US 12,313,799 B2
Calculation method for annual average probabilistic seismic loss of external substructure reinforcement system based on interfacial shear stresses
De-Cheng Feng, Nanjing (CN); Xu-Yang Cao, Nanjing (CN); and Gang Wu, Nanjing (CN)
Assigned to Southeast University, Nanjing (CN)
Filed by Southeast University, Nanjing (CN)
Filed on Feb. 22, 2024, as Appl. No. 18/583,948.
Claims priority of application No. 202310681490.5 (CN), filed on Jun. 9, 2023.
Prior Publication US 2024/0411036 A1, Dec. 12, 2024
Int. Cl. G01N 33/48 (2006.01); G01N 33/50 (2006.01); G01V 1/28 (2006.01); G06N 7/01 (2023.01)
CPC G01V 1/282 (2013.01) [G06N 7/01 (2023.01)] 7 Claims
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1. A calculation method for an annual average probabilistic seismic loss of an external substructure reinforcement system based on interfacial shear stresses, comprising:
step 1: establishing a deterministic model for the external substructure reinforcement system, and generating seismic ground motion samples and structural samples by random sampling according to the deterministic model;
step 2: establishing a probabilistic hazard model based on the seismic ground motion samples;
step 3: generating a probabilistic vulnerability model based on the interfacial shear stresses; wherein the step 3 comprises:
step 3.1: determining an amplitude modulation interval m of a seismic ground motion intensity parameter;
step 3.2: performing nonlinear dynamic time history response analysis according to the amplitude modulation interval m, thereby obtaining seismic ground motion intensity parameters and the interfacial shear stresses under different seismic ground motion intensity levels;
step 3.3: summarizing the interfacial shear stresses under the different seismic ground motion intensity levels, performing linear regression on the summarized interfacial shear stresses based on a logarithmic coordinate system and a least square method to obtain a regression coefficient β0 and a regression coefficient β1, and calculating a median value Sd|IM and a logarithmic standard deviation Bd|IM according to the regression coefficient β0 and the regression coefficient β1 by the following formulas:

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where n represents the number of the seismic ground motion samples under the different seismic ground motion intensity levels, and Dx represents interface shear stress data corresponding to an x-th analysis result of the nonlinear dynamic time history response analysis; and
step 3.4: determining limit states and a limitation value d of the external substructure reinforcement system based on the interfacial shear stresses, and generating the probabilistic vulnerability model based on the interfacial shear stresses according to the median value Sd|IM, the logarithmic standard deviation Bd|IM, and the limitation value d;
wherein the limit states comprise: a destruction state, a transportation state, a residual state, and a maintenance state;
wherein after determining the limit states and the limitation value d of the external substructure reinforcement system based on the interfacial shear stresses, the calculation method further comprises:
performing a subtraction operation on probabilistic vulnerability models of two adjacent limit states of the limit states, thereby obtaining a probabilistic seismic damage model P(DS=dsi|IM) expressed as:

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where Pi(edp|im) represents a probabilistic vulnerability model corresponding to an i-th limit state of the limit states, and Pi+1(edp|im) represents a probabilistic vulnerability model corresponding to an (i+1)-th limit state of the limit states;
step 4: establishing a total probabilistic loss expectation model under the different seismic ground motion intensity levels according to the probabilistic vulnerability model;
wherein the total probabilistic loss expectation model in the step 4 comprises probabilistic loss expectation values corresponding to the limit states; and the probabilistic loss expectation values are composed of a destruction probabilistic loss expectation value LC, a transportation probabilistic loss expectation value LT, a residual probabilistic loss expectation value LNC ∩D, and a maintenance probabilistic loss expectation value LNC ∩R;
wherein a calculation formula of the destruction probabilistic loss expectation value LC under the seismic ground motion intensity parameter IM_x is expressed as:

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where E[Z|C] represents a theoretical destruction loss expectation value, E[Z|C] is equal to a replacement ratio coefficient corresponding to a destruction damage state of the external substructure reinforcement system, P(CP|IM) represents a probability corresponding to the external substructure reinforcement system being in the destruction damage state under the seismic ground motion intensity parameter IM_x; and P(CT|IM) represents a probability corresponding to the external substructure reinforcement system being in a transportation damage state under the seismic ground motion intensity parameter IM_x, and α1 represents a destruction loss coefficient;
wherein a calculation formula of the transportation probabilistic loss expectation value LT is expressed as:

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where E[Z|T] represents a theoretical transportation loss expectation value, E[Z|T] is equal to a replacement ratio coefficient corresponding to the transportation damage state of the external substructure reinforcement system, and α2 represents a transportation loss coefficient;
wherein a calculation formula of the residual probabilistic loss expectation value LNC ∩D is expresses expressed as:

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where E[L|NC∩D] represents a theoretical residual loss expectation value, and E[L|NC∩D] is equal to a replacement ratio coefficient corresponding to a residual damage state of the external substructure reinforcement system; P(CD|NC, IM) represents a probability corresponding to the external substructure reinforcement system being in the residual damage state under the seismic ground motion intensity parameter IM_x, and α3 represents a residual loss coefficient;
wherein a calculation formula of the maintenance probabilistic loss expectation value LNC∩R is expressed as:

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where E[L|NC ∩R, IM] represents a theoretical maintenance loss expectation value, and E[L|NC ∩R, IM] is equal to a replacement ratio coefficient corresponding to a maintenance damage state of the external substructure reinforcement system under the seismic ground motion intensity parameter IM_x; and α4 represents a maintenance loss coefficient;
step 5: obtaining the annual average probabilistic seismic loss of the external substructure reinforcement system based on the interfacial shear stresses according to the total probabilistic loss expectation model and the probability probabilistic hazard model; and
step 6: sending the annual average probabilistic seismic loss to management personnel, thereby making, by the management personnel, a seismic risk decision for a target structure corresponding to the external substructure reinforcement system and performing safety management on the target structure according to the annual average probabilistic seismic loss to thereby mitigating damage caused by earthquakes to the target structure.