Xi'an University of Technology, Xi'an, Shaanxi, 710048, PR China.
State Key Laboratory of Solidification Processing, Northwestern Polytechnical University, Xi'an, Shaanxi, 710072, PR China.
J Mech Behav Biomed Mater. 2020 Jan;101:103424. doi: 10.1016/j.jmbbm.2019.103424. Epub 2019 Sep 7.
Lamellar pores have superior biocompatibility due to their similarity to the lamellar structure of natural bones. In the present work, porous Ti6Al4V alloys with lamellar pores were successfully fabricated by directionally freeze casting. The lamellar structure/processing relationships were systematically studied through analyzing the interaction between ice front and alloy powders. The structural feature of translamella bridges is observed in the lamellar structure. The volume shrinkage of porous Ti6Al4V alloys is in the range of 44-60%. This is much higher compared with that of the porous ceramics. The solid content in the slurry exerts a strong influence on the porosity, while the freezing ice front velocity affects the structural wavelength and pore width. With the increase in ice front velocity, the structural wavelength decreases by an exponential function. The lamella formation mechanism and porosity gradient along the freezing direction were discussed. Young's modulus and yield stress of porous Ti6Al4V alloys fall in the range of 2-12 GPa and 40-300 MPa, respectively. The dominant compressive deformation mode is lamella buckling and splitting. The fabricated porous Ti6Al4V alloys possess higher relative yield stress.
层状孔隙由于其与天然骨的层状结构相似,具有优异的生物相容性。在本工作中,通过定向冷冻铸造成功制备了具有层状孔隙的多孔 Ti6Al4V 合金。通过分析冰前沿与合金粉末的相互作用,系统地研究了层状结构/加工关系。在层状结构中观察到了穿晶桥的结构特征。多孔 Ti6Al4V 合金的体积收缩率在 44-60%范围内。与多孔陶瓷相比,这要高得多。浆料中的固相含量对孔隙率有很强的影响,而冷冻冰前沿速度影响结构波长和孔径。随着冰前沿速度的增加,结构波长呈指数函数减小。讨论了沿冷冻方向的层片形成机制和孔隙率梯度。多孔 Ti6Al4V 合金的杨氏模量和屈服应力分别在 2-12 GPa 和 40-300 MPa 范围内。主要的压缩变形模式是层片弯曲和分裂。所制备的多孔 Ti6Al4V 合金具有更高的相对屈服应力。