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Rongji Tang

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Open access Aug 2026

Hot Deformation Behavior of AA3102 Aluminum Alloy: Constitutive Modeling, Microstructural Evolution and Numerical Simulation

This study systematically investigates the hot deformation behavior and microstructural evolution of AA3102 aluminum alloy through isothermal uniaxial compression tests conducted at 400–550 °C and strain rates of 0.01–10 s−1. Previous studies on 3xxx-series Al–Mn alloys have mainly considered temperature and strain-rate effects while neglecting strain-dependent material parameter variations, limiting prediction accuracy under large deformation and obscuring dynamic softening mechanisms. Here, the experimental flow stress data were corrected for interfacial friction and adiabatic temperature rise. A sixth-order strain-compensated Arrhenius constitutive model was then developed to describe the coupled effects of temperature, strain rate, and strain. Full-strain-range power dissipation and flow instability maps were constructed using the dynamic material model, while optical microscopy and DEFORM-3D simulations were employed to clarify microstructural evolution and deformation inhomogeneity. The model achieved a correlation coefficient of 0.9841 and an average absolute relative error of 3.67%, demonstrating high predictive accuracy. No flow instability was detected within the investigated range, indicating excellent hot formability. The favorable compression-processing window was identified as 500–550 °C and 0.1–1 s−1, while the peak power-dissipation efficiency increased from 30.55% at ε = 0.2 to 32.90% at ε = 0.8. Optical-microstructural observations suggest that increasing temperature and decreasing strain rate are associated with an increasing contribution of dynamic recrystallization relative to dynamic recovery. Finite-element results further reveal pronounced spatial variations in strain, temperature, strain rate, and stress during compression. These findings provide baseline constitutive and thermomechanical information for subsequent AA3102 hot-extrusion optimization.

Xian-Zheng Liu, N. Jamadon, Xiao-Ming Liu et al. · 0 citations
Review Open access Jul 2026

Process-aware spatial material design in laser powder bed fusion of multi-material structures: from material placement to service function

Laser powder bed fusion (LPBF) has opened a route to multi-material metallic components in which material composition, geometry and local function can be arranged within the same part. Most existing discussions emphasize whether dissimilar materials can be bonded successfully. This article shifts the focus from interface feasibility to process-aware spatial material design. The central question is not only how two materials can be joined, but how their locations, transition paths, local process windows and post-build reliability should be planned together. Multi-material LPBF is discussed as a design-to-manufacturing problem involving material-layout definition, thermal compatibility, powder delivery, local melt-pool control, data representation, simulation and service-oriented qualification. Particular attention is given to graded transitions, intralayer material placement, hybrid metal/polymer or metal/ceramic layouts, machine-learning-assisted parameter selection, powder cross-contamination and application-driven design in biomedical, energy, electronic and aerospace components. The review suggests that future work should move from isolated interface demonstrations toward validated design rules that link material distribution, local microstructure, defects and service performance.

Rongji Tang, Changkun Zhang, Zhenghui Wang et al. · 0 citations

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