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Optimization of prestretch and actuation stretch of a DEA-based cell stretcher

机译:基于DEA的细胞担架的预拉伸和致动拉伸的优化

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The behaviour of Dielectric Elastomer Actuators (DEA) can be predicted using hyperelastic models that are based on strain energy density functions. The parameters used in the hyperelastic models are generally obtained via a uni-axial pull test. However, DEAs are most commonly used in an biaxially stretched configuration. This is an appropriate assumption if the modelled parameters translate accurately to different stretch configurations. We have conducted stress-stretch experiments on silicone membranes in two different configurations; uni-axial and pure shear stretch. Fitting common hyperelastic models, such as Gent, to the experimental data shows that the modelling parameters depend on the stretch configuration. In addition, we show that the Mullins effect, where the stress-stretch response is dependent on the maximum stretch previously experienced by the sample, is predominant in the silicone membranes. This means that the model parameters depend on the loading configuration and the stretch history of the sample making it difficult to predict the behaviour of highly-prestretched DEAs. One way to tackle this issue is to carry out testing as close to the original configuration as possible which is difficult in the case of highly prestretched DEAs. We have created a model that takes into account both the loading configuration and the Mullins effect and used this to optimize the prestretch and stretch of the cell stretching device.
机译:可以使用基于应变能密度函数的超弹性模型来预测介电弹性体致动器(DEA)的行为。超弹性模型中使用的参数通常是通过单轴拉力试验获得的。但是,DEA最常用于双轴拉伸配置中。如果建模参数准确地转换为不同的拉伸配置,则这是一个适当的假设。我们以两种不同的配置对硅膜进行了应力拉伸实验;单轴和纯剪切拉伸。将常见的超弹性模型(例如Gent)拟合到实验数据表明,建模参数取决于拉伸配置。此外,我们表明,在硅胶膜中,穆林斯效应占主导地位,其中应力-拉伸响应取决于样品先前所经历的最大拉伸。这意味着模型参数取决于加载配置和样品的拉伸历史,从而难以预测高度预拉伸的DEA的行为。解决此问题的一种方法是进行尽可能接近原始配置的测试,这对于高度预拉伸的DEA而言是困难的。我们创建了一个模型,该模型同时考虑了加载配置和Mullins效应,并使用此模型优化了细胞拉伸设备的预拉伸和拉伸。

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