Have a personal or library account? Click to login
The Quality Assurance of Cast and Wrought Aero Jet Engine Components Made from Ni-base Superalloys with Using of Quantitative Metallography Methods and Alloys Lifetime Prediction Cover

The Quality Assurance of Cast and Wrought Aero Jet Engine Components Made from Ni-base Superalloys with Using of Quantitative Metallography Methods and Alloys Lifetime Prediction

Open Access
|Oct 2019

References

  1. Akca, E., Gurse, l. A., 2015. A Review on Superalloys and IN718 Nickel-Based INCONEL Superalloy. Periodicals of Engineering and Natural Science, 3(1), 15-27.10.21533/pen.v3i1.43
  2. Belan, J., 2012. Study of advanced materials for aircraft jet engines using quantitative metallography. In: R.K. Agarwal (Ed.), Recent Advances in Aircraft Technology, 1st ed., Vol. 1, InTech, Rijeka, pp. 49-74.10.5772/37254
  3. Hanumantha Rao, D., Tagore, G.R.N., Ranga Janardhana, G., 2010. Evolution of artificial network (ANN) model for predicting secondary dendrite arm spacing in aluminium alloy casting. Journal of the Brazilian Society of Mechanical Sciences and Engineering, 32(3), 276-281, DOI: 10.1590/S1678-5878201000030001110.1590/S1678-58782010000300011
  4. Huang, X., Wang, L., Hu, Y., Guo, G., Salmon, D., Li, Y., Zhao, W., 2016. Fatigue Crack Propagation Behavior of Ni-Based Superalloys After Overloading at Elevated Temperatures. Progress in Natural Science: Materials International, 26(2), 197–203.10.1016/j.pnsc.2016.03.007
  5. Kracke, A., 2010. Superalloys, the most successful alloy system of modern times-past, present and future. 7th international symposium on Superalloy 718 and derivatives, 13-50.10.7449/2010/Superalloys_2010_13_50
  6. Marakumo, T., Kobayashi, T., Koizumi, Y., Harada, H., 2004. Creep behaviour of Ni-base single-crystal superalloys with various γ' volume fraction, Acta Materialia, 52, 3737-3744.10.1016/j.actamat.2004.04.028
  7. Okura, T., 2015. Materials for Aircraft Engines, ASEN 5063 Aircraft Propulsion Final Report, online: https://www.colorado.edu/faculty/.../materials-aircraft-engines
  8. Oravcová, M., Palček, P., Chalupová, M., Uhríčik, M., 2017. Fracture mechanism differences created by fatigue and impact test. Materials Today – Proceedings, 4(5), 5921-5924.10.1016/j.matpr.2017.06.070
  9. Saltykov, S.A., 1958. Steremetricheskaya Metallograpfiya (Stereometric Metallography), 2nd revised and supplemented edition, Metallurgizdat, Moscow, 444p.
  10. Sjöberg, G., 2008. Aircraft Engine Structure Materials. Volvo Aero Corporation, online: https://www.sto.nato.int/publications/.../EN-AVT-207-13.pdf
  11. Vaško, A., 2017. Fatigue properties of nodular cast iron at low frequency cyclic loading. Archives of Metallurgy and Materials, 62(4), 2205-2210.10.1515/amm-2017-0325
  12. Zatkaliková, V., Oravcová, M., Palček, P., Markovičová, L., 2017. The effect of surface treatment on corrosion resistance of austenitic biomaterial. TRANSACTIONS OF FAMENA, 41(4), 25-34, DOI: 10.21278/TOF.4140310.21278/TOF.41403
  13. Zhang, H., Guan, Z.W., Wang, Q.Y., Liu, Y.J., Li, J.K., 2018. Effects of Stress Ratio and Microstructure on Fatigue Failure Behavior of Polycrystalline Nickel Superalloy. JMEPEG, 27, 2534–2544.10.1007/s11665-018-3331-9
Language: English
Page range: 222 - 229
Submitted on: Mar 1, 2019
Accepted on: May 5, 2019
Published on: Oct 8, 2019
Published by: Quality and Production Managers Association
In partnership with: Paradigm Publishing Services
Publication frequency: 1 issue per year

© 2019 Juraj Belan, Lenka Kuchariková, Magdalena Mazur, Eva Tillová, Patrícia Hanusová, published by Quality and Production Managers Association
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.