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Verified CAS / Academic Author3 Decoded Studies

Prof. Fu-sheng PAN

International Joint Laboratory for Light Alloys (MOE), College of Materials Science and Engineering, Chongqing University, Chongqing 400044, China

Co-Affiliations:School of Materials and Energy, Southwest University, Chongqing 400715, ChinaChongqing University

Research Publications & English Decoded Briefs

Showing 3 publications
Transactions of Nonferrous Metals Society of China (中国有色金属学报)2026DOI: 10.1016/S1003-6326(26)67057-4

Effect of Ca content on mechanical properties and ignition resistance of Mg−Zn−Zr−Ca alloys

The ignition vulnerability of magnesium alloys restricts their deployment in high-temperature aerospace and railway applications. This study investigates the influence of calcium content (0, 0.6, 1.2, 1.8 wt.%) on the microstructure, mechanical properties, and ignition resistance of gravity-cast and hot-extruded Mg−6Zn−0.6Zr alloys. Calcium addition promotes the formation of Ca2Mg6Zn3 phases while suppressing MgZn2 precipitation in the as-cast condition. Homogenization dissolves most MgZn2 phases but retains numerous Ca2Mg6Zn3 particles. Subsequent extrusion fragments the Ca2Mg6Zn3 phases and precipitates nanoscale MgZn2 within the matrix. The synergy of fine grains and high-density precipitates substantially enhances strength. The Mg−6Zn−0.6Zr−1.2Ca alloy achieves optimal mechanical performance, with ultimate tensile strength of 380.1 MPa, yield strength of 360.1 MPa, and elongation of 10.4%. The ignition point increases from 556 °C for the Ca-free alloy to 824 °C for the 1.8 wt.% Ca alloy, attributed to the formation of a dense CaO−MgO oxide layer. These findings demonstrate that calcium alloying offers a cost-effective, rare-earth-free pathway to simultaneously improve mechanical integrity and ignition resistance in magnesium alloys.

Transactions of Nonferrous Metals Society of China (中国有色金属学报)2025DOI: 10.1016/S1003-6326(25)66953-6

Influence of interface shape on microstructure and mechanical properties of Mg/Al composite plates fabricated by hot-pressing

A new method was proposed for preparing AZ31/1060 composite plates with a corrugated interface, which involved cold-pressing a corrugated surface on the Al plate and then hot-pressing the assembled Mg/Al plate. The results show that cold-pressing produces intense plastic deformation near the corrugated surface of the Al plate, which promotes dynamic recrystallization of the Al substrate near the interface during the subsequent hot-pressing. In addition, the initial corrugation on the surface of the Al plate also changes the local stress state near the interface during hot pressing, which has a large effect on the texture components of the substrates near the corrugated interface. The construction of the corrugated interface can greatly enhance the shear strength by 2−4 times due to the increased contact area and the strong “mechanical gearing” effect. Moreover, the mechanical properties are largely depended on the orientation relationship between corrugated direction and loading direction.

Transactions of Nonferrous Metals Society of China (中国有色金属学报)2025DOI: 10.1016/S1003-6326(25)66951-2

3D morphological characteristics of shrinkage porosities and their relationship with microstructures in Mg−12Al magnesium alloy

The dependence of shrinkage porosities on microstructure characteristics of Mg−12Al alloy was investigated. The distribution, morphology, size, and number density of shrinkage porosities were analyzed under different cooling rates. The relationship between shrinkage porosities and microstructure characteristics was discussed in terms of temperature conditions, feeding channel characteristics, and feeding capacity. Further, the feeding behavior of the residual liquid phase in the solid skeleton was quantified by introducing permeability. Results show a strong correlation between the solid microstructure skeleton and shrinkage porosity characteristics. An increase in permeability corresponds to a declining number density of shrinkage porosities. This study aims to provide a more complete understanding how to reduce shrinkage porosities by controlling microstructure characteristics.