Krüger Friederike, Thierer Rebecca, Tahouni Yasaman, Sachse Renate, Wood Dylan, Menges Achim, Bischoff Manfred, Rühe Jürgen
Laboratory for Chemistry and Physics of Interfaces, Department of Microsystems Engineering, University of Freiburg, Georges-Koehler-Allee 103, 79110 Freiburg, Germany.
Institute for Structural Mechanics, University of Stuttgart, Pfaffenwaldring 7, 70550 Stuttgart, Germany.
Biomimetics (Basel). 2021 Oct 6;6(4):58. doi: 10.3390/biomimetics6040058.
(1) Significance of geometry for bio-inspired hygroscopically actuated bilayer structures is well studied and can be used to fine-tune curvatures in many existent material systems. We developed a material design space to find new material combinations that takes into account unequal effective widths of the layers, as commonly used in fused filament fabrication, and deflections under self-weight. (2) For this purpose, we adapted Timoshenko's model for the curvature of bilayer strips and used an established hygromorphic 4D-printed bilayer system to validate its ability to predict curvatures in various experiments. (3) The combination of curvature evaluation with simple, linear beam deflection calculations leads to an analytical solution space to study influences of Young's moduli, swelling strains and densities on deflection under self-weight and curvature under hygroscopic swelling. It shows that the choice of the ratio of Young's moduli can be crucial for achieving a solution that is stable against production errors. (4) Under the assumption of linear material behavior, the presented development of a material design space allows selection or design of a suited material combination for application-specific, bio-inspired bilayer systems with unequal layer widths.
(1) 生物启发的吸湿驱动双层结构中几何形状的重要性已得到充分研究,可用于微调许多现有材料系统中的曲率。我们开发了一个材料设计空间,以找到新的材料组合,该空间考虑了在熔融长丝制造中常用的各层不等效宽度以及自重作用下的挠度。(2) 为此,我们采用了铁木辛柯双层条带曲率模型,并使用已建立的吸湿变形4D打印双层系统来验证其在各种实验中预测曲率的能力。(3) 将曲率评估与简单的线性梁挠度计算相结合,得到一个解析解空间,用于研究杨氏模量、膨胀应变和密度对自重作用下挠度以及吸湿膨胀下曲率的影响。结果表明,杨氏模量比值的选择对于获得对生产误差稳定的解决方案可能至关重要。(4) 在线性材料行为的假设下,所提出的材料设计空间的开发允许为具有不等层宽的特定应用生物启发双层系统选择或设计合适的材料组合。