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A numerical model of light adjustable lens

机译:调光镜的数值模型

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We model numerically the mechanical effects of UV induced photo-polymerization in elastomeric artificial lens. The elastomer is originated upon cross-linking of a silicone matrix. UV irradiation of one side of the lens polymerizes selectively a photosensitive macromer, causing local variations of its concentration. The subsequent diffusion of macromers from high concentration to low concentration zones modifies the shape of the lens and thus its dioptric power. In vitro experiments on artificial lens showed that the power change is dependent on UV exposure time, irradiation intensity and light pattern. With the aim to define a numerical tool able to predict the dioptric power adjustment as a function of the UV irradiation parameters, we setup a purely mechanic finite element model of the lens, adopting a hyperelastic material model embedded with eigen-deformations. Numerical simulations of axis-symmetric irradiation closely reproduced the experimental results, in terms of both lens geometry and dioptric power, for positive, negative and lock-in corrections.
机译:我们数值模拟在人造橡胶人工晶体中紫外线引起的光聚合的机械效应。弹性体起源于硅氧烷基质的交联。镜片一侧的紫外线辐射选择性聚合光敏大分子单体,从而引起其浓度的局部变化。大分子单体随后从高浓度区扩散到低浓度区改变了晶状体的形状,从而改变了其屈光度。在人造晶状体上的体外实验表明,光焦度的变化取决于紫外线照射时间,照射强度和光图案。为了定义能够预测作为紫外线照射参数的函数的屈光度调整的数值工具,我们采用嵌入了本征变形的超弹性材料模型,建立了镜片的纯机械有限元模型。轴对称辐照的数值模拟在透镜几何形状和屈光度方面,正,负和锁定校正都紧密地再现了实验结果。

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