Estimation of ring tensile properties of steam oxidized Zircaloy-4 fuel cladding under simulated LOCA condition

The present study involves the estimation of ring tensile properties of Indian Pressurised Heavy Water Reactor (IPHWR) fuel cladding made of Zircaloy-4, subjected to experiments under a simulated loss-of-coolant-accident (LOCA) condition. Isothermal steam oxidation experiments were conducted on clad...

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Veröffentlicht in:Journal of nuclear materials 2017-09, Vol.493, p.460-470
Hauptverfasser: Shriwastaw, R.S., Sawarn, Tapan K., Banerjee, Suparna, Rath, B.N., Dubey, J.S., Kumar, Sunil, Singh, J.L., Bhasin, Vivek
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Sprache:eng
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Zusammenfassung:The present study involves the estimation of ring tensile properties of Indian Pressurised Heavy Water Reactor (IPHWR) fuel cladding made of Zircaloy-4, subjected to experiments under a simulated loss-of-coolant-accident (LOCA) condition. Isothermal steam oxidation experiments were conducted on clad tube specimens at temperatures ranging from 900 to 1200 °C at an interval of 50 °C for different soaking periods with subsequent quenching in water at ambient temperature. The specimens, which survived quenching, were then subjected to ambient temperature ring tension test (RTT). The microstructure was correlated with the mechanical properties. The yield strength (YS) and ultimate tensile strength (UTS) increased initially with rise in oxidation temperature and time duration but then decreased with further increase in oxidation. Ductility is adversely affected with rising oxidation temperature and longer holding time. A higher fraction of load bearing phase and lower oxygen content in it ensures higher residual ductility. Cladding shows almost zero ductility behavior in RIT when load bearing phase fraction is less than 0.72 and its average oxygen concentration is greater than 0.58 wt%. •High temperature steam oxidation of Zircaloy-4 cladding followed by water quenching in a simulated LOCA condition was performed.•Post-quench ring tensile properties were correlated with the evolved microstructure.•Oxygen concentration of 0.32 mm is required to avoid nil ductility.
ISSN:0022-3115
1873-4820
DOI:10.1016/j.jnucmat.2017.06.032