Title :
An advanced synthesized ultra-stable oscillator for spacecraft applications
Author :
Wallis, Robert E. ; Weaver, Gregory L. ; Reinhart, Matthew J. ; Cheng, Sheng
Author_Institution :
Appl. Phys. Lab., Johns Hopkins Univ., Laurel, MD, USA
Abstract :
Current ultra-stable oscillator (USO) technology relies on highly precise quartz resonators that are selected based on the desired output frequency and stability. These constraints on the crystal specifications significantly increase the lead time and expense of each USO. Recent research and development efforts in USOs by The Johns Hopkins University Applied Physics Laboratory (JHU/APL) have focused on a frequency synthesized USO based on a standardized, fixed-frequency resonator. The result of these efforts is a synthesized USO that will provide a frequency reference for transponders and other on-board users on future space missions. The frequency reference is stable enough for radio-science and navigation applications (Allan deviation <1.5 × 10-13 at τ = 10 s), and is electronically adjustable to cover the entire deep-space communications band. This frequency agility allows in flight re-assignment of the transponder frequencies. The synthesized USO offers low mass and DC power consumption yet maintains world-class noise performance and frequency stability performance.
Keywords :
crystal resonators; oscillators; space vehicle electronics; transponders; advanced synthesized ultra-stable oscillator; crystal specifications; deep-space communications band; fixed-frequency resonator; frequency agility; frequency reference; quartz resonators; space missions; spacecraft applications; transponder frequencies; Frequency synthesizers; Laboratories; Oscillators; Physics; Research and development; Space missions; Space technology; Space vehicles; Stability; Transponders;
Conference_Titel :
Aerospace Conference, 2005 IEEE
Conference_Location :
Big Sky, MT
Print_ISBN :
0-7803-8870-4
DOI :
10.1109/AERO.2005.1559386