DocumentCode
1112146
Title
High accuracy navigation and landing system using GPS/IMU system integration
Author
Meyer-Hilberg, Jochen ; Jacob, Thomas
Author_Institution
Airborne Syst., Deutsche Aerosp. AG, Ulm, Germany
Volume
9
Issue
7
fYear
1994
fDate
7/1/1994 12:00:00 AM
Firstpage
11
Lastpage
17
Abstract
In this paper, the accuracy, integrity and continuity of function requirements for automatic landing systems using satellite navigation systems are discussed. Such a landing system is the integrated navigation and landing system (INLS) developed by Deutsche Aerospace (DASA/Ulm, Germany). The system concepts of the INLS are presented. It is shown how an INLS, based on system integration of a satellite navigation system (e.g., GPS) in realtime differential mode with an inertial measurement unit (IMU) in the accuracy class of an attitude and heading reference system (AHRS), can meet the requirements: the results given are mainly devoted to the accuracy issues. Using Kalman filter techniques, an in-flight calibration of the IMU is performed. The advantage of system integration, especially in dynamic flight conditions and during phases of flight with satellite masking, is explained. The accuracy, integrity and continuity of function of the INLS were proven by means of flight tests in a commuter aircraft using a laser tracker as a reference. These flight tests have shown that the short-term accuracy (<60 seconds) of the AHRS used within the INLS has been improved from low cost sensor quality to the accuracy of a high quality laser inertial navigation system (LNIS). With the presented INLS, a landing at any airfield, not equipped with conventional Instrument Landing System (ILS) or Microwave Landing System (MLS), is possible by using a very cost effective system. The INLS is a high accuracy navigation and landing system designed to be used instead of conventional landing systems at small airfields and to fill operational gaps of conventional navigation and landing systems in cruise and approach on large airports.<>
Keywords
Kalman filters; aerospace testing; calibration; inertial navigation; laser ranging; radionavigation; satellite relay systems; Deutsche Aerospace; GPS; GPS/IMU system integration; Kalman filter; accuracy; airfields; attitude and heading reference system; automatic landing systems; continuity; dynamic flight conditions; high accuracy navigation; in-flight calibration; inertial measurement unit; integrity; landing; laser inertial navigation; satellite navigation; satellite navigation systems; system integration; Aerodynamics; Aircraft navigation; Calibration; Costs; Global Positioning System; Masers; Measurement units; Satellite navigation systems; Sensor systems; System testing;
fLanguage
English
Journal_Title
Aerospace and Electronic Systems Magazine, IEEE
Publisher
ieee
ISSN
0885-8985
Type
jour
DOI
10.1109/62.295117
Filename
295117
Link To Document