Luria Omer, Elgarisi Mor, Frumkin Valeri, Razin Alexey, Ericson Jonathan, Gommed Khaled, Widerker Daniel, Gabay Israel, Belikov Ruslan, Bookbinder Jay, Balaban Edward, Bercovici Moran
Faculty of Mechanical Engineering, Technion - Israel Institute of Technology, Haifa, Israel.
Department of Mathematics, Massachusetts Institute of Technology, Cambridge, MA, USA.
NPJ Microgravity. 2023 Sep 11;9(1):74. doi: 10.1038/s41526-023-00309-9.
In the absence of gravity, surface tension dominates over the behavior of liquids. While this often poses a challenge in adapting Earth-based technologies to space, it can also provide an opportunity for novel technologies that utilize its advantages. In particular, surface tension drives a liquid body to a constant-mean-curvature shape with extremely smooth surfaces, properties which are highly beneficial for optical components. We here present the design, implementation and analysis of parabolic flight experiments demonstrating the creation and in-situ measurement of optical lenses made entirely by shaping liquids in microgravity. We provide details of the two experimental systems designed to inject the precise amount of liquid within the short microgravity timeframe provided in a parabolic flight, while also measuring the resulting lens' characteristics in real-time using both resolution target-imaging and Shack-Hartmann wavefront sensing. We successfully created more than 20 liquid lenses during the flights. We also present video recordings of the process, from the lenses' creation during microgravity and up until their collapse upon return to gravity. The work thus demonstrates the feasibility of creating and utilizing liquid-based optics in space.
在没有重力的情况下,表面张力在液体行为中起主导作用。虽然这常常给将基于地球的技术应用于太空带来挑战,但它也为利用其优势的新技术提供了机会。特别是,表面张力将液体驱向具有极其光滑表面的恒定平均曲率形状,这些特性对光学元件非常有益。我们在此展示抛物线飞行实验的设计、实施和分析,该实验证明了在微重力环境下通过塑造液体完全制造光学透镜并进行原位测量。我们详细介绍了两个实验系统,它们旨在在抛物线飞行提供的短微重力时间范围内注入精确量的液体,同时使用分辨率目标成像和夏克 - 哈特曼波前传感实时测量所得透镜的特性。在飞行过程中,我们成功制造了20多个液体透镜。我们还展示了该过程的视频记录,从微重力环境下透镜的制造到返回重力环境后它们的坍塌。这项工作因此证明了在太空中制造和利用基于液体的光学器件的可行性。