2022
DOI: 10.1007/s11661-022-06628-y
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High-Temperature Cycle Deformation and Fracture Behavior of Advanced Austenitic Heat-Resistant Steel Sanicro25 Alloy for A-USC Power Plants

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Cited by 8 publications
(6 citation statements)
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“…Furthermore, the distribution of higher geometrically necessary dislocation (GND) densities is examined adjacent to grain boundaries and Z phase/matrix interfaces (Figure 11C). During high‐temperature deformation, dislocation gliding/climbing movement assisted by thermal activation can be hindered to accumulate at grain boundaries and primary Z phase 8,29 . The weaker binding force of the phase interfaces (the primary Z phase and the M 23 C 6 at grain boundary 7 ) provides the priority site for creep void initiation 11 .…”
Section: Discussionmentioning
confidence: 99%
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“…Furthermore, the distribution of higher geometrically necessary dislocation (GND) densities is examined adjacent to grain boundaries and Z phase/matrix interfaces (Figure 11C). During high‐temperature deformation, dislocation gliding/climbing movement assisted by thermal activation can be hindered to accumulate at grain boundaries and primary Z phase 8,29 . The weaker binding force of the phase interfaces (the primary Z phase and the M 23 C 6 at grain boundary 7 ) provides the priority site for creep void initiation 11 .…”
Section: Discussionmentioning
confidence: 99%
“…During high-temperature deformation, dislocation gliding/climbing movement assisted by thermal activation can be hindered to accumulate at grain boundaries and primary Z phase. 8,29 The weaker binding force of the phase interfaces (the primary Z phase and the M 23 C 6 at grain boundary 7 ) provides the priority site for creep void initiation. 11 With further strain accumulation, the increased stress concentration causes creep voids to coarsen and develops into microcracks at the grain boundaries and primary Z phase.…”
Section: Crack Initiation Mechanismmentioning
confidence: 99%
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