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Structural optimization of 3D-printed synthetic spider webs for high strength

机译:3D打印合成蜘蛛网的结构优化可实现高强度

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Spiders spin intricate webs that serve as sophisticated prey-trapping architectures that simultaneously exhibit high strength, elasticity and graceful failure. To determine how web mechanics are controlled by their topological design and material distribution, here we create spider-web mimics composed of elastomeric filaments. Specifically, computational modelling and microscale 3D printing are combined to investigate the mechanical response of elastomeric webs under multiple loading conditions. We find the existence of an asymptotic prey size that leads to a saturated web strength. We identify pathways to design elastomeric material structures with maximum strength, low density and adaptability. We show that the loading type dictates the optimal material distribution, that is, a homogeneous distribution is better for localized loading, while stronger radial threads with weaker spiral threads is better for distributed loading. Our observations reveal that the material distribution within spider webs is dictated by the loading condition, shedding light on their observed architectural variations.
机译:蜘蛛旋转着复杂的网状结构,这些网状结构充当了复杂的猎物捕捉结构,同时展现出高强度,弹性和优美的破坏力。为了确定如何通过拓扑设计和材料分布来控制网络力学,这里我们创建由弹性体细丝组成的蜘蛛网模拟物。具体而言,将计算建模和微型3D打印相结合,以研究弹性纤维网在多种负载条件下的机械响应。我们发现存在一个渐近的猎物大小,导致网络强度饱和。我们确定了设计具有最大强度,低密度和适应性的弹性材料结构的途径。我们表明,加载类型决定了最佳的材料分布,即均匀分布对于局部加载更好,而较强的径向螺纹和较弱的螺旋线则适合于分布式加载。我们的观察结果表明,蜘蛛网内的材料分布受加载条件的影响,从而避免了蜘蛛网观察到的建筑变化。

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