近期论文 |
[1] Yang Y Y, Ma C L*, Wang Q L, Xie Z W, Zhu R J, Zhang Z Z, Gu J D, Wu M P. Laser powder bed fusion additive manufacturing of Ti-coated diamond/(CoCrNi)82Al9Ti9 composites: Process optimization, microstructure features and wear resistance. International Journal of Refractory Metals and Hard Materials, 2025, 128: 107047. [2] Xie Z W, Ma C L*, Liu Y, Li D Y, Dai D H, Wang Q L, Xu X L, Wu M P. Role of Ti-6Al-4V addition in modulating crack sensitivity, solidification microstructure and mechanical properties of laser powder bed fused γ-TiAl alloys. Vacuum, 2025, 231: 113758. [3] Ma C L*, Zhuo Z, Xie Z W, Wang Q L, Wu M P. Effect of scanning strategy on the thermo-structural coupling field and cracking behavior during laser powder bed fusion of Ti48Al2Cr2Nb alloys. Materials Today Communications, 2024, 41: 110372. [4] Peng X, Ma C L*, Yuan L H, Dai D H, Zhu D H, Wu M P. Understanding the role of laser processing parameters and position-dependent heterogeneous elastocaloric effect in laser powder bed fused NiTi thin-walled structures. Smart Materials and Structures, 2024, 33: 045003. [5] Ma C L*, Peng X, Zhu D H, Dai D H*, Yuan L H, Ma S, Fang Z Y, *Wu M P. Laser additive manufactured NiTi-based bioinspired helicoidal structure with excellent superelasticity and energy absorption capacity. Journal of Manufacturing Processes, 2023, 108: 610-623. [6] Zhuo Z#, Fang Z Y#, Ma C L*, Xie Z W, Peng X, Wang Q L, Miao X J, *Wu M P. Influence of LaB6 inoculant on the thermodynamics within the molten pool and subsequent microstructure development and cracking behavior of laser powder bed fused TiAl-based alloys. Journal of Materials Research and Technology, 2023, 27: 2363-2381. [7] Peng X, Yuan L H, Dai D H, Liu Y, Li D Y, Zhu D H, Fang Z Y, Ma C L*, Gu D D*, Wu M P*. A new class of additive manufactured NiTi-based hierarchically graded chiral structure with low-force compressive actuation for elastocaloric heat pumps. Chinese Journal of Mechanical Engineering: Additive Manufacturing Frontiers, 2023, 100077. [8] Luo W H, Fang Z Y, Ma C L*, Wu M P*, Zhuo Z. Ball-milling treatment of Nb and B nanoparticles modified TiAl4822 composite powder and its effect on powder bed quality and powder spreadability in additive manufacturing. Advanced Engineering Materials, 2023 2200846. [9] Ma C L*, Ge Q, Yuan L H, Gu D D*, Dai D H, Setchi R, Wu M P, Liu Y, Li D Y, Ma S, Peng X, Fang Z Y. The development of laser powder bed fused nano-TiC/NiTi superelastic composites with hierarchically heterogeneous microstructure and considerable tensile recoverable strain. Composites Part B: Engineering, 2023, 250: 110457. [10] Ma C L*, Gu D D, Setchi R, Dai D H, Wu M P, Ma S. A large compressive recoverable strain induced by heterogeneous microstructure in a Ni50.6Ti49.4 shape memory alloy via laser powder bed fusion and subsequent aging treatment. Journal of Alloys and Compounds, 2022, 918: 165620. [11] Ma C L*, Wu M P, Dai D H, Xia M J. Stress-induced heterogeneous transformation and recoverable behavior of laser powder bed fused Ni-rich Ni50.6Ti49.4 alloys without post treatment. Journal of Alloys and Compounds, 2022, 905: 164212. [12] Gao J, Gu D D*, Ma C L, Dai D H, Xi L X, Lin K J, Gao T, Zhu J H, Du Y X. Formation Process and Mechanical Deformation Behavior of a Novel Laser-Printed Compression-Induced Twisting-Compliant Mechanism. Engineering, 2022, 15: 133-142. [13] Gu D D*, Ma C L, Dai D H, Yang J K, Zhang H M, Zhang H. Additively Manufacturing Enabled Hierarchical NiTi-based Shape Memory Alloys with High Strength and Toughness. Virtual and Physical Prototyping, 2021, 16: S19-S38.
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