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DOE OSTI · 3375122

XFEM Development for Modeling Crack Growth in Prototypical Welded Components

Abstract

Nuclear power plant components are subjected to harsh operating environments that can lead to multiple degradation mechanisms in which fracture can play a prominent role. Predicting crack growth is important for assessing the integrity of welded components. The extended finite element method (XFEM) is an important tool for modeling such crack growth, and XFEM capabilities have been developed within the MOOSE framework. This report documents work in the MOOSE XFEM module to model fractures in three-dimensional representations of components using a topologically two-dimensional mesh to define cutting planes. Crack growth algorithms have been implemented to evolve the cutting mesh based on equations for stress corrosion cracking. Additionally, several usability and robustness improvements have been developed to enable three-dimensional fracture simulations. The cutting algorithms were demonstrated on a three-dimensional model of a prototypical reactor component undergoing stress corrosion cracking driven by idealized weld residual stresses. This is an incremental step toward using this capability to model more complex components with residual stresses computed through welding process simulations.

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BibTeXRIS

Munday, Lynn Brendon [Idaho National Laboratory] (ORCID:0000000270403134), Huynh, Giang Dong [Idaho National Laboratory], Spencer, Benjamin W [Idaho National Laboratory] (ORCID:0000000287744445). 2025-09-30. XFEM Development for Modeling Crack Growth in Prototypical Welded Components. https://www.osti.gov/biblio/3375122

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