论文标题

单元素双重攻击计,用于精确惯性感应

Single-element dual-interferometer for precision inertial sensing

论文作者

Yang, Yichao, Yamamoto, Kohei, Huarcaya, Victor, Vorndamme, Christoph, Penkert, Daniel, Barranco, Germán Fernández, Schwarze, Thomas S, Delgado, Juan Jose Esteban, Mehmet, Moritz, Jia, Jianjun, Heinzel, Gerhard, Álvarez, Miguel Dovale

论文摘要

在许多当前和未来的引力物理实验中,以高精度和较大的动态范围的几个自由度跟踪移动质量是一个核心方面。激光干涉仪已被确定为此类测量方案的首选工具之一。使用正弦相调制的同源性干涉法可以大大降低光学设置的复杂性,这是多通道干涉仪的关键限制。通过将设置的复杂性转移到信号处理阶段,这些方法可以使用常规技术具有尺寸和重量的设备。在本文中,我们介绍了一种基于深度频率调制干涉仪的新型传感器拓扑的设计:自我引用的单元素双式二重式运动仪(SEDI)惯性传感器,该传感器通过在一项Optic中容纳两个干涉仪,将简化的一步进一步简化。使用计算机模型和分析方法的组合,我们表明的是,在几立方英寸的包装中,具有以上频率为10 MHz的频率的惯性传感器似乎是可行的。此外,我们表明,通过将这些设备中的两个结合在一起,可以将亚贵计精度降至2 MHz。结合给定的紧凑性,这使得SEDI传感器成为了高精度惯性感测的有前途的方法,用于采用无阻力控制的下一代空间重力任务,以及采用光学读数的惯性隔离系统的地面实验。

Tracking moving masses in several degrees of freedom with high precision and large dynamic range is a central aspect in many current and future gravitational physics experiments. Laser interferometers have been established as one of the tools of choice for such measurement schemes. Using sinusoidal phase modulation homodyne interferometry allows a drastic reduction of the complexity of the optical setup, a key limitation of multi-channel interferometry. By shifting the complexity of the setup to the signal processing stage, these methods enable devices with a size and weight not feasible using conventional techniques. In this paper we present the design of a novel sensor topology based on deep frequency modulation interferometry: the self-referenced single-element dual-interferometer (SEDI) inertial sensor, which takes simplification one step further by accommodating two interferometers in one optic. Using a combination of computer models and analytical methods we show that an inertial sensor with sub-picometer precision for frequencies above 10 mHz, in a package of a few cubic inches, seems feasible with our approach. Moreover we show that by combining two of these devices it is possible to reach sub-picometer precision down to 2 mHz. In combination with the given compactness, this makes the SEDI sensor a promising approach for applications in high precision inertial sensing for both next-generation space-based gravity missions employing drag-free control, and ground-based experiments employing inertial isolation systems with optical readout.

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