论文标题

CarioQA:量子探路者任务的定义

CARIOQA: Definition of a Quantum Pathfinder Mission

论文作者

Lévèque, T., Fallet, C., Lefebve, J., Piquereau, A., Gauguet, A., Battelier, B., Bouyer, P., Gaaloul, N., Lachmann, M., Piest, B., Rasel, E., Müller, J., Schubert, C., Beaufils, Q., Santos, F. Pereira Dos

论文摘要

从基于冷原子干涉法(CAI)的惯性传感器的预期性能(CAI)的预期性能,预计空间应用的强大增益可以通过用激光光操纵它们来测量自由下落独立原子的加速度。在这种情况下,CNES及其合作伙伴启动了一项名为CarioQA的第0阶段研究,以开发量子探路者任务解锁原子干涉测量的关键特征,并为未来的雄心勃勃的空间任务铺平了利用这项技术的道路。作为在太空中实现量子传感器的基石,CarioQA阶段0旨在定义量子探路者任务的场景和相关的性能目标。为了遵守这些目标,有效载荷体系结构旨在在基于BEC的原子干涉仪上实现长时间的询问时间和主动旋转补偿。已经进行了包括所有子系统在内的卫星结构的研究。为了确保最佳的工作条件(微振动的限制,测量时间最大化),已经研究了一些用于推进和态度控制的技术解决方案。进行了卫星平台的初步设计。

A strong potential gain for space applications is expected from the anticipated performances of inertial sensors based on cold atom interferometry (CAI) that measure the acceleration of freely falling independent atoms by manipulating them with laser light. In this context, CNES and its partners initiated a phase 0 study, called CARIOQA, in order to develop a Quantum Pathfinder Mission unlocking key features of atom interferometry for space and paving the way for future ambitious space missions utilizing this technology. As a cornerstone for the implementation of quantum sensors in space, the CARIOQA phase 0 aimed at defining the Quantum Pathfinder Mission's scenario and associated performance objectives. To comply with these objectives, the payload architecture has been designed to achieve long interrogation time and active rotation compensation on a BEC-based atom interferometer. A study of the satellite architecture, including all the subsystems, has been conducted. Several technical solutions for propulsion and attitude control have been investigated in order to guarantee optimal operating conditions (limitation of micro-vibrations, maximization of measurement time). A preliminary design of the satellite platform was performed.

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