Dipartimento di Scienza Applicata e Tecnologia (DISAT), Politecnico di Torino, 10129 Torino, Italy.
Department of Anatomy, Physiology and Biochemistry, Swedish University of Agricultural Sciences, 75007 Uppsala, Sweden.
J R Soc Interface. 2023 Aug;20(205):20230321. doi: 10.1098/rsif.2023.0321. Epub 2023 Aug 2.
Marine shells are designed by nature to ensure mechanical protection from predators and shelter for molluscs living inside them. A large amount of work has been done to study the multiscale mechanical properties of their complex microstructure and to draw inspiration for the design of impact-resistant biomimetic materials. Less is known regarding the dynamic behaviour related to their structure at multiple scales. Here, we present a combined experimental and numerical study of the shells of two different species of gastropod sea snail belonging to the Turritellidae family, featuring a peculiar helicoconic shape with hierarchical spiral elements. The proposed procedure involves the use of micro-computed tomography scans for the accurate determination of geometry, atomic force microscopy and nanoindentation to evaluate local mechanical properties, surface morphology and heterogeneity, as well as resonant ultrasound spectroscopy coupled with finite element analysis simulations to determine global modal behaviour. Results indicate that the specific features of the considered shells, in particular their helicoconic and hierarchical structure, can also be linked to their vibration attenuation behaviour. Moreover, the proposed investigation method can be extended to the study of other natural systems, to determine their structure-related dynamic properties, ultimately aiding the design of bioinspired metamaterials and of structures with advanced vibration control.
海洋贝壳的设计旨在为内部生活的软体动物提供机械保护和栖息场所。人们已经做了大量工作来研究其复杂微观结构的多尺度机械性能,并从中汲取灵感来设计抗冲击的仿生材料。但关于它们在多个尺度上的结构相关的动态行为的了解较少。在这里,我们介绍了两种属于 Turritellidae 科的腹足纲海蜗牛贝壳的综合实验和数值研究,这些贝壳具有特殊的螺旋锥形形状和分层螺旋结构。所提出的程序包括使用微计算机断层扫描来准确确定几何形状、原子力显微镜和纳米压痕来评估局部机械性能、表面形貌和非均匀性,以及共振超声光谱结合有限元分析模拟来确定全局模态行为。结果表明,所研究贝壳的特定特征,特别是其螺旋锥形和分层结构,也与其振动衰减行为有关。此外,所提出的研究方法可以扩展到其他自然系统的研究,以确定其与结构相关的动态特性,最终有助于仿生超材料和具有先进振动控制的结构的设计。