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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Mercury Ion Clock for a NASA Technology Demonstration Mission
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Mercury Ion Clock for a NASA Technology Demonstration Mission

机译:用于NASA技术示范任务的水银离子钟

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There are many different atomic frequency standard technologies but only few meet the demanding performance, reliability, size, mass, and power constraints required for space operation. The Jet Propulsion Laboratory is developing a linear ion-trap-based mercury ion clock, referred to as DSAC (Deep-Space Atomic Clock) under NASA’s Technology Demonstration Mission program. This clock is expected to provide a new capability with broad application to space-based navigation and science. A one-year flight demonstration is planned as a hosted payload following an early 2017 launch. This first-generation mercury ion clock for space demonstration has a volume, mass, and power of 17 L, 16 kg, and 47 W, respectively, with further reductions planned for follow-on applications. Clock performance with a signal-to-noise ratio (SNR)*Q limited stability of $1.5{rm E}-13/tau^{1/2}$ has been observed and a fractional frequency stability of 2E–15 at one day measured (no drift removed). Such a space-based stability enables autonomous timekeeping of $Delta t < 0.2,{rm ns/day}$ with a technology capable of even higher stability, if desired. To date, the demonstration clock has been successfully subjected to mechanical vibration testing at the $14,{rm g}_{rm rms}$ level, thermal-vacuum operation over a range of $42^circ{rm C}$, and electromagnetic susceptibility tests.
机译:有许多不同的原子频率标准技术,但只有极少数能满足太空运行所需的苛刻性能,可靠性,尺寸,质量和功率限制。喷气推进实验室正在开发一种基于线性离子阱的汞离子时钟,在NASA的技术示范任务计划下被称为DSAC(深空原子钟)。该时钟有望提供一种新功能,并广泛应用于天基导航和科学领域。在2017年初发射后,计划作为托管有效载荷进行为期一年的飞行演示。这款用于太空演示的第一代汞离子时钟的体积,质量和功率分别为17 L,16 kg和47 W,并计划进一步减少其后续应用。观察到时钟性能具有信噪比(SNR)* Q限制为$ 1.5 {rm E} -13 / tau ^ {1/2} $的稳定性,并且在一天中测得的分数频率稳定性为2E-15 (不消除漂移)。这样的基于天基的稳定性,如果需要的话,可以使用具有更高稳定性的技术实现$ t t <0.2,{rm ns / day} $的自主计时。迄今为止,该演示时钟已成功进行了14美元的机械振动测试,水平在42美元范围内的热真空操作以及电磁敏感性测试。

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