Engineering topics
Spero, R.
Publications and source records attributed to Spero, R..
Flight Phasemeter on the Laser Ranging Interferometer on the GRACE Follow-On Mission
As the first inter-spacecraft laser interferometer, the Laser Ranging Interferometer (LRI) on the GRACE Follow-On Mission will demonstrate interferometry technology relevant to the LISA mission. This paper focuses on the completed LRI Laser Ranging Processor (LRP), which includes heterodyne signal phase tracking at µcycle/vHz precision, differential wavefront sensing, offset frequency phase locking and Pound-Drever-Hall laser stabilization. The LRI design has characteristics that are similar to those for LISA: 1064nm NPRO laser source, science bandwidth in the mHz range, MHz-range intermediate frequency and Doppler shift, detected optical power of tens of picoWatts. Laser frequency stabilization has been demonstrated at a level below 30 Hz/vHz, better than the LISA requirement of 300 Hz/vHz. The LRP has completed all performance testing and environmental qualification and has been delivered to the GRACE Follow-On spacecraft. The LRI is poised to test the LISA techniques of tone-assisted time delay interferometry and arm-locking. GRACE Follow-On launches in 2017.
Flight-Like Optical Reference Cavity for GRACE Follow-On Laser Frequency Stabilization
We describe a prototype optical cavity and associated optics that has been developed to provide a stable frequency reference for a future space-based laser ranging system. This instrument is being considered for inclusion as a technology demonstration on the recently announced GRACE follow-on mission, which will monitor variations in the Earth's gravity field.
Laser Frequency Stabilization for GRACE-II
The GRACE mission monitors changes in the Earth's gravity field by measuring changes in the distance between spacecraft induced by that changing field. The distance variation is measured with a microwave ranging system with sub-micron accuracy. The ranging measurement accuracy is limited by the signal-to-noise ratio and by the frequency stability of the microwave signal referenced to an ultra-stable oscillator (USO). For GRACE-2 a laser ranging system is envisioned with accuracy better than the GRACE microwave ranging system. A laser ranging system easily provides an improved signal-to-noise ratio over the microwave system. Laser frequency stability better than the GRACE USO stability has been demonstrated in several laboratories using thermally stabilized optical cavities. We are developing a space-qualifiable optical cavity and associated optics and electronics for use on GRACE-2 to provide a stable frequency reference for the laser ranging system. Two breadboard units have been developed and tested for performance and ability to survive launch and orbit environments. A prototype unit is being designed using lessons learned from tests of the breadboard units.
Nominal frequency allocation plan for LISA
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Automatic alignment of the heterodyne interferometer for SI
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Disturbance reduction system: testing technology for precision formation control
The Disturbance Reduction System (DRS) is a space technology demonstration within NASA's New Millenium Program.
LISA laser noise cancellation test using time-delayed interferometry
We describe a laboratory test of TDI with an unequal arm interferometer. The intent is to ascertain the performance limitations and proof-of-concept for 6 orders of magnitude frequency noise suppression.
Techniques for the reduction of cyclic errors in laser metroogy gauges for the space interferometry mission
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Techniques for the reduction of cyclic errors in laser metrology gauges for the space interferometry mission
This paper discusses the techniques for the reduction of cyclic errors in laser metrology gauges for the space interferometry mission.
Progress Towards Picometer Accuracy Laser Metrology for the Space Interferometry
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Progress towards picometer accuracy laser metrology for the space interferometry mission
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Progress towards picometer accuracy laser meteorology for the Space Interferometry Mission
The Space Interferometry Mission is an optical stellar interferometer with a 10 meter baseline capable of micro-arcsecond accuracy astrometry.