In-situ and ex-situ microstructure studies and dislocation-based modelling for primary creep regeneration response of 316H stainless steel
Creators
- 1. ETH Zürich, Institute for Mechanical Systems, Department of Mechanical and Process Engineering, 8092 Zürich (Switzerland)
- 2. Empa, Swiss Federal Laboratories for Material Science and Technology, Überlandstrasse 129, CH-8600 Dübendorf (Switzerland)
- 3. Empa, Swiss Federal Laboratories for Materials Science and Technology, Feuerwerkerstrasse 39, CH-3602 Thun (Switzerland)
- 4. Queen's University, Department of Mechanical and Materials Engineering, Kingston, ON K7L 3N6 (Canada)
- 5. Argonne National Laboratory, X-ray Science Division, Lemont, IL 60439 (United States)
- 6. University of Oxford, Department of Engineering Science, Parks Road, Oxford OX1 3PJ (United Kingdom)
Description
The emergence of renewable energy sources with their variable and unpredictable nature, in addition to the variation of energy need for weekdays vs. weekends, demands an ever flexible operation of thermal power plants. Such a feature has therefore altered the typical steady creep loading of high-temperature components of power plants to stress-varying or cyclic creep conditions. The introduced load transients have been found to affect the strain hardening memory of the creeping alloys and might lead to multiple primary creep regeneration (PCR). Therefore, the creep strain accumulation can considerably increase under such conditions. Consideration of the PCR phenomenon is beyond the capability of conventional creep constitutive models which are based on strain- or time-hardening assumptions. The present study conducted in-situ and ex-situ experiments for 316H stainless steel. Various microstructural examination techniques, such as synchrotron high energy X-ray and neutron diffraction, and backscattered and transmission electron microscopy, have been employed for characterising evolution of the dislocation structure and the internal lattice strain/stress state of the alloy during stress-varying and cyclic creep conditions. The formation/annihilation of dislocation pileups and the bowing/unbowing of dislocation-lines were identified as the responsible mechanisms for PCR. A dislocation-based model was then formulated which could well represent the measured microstructural evolution and mechanical response of the steel during the conducted experiments at 650°C.
Availability note (English)
Available from http://dx.doi.org/10.1016/j.actamat.2021.117130Additional details
Identifiers
- DOI
- 10.1016/j.actamat.2021.117130;
- PII
- S1359645421005103;
Publishing Information
- Journal Title
- Acta Materialia
- Journal Volume
- 216
- Journal Page Range
- vp.
- ISSN
- 1359-6454
- CODEN
- ACMAFD
INIS
- Country of Publication
- United Kingdom
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- INIS RN
- 54013178
- Subject category
- S36: MATERIALS SCIENCE; S46: INSTRUMENTATION RELATED TO NUCLEAR SCIENCE AND TECHNOLOGY;
- Descriptors DEI
- COMPUTERIZED SIMULATION; CREEP; DISLOCATIONS; MICROSTRUCTURE; NEUTRON DIFFRACTION; POLYMERASE CHAIN REACTION; STAINLESS STEEL-316; STRAIN HARDENING; SYNCHROTRONS; THERMAL POWER PLANTS; TRANSMISSION ELECTRON MICROSCOPY; X-RAY DIFFRACTION
- Descriptors DEC
- ACCELERATORS; ALLOYS; AUSTENITIC STEELS; CARBON ADDITIONS; CHROMIUM ALLOYS; CHROMIUM STEELS; CHROMIUM-MOLYBDENUM STEELS; CHROMIUM-NICKEL STEELS; CHROMIUM-NICKEL-MOLYBDENUM STEELS; COHERENT SCATTERING; CORROSION RESISTANT ALLOYS; CRYSTAL DEFECTS; CRYSTAL STRUCTURE; CYCLIC ACCELERATORS; DIFFRACTION; ELECTRON MICROSCOPY; GENE AMPLIFICATION; HARDENING; HEAT RESISTANT MATERIALS; HEAT RESISTING ALLOYS; HIGH ALLOY STEELS; IRON ALLOYS; IRON BASE ALLOYS; LINE DEFECTS; MATERIALS; MECHANICAL PROPERTIES; MICROSCOPY; MOLYBDENUM ALLOYS; NICKEL ALLOYS; POWER PLANTS; SCATTERING; SIMULATION; STAINLESS STEELS; STEEL-CR17NI12MO3; STEELS; TRANSITION ELEMENT ALLOYS
Optional Information
- Copyright
- Copyright (c) 2021 The Author(s). Published by Elsevier Ltd on behalf of Acta Materialia Inc.