Thermomechanical finite-element model of shell behavior in continuous casting of steel
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[1] Kyu Hwan Oh,et al. Effect of Cooling Rate on ZST, LIT and ZDT of Carbon Steels Near Melting Point , 1998 .
[2] Alan W. Cramb,et al. The density of liquid iron-carbon alloys , 1993 .
[3] I. V. Samarasekera,et al. Analysis of thermomechanical behaviour in billet casting with different mould corner radii , 2002 .
[4] Kyu Hwan Oh,et al. A new criterion for internal crack formation in continuously cast steels , 2000 .
[5] Peter Wriggers,et al. A two-level iteration method for solution of contact problems , 1986 .
[6] P. J. Wray,et al. Plastic deformation of delta-ferritic iron at intermediate strain rates , 1976 .
[7] Brian G. Thomas,et al. Simple constitutive equations for steel at high temperature , 1992 .
[8] C. Chow. The effects of high speed casting on the mould heat transfer, billet solidification, and mould taper design of continuously cast steel billets , 2001 .
[9] J. A. Dantzig,et al. Initial development of thermal and stress fields in continuously cast steel billets , 1988 .
[10] K. Sorimachi,et al. Elastoplastic Stress Analysis of Bulging as a Major Cause of Internal Cracks in Continuously Cast Slabs , 1977 .
[11] Brian G. Thomas,et al. Simulation of thermal distortion of a steel droplet solidifying on a copper chill , 1998 .
[12] A. Ramacciotti. Thermo-mechanical behaviour of the solidified shell in a “funnel-shaped” mold for continuous casting of thin slabs , 1988 .
[13] B. A. Boley,et al. Elasto-plastic thermal stresses in a solidifying body , 1963 .
[14] R. Cook,et al. Concepts and Applications of Finite Element Analysis , 1974 .
[15] Lallit Anand,et al. An implicit time-integration procedure for a set of internal variable constitutive equations for isotropic elasto-viscoplasticity , 1989 .
[16] I. V. Samarasekera,et al. ANALYSIS OF THERMO-MECHANICAL BEHAVIOR IN BILLET CASTING , 2002 .
[17] J. O. Kristiansson. THERMOMECHANICAL BEHAVIOR OF THE SOLIDIFYING SHELL WITHIN CONTINUOUS-CASTING BILLET MOLDS-A NUMERICAL APPROACH , 1984 .
[18] Brian G. Thomas,et al. Modeling of the continuous casting of steel—past, present, and future , 2002 .
[19] Stress analysis in solidification processes: Application to continuous casting , 1989 .
[20] Brian G. Thomas,et al. SIMULATION OF THERMAL MECHANICAL BEHAVIOR DURING INITIAL SOLIDIFICATION , 1997 .
[21] J. Douglas Faires,et al. Numerical Analysis , 1981 .
[22] Avijit Moitra. Thermo-mechanical model of steel shell behavior in continuous slab casting , 1993 .
[23] Brian G. Thomas,et al. Simulation of longitudinal off-corner depressions in continuously cast steel slabs , 1996 .
[24] J. Z. Zhu,et al. The finite element method , 1977 .
[25] J. O. Kristiansson,et al. THERMAL STRESSES IN THE EARLY STAGE OF SOLIDIFICATION OF STEEL , 1982 .
[26] Kinoshita Katsuo,et al. Thermal Elasto-plastic Stress Analysis of Solidifying Shell in Continuous Casting Mold , 1979 .
[27] B. Thomas,et al. IDEAL TAPER PREDICTION FOR BILLET CASTING , 2003 .
[28] Brian G. Thomas,et al. Analysis of Thermal and Mechanical Behavior of Copper Molds during Continuous Casting of Steel Slabs , 1997 .
[29] J. Chaboche,et al. Mechanics of Solid Materials , 1990 .
[30] C. L. Tucker,et al. Modeling In Materials processing: Contents , 2001 .
[31] J. Uhlig. C. Forsythe and C. B. Moler, Computer Solution of Linear Algebraic Systems. (Series in Automatic Computation) XI + 148 S. Englewood Cliffs, N.J. 1967. Prentice-Hall, Inc. Preis geb. 54 s. net , 1972 .
[32] P. J. Wray,et al. Effect of carbon content on the plastic flow of plain carbon steels at elevated temperatures , 1982 .
[33] Brian G. Thomas,et al. Analysis of the Potential Productivity of Continuous Cast Molds , 2000 .
[34] T. W. Clyne,et al. The effect of melt composition on solidification cracking of steel, with particular reference to continuous casting , 1982 .
[35] Jonathan A. Dantzig,et al. Modeling in Materials Processing , 2001 .
[36] Brian G. Thomas,et al. Modeling superheat removal during continuous casting of steel slabs , 1992 .
[37] Hong Zhu,et al. Coupled Thermal-Mechanical Fixed-Grid Finite-Element Model With Application to Initial Solidification , 1997 .
[38] Michel Rappaz,et al. Modeling of casting, welding and advanced solidification processes-V : proceedings of the fifth International Conference on Modeling of Casting and Welding Processes, held in Davos Switzerland, September 16-21, 1990 , 1991 .
[39] Brian G. Thomas,et al. Maximum casting speed for continuous cast steel billets based on sub-mold bulging computation , 2002 .
[40] B. Thomas,et al. Ideal Taper Prediction for Slab Casting , 2003 .
[41] J. Brimacombe. Design of continuous casting machines based on a heat-flow analysis: state-of-the-art review , 1976 .
[42] Alberto Cardona,et al. Thermomechanical model of a continuous casting process , 2000 .
[43] Y. Meng,et al. Heat-transfer and solidification model of continuous slab casting: CON1D , 2003 .
[44] Graeme Fairweather,et al. Three level Galerkin methods for parabolic equations , 1974 .
[45] F. N. Fett,et al. Strategies for coupled analysis of thermal strain history during continuous solidification processes , 1998 .
[46] Jong-Kyu Yoon,et al. Prediction of cracks in continuously cast steel beam blank through fully coupled analysis of fluid flow, heat transfer, and deformation behavior of a solidifying shell , 2000 .
[47] Brian G. Thomas,et al. Mathematical modeling of the continuous slab casting mold: a state of the art review , 1991 .
[48] Joong-Kil Park. Thermo-mechanical phenomena in high speed continuous casting processes , 2002 .
[49] R. C. Weast. Handbook of chemistry and physics , 1973 .
[50] Brian G. Thomas,et al. Simple model of microsegregation during solidification of steels , 2001 .