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首页> 外文期刊>Journal of nanoscience and nanotechnology >Hysteresis in a carbon nanotube based electroactive polymer microfiber actuator: Numerical Modeling
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Hysteresis in a carbon nanotube based electroactive polymer microfiber actuator: Numerical Modeling

机译:基于碳纳米管的电活性聚合物超细纤维致动器的磁滞现象:数值模型

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Hysteretic behavior is an important consideration for smart electroactive polymer actuators in a wide variety of nano/micro-scale applications. We prepared an electroactive polymer actuator in the form of a microfiber, based on single-wall carbon nanotubes and polyaniline, and investigated the hysteretic characteristics of the actuator under electrical potential switching in a basic electrolyte solution. For actuation experiments, we measured the variation of the length of the carbon-nanotube-based electroactive polymer actuator, using an Aurora Scientific Inc. 300B Series muscle lever arm system, while electrical potentials ranging from 0.2 V to 0.65 V were applied. Based on the classical Preisach hysteresis model, we presented and validated a numerical model that described the hysteretic behavior of the carbon-nanotube-based electroactive polymer actuator. Inverse hysteretic behavior was also simulated using the model to demonstrate its capability to predict an input from a desired output. This numerical model of hysteresis could be an effective approach to micro-scale control of carbon-nanotube-based electroactive polymer actuators in potential applications.
机译:迟滞行为是智能电活性聚合物致动器在各种纳米/微米级应用中的重要考虑因素。我们基于单壁碳纳米管和聚苯胺制备了超细纤维形式的电活性聚合物致动器,并研究了在碱性电解质溶液中电势转换下致动器的磁滞特性。对于驱动实验,我们使用Aurora Scientific Inc. 300B系列肌肉杠杆臂系统测量了碳纳米管基电活性聚合物驱动器的长度变化,同时施加了0.2 V至0.65 V的电势。基于经典的Preisach磁滞模型,我们提出并验证了描述碳纳米管电活性聚合物致动器的磁滞行为的数值模型。还使用该模型模拟了反滞后行为,以证明其从所需输出预测输入的能力。磁滞的这种数值模型可能是在潜在应用中对碳纳米管基电活性聚合物致动器进行微尺度控制的有效方法。

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