首页> 外文会议>ASME conference on smart materials, adaptive structures and intelligent systems;SMASIS2009 >CHARACTERIZING THE EFFECT OF TEMPERATURE INCREASE ON POLYPYRROLE ACTIVE STRENGTH AND STRESS RATE
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CHARACTERIZING THE EFFECT OF TEMPERATURE INCREASE ON POLYPYRROLE ACTIVE STRENGTH AND STRESS RATE

机译:表征温度升高对聚吡咯活性强度和应力率的影响

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Conducting polymers can be utilized as actuators due to the materials' ability to undergo volumetric change caused by an electrochemical stimulus. Polypyrrole is an attractive electroactive polymer and capable of producing large active stress. Its mechanical performance can be improved by increasing temperature. This work describes a custom built device that is capable of performing dynamic mechanical analyses and electrochemistry simultaneously. In addition, there is a temperature control system that heats (or cools) with Peltier thermoelectric devices controlled by a PID controller. In this study, we characterized the effect of temperature increase on polypyrrole actuation strength and stress rate. For approximately each increment of 10°C from 27-83°C, stiffness measurements and isometric tests in l-butyl-3-methylimidazolium hexafluorophosphate were done with sample preloaded to about 4 MPa. Results showed that the stiffness decreased by 21% as the temperature was elevated from 25-80°C. The maximum charge per polymer volume increased by 983% as the temperature was increased from 27-75°C and started to level off past 75°C. The peak stress changed with temperature in a similar trend as maximum charge per volume. Peak stress was 0.2 MPa at 27°C and increased to 7 MPa as temperature was increased to 75°C. Moreover, the stress rate increased until 85°C. The results suggest that peak stress depends upon the ionic mobility as opposed to stiffness since both peak stress and charge start to plateau past 75°C.
机译:由于材料经受由电化学刺激引起的体积变化的能力,因此可以将导电聚合物用作致动器。聚吡咯是一种有吸引力的电活性聚合物,能够产生较大的活性应力。可以通过提高温度来改善其机械性能。这项工作描述了一种定制的设备,该设备能够同时执行动态机械分析和电化学。此外,还有一个温度控制系统,该系统通过PID控制器控制的珀尔帖热电设备进行加热(或冷却)。在这项研究中,我们表征了温度升高对聚吡咯致动强度和应力率的影响。对于从27-83°C大约每升高10°C,在预加载至约4 MPa的样品中进行1-丁基-3-甲基咪唑鎓六氟磷酸盐的刚度测量和等距测试。结果表明,当温度从25-80°C升高时,刚度降低了21%。随着温度从27-75°C升高,每聚合物体积的最大电荷增加了983%,并开始稳定到75°C以上。峰值应力随温度变化,其趋势与每体积最大电荷相似。峰值应力在27°C时为0.2 MPa,并且随着温度升高到75°C而增加到7 MPa。而且,应力率增加到85℃。结果表明,峰值应力取决于离子迁移率,而不是刚性,因为峰值应力和电荷都开始超过75°C达到平稳状态。

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