Published March 2021 | Version v1
Journal article

Application of cohesive zone model to large scale circumferential through-wall and 360° surface cracked pipes under static and dynamic loadings

  • 1. Seoul National University of Science and Technology, Seoul (Korea, Republic of)
  • 2. Structural Integrity Associates, San Jose (United States)
  • 3. Yonsei University, Seoul (Korea, Republic of)

Description

This paper presents ductile fracture simulation of full-scale cracked pipe for nuclear piping materials using the cohesive zone model (CZM). The main objective of this study is to investigate the applicability of CZM to predict ductile fracture of cracked pipes with various crack shapes and under quasi-static/dynamic loadings. The transferability of the traction-separation (T-S) curve from a small-scale specimen to a full-scale pipe is demonstrated by simulating small- and full-scale tests. T-S curves are calibrated by comparing experimental data of compact tension specimens with finite element analysis results. The calibrated T-S curves are utilized to predict the fracture behavior of cracked pipes. Three types of full-scale pipe tests are considered: pipe with circumferential through-wall crack under quasi-static/dynamic loadings, and with 360° internal surface crack under quasi-static loading. Computational results using the calibrated T-S curves show a good agreement with experimental data, demonstrating the transferability of the T-S curves from small-scale specimen

Additional details

Publishing Information

Journal Title
Nuclear Engineering and Technology
Journal Volume
53
Journal Issue
3
Series
35 refs, 13 figs, 4 tabs
Journal Page Range
p. 974-987
ISSN
1738-5733

INIS

Country of Publication
Korea, Republic of
Country of Input or Organization
Korea, Republic of
INIS RN
53091264
Subject category
S22: GENERAL STUDIES OF NUCLEAR REACTORS; S36: MATERIALS SCIENCE;
Resource subtype / Literary indicator
Numerical Data
Descriptors DEI
COMPARATIVE EVALUATIONS; CRACKS; DIAGRAMS; DYNAMIC LOADS; EXPERIMENTAL DATA; FINITE ELEMENT METHOD; FRACTURES; PIPES; SIMULATION; STATIC LOADS; SURFACES; WALLS; ZONES
Descriptors DEC
CALCULATION METHODS; DATA; EVALUATION; FAILURES; INFORMATION; MATHEMATICAL SOLUTIONS; NUMERICAL DATA; NUMERICAL SOLUTION; TUBES