Lan Tian, Fox Kate, Tran Phuong
School of Engineering, RMIT University, Melbourne VIC 3001, Australia.
Bioinspir Biomim. 2024 May 2;19(4). doi: 10.1088/1748-3190/ad3ff5.
This paper presents a novel approach for designing a freeform bending-resistant structure from the combination of explicit discrete component-based topology optimization (TO) and the porcupine quill-inspired features. To embed the porcupine quill's features into the TO formulations, the method involves constructing discrete components at various scales to imitate features including solid shell, stochastically distributed pores, and graded stiffeners. The components are iteratively updated, and the optimization process allows for the grading of quill-inspired features while achieving optimal structural compliance under bending loads. The proposed approach is demonstrated to be effective through the resolution of Messershmitt-Bolkow-Blohm (MBB) beam designs, parameterized studies of geometric parameters, and numerical validation of long-span and short-span quill-inspired beam designs. By examining the von Mises stress distribution, the study highlights the mitigation of material yielding at the shell region brought by the geometric features of porcupine quills, leading to the potential theory support for the bending resistance. The optimized MBB beams are manufactured using the material extrusion technique, and three-point bending tests are conducted to explore the failure mitigation capability of the quill-inspired beam under large deformation. Consequently, the study concludes that the proposed quill-inspired component-based TO approach can design a structure with excellent bending resistance according to the improved energy absorption as well as increased deformation after reaching 75% peak load.
本文提出了一种新颖的方法,通过将基于显式离散组件的拓扑优化(TO)与受豪猪刚毛启发的特征相结合,来设计一种自由形式的抗弯曲结构。为了将豪猪刚毛的特征嵌入到拓扑优化公式中,该方法涉及在不同尺度上构建离散组件,以模仿包括实心壳、随机分布的孔隙和渐变加强筋等特征。这些组件会进行迭代更新,并且优化过程允许对受刚毛启发的特征进行分级,同时在弯曲载荷下实现最佳的结构柔顺性。通过解决梅塞施密特 - 博尔科夫 - 布洛姆(MBB)梁设计、几何参数的参数化研究以及长跨度和短跨度受刚毛启发梁设计的数值验证,证明了所提出的方法是有效的。通过检查冯·米塞斯应力分布,该研究突出了豪猪刚毛的几何特征对壳区域材料屈服的缓解作用,从而为抗弯曲提供了潜在的理论支持。使用材料挤出技术制造优化后的MBB梁,并进行三点弯曲试验,以探索受刚毛启发的梁在大变形下的失效缓解能力。因此,该研究得出结论,所提出的受刚毛启发的基于组件的拓扑优化方法可以根据改进的能量吸收以及在达到75%峰值载荷后增加的变形,设计出具有出色抗弯曲性能的结构。