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Development and modeling of conducting polymer actuators and the fabrication of a conducting polymer based feedback loop

机译:导电聚合物致动器的开发和建模以及基于导电聚合物的反馈回路的制造

摘要

Conducting polymers as a class of materials can be used to build a diverse range of devices. Conducting polymer based actuators (muscles), transistors (neurons), strain gages (muscle spindles), force sensors (Golgi tendon organs), light emitting diodes, photodetectors (eyes), batteries and supercapacitors (energy storage), and chemical sensors (noses) can all be manufactured. The range of behaviors makes conducting polymers the only class of materials that might be able to mimic the full range of functions needed to build a truly lifelike artificial system. In this thesis, a conducting polymer actuator and conducting polymer strain gage are used for the first time to build a reflex or position feedback loop that rejects position disturbances. The successful operation of the conducting polymer based reflex loop is an important step towards building an all polymer reflex loop that is directly integrated into a bulk material. Such a reflex loop could be used to control position, to control force or to dynamically change the material stiffness and viscosity. In the course of the project, an improved understanding of conducting polymer actuators has led to mathematical descriptions of the charging and discharging of long linear actuators and to equations describing the deflection and force of three layer bending beam actuators. These equations can be used as design tools to build actuators that satisfy given performance requirements. Finally, the performance of the actuators has been related to specific material properties to help direct research into new conducting polymeric materials.
机译:导电聚合物作为一类材料可用于构建各种设备。导电聚合物致动器(肌肉),晶体管(神经元),应变计(肌肉纺锤),力传感器(高尔基腱器官),发光二极管,光电探测器(眼睛),电池和超级电容器(能量存储)以及化学传感器(鼻子) )都可以制造。行为的范围使导电聚合物成为唯一一类能够模仿构建真正逼真的人造系统所需的全部功能的材料。在本文中,首次使用导电聚合物致动器和导电聚合物应变计来建立反射或位置反馈回路,以消除位置干扰。导电聚合物基反射环的成功运行是构建直接集成到块状材料中的所有聚合物反射环的重要一步。这样的反射环可用于控制位置,控制力或动态改变材料的刚度和粘度。在项目过程中,对导电聚合物致动器的更好理解导致对长线性致动器的充电和放电进行数学描述,并得出了描述三层弯曲梁致动器的挠度和力的方程式。这些方程式可用作构建满足给定性能要求的执行器的设计工具。最后,执行器的性能与特定的材料特性有关,以帮助直接研究新的导电聚合物材料。

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