Uncertainty quantification for damage mechanics models using the bootstrap method

Fuente: arXiv
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Hauptverfasser: Saadi, Mohamed, Kölzow, Felix, Kontermann, Christian, Oechsner, Matthias, Gottschalk, Hanno
Format: Preprint
Veröffentlicht: 2024
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author Saadi, Mohamed
Kölzow, Felix
Kontermann, Christian
Oechsner, Matthias
Gottschalk, Hanno
author_facet Saadi, Mohamed
Kölzow, Felix
Kontermann, Christian
Oechsner, Matthias
Gottschalk, Hanno
contents We quantify the uncertainty of the Lämmer model of damage evolution when fitted to (noisy) observations of damage evolution in cyclic fatigue experiments with and without dwell time. We therefore develop a bootstrap method by sampling over blocks of load cycles in the experiments in order to quantify the uncertainty in the material parameters of the Lämmer damage evolution equation. We first develop a resilient optimization algorithm for parameter identification based on numerical solutions of damage evolution. The uncertainty is quantified on three levels: distribution of parameters of the Lämmer model, confidence bands for the solutions of damage evolution, and distributions of failure times. The method is tested on several data sets, committing considerable high-performance computing resources to the task.
format Preprint
id arxiv_https___arxiv_org_abs_2405_17858
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Uncertainty quantification for damage mechanics models using the bootstrap method
Saadi, Mohamed
Kölzow, Felix
Kontermann, Christian
Oechsner, Matthias
Gottschalk, Hanno
Materials Science
We quantify the uncertainty of the Lämmer model of damage evolution when fitted to (noisy) observations of damage evolution in cyclic fatigue experiments with and without dwell time. We therefore develop a bootstrap method by sampling over blocks of load cycles in the experiments in order to quantify the uncertainty in the material parameters of the Lämmer damage evolution equation. We first develop a resilient optimization algorithm for parameter identification based on numerical solutions of damage evolution. The uncertainty is quantified on three levels: distribution of parameters of the Lämmer model, confidence bands for the solutions of damage evolution, and distributions of failure times. The method is tested on several data sets, committing considerable high-performance computing resources to the task.
title Uncertainty quantification for damage mechanics models using the bootstrap method
topic Materials Science
url https://arxiv.org/abs/2405.17858