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Mechanical modeling of fluid-driven polymer lenses

机译:流体驱动聚合物镜片的机械建模

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A finite-element model (FEM) is employed to study the pressure response of deformable elastic membranes used as tunable optical elements. The model is capable of determining in situ both the modulus and the prestrain from a measurement of peak deflection versus pressure. Given accurate values for modulus and prestrain, it is shown that the two parameters of a standard optical shape function (radius of curvature and conic constant) can be accurately predicted. The effects of prestrain in polydimethylsiloxane (PDMS) membranes are investigated in detail. It was found that prestrain reduces the sensitivity of the membrane shape to the details of the edge clamping. It also reduces the variation of the conic constant with changes in curvature. Thus the ability to control the prestrain as well as thickness and modulus is important to developing robust optical designs based on fluid-driven polymer lenses.
机译:有限元模型(FEM)用于研究用作可调光学元件的可变形弹性膜的压力响应。该模型能够根据峰值挠度与压力的关系来原位确定模量和预应变。给定模量和预应变的准确值,可以证明可以精确预测标准光学形状函数的两个参数(曲率半径和圆锥常数)。详细研究了预应变对聚二甲基硅氧烷(PDMS)膜的影响。已经发现,预应变降低了膜形状对边缘夹持细节的敏感性。它还随着曲率的变化减小了圆锥常数的变化。因此,控制预应变以及厚度和模量的能力对于开发基于流体驱动聚合物透镜的稳健光学设计非常重要。

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