活性软颗粒是否适用于颗粒干扰执行器?

Qianyi Chen, D. Schott, J. Jovanova
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引用次数: 0

摘要

软爪在抓取不规则形状和易碎物体时表现出适应性和灵活性。然而,软夹持器的承载能力较低,形状拟合能力有限,这是限制其大规模应用的主要原因,特别是对于重物和边缘锋利的物体。颗粒干扰效应已成为调节软夹持器刚度和增强对重物的举升力的重要驱动方法。然而,在许多大型和更严重的实际抓取应用中,软执行器可能会出现大范围和几倍的刚度变化,这对气动或液压系统的干扰效果具有挑战性。本文提出了一种基于粒子有源干扰的软夹持器设计方法。该方法采用活性水凝胶颗粒代替真空压力来达到干扰效果。此外,基于干扰效应和作动器设计实现了弯曲行为。通过数值模型研究了作动器的行为,并通过简单的实验验证了该方法的可行性。结果表明,该驱动器通过膨胀水凝胶颗粒来实现弯曲动作的功能。降低触发温度和增加应变极限层厚度可以提高弯曲性能。此外,当颗粒层数增加时,存在从弯曲到卷曲的过渡状态。
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Are active soft particles suitable for particle jamming actuators?
Soft grippers show adaptability and flexibility in grasping irregularly shaped and fragile objects. However, the soft grippers' low loading capacity and limited shaped fitting ability are the main limitations for developing large-scale applications, especially for heavy objects and objects with sharp edges. The particle jamming effect has emerged as an essential actuation method to adjust the stiffness of soft grippers and enhance the lifting force applied to heavy objects. However, in many large and more serious practical grasping applications, soft actuators are expected to show large scales and several-fold stiffness change, which is challenging to achieve the jamming effect in pneumatic or hydraulic systems. In this paper, a novel active particle jamming method is proposed for the design of a particle jamming-based soft gripper. The proposed method uses active hydrogel particles instead of vacuum pressure to achieve the jamming effect. Additionally, the bending behaviors are implemented based on the jamming effect and actuator design. The numerical model is carried out to explore the actuator behaviors, and a brief experiment case is conducted to verify the feasibility. The results indicated that the proposed actuator achieves the functionality of bending actions by swelling the hydrogel particles. The bending performance is enhanced by lowering the trigging temperature and increasing the thickness of the strain-limit layer. Additionally, there is a transition state from bending to curling when increasing the layer of particles.
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