Li Hang, Liu Ruiyao, Wang Haijun, Xin Renlong, Xu Zhenbang, Yu Zhenglei
Key Laboratory of Engineering Bionics, Ministry of Education, Jilin University, Changchun 130022, China.
Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130022, China.
Materials (Basel). 2023 Jan 11;16(2):736. doi: 10.3390/ma16020736.
Owing to their high design freedom and excellent performance, lattice structures have shown outstanding capabilities and great potential in aeronautics and astronautics fields. In this paper, we propose a method to construct lattice structures by parameterizing biological features. An ant-leg configuration is used as the bionic object to generate a bionic lightweight design with a gradient lattice structure. To achieve the above goal, an innovative optimization method combining topology optimization, size optimization, and a bionic lattice structure is proposed in this paper. Taking the support structure of the Fengyun-3 satellite payload as the research object, this optimization method is applied to optimize the design. Further, the reconstructed optimization model and the original model are simulated to evaluate and compare the structural performance. The simulation results show that when combined with bionic lattice structure and structural optimization, the method can achieve the lightweight design goal while ensuring the stiffness and strength of the structure. The results demonstrate that the application of a bionic lattice design in a lightweight design has feasibility and expectable potential.
由于其高度的设计自由度和卓越的性能,晶格结构在航空航天领域展现出了出色的能力和巨大的潜力。在本文中,我们提出了一种通过对生物特征进行参数化来构建晶格结构的方法。将蚂蚁腿构型用作仿生对象,以生成具有梯度晶格结构的仿生轻量化设计。为实现上述目标,本文提出了一种结合拓扑优化、尺寸优化和仿生晶格结构的创新优化方法。以风云三号卫星有效载荷的支撑结构为研究对象,应用该优化方法进行设计优化。此外,对重构的优化模型和原始模型进行模拟,以评估和比较结构性能。模拟结果表明,该方法结合仿生晶格结构和结构优化,在确保结构刚度和强度的同时能够实现轻量化设计目标。结果表明,仿生晶格设计在轻量化设计中的应用具有可行性和可观的潜力。