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Morphogenesis and mechanostabilization of complex natural and 3D printed shapes

机译:复杂的自然和3D打印形状的形态发生和机械稳定

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The natural selection and the evolutionary optimization of complex shapes in nature are closely related to their functions. Mechanostabilization of shape of biological structure via morphogenesis has several beautiful examples. With the help of simple mechanics-based modeling and experiments, we show an important causality between natural shape selection as evolutionary outcome and the mechanostabilization of seashells. The effect of biological growth on the mechanostabilization process is identified with examples of two natural shapes of seashells, one having a diametrically converging localization of stresses and the other having a helicoidally concentric localization of stresses. We demonstrate how the evolved shape enables predictable protection of soft body parts of the species. The effect of bioavailability of natural material is found to be a secondary factor compared to shape selectivity, where material microstructure only acts as a constraint to evolutionary optimization. This is confirmed by comparing the mechanostabilization behavior of three-dimensionally printed synthetic polymer structural shapes with that of natural seashells consisting of ceramic and protein. This study also highlights interesting possibilities in achieving a new design of structures made of ordinary materials which have bio-inspired optimization objectives.
机译:自然界中复杂形状的自然选择和进化优化与它们的功能密切相关。通过形态发生的生物结构形状的机械机械稳定化有几个美丽的例子。借助基于简单力学的建模和实验,我们显示了自然形状选择作为进化结果与贝壳机械稳定化之间的重要因果关系。生物生长对机械稳定化过程的影响可以通过两种自然形状的贝壳示例来确定,一种具有应力的径向收敛位置,另一种具有应力的螺旋同心位置。我们演示了进化后的形状如何使该物种的柔软部位得到可预测的保护。与形状选择性相比,天然材料的生物利用度的影响被认为是次要因素,在形状选择中,材料的微观结构仅作为进化优化的约束。通过比较三维印刷的合成聚合物结构形状与由陶瓷和蛋白质组成的天然贝壳的机械稳定性能,可以证实这一点。这项研究还强调了实现具有生物启发性优化目标的由普通材料制成的结构的新设计的有趣可能性。

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