首页> 外文期刊>Applied optics >Compensating additional optical power in the central zone of a multifocal contact lens forminimization of the shrinkage error of the shell mold in the injection molding process
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Compensating additional optical power in the central zone of a multifocal contact lens forminimization of the shrinkage error of the shell mold in the injection molding process

机译:在注射成型过程中补偿多灶性隐形眼镜的中央区域中的额外光功率,在注塑过程中壳体模具的收缩误差

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摘要

This study aims to develop a compensating method to minimize the shrinkage error of the shell mold (SM) in the injection molding (IM) process to obtain uniform optical power in the central optical zone of soft axial symmetric multifocal contact lenses (CL). The Z-shrinkage error along the Z axis or axial axis of the anterior SM corresponding to the anterior surface of a dry contact lens in the IM process can be minimized by optimizing IM process parameters and then by compensating for additional (Add) powers in the central zone of the original lens design. First, the shrinkage error is minimized by optimizing three levels of four IM parameters, including mold temperature, injection velocity, packing pressure, and cooling time in 18 IM simulations based on an orthogonal array L-18 (2(1) x 3(4)). Then, based on the Z-shrinkage error from IM simulation, three new contact lens designs are obtained by increasing the Add power in the central zone of the original multifocal CL design to compensate for the optical power errors. Results obtained from IM process simulations and the optical simulations show that the new CL design with 0.1 D increasing in Add power has the closest shrinkage profile to the original anterior SM profile with percentage of reduction in absolute Z-shrinkage error of 55% and more uniform power in the central zone than in the other two cases. Moreover, actual experiments of IM of SM for casting soft multifocal CLs have been performed. The final product of wet CLs has been completed for the original design and the new design. Results of the optical performance have verified the improvement of the compensated design of CLs. The feasibility of this compensating method has been proven based on the measurement results of the produced soft multifocal CLs of the new design. Results of this study can be further applied to predict or compensate for the total optical power errors of the soft multifocal CLs. (C) 2018 Optical Society of America
机译:本研究旨在开发一种补偿方法,以最小化注射成型(IM)工艺中壳体模具(SM)的收缩误差,以在软轴对称多焦点隐形眼镜(CL)的中央光学区域中获得均匀的光功率。通过优化IM工艺参数,可以通过优化IM工艺参数来最小化沿着IM工艺中的干燥隐形眼镜的前表面的Z轴或轴向轴的Z轴误差可以通过优化IM工艺参数来最小化,然后通过补偿额外的(添加)功率中央区原始镜头设计。首先,通过基于正交阵列L-18(2(1)x 3(4 )))。然后,基于IM仿真的Z次收缩误差,通过增加原始多焦点CL设计中央区域的增加电力来获得三个新的隐形眼镜设计,以补偿光功率误差。从IM过程模拟获得的结果表明,新的CL设计增加了0.1d的增加电力的增加曲线与原始的前SM轮廓最近的收缩曲线,其绝对Z收缩误差减少55%和更均匀的百分比中央区的力量比另外两种情况相比。此外,已经进行了SM的实际实验,用于铸造软多焦油CLS。湿润CLS的最终产品已经完成了原始设计和新设计。光学性能的结果已经验证了CLS补偿设计的改进。基于新设计的产生的软多焦点CLS的测量结果证明了这种补偿方法的可行性。该研究的结果可以进一步应用于预测或补偿软多灶CLS的总光功率误差。 (c)2018年光学学会

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  • 来源
    《Applied optics》 |2018年第12期|共11页
  • 作者单位

    Natl Taiwan Univ Sci &

    Technol Dept Mech Engn Taipei Taiwan;

    Natl Taiwan Univ Sci &

    Technol Dept Mech Engn Taipei Taiwan;

    Natl Taiwan Univ Sci &

    Technol Dept Mech Engn Taipei Taiwan;

    Natl Taiwan Univ Sci &

    Technol Dept Mech Engn Taipei Taiwan;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 应用;
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