Creep Behavior of the Inconel 718 Superalloy

Author:

Sugahara Tarcila1,Martinolli Karina1,Reis Danieli A.P.2,de Moura Neto Carlos2,Couto Antônio Augusto3,Neto F. Piorino4,Barboza M.J.R.4

Affiliation:

1. Aeronautic Technological Institute (ITA)

2. Instituto Tecnológico de Aeronáutica

3. Instituto de Pesquisas Energéticas e Nucleares (IPEN)

4. Universidade De São Paulo, Usp

Abstract

A superalloy is an alloy developed for elevated temperature service, where relatively severe mechanical stressing is encountered, and where high surface stability is frequently required. High temperature deformation of Ni-base superalloys is very important since the blades and discs of aero engine turbine, because need to work at elevated temperature for an expected long period. The nickel-base alloy Inconel 718 has being investigated because it is one of the most widely used superalloys. The objective of this work was to evaluate the creep behavior of the Inconel 718 focusing on the determination of the experimental parameters related to the primary and secondary creep states. Constant load creep tests were conducted with at 650, 675 and 700°C and the range of stress was from 625 to 814 MPa to according to ASTM E139 standard. The relation between primary creep time and steady-state creep rate, obeyed the equation for both atmospherics conditions at 650, 675 and 700°C. The microstructural characterization employing the technique of scanning electron microscopy has been a valuable tool for understanding the mechanisms of creep.

Publisher

Trans Tech Publications, Ltd.

Subject

Condensed Matter Physics,General Materials Science,Radiation

Reference6 articles.

1. Sims, Hagel: The superalloys- Sims, (1972).

2. Kim D.H.; Kim J.H.; Sa J.W.; Lee Y.S.; Park C.K.; Moon S.: Materials Science and Engineering A Vol. 483-484 (2008), p.262.

3. American Society for Testing and Materials, Surface Engineering, v. 5, Philadelphia, (1996).

4. Mauro A. F. Oliveira: Efeito do pré-envelhecimento na microestrutura e propriedades de fluência do aço HK-40, a 871 e 982°C, UFSCAR, (1994).

5. T.L. Anderson, Fracture Mechanics, Fundamentals and Applications, Third Edition, pg. 217.

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