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◆ Journal of Materials Research and Technology2026-05-01· Materials science

Enhancing fatigue life of aluminum alloy castings through cavitation water jet peening: Experiments and simulations

Avik Samanta, Kranthi Balusu, Robert J. Seffens, Amrita Lall, Angel Ortiz, Ayoub Soulami, Saumyadeep Jana, Aashish Rohatgi

原始摘要(英文原文)· Original abstract
This study presents an investigation into the enhancement of the fatigue life of aluminum castings through the application of cavitation water-jet peening (CWJP). CWJP harnesses the impacts of water cavitation to induce surface compressive residual stress within metallic materials. In this work, CWJP was applied to a high pressure die-cast (HPDC) Al-Si alloy A380 with three different water-jet traverse velocities. The fatigue-life improvement, evaluated in a 4-point bending configuration (stress ratio R = 0.1), was found to vary with applied stress level and ranges from 1.6 to 10 times that of the parent alloy. The data also shows that decreasing the traverse velocity results in greater compressive residual stresses within the surface layer and a concurrent increase in surface roughness. This residual stress layer extends to a depth of 400 μm below the surface, as confirmed by through-thickness residual stress and microhardness measurements. CWJP treatment effectively retards fatigue crack propagation, as evidenced by microstructural observations of narrower striation spacing. Simulations reveal that compressive residual stresses, in addition to surface hardening during CWJP, are key to improving fatigue life. A 20% increase in surface hardness and 150 MPa compressive residual stress imposed by CWJP process provides an average 5-fold enhancement of fatigue life across different stress levels. This study demonstrates the potential of CWJP as an effective surface treatment to enhance the fatigue life of aluminum castings, such as HPDC components for automotive applications. • CWJP improves bending fatigue life at R = 0.1 for HPDC A380 by up to 10 times. • Induced compressive residual stresses penetrate as deep as 400 μm below the surface. • CWJP increases surface microhardness by 20% and roughness by 42%. • Enhanced fatigue life is due to stress reduction and slower crack propagation rate. • Fatigue cracks propagate transgranularly through Al-Si eutectic and Fe-Mn-rich phases.
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