Sun Jin, Fu Yuan, Zhang Shijng, Li Jing, Wang Dehong, Liu Junkao, Liu Yingxiang
State Key Laboratory of Robotics and Systems, Harbin Institute of Technology, Harbin, Heilongjiang Province, 150001, China.
Adv Sci (Weinh). 2025 Jul 11:e07572. doi: 10.1002/advs.202507572.
Twisted artificial muscles (TAMs) demonstrate great promise in robotic applications involving locomotion and manipulation. However, their functionality in underwater environments remains challenging due to limitations in deformation, output force, and heat dissipation especially for thermally driven TAMs. To address these challenges, a novel TAM configuration inspired by the twining structures of climbing plants that consists of braided and pre-twisted fiber bundles is proposed. This configuration achieves large deformation and high output force, reaching a contraction ratio of 40.0% under a load of 300 g. Meanwhile, a soft insulation layer inspired by the blubber layer of seals is applied to reduce heat dissipation in underwater environments, resulting in a 30.5 °C temperature difference. In addition, a rapid actuation unit is developed, which utilizes elastic energy storage and release to achieve an angular velocity of 180° s in water. Finally, a bionic ray driven by the proposed TAMs is developed as a demonstrator, achieving a displacement of 105 mm for straight motion and a turning angle of 30° within a single actuation cycle. These results highlight the strong potential of the proposed TAMs for underwater application.
扭曲人工肌肉(TAMs)在涉及运动和操作的机器人应用中展现出巨大潜力。然而,由于变形、输出力和散热方面的限制,尤其是对于热驱动的TAMs,它们在水下环境中的功能仍具有挑战性。为应对这些挑战,提出了一种受攀缘植物缠绕结构启发的新型TAM构型,该构型由编织和预扭曲的纤维束组成。这种构型实现了大变形和高输出力,在300克负载下收缩率达到40.0%。同时,应用了一种受海豹脂肪层启发的软绝缘层,以减少水下环境中的散热,产生了30.5°C的温差。此外,还开发了一种快速驱动单元,其利用弹性能量存储和释放,在水中实现了180°/秒的角速度。最后,开发了一种由所提出的TAMs驱动的仿生射线作为演示器,在单个驱动周期内实现了直线运动105毫米的位移和30°的转弯角度。这些结果突出了所提出的TAMs在水下应用中的强大潜力。