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Analysis on multifocal contact lens design based on optical power distribution with NURBS

机译:基于NURBS的光功率分布的多焦点隐形眼镜设计分析

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This paper aims to develop and analyze the design method of multifocal contact lenses to obtain curvature continuity in the optical surfaces with the high addition (Add) powers by adjusting non-uniform rational B-spline (NURBS) curves. The paper has developed mathematical formulae to generate the optical power distributions in which the powers continuously change from either near or distant center to the opposite focal length in the periphery of the optical region with different change rates and Add power values. This developed method can efficiently adjust and optimize three parameters, including control points, weight, and knots of the NURBS, to be anterior optical lens surface profiles to adapt for these given power profiles. The result shows that the proposed contact lenses not only achieve smooth and continuous anterior optical surfaces, but also satisfy various optical power distributions with high Add power values for different pupil diameters. Then, these designs of contact lenses can be feasibly converted to the computer-aided design format for analysis and manufacture for molding or single-point diamond turning. Experimental results of this method have been tested and proven when both the power distributions of simulation of lenses and the actual machined samples match the original specified powers provided by clinical demands of a multifocal contact lens. Future integration with variant clinical demands and optimization rules of lens design can be explored for a progressive contact lens. (C) 2017 Optical Society of America
机译:本文旨在开发和分析多焦点隐形眼镜的设计方法,以通过调整非均匀的Rational B样条(NURBS)曲线通过高附加(添加)功率在光学表面中获得曲率连续性。本文开发了数学公式,以产生光功率分布,其中功率在光学区域的外围中与相反的焦距连续地改变,具有不同的变化率并增加功率值。这种开发方法可以有效地调整和优化三个参数,包括NURBS的控制点,重量和结,是前光学透镜表面轮廓,以适应这些给定的功率轮廓。结果表明,所提出的隐形眼镜不仅实现了光滑和连续的前光表面,而且还满足了具有高添加功率值的各种光功率分布,用于不同的瞳孔直径。然后,这些隐形眼镜的设计可以可靠地转换为计算机辅助设计格式,以进行模塑或单点金刚石转动的分析和制造。当镜头和实际加工样品的模拟电源分布和实际加工样品的电源分布符合多焦点隐形眼镜的临床需求提供的原始指定功率时,已经测试和证明了该方法的实验结果。可以探索与变体临床需求和优化规则的未来整合,可以探索透析隐形眼镜。 (c)2017年光学学会

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