Effect of die orientation on the mechanical and physical properties of 356 aluminium alloy castings produced by gravity die casting

Authors

  • Saleh Suliman Saleh El Fallah College of Mechanical Engineering Technology, Benghazi, Libya
  • Mohd Radzi Mohamed Yunus Faculty of Mechanical and Manufacturing Engineering, Universiti Tun Hussein Onn Malaysia, Parit Raja 86400, Malaysia , Tun Hussein Onn University of Malaysia image/svg+xml

DOI:

https://doi.org/10.15282/ijame.23.2.2026.7.1026

Keywords:

Aluminium casting, GDC, Mechanical properties, Mild steel die, Porosity

Abstract

Al–Si–Mg alloys are widely used in automotive and aerospace applications due to their excellent castability and mechanical properties. Gravity die casting (GDC) is commonly employed to manufacture such components. While AISI H13 tool steel is typically preferred for GDC dies, mild steel dies may be used for low-volume production because of their lower cost and ease of fabrication. However, mild steel dies generally exhibit limited-service life due to lower hardness, reduced wear resistance, and poor thermal fatigue resistance. Therefore, optimisation of casting parameters is necessary to improve casting quality. This study evaluates the influence of die orientation and pouring temperature on the mechanical, physical, microhardness, and porosity characteristics of aluminium (Al) alloy 356 castings produced using an ASTM A36 mild steel gravity die. The casting process was conducted at different pouring temperatures using vertically oriented casting (VOC) and horizontally oriented casting (HOC) configurations. The resulting castings were evaluated through impact testing, microhardness measurements, and porosity analysis, including apparent porosity (AP) and bulk porosity (BP). Results show that VOC at a pouring temperature of 900 °C improved impact toughness by 59.3% (average 16 kJ/m2) compared with HOC, while reducing surface microhardness by 2.4% (82.7 HV). Additionally, VOC significantly reduced BP by 91.9% and AP by 69.5%. Compared with castings produced at 800 °C, VOC at 900 °C increased impact toughness by 34.3% and reduced BP by 75.15%. Overall, vertically oriented casting using mild steel dies significantly improves impact toughness and reduces porosity in 356 Al alloy castings.

References

[1] V.K. Lagisetti, C. Sukjamsri, “Machinability study on AA6061/2 SiC/graphite hybrid nanocomposites fabricated through ultrasonic-assisted stir casting,” International Journal of Automotive and Mechanical Engineering, vol. 19, pp. 9950-9963, 2022. https://doi.org/10.15282/IJAME.19.3.2022.07.0767

[2] S.C. Tham, M.K. Sued, M.S. Salleh, N.I. Hussein, A. S. Anuar, M. M. Abdulatef, et al., “Cooling slope-cast LM25 aluminum fabrication for additive friction stir deposition: A microstructural and mechanical study,” International Journal of Automotive and Mechanical Engineering, vol. 22, pp. 13002-13018, 2025. https://doi.org/10.15282/IJAME.22.4.2025.12.0989

[3] A. Patarić, M. Djurdjevic, S. Manasijevic, S. Stopic, M. Mihailović, “The role of silicon during solidification process of cast Al-Si-Mg alloys,” Materials, vol. 18, no. 21, p. 5033, 2025. https://doi.org/10.3390/ma18215033

[4] Q. Cai, C. L. Mendis, I. T. Chang, Z. Fan, “Microstructure evolution and mechanical properties of new die-cast Al–Si–Mg–Mn alloys,” Materials & Design, vol. 187, p. 108394, 2020.

[5] H. J. Kang, H. S. Jang, S. H. Oh, P. H. Yoon, G. H. Lee, et al., “Effects of solution treatment temperature and time on the porosities and mechanical properties of vacuum die-casted and T6 heat-treated Al–Si–Mg alloy,” Vacuum, vol. 193, p. 110536, 2021. https://doi.org/10.1016/J.VACUUM.2021.110536

[6] L. Gao, Q. Wang, Q. Yang, W. Liu, B. Jiang, Y. Qin, et al., “Research on the mechanical properties and microstructural evolution of Al-Si alloy for automotive rear floors based on simulation-assisted casting,” Materials, vol. 18, p. 2143, 2025. https://doi.org/10.3390/MA18092143/S1

[7] S. Zhao, L. Li, C. Li, Q. Han, L. Chen, L. Zuo, et al., “Influence of mg on microstructure and mechanical properties in al-mg-si alloy by gravity die casting,” in International Conference on Mechanical Manufacturing Technology and Material Engineering, Singapore, 2024, pp. 455-461.

[8] F. M. M. Monteiro, “Development of the low pressure die casting and gravity sand casting processes for an Al steering knuckle,” M.S. Thesis, University of Porto, Portugal, 2024.

