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Spider silk as a novel high performance biomimetic muscle driven by humidity

机译:蜘蛛丝是受湿度驱动的新型高性能仿生肌肉

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The abrupt halt of a bumble bee's flight when it impacts the almost invisible threads of an orb web provides an elegant example of the amazing strength and toughness of spider silk. Spiders depend upon these properties for survival, yet the impressive performance of silk is not limited solely to tensile mechanics. Here, we show that silk also exhibits powerful cyclic contractions, allowing it to act as a high performance mimic of biological muscles. These contractions are actuated by changes in humidity alone and repeatedly generate work 50 times greater than the equivalent mass of human muscle. Although we demonstrate that this response is general and occurs weakly in diverse hydrophilic materials, the high modulus of spider silk is such that it generates exceptional force. Furthermore, because this effect already operates at the level of single silk fibers, only 5 mu m in diameter, it can easily be scaled across the entire size range at which biological muscles operate. By contrast, the most successful synthetic muscles developed so far are driven by electric voltage, such that they cannot scale easily across large ranges in cross-sectional areas. The potential applicability of silk muscles is further enhanced by our finding that silkworm fibers also exhibit cyclic contraction because they are already available in commercial quantities. The simplicity of using wet or dry air to drive the biomimetic silk muscle fibers and the incredible power generated by silk offer unique possibilities in designing lightweight and compact actuators for robots and micro-machines, new sensors, and green energy production.
机译:当大黄蜂撞击几乎不可见的球网时,大黄蜂的飞行突然停止,这很好地说明了蜘蛛丝惊人的强度和韧性。蜘蛛赖以生存的特性取决于这些特性,但是丝绸的令人印象深刻的性能不仅限于拉伸力学。在这里,我们证明了丝绸还表现出强大的周期性收缩能力,使其可以充当生物肌肉的高性能模拟物。这些收缩仅由湿度的变化引起,并重复产生比人体肌肉等效质量大50倍的功。尽管我们证明了这种反应是普遍的,并且在各种亲水性材料中很少发生,但是蜘蛛丝的高模量使得它产生了异常的作用力。此外,由于这种作用已经在单丝纤维的水平上起作用,直径仅为5微米,因此可以在生物肌肉活动的整个尺寸范围内轻松缩放。相比之下,迄今为止开发出的最成功的合成肌肉是由电压驱动的,因此它们无法轻易在较大的横截面积范围内缩放。我们的发现进一步证实,蚕丝纤维的潜在适用性进一步提高,因为蚕丝纤维已经可以商业购买,因此它们也表现出周期性的收缩。使用湿空气或干空气驱动仿生丝肌纤维的简便性以及丝产生的惊人功率为设计用于机器人和微型机器的轻巧紧凑的执行器,新型传感器和绿色能源生产提供了独特的可能性。

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