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In vitro interferometric characterization of dynamic fluid layers on contact lenses

机译:隐形眼镜上动态液层的体外干涉表征

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The anterior refracting surface of the eye when wearing a contact lens is the thin fluid layer that forms on the surface of the contact lens. Under normal conditions, this fluid layer is less than 10 microns thick. The fluid layer thickness and topography change over time and are affected by the material properties of the contact lens, and may affect vision quality and comfort. An in vitro method of characterizing dynamic fluid layers applied to contact lenses mounted on mechanical substrates has been developed using a phase-shifting Twyman-Green interferometer. This interferometer continuously measures light reflected from the surface of the fluid layer, allowing precision analysis of the dynamic fluid layer. Movies showing this fluid layer behavior can be generated. The fluid behavior on the contact lens surface is measured, allowing quantitative analysis beyond what typical contact angle or visual inspection methods provide.The interferometer system has measured the formation and break up of fluid layers. Different fluid and contact lens material combinations have been used, and significant fluid layer properties have been observed in some cases. The interferometer is capable of identifying features in the fluid layer less than a micron in depth with a spatial resolution of about ten microns. An area on the contact lens approximately 6 mm wide can be measured with the system. This paper will discuss the interferometer design and analysis methods used. Measurement results of different material and fluid combinations are presented.
机译:戴隐形眼镜时,眼睛的前屈光表面是在隐形眼镜表面上形成的薄流体层。在正常条件下,该流体层的厚度小于10微米。流体层的厚度和形貌随时间变化,并受隐形眼镜的材料特性影响,并可能影响视觉质量和舒适度。已经开发出一种使用相移Twyman-Green干涉仪来表征应用于安装在机械基板上的隐形眼镜的动态流体层的体外方法。该干涉仪连续测量从流体层表面反射的光,从而可以对动态流体层进行精确分析。可以生成显示此流体层行为的影片。测量了隐形眼镜表面上的流体行为,可以进行超出常规接触角或目测方法所不能提供的定量分析。干涉仪系统已经测量了流体层的形成和破裂。已经使用了不同的流体和隐形眼镜材料组合,并且在某些情况下已经观察到显着的流体层特性。干涉仪能够以约十微米的空间分辨率识别流体层中深度小于一微米的特征。可以使用该系统测量隐形眼镜上约6毫米宽的区域。本文将讨论干涉仪的设计和使用的分析方法。给出了不同材料和流体组合的测量结果。

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