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A new structure-property connection in the skeletal elements of the marine sponge Tethya aurantia that guards against buckling instability

机译:海洋海绵Tethya aurantia骨骼中的新结构-属性连接可防止屈曲不稳定性

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摘要

We identify a new structure-property connection in the skeletal elements of the marine sponge Tethya aurantia. The skeletal elements, known as spicules, are millimeter-long, axisymmetric, silica rods that are tapered along their lengths. Mechanical designs in other structural biomaterials, such as nacre and bone, have been studied primarily for their benefits to toughness properties. The structure-property connection we identify, however, falls in the entirely new category of buckling resistance. We use computational mechanics calculations and information about the spicules’ arrangement within the sponge to develop a structural mechanics model for the spicules. We use our structural mechanics model along with measurements of the spicules’ shape to estimate the load they can transmit before buckling. Compared to a cylinder with the same length and volume, we predict that the spicules’ shape enhances this critical load by up to 30%. We also find that the spicules’ shape is close to the shape of the column that is optimized to transmit the largest load before buckling. In man-made structures, many strategies are used to prevent buckling. We find, however, that the spicules use a completely new strategy. We hope our discussion will generate a greater appreciation for nature’s ability to produce beneficial designs.
机译:我们在海洋海绵Tethya aurantia的骨骼元素中发现了一种新的结构-属性连接。骨骼元素(称为针刺)是毫米长的轴对称二氧化硅棒,沿其长度逐渐变细。主要研究了其他结构生物材料(如珍珠母和骨头)中的机械设计对韧性的好处。但是,我们确定的结构-属性连接属于全新的屈曲阻力类别。我们使用计算力学计算和有关海绵内针头排列的信息来开发针头的结构力学模型。我们使用结构力学模型以及针头形状的测量值来估计其在屈曲之前可以传递的载荷。与具有相同长度和体积的圆柱体相比,我们预计,针状体的形状会将此临界载荷提高多达30%。我们还发现,针头的形状接近圆柱体的形状,该圆柱体的形状经过优化,可以在屈曲之前传递最大载荷。在人造结构中,许多策略用于防止屈曲。但是,我们发现针刺使用了全新的策略。我们希望我们的讨论将对自然界产生有益设计的能力产生更大的赞赏。

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