Coexistence of two distinct fatigue failure mechanisms in Super304H welded joint at elevated temperatures
Creators
- 1. Future Energy Plant Convergence Research Center, Korea Institute of Energy Research, Daejeon, 34129 (Korea, Republic of)
- 2. Interdisciplinary Materials Measurement Institute, Korea Research Institute of Standards and Science, Daejeon, 34113 (Korea, Republic of)
- 3. Department of Nano Science, University of Science and Technology, Daejeon, 34113 (Korea, Republic of)
Description
Highlights: • Two distinct fatigue failure mechanisms coexisting at elevated temperatures. • Transition in fatigue failure location from base metal to weld metal at low strain amplitude. • It induced a significant reduction in fatigue resistance of the welded joint. • Different microstructural evolutions in base metal and weld metal by thermal aging. • It caused intensified local hardness inhomogeneity and strain localization in weld metal. Super304H steel is a promising candidate for boiler tube materials in thermal power plants operating under ultra-supercritical conditions, and the fatigue properties of its welded joint play a key role in the structural reliability of the thermal power plants. Herein, we report that there is a transition in the fatigue failure location (i.e., fatigue failure mechanism) from the base metal at a high strain amplitude (≥~0.4%) to the weld metal at a low strain amplitude (≤~0.3%) at a constant temperature in the operating range of 500–700 °C, and this leads to a significant reduction in the fatigue resistance of the welded joint as compared to that of the base metal. We found that a longer fatigue test time at a low strain amplitude induces a thermal aging effect that promotes different microstructural evolutions in the base metal and weld metal, deepening material inhomogeneity in the welded joint, and thereby triggering strain localization in the weld metal. With increasing fatigue test time (i.e., thermal aging time), Cr23C6 carbides precipitated in the interdendritic region of the weld metal and at the austenitic grain boundary of the base metal, and Nb (C, N) phases precipitated in the interior of austenitic grain in the base metal, which increased local hardness, whereas there was no significant microstructural change in the dendrite core of the weld metal, retaining its initial hardness. The intensified local hardness inhomogeneity caused the softest zone in the welded joint, wherein strain localization occurred, serving as a crack nucleation site and propagation path, to shift from the base metal to the weld metal (dendrite core). This induced a shift in the fatigue failure location from the base metal to the weld metal with decreasing strain amplitude.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.msea.2021.141465Additional details
Identifiers
- DOI
- 10.1016/j.msea.2021.141465;
- PII
- S0921509321007346;
Publishing Information
- Journal Title
- Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing
- Journal Volume
- 819
- Journal Page Range
- vp.
- ISSN
- 0921-5093
- CODEN
- MSAPE3
INIS
- Country of Publication
- Netherlands
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54036724
- Subject category
- S36: MATERIALS SCIENCE;
- Descriptors DEI
- AUSTENITIC STEELS; BOILERS; CHROMIUM CARBIDES; DENDRITES; GRAIN BOUNDARIES; HARDNESS; MATERIALS; METALS; NUCLEATION; PRECIPITATION; THERMAL POWER PLANTS; WELDED JOINTS
- Descriptors DEC
- ALLOYS; CARBIDES; CARBON ADDITIONS; CARBON COMPOUNDS; CHROMIUM COMPOUNDS; CRYSTALS; ELEMENTS; IRON ALLOYS; IRON BASE ALLOYS; JOINTS; MECHANICAL PROPERTIES; MICROSTRUCTURE; POWER PLANTS; SEPARATION PROCESSES; STEELS; TRANSITION ELEMENT ALLOYS; TRANSITION ELEMENT COMPOUNDS
Optional Information
- Copyright
- Copyright (c) 2021 The Authors. Published by Elsevier B.V.