Žnidarič Žiga, Nečemer Branko, Novak Nejc, Glodež Srečko
Faculty of Mechanical Engineering, University of Maribor, Smetanova 17, 2000 Maribor, Slovenia.
Materials (Basel). 2024 Dec 16;17(24):6152. doi: 10.3390/ma17246152.
In the proposed study, the fatigue analysis of an axisymmetric chiral cellular structure and its modified form, made of stainless steel 316L, is carried out. The main goal of the original structure geometry was to absorb as much mechanical energy as possible with its auxetic behaviour. However, it was found through testing that its response could be improved by modifying the thickness of the struts through the structure. Representative models for the original and modified geometries were generated using a script adapted for this numerical simulation. Three different types of displacement in the shape of sine waves were used to load the structures. A hexagonal mesh was assigned and determined by convergence analysis. An existing material model with the necessary LCF parameters was assigned in the computational analyses. The data from multiple simulations were recorded and presented in graphs that showed how the fatigue life of the structures changed depending on the level of strain. We also analysed stresses and plastic deformations that occur in the structures. The results showed that, despite a better stress distribution, the fatigue life of the optimised structure was shorter in all cases.
在本拟议研究中,对由316L不锈钢制成的轴对称手性多孔结构及其改进形式进行了疲劳分析。原始结构几何形状的主要目标是通过其负泊松比行为吸收尽可能多的机械能。然而,通过测试发现,通过改变结构中支柱的厚度可以改善其响应。使用为此数值模拟改编的脚本生成了原始几何形状和改进几何形状的代表性模型。使用三种不同类型的正弦波形状位移对结构进行加载。通过收敛分析分配并确定了六边形网格。在计算分析中分配了具有必要低周疲劳参数的现有材料模型。记录了多次模拟的数据,并以图表形式呈现,这些图表显示了结构的疲劳寿命如何根据应变水平而变化。我们还分析了结构中出现的应力和塑性变形。结果表明,尽管应力分布更好,但在所有情况下,优化结构的疲劳寿命都较短。