Brugo Tommaso Maria, Campione Ivo, Minak Giangiacomo
Department of Industrial Engineering (DIN), Alma Mater Studiorum-Università di Bologna, Viale Del Risorgimento 2, 40136 Bologna, Italy.
Department of Industrial Engineering (DIN), Alma Mater Studiorum-Università di Bologna, Via Fontanelle 40, 47121 Forlì, Italy.
Materials (Basel). 2021 Feb 26;14(5):1084. doi: 10.3390/ma14051084.
In this work, the fracture mechanics properties of polyamide (PA) specimens manufactured by the selective laser sintering (SLS) technology are investigated, in which an embedded crack-like notch was inserted in the design and produced during the additive manufacturing (AM) phase. To cover a wide variety of mode I/II mixity levels, the inclined asymmetrical semicircular specimen subjected to three points loading (IASCB) was employed. The investigation was carried out by analyzing the full displacement field in the proximity of the crack tip by means of the digital image correlation (DIC) technique. To characterize the material, which exhibits a marked elastic-plastic behavior, the quantity J-integral was evaluated by two different methods: the first one exploits the full fields measured by the DIC, whereas the second one exploits the experimental load-displacement curves along with FEM analysis. The DIC methodology was experimentally validated and proposed as an alternative method to evaluate the J-integral. It is especially suited for conditions in which it is not possible to use the conventional LDC method due to complex and possibly unknown loading conditions. Furthermore, results showed that the AM technique could be used effectively to induce cracks in this type of material. These two aspects together can lead to both a simplification of the fracture characterization process and to the possibility of dealing with a wider number of practical, real-world scenarios. Indeed, because of the nature of the additive manufacturing process, AM crack-like notches can be sintered even having complex geometry, being three-dimensional and/or inside the tested structure.
在这项工作中,对采用选择性激光烧结(SLS)技术制造的聚酰胺(PA)试样的断裂力学性能进行了研究,其中在增材制造(AM)阶段的设计和生产过程中插入了一个嵌入式裂纹状缺口。为了涵盖各种I/II型混合水平,采用了承受三点加载的倾斜不对称半圆形试样(IASCB)。通过数字图像相关(DIC)技术分析裂纹尖端附近的全位移场来进行研究。为了表征表现出明显弹塑性行为的材料,通过两种不同方法评估了J积分:第一种方法利用DIC测量的全场数据,而第二种方法利用实验载荷-位移曲线以及有限元分析。DIC方法经过实验验证,并被提议作为评估J积分的替代方法。它特别适用于由于加载条件复杂且可能未知而无法使用传统LDC方法的情况。此外,结果表明增材制造技术可以有效地用于在这类材料中诱导裂纹。这两个方面共同作用,既能简化断裂表征过程,又能处理更多实际的现实场景。实际上,由于增材制造过程的性质,即使AM裂纹状缺口具有复杂几何形状、是三维的和/或位于测试结构内部,也可以进行烧结。