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Toward a spaceworthy picometer laser gauge

机译:迈向太空飞船皮表激光计

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Metrology will be an enabling technology for a new generation of astronomical missions having large and distributed apertures and delivering unprecedented performance. The x-ray interferometer Black Hole Imager, the UV interferometer Stellar Imager, and other missions will require measurements of incremental distance as accurate as 0.1 picometer, and absolute distance capability. Our Tracking Frequency laser distance Gauge (TFG) was developed a decade ago for a NASA-funded study of a spaceborne astronomical interferometer. It has achieved an accuracy of 10 picometer with a 0.1 second averaging time, and 2 picometer in 1 minute. The standard approach, the heterodyne gauge, displays nanometer-scale cyclic bias, whose mitigation has been the subject of much effort. Our approach is free of that bias and can measure absolute distance with little or no additional hardware. It provides the option of operation with a resonant optical cavity, which in many applications would provide increased accuracy of both incremental and absolute distance. We plan to develop a next-generation laser gauge based on our unique and successful architecture. We will improve incremental and absolute distance accuracy, increase sample and readout rates, and establish a capability for measuring long distances. The new TFG will use solid-state lasers and fiber-connected components in place of a HeNe laser and free-space beams. We expect that the new TFG will have low replication cost and be rugged, modular, and easy to set up. It will employ components that are likely to be space qualifiable.
机译:计量学将成为新一代天文任务的使能技术,这些天文任务具有大而分散的孔径并提供空前的性能。 X射线干涉仪黑洞成像仪,紫外线干涉仪Stellar成像仪和其他任务将需要测量增量距离(精确到0.1皮克)和绝对距离功能。我们的跟踪频率激光测距仪(TFG)是十年前开发的,用于NASA资助的一项太空天文干涉仪研究。它以0.1秒的平均时间实现了10皮米的精度,并在1分钟内达到了2皮米的精度。外差规是标准方法,它显示出纳米级的循环偏差,其缓解一直是许多工作的主题。我们的方法摆脱了这种偏见,可以在几乎没有附加硬件的情况下测量绝对距离。它提供了使用谐振光腔的操作选项,在许多应用中,这将提高增量距离和绝对距离的精度。我们计划根据我们独特而成功的架构开发下一代激光测距仪。我们将提高增量和绝对距离精度,提高采样率和读出率,并建立测量长距离的能力。新的TFG将使用固态激光器和光纤连接的组件代替HeNe激光器和自由空间光束。我们希望新的TFG具有较低的复制成本,并且坚固,模块化且易于安装。它将使用可能符合空间要求的组件。

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