The main goal of this PhD thesis is the development and performance assessment of innovative techniques for the autonomous navigation of aerospace platforms by exploiting data acquired by electro-optical sensors. Specifically, the attention is focused on active LIDAR systems since they globally provide a higher degree of autonomy with respect to passive sensors. Two different areas of research are addressed, namely the autonomous relative navigation of multi-satellite systems and the autonomous navigation of Unmanned Aerial Vehicles. The global aim is to provide solutions able to improve estimation accuracy, computational load, and overall robustness and reliability with respect to the techniques available in the literature. In the space field, missions like on-orbit servicing and active debris removal require a chaser satellite to perform autonomous orbital maneuvers in close-proximity of an uncooperative space target. In this context, a complete pose determination architecture is here proposed, which relies exclusively on three-dimensional measurements (point clouds) provided by a LIDAR system as well as on the knowledge of the target geometry. Customized solutions are envisaged at each step of the pose determination process (acquisition, tracking, refinement) to ensure adequate accuracy level while simultaneously limiting the computational load with respect to other approaches available in the literature. Specific strategies are also foreseen to ensure process robustness by autonomously detecting algorithms' failures. Performance analysis is realized by means of a simulation environment which is conceived to realistically reproduce LIDAR operation, target geometry, and multi-satellite relative dynamics in close-proximity. An innovative method to design trajectories for target monitoring, which are reliable for on-orbit servicing and active debris removal applications since they satisfy both safety and observation requirements, is also presented. On the other hand, the problem of localization and mapping of ...


    Zugriff

    Download


    Exportieren, teilen und zitieren



    Titel :

    Advanced LIDAR-based techniques for autonomous navigation of spaceborne and airborne platforms


    Beteiligte:

    Erscheinungsdatum :

    30.03.2016


    Anmerkungen:

    Opromolla, Roberto (2016) Advanced LIDAR-based techniques for autonomous navigation of spaceborne and airborne platforms. [Tesi di dottorato]


    Medientyp :

    Hochschulschrift


    Format :

    Elektronische Ressource


    Sprache :

    Italienisch , Englisch


    Klassifikation :

    DDC:    620 / 629



    Electro Optic Systems on Airborne and Spaceborne Platforms

    Oron, M. / Dan Knassim | British Library Conference Proceedings | 2001


    Laser Test Techniques for Spaceborne LIDAR Instruments

    Pettazzi, F. / Alves, J. / Tighe, A.P. et al. | British Library Conference Proceedings | 2012


    Autonomous and Advanced Navigation Techniques

    Regnier, P. / Vaillon, L. / Strandmoe, S. et al. | British Library Conference Proceedings | 2000


    Mechanisms for atmospheric research by spaceborne LIDAR techniques

    Heimel, H. / Hettlage, E. | British Library Online Contents | 1995


    Mechanisms for atmospheric research by spaceborne LIDAR techniques

    Heimel, H. / Hettlage, E. / European Space Agency| Swiss Space Industries | British Library Conference Proceedings | 1995