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Modeling of the Viscoelastic properties of PVDF through the Fractional Differential Model

机译:通过分数微分模型模拟PVDF的粘弹性

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Polyvinylidene fluoride (PVDF), a piezoelectric material has many useful applications like sensors, transducers and surface acoustic wave devices. Since PVDF is a polymer, it is possible that its mechanical response is likely to be frequency and time dependent. It is important therefore, to characterize the frequency or time dependent behavior of PVDF using appropriate models that are based on experimental observations. Dynamical Mechanical Tests were conducted on bi-axially stretched PVDF at different temperatures (35?-70?) and frequencies (0.33Hz-10Hz). It was observed from the experimental results that at higher temperatures, the rate of change of modulus with frequency reduces. Time-temperature superposition was done for the storage and the loss modulii to arrive at a single master curve at a temperature of 35?. The results obtained by the superposition were then modeled using a simple viscoelastic three parameter model with ordinary dashpot. This model predicted the storage modulus well but was found short of the required predictive capability for the loss modulus. A four parameter model with fractional dashpot was used and it is found that it models the loss and storage modulus results better than the model with ordinary dashpot.
机译:聚偏二氟乙烯(PVDF)是一种压电材料,具有许多有用的应用,例如传感器,换能器和表面声波设备。由于PVDF是聚合物,因此其机械响应可能取决于频率和时间。因此,重要的是使用适当的基于实验观察的模型来表征PVDF的频率或时间相关行为。在不同温度(35°-70°)和频率(0.33Hz-10Hz)下,对双轴拉伸的PVDF进行了动态力学测试。从实验结果可以看出,在较高温度下,模量随频率的变化率降低。进行了时间-温度叠加以存储和损耗模量,从而在35°C的温度下获得一条主曲线。然后使用具有普通阻尼器的简单粘弹性三参数模型对叠加得到的结果进行建模。该模型可以很好地预测储能模量,但发现其缺乏所需的损耗模量预测能力。使用带分数减震器的四参数模型,发现该模型对损耗和储能模量结果的建模要优于具有普通减震器的模型。

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