Title :
Miniature Control Moment Gyroscope development
Author :
Mumm, E. ; Davis, Kyle ; Mahin, Matt ; Neal, Devin ; Hayes, Roy
Author_Institution :
Honeybee Robot. Spacecraft Mechanisms Corp., Longmont, CO, USA
Abstract :
Honeybee Robotics Spacecraft Mechanisms Corporation has developed a Control Moment Gyroscope product suitable for small spacecraft. Each individual CMG exhibits a nominal angular momentum of 56 mNm-s with a peak of 86 mNm-s, and corresponding output torques of 112 mNm and 172 mNm respectively. Each unit measures 48 × 48 × 91 mm and weighs 600 grams. The control electronics are capable of driving 4 CMGs and executing a steering law to synthesize individual actuator commands from a torque triple or torque quaternion command. The industry will see an increasing role in the near future for small satellites in the 20-100 kg size range. We frame the CMG array capability by presenting a baseline application - using the Coral Reef Ecosystem Spectro-Photometric Observatory (CRESPO) mission concept (100 kg satellite) combined with requirements for the Hyperspectral Imager for the Coastal Ocean (HICO) on the International Space Station. We show how a small CMG array is capable of the representative slew maneuvers by exceeding the necessary slew rates of 0.75 deg/s for a “Soak and Shoot” flight plan, with maximum slew rates in excess of 1.5 deg/s. This paper will discuss the demonstrated performance of the system, including environmental test results, and the baseline application.
Keywords :
aerospace robotics; gyroscopes; space vehicles; CMG array capability; CRESPO; HICO; coral reef ecosystem spectro-photometric observatory mission concepr; honeybee robotics spacecraft mechanisms corporation; hyperspectral imager for the coastal ocean; individual actuator commands; miniature control moment gyroscope development; small spacecraft; torque quaternion command; torque triple; Actuators; Attitude control; Gyroscopes; Image resolution; Imaging; Jitter; Torque;
Conference_Titel :
Aerospace Conference, 2014 IEEE
Conference_Location :
Big Sky, MT
Print_ISBN :
978-1-4799-5582-4
DOI :
10.1109/AERO.2014.6836474