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Optomechanical tolerancing and lens alignment using elastomeric lens mount to efficiently meet optical requirements

机译:使用弹性透镜安装件的光机械公差和镜头对齐,以有效满足光学要求

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Lens positioning accuracy and manufacturing cost are two main concerns for optomechanical engineers looking for solutions to reduce costs while meeting stringent optical and environmental requirements. Minimizing optical component positioning errors generally translates into significant cost increases. To maximize the precision-to-cost ratio, there are significant advantages in having both an accurate optomechanical tolerance calculation method and an effective technique to mount and align lenses. This paper presents a tool that has been developed at INO to easily perform complex optomechanical statistical tolerancing using Monte Carlo simulation to reduce manufacturing and alignment costs. This tolerancing method provides a more realistic prediction of optical component errors compared to the classical worst case and root sum square calculations. In addition, precision alignment using elastomeric lens mounting is presented. Thermal stability and often overlooked factors for effective alignments are discussed. Results of tests performed on real optical assemblies are presented for tolerancing, thermal stability and alignment performance. The use of these methods can considerably reduce cost while efficiently ensuring compliance with requirements.
机译:镜头定位精度和制造成本是寻找解决方案的光学机械工程师的两个主要问题,以降低成本,同时满足严格的光学和环境要求。最小化光学元件定位误差通常转化为大量成本增加。为了最大化精确度成本比,具有精确的光学力学公差计算方法以及安装和对准镜头的有效技术具有显着的优点。本文介绍了一种工具,该工具已经在伊诺开发,以便使用Monte Carlo仿真轻松地进行复杂的光学力学统计公差,以降低制造和对准成本。与经典最坏的情况和根总和正方形计算相比,这种公差方法提供了对光学分量误差的更现实的预测。此外,还提出了使用弹性透镜安装的精密对准。讨论了热稳定性和经常被忽视的有效对准因素。呈现了在实际光学组件上进行的测试结果,用于公差,热稳定性和对准性能。这些方法的使用可以大大降低成本,同时有效地确保遵守要求。

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