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May 9, 2026Frattura ed Integrità Strutturale0 citationsOpen Access

Stress intensity factors for through clad and underclad defects in a WWER type reactor pressure vessel in pressurised thermal shock analysis

VAVitalii AntonchenkoYDYaroslav DubykVIVolodymyr Iasnii

Key Points

  • The aim is to develop stress intensity factor (SIF) solutions for cladded WWER reactor pressure vessels under thermal shock loading.
  • Developed SIF solutions using an influence coefficient method based on finite element J-integral evaluation
  • Applied least-squares refinement of shape coefficients for accuracy
  • Validated the approach against finite element reference solutions with varying crack sizes and aspect ratios.
  • Proposed SIF solutions show good agreement with finite element reference solutions across tested loading cases
  • Validate through-clad and underclad defect engineering assessments
  • Demonstrated potential for online stress monitoring and screening transient scenarios.

Abstract

This study develops stress intensity factor (SIF) solutions for cladded WWER reactor pressure vessel nozzles subjected to pressurised thermal shock loading. Although finite element analysis is widely used for fracture assessment, analytical or semi-analytical SIF formulations remain important for fast evaluation, including online stress monitoring, probabilistic fracture mechanics, and screening of transient scenarios. The proposed approach combines an influence coefficient method based on three-dimensional finite-element J-integral evaluation with least-squares refinement of shape coefficients. A stress decomposition procedure is applied to address the stress discontinuity at the ferritic base metal–austenitic cladding interface. The resulting coefficients are validated against finite element reference solutions for representative pressure and thermal loading cases and show good agreement over the investigated range of crack sizes and aspect ratios. The developed solutions provide a practical tool for engineering assessment of through-clad and underclad defects in cladded WWER nozzle regions.

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Cite This Study

Antonchenko et al. (2026) studied this question.

synapsesocial.com/papers/69fece1db9154b0b82875cdbhttps://doi.org/10.3221/igf-esis.77.15
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