SIMULATION AND COMPARISON OF CASTING PROCESS, SOLIDIFICATION AND CRYSTAL STRUCTURE IN ASTM A36 STEEL
DOI:
https://doi.org/10.55197/qjoest.v7i3.287Keywords:
casting simulation, solidification, crystal structure, ASTM A36, microstructureAbstract
This study presents a simulation-based comparison of the casting process, solidification behavior, and crystal structure formation in ASTM A36 structural steel. Finite element and finite difference methods were employed to model thermal gradients, solidification fronts, and microstructural evolution during sand and die casting processes. The simulation was validated against experimental casting trials, with particular attention paid to dendrite arm spacing, grain morphology, and the development of ferrite-pearlite microstructures characteristic of low-carbon structural steels. Results indicate that cooling rate significantly governs grain refinement and crystal orientation, with die casting producing finer equiaxed grains compared to sand casting. Comparative analysis reveals that the solidification sequence directly influences the final mechanical properties, including yield strength, tensile strength, and impact toughness, all of which must meet ASTM A36 requirements. Thermal contraction and residual stress distributions were also evaluated, demonstrating that controlled solidification mitigates hot-tearing defects. The study provides a comprehensive computational framework for optimizing casting parameters to achieve consistent microstructural quality in ASTM A36 components.
References
[1] ASTM International (2013): Standard specification for tool steels alloy. – ASTM International, West Conshohocken, Pennsylvania, USA 14p.
[2] Attar, H., Calin, M., Zhang, L.C., Scudino, S., Eckert, J. (2014): Manufacture by selective laser melting and mechanical behavior of commercially pure titanium. – Materials Science and Engineering: A 593: 170-177.
[3] Callister Jr., W.D. (2003): Materials science and engineering: An introduction. – John Wiley & Sons, Inc., New York 820p.
[4] Cho, S.M., Thomas, B.G. (2019): Modeling of transient behavior of top-surface slag/molten steel interface in continuous slab casting. – Proceedings of the 8th International Conference on Modeling and Simulation of Metallurgical Processes in Steelmaking (STEELSIM 2019) 13p.
[5] Du, Q., Eskin, D.G., Jacot, A., Katgerman, L. (2007): Two-dimensional modelling and experimental study on microsegregation during solidification of an Al-Cu binary alloy. – Acta Materialia 55(5): 1523-1532.
[6] Flemings, M.C. (1974): Solidification processing. – McGraw-Hill, New York 364p.
[7] Gan, Z., Liu, H., Li, S., He, X., Yu, G. (2017): Modeling of thermal behavior and mass transport in multi-layer laser additive manufacturing of Ni-based alloy on cast iron. – International Journal of Heat and Mass Transfer 111: 709-722.
[8] Hunt, J.D. (1984): Steady state columnar and equiaxed growth of dendrites and eutectic. – Materials Science and Engineering 65(1): 75-83.
[9] Jin, Z., Jia, L., Wang, W., Liu, Y., Qi, Y., Zhang, H. (2023): Effect of cooling rate on microstructure and properties of SiCₚ/A359 composites. – Materials & Design 234: 12p.
[10] Kaufman, J.G., Rooy, E.L. (2004): Aluminum casting alloys. – In: Aluminum Alloy Castings: Properties, Processes, and Applications. ASM International 14p.
[11] Nastac, L. (2004): Modeling and simulation of microstructure evolution in solidifying alloys. – Springer, New York 289p.
[12] Pan, M., Dai, Y., Si, X., Man, T., Liu, Y., Dong, H. (2025): High-temperature tensile properties in the curved continuous casting of M2 high-speed steel. – Metals 15(11): 12p.
[13] Pequet, C., Rappaz, M., Gremaud, M. (2002): Modeling of microporosity, macroporosity, and pipe-shrinkage formation during the solidification of alloys using a mushy-zone refinement method: Applications to aluminum alloys. – Metallurgical and Materials Transactions A 33(7): 2095-2106.
[14] Santamaría, J.A., Sertucha, J., Redondo, A., Lizarralde, I., de Zabalegui, E.O., Rodríguez, P. (2022): Towards the prediction of tensile properties in automotive cast parts manufactured by LPDC with the A356.2 alloy. – Metals 12(4): 19p.
[15] Shafeek, M., Suranjan, S., Doreswamy, D., Sachidananda, H.K. (2024): Effect of welding parameters on microstructure and mechanical properties of GMAW welded S275 steel welded zone. – Discover Materials 4(1): 22p.
[16] Sigli, C., Maenner, L., Sztur, C., Shahani, R. (1998): Phase diagram, solidification and heat treatment of aluminum alloys. – Proceedings of the 6th International Conference on Aluminium Alloys 12p.
[17] Stanek, J., Mairinger, S., Wanek, T., Kuntner, C., Müller, M., Langer, O. (2015): Automated radiosynthesis of [18F]ciprofloxacin. – Applied Radiation and Isotopes 99: 133-137.
[18] Stefanescu, D.M., Ruxanda, R. (2004): Solidification structures of aluminum alloys. – In: Metallography and Microstructures, ASM Handbook 9: 107-115.
[19] Sun, Y.L., Obasi, G., Hamelin, C.J., Vasileiou, A.N., Flint, T.F., Balakrishnan, J., Smith, M.C., Francis, J.A. (2019): Effects of dilution on alloy content and microstructure in multi-pass steel welds. – Journal of Materials Processing Technology 265: 71-86.
[20] Sutaria, M., Gada, V.H., Sharma, A., Ravi, B. (2012): Computation of feed-paths for casting solidification using level-set-method. – Journal of Materials Processing Technology 212(6): 1236-1249.
[21] Trivedi, R., Kurz, W. (1986): Theory of microstructural development during rapid solidification. – In: Science and Technology of the Undercooled Melt: Rapid Solidification Materials and Technologies 7p.
[22] Wang, C.Y., Beckermann, C. (1994): Prediction of columnar to equiaxed transition during diffusion-controlled dendritic alloy solidification. – Metallurgical and Materials Transactions A 25(5): 1081-1093.
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