Development of Low or Zero-Rhenium High-Performance Ni-base Single Crystal Superalloys for Jet Engine and Power Generation Applications
Author:
Affiliation:
1. National Institute for Materials Science; 1-2-1 Sengen Tsukuba Ibaraki 305-0047 Japan
2. Mitsubishi Heavy Industries, Ltd.; 1-1 Shinhama, 2-chome, Arai-cho Takasago Hyogo 676-8686 Japan
Publisher
John Wiley & Sons, Inc.
Link
http://onlinelibrary.wiley.com/wol1/doi/10.1002/9781119075646.ch13/fullpdf
Reference8 articles.
1. Development of 4th Generation Single Crystal Superalloys;Koizumi;2nd International Symposium on High Temperature Materials,2001
2. Interfacial Dislocation Networks Strengthening a Fourth-Generation Single-Crystal TMS-138 Superalloy;Zhang;Metall. Mater. Trans. A,2002
3. K.S. O'hara W.S. Walston E.W. Ross R. Darolia Nickel Base Superalloy and Article 789A 1996
4. Development of an Oxidation-Resistant High-Strength Sixth-Generation Single-Crystal Superalloy TMS-238;Kawagishi;Superalloys 2012,2012
5. Alloy Design for High Strength Ni-base Single Crystal Alloys;Yamagata;Superalloys 1984,1984
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1. The Effect of CaO-MgO Mixture on Desulfurization of Molten Ni-Base Superalloy;Metallurgical and Materials Transactions B;2021-06-03
2. Composition rules of Ni-base single crystal superalloys and its influence on creep properties via a cluster formula approach;Scientific Reports;2020-12
3. Review on Mechanical Thermal Properties of Superalloys and Thermal Barrier Coating Used in Gas Turbines;Applied Sciences;2020-08-07
4. 3 Ton Melting with CaO Desulfurization of Ni-Base Single Crystal Superalloy TMS-1700, Simulating a Recycling of Used Turbine Blades;Superalloys 2020;2020
5. Desulfurization Model Using Solid CaO in Molten Ni-Base Superalloys Containing Al;Metallurgical and Materials Transactions B;2019-10-26
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