Precision attitude determination for multimission spacecraft
Высокоточное определение ориентации многозадачного космического аппарата
1978-08-07
SCID: 54.1/z5dnd7vj
Discuss with AI
Kalman filteringlinear covariance analysismultimission spacecraftprecision attitude determinationstar trackers
Figures from the paper
Abstract (AI)
Attitude determination algorithms for a multimission spacecraft are derived and their performance analyzed. The attitude determination system is composed of a strapdown Inertial Reference Unit (IRU), two fixed head star trackers, and an onboard computer. IRU data is processed to maintain real-time knowledge of spacecraft attitude relative to an inertial reference frame. Star tracker data is processed using Kalman filtering techniques to estimate and correct the attitude determination errors and the gyro drift compensation errors. The results of a star availability analysis for stellar, solar and earth pointing missions are presented. Linear covariance analysis techniques are used to evaluate nominal attitude determination performance, the effects of sensor measurement accuracy variations, the effects of errors in knowledge of sensor measurement accuracy, and the effects of star tracker misalignment errors. Results of a nonlinear simulation analysis of attitude determination performance are also presented. These analyses show that precision attitude determination for stellar, solar and earth pointing missions is achieved.
Key Findings
1
Kalman filtering of star-tracker measurements estimates and corrects attitude errors while compensating for inertial-gyro drift.
2
Linear covariance and nonlinear simulation analyses assess nominal performance and sensitivity to sensor-accuracy variations, accuracy-knowledge errors, and star-tracker misalignment.
3
Star-availability analysis evaluates observability for stellar-, solar-, and Earth-pointing missions.
4
The analyses demonstrate that precision attitude determination is achievable for stellar-, solar-, and Earth-pointing missions.
5
The paper derives and analyzes attitude-determination algorithms for a multimission spacecraft using an IRU, two fixed-head star trackers, and an onboard computer.
Research Object
multimission spacecraft attitude determination system
Research Subject
precision attitude determination performance, including estimation and correction of attitude and gyro-drift errors under stellar, solar, and Earth-pointing mission conditions
Publication Details
Publication Date
1978-08-07
Journal
Publisher
ISSN
Access Type
Author Information
Download PDF
Subscribe to digest