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2026 Subroto AA7050 DC Casting Model

TUNGKY SUBROTO, ALEXIS MIROUX

2026enaluminum alloysDC castinghot tearingcold crackingnumerical simulationautomotive applications

Abstract

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Numerical process simulation is increasingly used to optimize direct-chill (DC) casting of aluminum alloys, yet crack-susceptibility predictions depend critically on the constitutive–property databases employed. This study presents a sensitivity analysis of the ALSIM DC casting model with respect to material database selection, using AA7050 billet casting as a benchmark. Three casting scenarios—hot tearing, cold cracking, and healthy billets—were simulated using five databases spanning semi-solid and fully-solid regimes. The results show that the fully-solid database dominates the first principal-stress field, which governs the critical crack size used as the cold cracking susceptibility indicator, while the semi-solid database has limited effect on the integrated critical strain used as the hot tearing indicator. This insensitivity arises because accumulated strain in DC casting is governed primarily by process conditions rather than material properties, revealing a fundamental limitation of strain-based hot tearing criteria for alloy-to-alloy comparison. To address this limitation, an improved version of reserve strain value concept is discussed as a complementary, material-sensitive hot tearing indicator that may support future development of coupled hot tearing-cold cracking assessment methods. Practical recommendations for industrial database development are provided.

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Cite This Work

@article{ca8eff85-9c19-4c2b-bb5f-1d1ce4464e42,
  title={2026 Subroto AA7050 DC Casting Model},
  author={TUNGKY SUBROTO and ALEXIS MIROUX},
  year={2026},
  language={en}
}
TY  - JOUR
TI  - 2026 Subroto AA7050 DC Casting Model
AU  - TUNGKY SUBROTO
AU  - ALEXIS MIROUX
PY  - 2026
LA  - en
ER  -

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