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Published April 2014 | public
Journal Article

Highly non-linear creep life induced by a short close γ′-solvus overheating and a prior microstructure degradation on a nickel-based single crystal superalloy

Abstract

Specific non-isothermal creep conditions were applied to a 1st generation single crystal nickel based superalloy at very high temperature. Creep tests were conducted under 120 and 160 MPa at 1050 °C with one overheating under stress at 1200 °C for 30 s. Results were compared to the ones already obtained under 140 MPa on the same alloy as well as on a fourth generation of alloy. It is shown that the residual creep life after a single overheating is optimal after a specific prior-creep time. The impact of the creep degradation prior to an overheating on the creep life is dependent on the magnitude of the effective γ/γ′ lattice mismatch. Indeed, an overheating performed when the effective γ/γ′ mismatch magnitude is maximum leads to longer creep lives, even better than without overheating.

Additional Information

© Elsevier Ltd. Received 20 August 2013; Accepted 10 December 2013; Available online 19 December 2013. The authors are particularly grateful to Turbomeca – SAFRAN group for providing the material and to the French Ministry of Defense for its financial support. This work was conducted under the French program "PRC Structures Chaudes" involving Snecma-SAFRAN group, Turbomeca-SAFRAN group, ONERA and CNRS laboratories (Mines Paris Tech, Institut Pprime-ENSMA, LMT-Cachan, LMS-X, CIRIMAT-ENSIACET and CEAT). J.-B. le Graverend is also grateful to D. Pacou, V. Bonnand and R. Degeilh for stimulating discussions. J. Cormier and J. Mendez gratefully acknowledge Turbomeca – SAFRAN group for a continuous collaboration over 10 years, as well as Dr. Z. Hervier (Materials Department at Turbomeca) and Dr. E. Ostoja-Kuczynski (Method Department at Turbomeca) for their continuous interest in this work.

Additional details

Created:
September 15, 2023
Modified:
October 23, 2023