[9] Z. Huda, “Die-casting processes,” in Metal Casting Engineering: Design, Processes, Calculations, Switzerland: Springer Nature, 2025, pp. 199-218.

[10] M. Ceschini, G. Morri, F. Rotundo, and A. Toschi, “Heat treatment analysis and mechanical characterization of a recycled gravity die cast EN 42000 alloy,” Metals, vol. 15, no. 7, p. 726, 2025. https://doi.org/10.3390/MET15070726

[11] V. Deev, E. Prusov, E. Ri, O. Prihodko, S. Smetanyuk, X. Chen, et al., “Effect of melt overheating on structure and mechanical properties of Al–Mg–Si cast alloy,” Metals, vol. 11, no. 9, p. 1353, 2021.

[12] M. C. Mehta, D. Mandal, S. K. Chaudhury, “Microstructural changes and quality improvement of Al7Si0.2Mg (356) alloy by die vibration,” International Journal of Metalcasting, vol. 14, no. 4, pp. 987–998, 2020. https://doi.org/10.1007/S40962-020-00408-3

[13] H. W. Doty, E. Samuel, A. M. Samuel, V. Songmene, F. H. Samuel, “Effect of melt treatment and heat treatment on the performance of aluminium cylinder heads,” Materials, vol. 18, no. 5, p. 1024, 2025. https://doi.org/10.3390/MA18051024

[14] A. Samuel,Y. Zedan, H. Doty, V. Songmene, F. H. Samuel, “A review study on the main sources of porosity in Al‐Si cast alloys,” Advances in Materials Science and Engineering, vol. 2021, pp. 1921603, 2021.

[15] A. Akhyar, P. T. Iswanto, V. Malau, “Impact of pouring temperature on the mechanical properties of Al5.9Cu1.9Mg alloy,” Archives of Materials Science and Engineering, vol. 113, no. 2, pp. 49–55, 2022. https://doi.org/10.5604/01.3001.0015.7016

[16] M. Syahid, L. H. Arma, H. Arsyad, Z. A. Suwardi, “Effect of pouring temperature on mechanical properties and microstructures of Al matrix composite strengthened by CNT with stir casting method,” Materials Science Forum, vol. 988, pp. 30–35, 2020. https://doi.org/10.4028/www.scientific.net/msf.988.30

[17] C. Rajaravi, B. Gobalakrishnan, P. R. Lakshminarayanan, “Effect of pouring temperature on cast Al/SiCp and Al/TiB₂ metal matrix composites,” Journal of the Mechanical Behavior of Materials, vol. 28, no. 1, pp. 162–168, 2019. https://doi.org/10.1515/jmbm-2019-0018

[18] M. Patel, S. K. Sahu, M. K. Singh, “Mechanical, tribological and corrosion behaviour of aluminium alloys and particulate reinforced aluminium or aluminium alloy metal matrix composites-A review,” i-Manager's Journal on Materials Science, vol. 8, no. 2, p. 40, 2020. https://doi.org/10.5281/zenodo.5735521

[19] K. A. Gül, H. Sahin, and D. Dispinar, “Assessment of mechanical behaviors of sand cast Al-Mg7-Cu2 aluminum alloy in tilt and vertical gravity casting conditions,” Archives of Foundry Engineering, vol. 25, pp. 169-79, 2025. https://doi.org/10.24425/afe.2025.153787

[20] D. Du, J. An, A. Dong, B. Sun, “A review of the progress and challenges of counter-gravity casting,” Journal of Materials Science & Technology, vol. 1, pp. 1-26, 2025. https://doi.org/10.1016/j.jmst.2024.07.037

[21] ASTM A36/A36M-19, Standard Specification for Carbon Structural Steel, ASTM International, West Conshohocken, PA, USA, 2019.

[22] ASTM B108/B108M, Standard Specification for Aluminium-Alloy Permanent Mold Castings, ASTM International, West Conshohocken, PA, USA, 2025.

[23] R. Bahador, N. Hosseinabadi, A. Yaghtin, “Microstructural and mechanical characterizations of stir cast aluminium 356–Nb₂O₅ composite,” Advanced Composites and Hybrid Materials, vol. 3, no. 4, pp. 594–608, 2020. https://doi.org/10.1007/s42114-020-00173-1

[24] J. Campbell, Complete casting handbook, 2nd ed. Oxford, U.K.: Butterworth-Heinemann, 2015.

[25] V. Kumar, J. Madan, P. Gupta, “A system for design of multiposition die casting dies from part product model,” The International Journal of Advanced Manufacturing Technology, vol. 67, pp. 2083–2107, 2013. https://doi.org/10.1007/s00170-012-4633-y

[26] H. Pratikno, A. H. Baredwan, W. L. Dhanista, “Effect of preheating process and V groove type on the tensile and metallography test of ASTM A53 with A36 weld joint using FCAW method,” International Journal of Offshore and Coastal Engineering, vol. 6, no. 2, pp. 40–45, 2021.

