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Rigidity-tuning conductive elastomer

机译:刚度调节导电弹性体

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We introduce a conductive propylene-based elastomer (cPBE) that rapidly and reversibly changes its mechanical rigidity when powered with electrical current. The elastomer is rigid in its natural state, with an elastic (Young's) modulus of 175.5 MPa, and softens when electrically activated. By embedding the cPBE in an electrically insulating sheet of polydimethylsiloxane (PDMS), we create a cPBE-PDMS composite that can reversibly change its tensile modulus between 37 and 1.5 MPa. The rigidity change takes similar to 6 s and is initiated when a 100 V voltage drop is applied across the two ends of the cPBE film. This magnitude of change in elastic rigidity is similar to that observed in natural skeletal muscle and catch connective tissue. We characterize the tunable load-bearing capability of the cPBE-PDMS composite with a motorized tensile test and deadweight experiment. Lastly, we demonstrate the ability to control the routing of internal forces by embedding several cPBE-PDMS 'active tendons' into a soft robotic pneumatic bending actuator. Selectively activating the artificial tendons controls the neutral axis and direction of bending during inflation.
机译:我们介绍了一种导电的基于丙烯的弹性体(cPBE),当使用电流供电时,该弹性体可快速且可逆地改变其机械刚度。弹性体在其自然状态下是刚性的,具有175.5 MPa的弹性(杨氏)模量,并且在电激活时会软化。通过将cPBE嵌入聚二甲基硅氧烷(PDMS)的电绝缘片中,我们创建了一种cPBE-PDMS复合材料,该复合材料可以在37到1.5 MPa之间可逆地改变其拉伸模量。刚度变化大约需要6 s的时间,并且在cPBE薄膜的两端施加100 V电压降时会开始。弹性刚度的变化幅度类似于在天然骨骼肌和捕获结缔组织中观察到的变化幅度。我们通过电动拉伸试验和自重试验表征了cPBE-PDMS复合材料的可调承重能力。最后,我们展示了通过将几个cPBE-PDMS“主动筋”嵌入到一个软机器人气动弯曲执行器中来控制内力传递的能力。选择性激活人造腱可控制充气过程中的中性轴和弯曲方向。

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