Effects of Phosphorus Treatment on Cooling Behavior, Heat Transfer, Microstructure, and Mechanical Properties of Hypereutectic Al-23%Si Alloy
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Date
2025
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Springer
Abstract
The influence of phosphorus (P) treatment on the microstructure, cooling behavior, interfacial heat flux, and mechanical properties of hypereutectic Al-23 Si alloy is investigated in the present work. Computer-aided cooling curve analysis revealed that higher cooling rates suppressed silicon cluster agglomeration and promoted nucleation of primary silicon at lower undercooling. The addition of P increased the nucleation temperature of primary silicon and resulted in finer silicon crystals. Eutectic silicon nucleation was facilitated by P treatment, with refined primary silicon acting as nucleation sites. Interfacial heat flux analysis demonstrated that P addition decreased the heat flux, attributed to the presence of less conductive primary silicon, and unmodified eutectic silicon microstructure. Microstructural analysis revealed the refinement of primary silicon and transformation of its morphology to polyhedral shape with P treatment. Heat treatment improved tensile properties, with refined primary silicon and copper precipitation contributing to enhanced strength. The morphology and composition of copper intermetallic varied with P and Cu content, influencing mechanical properties. These findings provide insights into optimizing alloy compositions and processing conditions for hypereutectic Al-Si alloys in various industrial applications. © ASM International 2023.
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Keywords
Aluminum alloys, Computer aided analysis, Cooling, Copper alloys, Crystallization, Eutectics, Heat flux, Hypereutectic alloys, Microstructure, Morphology, Phase diagrams, Silicon alloys, Solidification, Al-23 si alloy, Chilling, Cu-8p master alloy, Eutectic silicon, Hypereutectics, Interfacial heat flux, Master alloys, Primary silicon, Refinement, Si alloys, Nucleation
Citation
Journal of Materials Engineering and Performance, 2025, 34, 1, pp. 794-804