[27] M. Neuser, O. Grydin, Y. Frolov, M. Schaper, “Influence of solidification rates and heat treatment on the mechanical performance and joinability of the cast aluminium alloy AlSi10Mg,” Production Engineering, vol. 16, no. 2, pp. 193-202, 2022. https://doi.org/10.1007/s11740-022-01106-1

[28] A. M. Samuel, E. Samuel, V. Songmene, F. H. Samuel, “A review on porosity formation in aluminum-based alloys,” Materials, vol. 16, no. 5, p. 2047, 2023. https://doi.org/10.3390/ma16052047

[29] AWS D1.1/D1.1M:2015, Structural welding code – steel, American Welding Society, Miami, FL, USA, 2015.

[30] D. Alvaro-Berlanga, R. Planet, A. Fernández-Nieves, “Torricelli’s experiment and conservation of momentum,” American Journal of Physics, vol. 92, no. 7, pp. 493–497, 2024. https://doi.org/10.1119/5.0145991

[31] P. Futas, A. Pribulova, V. Sabik, J. Petrik, P. Blasko, M. Brzeziński, “Elimination of shrinkage in ductile iron castings using computer simulation of casting and solidification,” Processes, vol. 12, no. 3, p. 506, 2024. https://doi.org/10.3390/pr12030506

[32] M. Durmuş, D. Dispinar, M. Gavgali, E. Uslu, M. Çolak, “Evaluation of Fe content on the fluidity of 356 Al alloy by new fluidity index,” International Journal of Metalcasting, vol. 19, no. 3, pp. 1590–1604, 2025. https://doi.org/10.1007/s40962-024-01396-4

[33] G. W. Stachowiak, A. W. Batchelor, Engineering tribology, 4th ed. Oxford: Butterworth-Heinemann, 2014.

[34] B. Jiang et al., “Study on the influence of injection velocity on the evolution of hole defects in die-cast aluminum alloy,” Materials, vol. 17, no. 20, p. 4990, 2024. https://doi.org/10.3390/ma17204990

[35] C. Thongyothee and S. Chareonvilisiri, “The effect of gas venting on the mechanical properties of C95800 aluminum bronze castings,” Engineering, Technology & Applied Science Research, vol. 15, no. 4, pp. 25068–25075, 2025. https://doi.org/10.48084/etasr.10993

[36] Y. Xiao, C. Xiao, D. Chang, Y. Ji, B. Wang, F. Li, et al., “Time-varying disturbances of temperature field in investment casting and corresponding shrinkage defects control methods,” Journal of Materials Research and Technology, vol. 35, pp. 5147-5159, 2025. https://doi.org/10.1016/j.jmrt.2025.02.164

[37] S. Chakravart and S. Sen, “An investigation on the solidification and porosity prediction in Al casting process,” Journal of Engineering and Applied Science, vol. 70, no. 21, 2023. https://doi.org/10.1186/s44147-023-00190-z

[38] M. T. Di Giovanni, J. T. de Menezes, E. Cerri, E. M. Castrodeza, “Influence of microstructure and porosity on the fracture toughness of Al–Si–Mg alloy,” Journal of Materials Research and Technology, vol. 9, no. 2, pp. 1286–1295, 2020. https://doi.org/10.1016/j.jmrt.2019.11.055

[39] W. Li, A. Amanov, K. M. Nagaraja, B. Li, B. B. Ravichander, R. Zhang, et al., “Processing aluminium alloy with hybrid wire arc additive manufacturing and ultrasonic nanocrystalline surface modification to improve porosity, surface finish, and hardness,” Journal of Manufacturing Processes, vol. 103, pp. 181–192, 2023. https://doi.org/10.1016/j.jmapro.2023.08.047

[40] H. Xie, Y. Li, J. Song, L. Qin, H. Hu, C. Li, et al., “Mechanism of pore-induced damage evolution and failure in high pressure die casting Ae81 magnesium alloy: An in-situ sem and micro-Ct study, “ Journal of Alloys and Compounds, vol. 1030, p. 180903, 2025. https://doi.org/10.1016/j.jallcom.2025.180790

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Published

2026-06-26

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How to Cite

[1]
S. S. Saleh El Fallah and M. R. Mohamed Yunus, “Effect of die orientation on the mechanical and physical properties of 356 aluminium alloy castings produced by gravity die casting”, Int. J. Automot. Mech. Eng., vol. 23, no. 2, pp. 13554–13567, Jun. 2026, doi: 10.15282/ijame.23.2.2026.7.1026.

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