论文标题

拓扑优化和3D打印大型变形机制,用于劳累生物组织

Topology Optimization and 3D printing of Large Deformation Compliant Mechanisms for Straining Biological Tissues

论文作者

Kumar, P., Schmidleithner, C., Larsen, N. B., Sigmund, O.

论文摘要

本文在基于密度的拓扑优化设置中提出了一种合成方法,以设计符合符合变形的机制,以诱导生物组织中所需的菌株。该建模基于几何非线性以及适当选择的高野兽材料模型,其中使用总拉格朗日有限元公式求解了机械平衡方程。基于最小二乘误差相对于目标菌株的目的是通过给定的一组约束和组织的适当环境制定并最小化的。为了绕过拓扑优化期间低刚度设计区域的大变形而产生的数值不稳定性,采用了基于应变的插值方案。该方法使用扩展的稳健配方,即设计描述的侵蚀,中间和扩张的投影以及组织刚度的变化。通过设计各种合规机理来提供生物组织构建体中不同靶标菌株的综合方法的功效。优化的合规机制是3D打印的,并且在简化的实验中记录了其性能,并将其与商业软件获得的仿真结果进行了比较。

This paper presents a synthesis approach in a density-based topology optimization setting to design large deformation compliant mechanisms for inducing desired strains in biological tissues. The modelling is based on geometrical nonlinearity together with a suitably chosen hypereleastic material model, wherein the mechanical equilibrium equations are solved using the total Lagrangian finite element formulation. An objective based on least-square error with respect to target strains is formulated and minimized with the given set of constraints and the appropriate surroundings of the tissues. To circumvent numerical instabilities arising due to large deformation in low stiffness design regions during topology optimization, a strain-energy based interpolation scheme is employed. The approach uses an extended robust formulation i.e. the eroded, intermediate and dilated projections for the design description as well as variation in tissue stiffness. Efficacy of the synthesis approach is demonstrated by designing various compliant mechanisms for providing different target strains in biological tissue constructs. Optimized compliant mechanisms are 3D-printed and their performances are recorded in a simplified experiment and compared with simulation results obtained by a commercial software.

扫码加入交流群

加入微信交流群

微信交流群二维码

扫码加入学术交流群,获取更多资源