TY - JOUR
T1 - Probability of serviceability failure in a braced excavation in a spatially random field
T2 - Fuzzy finite element approach
AU - Luo, Zhe
AU - Atamturktur, Sez
AU - Juang, C. Hsein
AU - Huang, Hongwei
AU - Lin, Ping Sien
N1 - Copyright:
Copyright 2011 Elsevier B.V., All rights reserved.
PY - 2011/12
Y1 - 2011/12
N2 - A simplified framework is proposed for evaluating the probability of " serviceability failure" in a braced excavation in a spatially random field. Here, the " serviceability failure" is said to occur when the excavation-induced wall or ground movement exceeds specified limiting values. Knowledge of this probability can aid in engineering decision-making to prevent damage to adjacent infrastructures. The proposed framework consists of five elements: (1) finite element method (FEM) for analyzing wall and ground responses in a braced excavation, (2) fuzzy set modeling of parameter uncertainty, (3) spatial averaging technique for handling spatial variability, (4) vertex method for processing fuzzy input through FEM model, and (5) interpretation of fuzzy output. The proposed framework is demonstrated through a well-documented case history. The results show the proposed framework is simple and effective for assessing the probability of serviceability failure in a braced excavation in a spatially random field. To focus on the proposed fuzzy FEM approach, the scope of this paper is limited to one-dimensional modeling of spatial variability with an assumed exponential autocorrelation function.
AB - A simplified framework is proposed for evaluating the probability of " serviceability failure" in a braced excavation in a spatially random field. Here, the " serviceability failure" is said to occur when the excavation-induced wall or ground movement exceeds specified limiting values. Knowledge of this probability can aid in engineering decision-making to prevent damage to adjacent infrastructures. The proposed framework consists of five elements: (1) finite element method (FEM) for analyzing wall and ground responses in a braced excavation, (2) fuzzy set modeling of parameter uncertainty, (3) spatial averaging technique for handling spatial variability, (4) vertex method for processing fuzzy input through FEM model, and (5) interpretation of fuzzy output. The proposed framework is demonstrated through a well-documented case history. The results show the proposed framework is simple and effective for assessing the probability of serviceability failure in a braced excavation in a spatially random field. To focus on the proposed fuzzy FEM approach, the scope of this paper is limited to one-dimensional modeling of spatial variability with an assumed exponential autocorrelation function.
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U2 - 10.1016/j.compgeo.2011.07.009
DO - 10.1016/j.compgeo.2011.07.009
M3 - Article
AN - SCOPUS:80052928843
SN - 0266-352X
VL - 38
SP - 1031
EP - 1040
JO - Computers and Geotechnics
JF - Computers and Geotechnics
IS - 8
ER -