zhiping Qiu
DOI:10.1007/s00158-017-1824-zdelete
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Abstract

Abstract

En 中文
Uncertainty with characteristics of time-dependency, multi-sources and small-samples extensively exists in the whole process of structural design. Associated with frequent occurrences of material aging, load varying, damage accumulating, traditional reliability-based design optimization (RBDO) approaches by combination of the static assumption and the probability theory will be no longer applicable when dealing with the design problems for lifecycle structural models. In view of this, a new non-probabilistic time-dependent RBDO method under the mixture of time-invariant and time-variant uncertainties is investigated in this paper. Enlightened by the first-passage concept, the hybrid reliability index is firstly defined, and its solution implementation relies on the technologies of regulation and the interval mathematics. In order to guarantee the stability and efficiency of the optimization procedure, the improved ant colony algorithm (ACA) is then introduced. Moreover, by comparisons of the models of the safety factor-based design as well as the instantaneous RBDO design, the physical means of the proposed optimization policy are further discussed. Two numerical examples are eventually presented to demonstrate the validity and reasonability of the developed methodology.
Keywords:
Non-probabilistic time-dependent RBDO method
The mixture of time-invariant and time-variant uncertainties
The first-passage approach
The improved ant colony algorithm (ACA)
The safety factor-based design
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Journal

Structural and Multidisciplinary Optimization cover
Structural and Multidisciplinary Optimization
IF:
4
Papers:
4.8K
Citations:
1.7W

Organization

B
Beihang University
Scholars:
5.2W
Papers: 4.1W
Citations: 37
N
Ningbo University
Scholars:
2.6W
Papers: 1.8W
Citations: 2.4W