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棱皮龟龟甲:坚韧且灵活的生物设计。

Leatherback sea turtle shell: A tough and flexible biological design.

机构信息

Materials Science and Engineering Program, University of California, San Diego, La Jolla, CA 92093, USA.

Materials Science and Engineering Program, University of California, San Diego, La Jolla, CA 92093, USA; Departments of Nanoengineering and Mechanical and Aerospace Engineering, University of California, San Diego, La Jolla, CA 92093, USA.

出版信息

Acta Biomater. 2015 Dec;28:2-12. doi: 10.1016/j.actbio.2015.09.023. Epub 2015 Sep 21.

Abstract

UNLABELLED

The leatherback sea turtle is unique among chelonians for having a soft skin which covers its osteoderms. The osteoderm is composed of bony plates that are interconnected with collagen fibers in a structure called suture. The soft dermis and suture geometry enable a significant amount of flexing of the junction between adjacent osteoderms. This design allows the body to contract better than a hard-shelled sea turtle as it dives to depths of over 1,000 m. The leatherback turtle has ridges along the carapace to enhance the hydrodynamic flow and provide a tailored stiffness. The osteoderms are of two types: flat and ridged. The structure of the two types of osteoderms is characterized and their mechanical properties are investigated with particular attention to the failure mechanisms. They both are bony structures with a porous core sandwiched between compact layers that form the outside and inside surfaces. The compressive strength is highly anisotropic by virtue of the interaction between loading orientation and arrangement of porous and compact components of osteoderms. The angle of interpenetration at the suture of osteoderms is analyzed and compared with analytical predictions. The sutures have a triangular shape with an angle of ∼30° which provides a balance between the tensile strength of the osteoderms and shear strength of the collagen fiber layer and is verified by Li-Ortiz-Boyce in a previous study. This is confirmed by an FEM analysis. A calculation is developed to quantify the flexibility of the carapace and plastron as a function of the angular displacement at the sutures, predicting the interdependence between geometrical parameters and flexibility.

STATEMENT OF SIGNIFICANCE

The leatherback turtle is a magnificent chelonian whose decreasing numbers have brought it to the brink of extinction in the Pacific Ocean. This first study of the structure of its shell provides important new insights that explain its amazing capacity for diving: depths of over 1,000 m have been recorded. This is enabled by the flexibility between the bony plates comprising its shell, which is covered by a skin and not by hard keratin as all other turtles. We use the arsenal of Materials Science characterization techniques to probe the structure of the shell and explain its amazing structure and capacity for flexing, while retaining its protection capability.

摘要

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棱皮龟是龟鳖目中独一无二的物种,其骨板外覆盖有柔软的皮肤。骨板由相互连接的骨板组成,这些骨板通过胶原纤维连接,形成一种称为缝线的结构。柔软的真皮和缝线几何形状使相邻骨板之间的连接处能够大幅度弯曲。这种设计使棱皮龟在潜入 1000 米以上深度时,能够比硬壳海龟更好地收缩身体。棱皮龟的甲壳上有脊状突起,以增强水流动力,并提供定制的刚度。骨板有两种类型:扁平的和有脊的。本文对这两种类型的骨板的结构进行了特征描述,并特别关注其失效机制,对其力学性能进行了研究。它们都是具有多孔核心的骨质结构,夹在形成内外表面的致密层之间。由于骨板中多孔和致密成分的加载方向和排列的相互作用,抗压强度具有各向异性。分析了骨板缝线处的贯穿角度,并与分析预测进行了比较。缝线呈三角形,角度约为 30°,这在骨板的拉伸强度和胶原纤维层的剪切强度之间取得了平衡,这在前一项研究中已被 Li-Ortiz-Boyce 验证。这一结果通过有限元分析得到了证实。建立了一个计算模型,以量化缝线处的角位移作为函数的甲壳和腹甲的灵活性,预测了几何参数和灵活性之间的相互依赖关系。

意义声明

棱皮龟是一种壮丽的龟鳖类动物,其数量的减少使其在太平洋濒临灭绝。这项关于其壳结构的首次研究提供了重要的新见解,解释了其惊人的潜水能力:记录的潜水深度超过 1000 米。这是通过其壳的骨板之间的灵活性实现的,其壳由皮肤覆盖,而不是像所有其他海龟那样由坚硬的角蛋白覆盖。我们利用材料科学的特征分析技术来探测壳的结构,解释其惊人的结构和弯曲能力,同时保持其保护能力。

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