Identifying the dominant failure mode in the hot extrusion tooling used to forge nickel based superalloy

Author:

Anderson M.J.,McGuire K.,Zante R.C.,Ion W.J.,Rosochowski A.,Brooks J.W.

Publisher

Elsevier BV

Subject

Industrial and Manufacturing Engineering,Metals and Alloys,Computer Science Applications,Modelling and Simulation,Ceramics and Composites

Reference17 articles.

1. Prediction of wear in hot forging tools by means of finite-element-analysis;Behrens;Journal of Materials Processing Technology,2005

2. High temperature low cycle fatigue behaviour of a martensitic forging tool steel;Bernhart;International Journal of Fatigue,1999

3. Improvement of life prediction in AISI H11 tool steel by integration of thermo-mechanical fatigue and creep damage models;Berti;Fatigue and Fracture of Engineering Materials and Structures,2009

4. Surface Wear: Analysis, Treatment, and Prevention;Chattopadhyay,2001

5. Simulation of phase transformation in hot forging dies during a precision forging process by means of finite-element-analysis;Doege,2004

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1. Forging;Schey’s Tribology in Metalworking;2023-09-30

2. Extrusion;Schey’s Tribology in Metalworking;2023-09-30

3. Wear behavior and microstructure evolution in pure nickel extrusion manufacturing;Transactions of Nonferrous Metals Society of China;2023-05

4. Investigation of the Wear Behavior of Forging Tool by Ball on Disc and Impact Sliding Tribometer;Proceeding of 5th International Conference on Advances in Manufacturing and Materials Engineering;2023

5. Effects of forming temperature, soaking time and dwell time on the microstructure and mechanical properties of thixoformed nickel-based superalloy parts;Journal of Materials Research and Technology;2021-01

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