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http://dx.doi.org/10.5228/KSPP.2005.14.4.384

Microstructure Prediction of Superalloy Nimonic 80A for Hot Closed Die Forging  

Jeong H. S. (한국해양대학교 기계정보공학부)
Cho J. R. (한국해양대학교 기계정보공학부)
Park H. C. (㈜케이에스피 기술연구소)
Lee S. Y. (한국해양대학교 기계소재공학부)
Publication Information
Transactions of Materials Processing / v.14, no.4, 2005 , pp. 384-391 More about this Journal
Abstract
The nickel-based alloy Nimonic 80A possesses the excellent strength, and the resistance against corrosion, creep and oxidation at high temperature. Its products are used in aerospace engineering, marine engineering and power generation, etc. Control of forging parameters such as strain, strain rate, temperature and holding time is important because change of the microstructure in hot working affects the mechanical properties. Change of the microstructure evolves by recovery, recrystallization and grain growth phenomena. The dynamic recrystallization evolution has been studied in the temperature range of $950\~1250^{\circ}C$ and strain rate range of $0.05\~5s^{-1}$ using hot compression tests. The metadynamic recrystallization and grain growth evolution has been studied in the temperature range of $950\~1250^{\circ}C$ and strain rate range $0.05,\;5s^{-1}$, holding time range of 5, 10, 100, 600 sec using hot compression tests. Modeling equations are proposed to represent the flow curve, recrystallized grain size, recrystallized fraction and grain growth phenomena by various tests. Parameters in modeling equations are expressed as a function of the Zener-Hollomon parameter. The modeling equation for grain growth is expressed as a function of the initial grain size and holding time. The modeling equations developed were combined with thermo-viscoplastic finite element modeling to predict the microstructure change evolution during hot forging process. The grain size predicted from FE simulation results is compared with results obtained in field product.
Keywords
Nimonic 80A; FEM; Recrystallization; Superalloy; Hot Forging,; Microstructure Evolution; Grain Growth;
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1 정호승, 조종래, 차도진, 배원병, 2001, 금형강의 동적 및 정적 재결정 거동돠 미세조직 변화 예측에 관한 연구, 한국소성가공학회지, Vol. 10, No. 4, pp. 338-346
2 N. Srinivasan, Y. V. R. K. Prasad, 1995, Hot working characteristics of nimonic 75, 80A and 90 superalloys: a comparison using processing maps, Journal of Materials Processing Technology, Vol 51, pp. 171-192   DOI   ScienceOn
3 D. K. Kim, D. Y. Kim, S. H. Ryu, D. J. Kim, 2001, Application of nimonic 80A to the forging of an exhaust valve head, Journal of Materials Processing Technology, Vol. 113, pp. 148-152   DOI   ScienceOn
4 J. R. Cho, W. B. Bae, W. J. Hwang, P. Hartley, 2001, A study on the hot-deformation behavior and dynamic recrystallization of Al-5wt.%Mg alloy, Journal of Materials Processing Technology, Vol. 118, pp. 356-361   DOI   ScienceOn
5 J. M. Zhang, Z. Y. Gao, J. Y. Zhuang, Z. Y. Zhong, 2000, Grain growth model of IN718 during holding period after hot deformation, Journal of Materials Processing Technology, Vol. 101, pp. 25-30   DOI   ScienceOn
6 N. K. Park, I. S. Kim, Y. S. Na, J. T. Yeom, 2001, Hot forging of a nickel-base superalloy, Journal of Materials Processing Technology, Vol. 111, pp.98-102   DOI   ScienceOn
7 C. M. Sellars, J. A. Whiteman, 1979, Recrystallization and grain growth in hot rolling, Metal Science, Vol. 13, pp. 187-194   DOI   ScienceOn
8 S. F. MEDINA, C. A. HERNANDEZ, 1996, The influence of chemical composition on peak strain of deformed austenite in low alloy and microalloyed steels, Acta mater., Vol. 44, No. I, pp. 149154   DOI   ScienceOn
9 S. F.MEDINA, C. A. HERNANDEZ, 1996, Modeling of the dynamic recrystallization of austenite in low alloy and microalloyed steels, Acta mater., Vol. 44, No. 1, pp. 165-171   DOI   ScienceOn
10 J. M. Zhang, Z. Y. Gao, J. Y. Zhuang, Z. Y. Zhong, 1999, Modeling of grain size in superalloy IN718 during hot deformation, Journal of Materials Processing Technology, Vol. 88, pp. 244-250   DOI   ScienceOn
11 S. C. Medeiros, Y. V. R. K. Prasad, W. G. Frazier, R Srinivasan, 2000, Microstructual modeling of metadynamic recrystallization in hot working of IN 718 superalloy, Materials Science and Engineering, A293, pp. 198-207
12 염종택, 박노광, 1997, 해머 단조된 Alloy 718 디사크의 결정립 분포 해석, 한국소성가공학회지, Vol. 6, No. 3, pp. 250-256
13 최민식, 강범수, 염종택, 박노광, 1998, 유한요소법을 이용한 Inconel 718의 열간단조공정시동적 재결정거동 예측, 한국소성가공학회지, Vol. 35, No. 6, pp. 197-206
14 S. M. Roberts, C. A. Walsh, R. C. Reed, C. A. Dandre, J. P. Lewis, R. W. Evans, 2000, Nickelbase superalloy forging for gas turbine applications: Process model, mmicrostructural model and validation, Metal Forming 2000, ISBN 90-5809-157-0