School of Engineering, University of Basilicata, Potenza, Italy.
Department of Biomechanical Engineering, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology (TU Delft),Mekelweg 2, Delft 2628CD, The Netherlands; Additive Manufacturing Lab, Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology (TU Delft), Mekelweg 2, Delft 2628CD, The Netherlands.
J Mech Behav Biomed Mater. 2017 May;69:327-341. doi: 10.1016/j.jmbbm.2017.01.010. Epub 2017 Jan 11.
A custom-designed micro-digital image correlation system was used to track the evolution of the full-surface three-dimensional strain field of Ti6Al4V additively manufactured lattice samples under mechanical loading. The high-magnification capabilities of the method allowed to resolve the strain distribution down to the strut level and disclosed a highly heterogeneous mechanical response of the lattice structure with local strain concentrations well above the nominal global strain level. In particular, we quantified that strain heterogeneity appears at a very early stage of the deformation process and increases with load, showing a strain accumulation pattern with a clear correlation to the later onset of the fracture. The obtained results suggest that the unique opportunities offered by the proposed experimental method, in conjunction with analytical and computational models, could serve to provide novel important information for the rational design of additively manufactured porous biomaterials.
一个定制设计的微数字图像相关系统被用于跟踪 Ti6Al4V 增材制造晶格样品在机械加载下的全表面三维应变场的演化。该方法的高放大倍率能力允许将应变分布分辨率降低到杆的水平,并揭示了晶格结构的高度非均匀机械响应,局部应变集中远远超过名义的全局应变水平。特别是,我们量化了这种应变异质性在变形过程的早期阶段就出现了,并随着载荷的增加而增加,表现出一种与断裂后期明显相关的应变积累模式。所得结果表明,所提出的实验方法与分析和计算模型相结合所提供的独特机会,可以为增材制造多孔生物材料的合理设计提供新的重要信息。