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April 21, 2026High Temperature Corrosion of Materials1 citationsOpen Access

Investigations on the Cyclic Oxidation Behaviour of the Ni-Based Superalloy AD730™ at Elevated Temperature

KJK. JahnsАОА. ОбросовSWS. Weiß

Key Points

  • This investigation aims to understand the cyclic oxidation behaviour of the Ni-based superalloy AD730™ at elevated temperatures.
  • Conducted cyclic oxidation tests at temperatures ranging from 800 °C to 1100 °C.
  • Performed SEM and SEM–EDS analysis to observe oxide layer formation.
  • Monitored oxidation behaviour for up to 500 cycles.
  • Oxidation behaviour followed a parabolic rate law with activation energy of approximately 312 kJ/mol.
  • Oxide layers mainly consisted of Cr2O3 and TiO2, with growth conditions influenced by temperature.
  • Internal oxidation depth increased with temperature, revealing the formation of Al2O3 along grain boundaries.

Abstract

Abstract In this study, the cyclic oxidation behaviour of the polycrystalline Ni-based superalloy AD730™ was investigated. Cyclic oxidation tests were carried out in laboratory air at temperatures of 800 °C, 900 °C, 1000 °C and 1100 °C up to 500 cycles (1 h per cycle). The oxidation behaviour of AD730™ approximately followed the parabolic rate law, and the average activation energy is about 312 kJ/mol. At lower temperatures, a two-stage oxidation kinetics were observed, and the transition time decreased as the oxidation temperature increased. SEM observations indicated the formation of continuous but relatively irregular oxide layers with a surface nodular-type structure that thickened with increasing temperature. SEM–EDS analysis revealed that the oxide layers mainly consisted of a Cr 2 O 3 scale covered by TiO 2 . Aluminum was internally oxidized to form Al 2 O 3 as elongated precipitates, which grew along grain boundaries via branch-like growth. Furthermore, TiO 2 and TiN precipitates were found within the internal oxidation zone. The internal oxidation depth increased with rising temperature.

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Cite This Study

Jahns et al. (2026) studied this question.

synapsesocial.com/papers/69e7143fcb99343efc98da83https://doi.org/10.1007/s11085-026-10382-6
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