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March 12, 2026International Journal of Metalcasting0 citationsOpen Access

Solidification Time Effects on Microstructure and Tensile Properties of Heavy-Section Ductile Iron Castings Beyond Standard Limits (Up to 1000 mm)

GEGianluca Di EgidioPFP. FerroGBG. Bertuzzi

Key Points

  • Examine how solidification time and casting position impact the microstructure and tensile properties of heavy-section ductile iron castings.
  • Analyzed solidification times ranging from 3 to 20 hours.
  • Compared specimens from different casting positions: central and transition zones.
  • Investigated microstructure and measured tensile properties of various cube sizes (350 mm, 700 mm, and 1000 mm).
  • Increased solidification time decreased yield strength by 11%, ultimate tensile strength by 27%, and elongation by 78%.
  • Transition zone samples of the 1000 mm cube showed a 27% decrease in elongation and an 11% decrease in ultimate tensile strength compared to thermal center samples of the 700 mm cube.
  • International standards may underestimate the mechanical properties of heavy-section ductile iron.

Abstract

Abstract The design of heavy-section ductile iron (HSDI) castings relies on international standards that limit the maximum wall thickness to 200 mm. This study investigates the influence of solidification time (3–20 h) and casting position (central zone vs. transition zone) on the microstructure and tensile properties of specimens extracted from cubes (side length of 350 mm, 700 mm, and 1000 mm) made of ferritic ductile iron (EN GJS 400-15). The results indicate a decrease in mechanical properties with increasing solidification time, specifically 11% for yield strength, 27% for ultimate tensile strength, and 78% for elongation, which is attributed to grain and nodule coarsening, solidification defects, and degenerate graphite. Regarding the casting position, at a fixed solidification time (10 h), the 1000 × 1000 × 1000 mm 3 cube transition zone samples show a coarser microstructure, leading to a 27% decrease in elongation and an 11% decrease in ultimate tensile strength compared to the 700 × 700 × 700 mm 3 cube thermal centre samples. However, the results also reveal that international standards tend to underestimate the actual mechanical properties of the material. To facilitate practical applications, empirical equations are proposed, enabling reliable prediction of strength properties of HSDI based on key microstructural parameters, independent of solidification time and casting position. Graphical Abstract

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Cite This Study

Egidio et al. (2026) studied this question.

synapsesocial.com/papers/69b25adb96eeacc4fcec8f2fhttps://doi.org/10.1007/s40962-026-01909-3
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