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May 20, 20260 citationsOpen Access

Thermal creep behavior of hydrogen-enriched Zr1%Nb alloy fuel cladding tube in phase transit regions.

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VSVaclav SklenickaMKMarie KvapilováPKPetr Kral

Key Points

  • The aim is to understand thermal creep behavior and mechanisms in hydrogen-enriched Zr1%Nb alloy during phase transitions.
  • Conducted constant-stress creep tests in tension on pre-hydrided Zr1%Nb alloy cladding tube segments at temperatures from 550-900 °C and stress levels from 5 to 60 MPa.
  • Characterized microstructures using scanning and transmission electron microscopy after creep testing.
  • Analyzed creep data for activation energy and deformation mechanisms.
  • The dominant creep deformation mechanism was identified as dislocation glide, unaffected by oxygen or hydrogen.
  • Oxygen and hydrogen influence the kinetics of creep behavior during phase transitions.
  • Oxidation hardening was observed as a significant factor during the α-Zr to β-Zr transition.

Abstract

Among various degradation processes, thermal creep is considered a life-limiting factor for zirconium nuclear fuel cladding in light water reactors. In this work, the creep behavior of pre-oxidized and pre-hydrided in steam thin-walled Zr1wt.%Nb alloy fuel cladding tube was investigated in α-Zr → (α+β)-Zr → β-Zr phase transit regions to further develop knowledge on acting creep deformation mechanisms and the role of dissolved hydrogen. Short-term constant-stress creep tests in tension were conducted on pre-hydrided tubular segments of the cladding tube over a temperature range of 550-900 °C and at applied stress of 5 to 60 MPa. The hydrogen contents in creep specimens before creep tests were 150 and 600 wppm, respectively. Creep tests were followed by microstructural analysis of the specimens using scanning and transmission electron microscopy. The activation analysis of the creep data indicated that the dominant creep deformation mechanism during the phase transition may be dislocation glide, which is not altered by oxygen or hydrogen. However, the oxygen and hydrogen influence its kinetics. The dominant creep-hardening effect in the α-Zr → β-Zr transition provides oxidation hardening. Dissolved hydrogen does not directly contribute to creep hardening.

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Cite This Study

Sklenicka et al. (2026) studied this question.

synapsesocial.com/papers/6a0d50f3f03e14405aa9d1b3https://doi.org/10.5281/zenodo.19128949
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