【2h】

Stretchable materials of high toughness and low hysteresis

机译:高韧性和低滞后性的可拉伸材料

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摘要

In materials of all types, hysteresis and toughness are usually correlated. For example, a highly stretchable elastomer or hydrogel of a single polymer network has low hysteresis and low toughness. The single network is commonly toughened by introducing sacrificial bonds, but breaking and possibly reforming the sacrificial bonds causes pronounced hysteresis. In this paper, we describe a principle of stretchable materials that disrupt the toughness–hysteresis correlation, achieving both high toughness and low hysteresis. We demonstrate the principle by fabricating a composite of two constituents: a matrix of low elastic modulus, and fibers of high elastic modulus, with strong adhesion between the matrix and the fibers, but with no sacrificial bonds. Both constituents have low hysteresis (5%) and low toughness (300 J/m2), whereas the composite retains the low hysteresis but achieves high toughness (10,000 J/m2). Both constituents are prone to fatigue fracture, whereas the composite is highly fatigue resistant. We conduct experiment and computation to ascertain that the large modulus contrast alleviates stress concentration at the crack front, and that strong adhesion binds the fibers and the matrix and suppresses sliding between them. Stretchable materials of high toughness and low hysteresis provide opportunities to the creation of high-cycle and low-dissipation soft robots and soft human–machine interfaces.
机译:在所有类型的材料中,滞后性和韧性通常是相关的。例如,单一聚合物网络的高度可拉伸的弹性体或水凝胶具有低滞后性和低韧性。通常通过引入牺牲键来加强单个网络,但是破坏并可能重新构造牺牲键会导致明显的滞后现象。在本文中,我们描述了一种可拉伸材料的原理,该原理破坏了韧性与磁滞的相关性,同时实现了高韧性和低磁滞。我们通过制造两种成分的复合材料来证明这一原理:低弹性模量的基质和高弹性模量的纤维,在基质和纤维之间具有很强的粘合力,但没有牺牲性的结合。两种成分均具有低磁滞(5%)和低韧性(300 J / m 2 ),而复合材料保留了低磁滞但实现了高韧性(10,000 J / m 2 )。两种成分均易于疲劳断裂,而复合材料则具有很高的抗疲劳性。我们进行实验和计算,以确定较大的模量对比度可缓解裂纹前沿的应力集中,并且强的粘合力可将纤维与基体粘合在一起并抑制它们之间的滑动。具有高韧性和低滞后性的可拉伸材料为创建高循环,低耗散的软机器人和人机界面提供了机会。

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