Title :
On initial alignment methods for manned Lunar Ascent Module
Author :
Qingzhe Wang ; Ping Wang ; LinLi Guo ; Zhihong Deng
Author_Institution :
Inst. of Manned Space Syst. Eng., China Acad. of Space Technol., Beijing, China
Abstract :
Since the orbit injection accuracy of the Lunar Lander Ascent Module (LLAM) is largely determined by the accuracy of inertial navigation system (INS), an accurate alignment of INS is crucial and needed to be implemented before LLAM leaves the lunar surface. Lunar alignment differs from ground alignment in low rotational rate and gravity. To provide satisfying results, new alignment methods should be adopted. In this paper, a novel technique named star tracker aided alignment is proposed which combines inertial and stellar observations using a Kalman filter algorithm. Performance of the approach is compared with that of traditional self-alignment method using simulation data. The results show that the star tracker aided alignment can effectively estimate the misalignment angels. Besides, the gyro accuracy deeply affects the heading accuracy of self-alignment method, while having no influence on star tracker aided alignment.
Keywords :
Kalman filters; inertial navigation; space vehicles; star trackers; INS alignment; Kalman filter algorithm; LLAM; ground alignment; gyro accuracy; inertial navigation system; inertial observations; initial alignment methods; lunar alignment; manned lunar ascent module; orbit injection accuracy; star tracker aided alignment; star tracker aided alignment technique; stellar observations; Accuracy; Equations; Kalman filters; Mathematical model; Moon; Navigation; Velocity measurement; Manned lunar landing; inertial navigation system; initial alignment; star tracker;
Conference_Titel :
Control Conference (ASCC), 2013 9th Asian
Conference_Location :
Istanbul
Print_ISBN :
978-1-4673-5767-8
DOI :
10.1109/ASCC.2013.6606271