Title :
Spacecraft jitter prediction using 6-DOF disturbance measurements
Author :
Carpenter, Bryce ; Martin, Oliver ; Hinkle, Jason
Author_Institution :
SpaceDev, Inc., Poway, CA
Abstract :
Recent trends in spacecraft development favor optical payloads with good resolution on low mass platforms with agile pointing capability. For a payload with good resolution, pointing stability is a key performance metric. However, as spacecraft inertia decreases, the payload line-of-sight stability becomes increasingly susceptible to disturbance inputs. In addition, as spacecraft agility increases there is a corresponding increase in disturbances from attitude control actuators. SpaceDev has developed a 6-DOF measurement platform, known as the hexapod reaction balance, to accurately measure disturbance inputs from attitude actuators. It is based on 6 force transducers that are mapped to force and moment measurements at 10 kHz. In addition, we have created a technique for reducing the data in the frequency domain and applying it to spacecraft structural models to predict system jitter. This paper discusses the system wide issues of creating a jitter prediction in the context of the SpaceDev Trailblazer satellite, which includes 4 reaction wheels as disturbance inputs and a finite element model of the structure. Data collection, data reduction, system modeling, and typical results are presented.
Keywords :
aircraft control; attitude control; finite element analysis; jitter; stability; transducers; 6-DOF disturbance measurement; SpaceDev Trailblazer satellite; attitude control actuator; finite element model; force transducer; hexapod reaction balance; payload line-of-sight stability; reaction wheel; spacecraft inertia; spacecraft jitter prediction; Actuators; Force measurement; Frequency domain analysis; Jitter; Payloads; Predictive models; Satellites; Space vehicles; Stability; Transducers;
Conference_Titel :
Aerospace conference, 2009 IEEE
Conference_Location :
Big Sky, MT
Print_ISBN :
978-1-4244-2621-8
Electronic_ISBN :
978-1-4244-2622-5
DOI :
10.1109/AERO.2009.4839539