This monograph is intended for readers with minimal background in radio science who seek a relatively comprehensive treatment of the mission and technical aspects of an Earth-orbiting radio occultation satellite. Part 1 (chapters 1-6) describes mission concepts and programmatic information; Part 2 (chapters 7-12) deals with the theoretical aspects of analyzing and interpreting radio occultation measurements. In this mission concept the navigation signals from a Global Positioning System (GPS) satellite that is being occulted by the Earth's limb are observed by a GPS flight receiver on board a low Earth orbiter (LEO) satellite. This technique can be used to recover profiles of the Earth's atmospheric refractivity, pressure, and temperature using small, dedicated, and relatively low-cost space systems. Chapter 2 summarizes the basic space system concepts of the limb-sounding technique and describes a low-cost strawman demonstration mission. Chapter 3 discusses some of the scientific benefits of using radio occultation on a suite of small satellites. Chapter 4 provides a more detailed discussion of several system elements in a radio occultation mission, including the launch system for small payloads, the LEO microsat, the GPS constellation, the GPS flight receiver payload, the mission operations ground control and data receiving system, the ground-based GPS global tracking network for precision orbit determination, and the central data processing and archive system. Chapter 5 addresses the various technology readiness questions that invariably arise. Chapter 6 discusses the overall costs of a demonstration mission such as GPS/MET (meteorological) proposed by the University Navstar Consortium (UNAVCO). Chapter 7 describes a geometrical optics approach to coplanar atmospheric occultation. Chapter 8 addresses major questions regarding accuracy of the occultation techniques. Chapter 9 describes some simulations that have been performed to evaluate the sensitivity of the recovered profiles of atmospheric parameters to different error sources, such as departure from spherical symmetry, water vapor, etc. Chapter 10 discusses horizontal and vertical resolution associated with limb sounders in general. Chapter 11 treats selected Fresnel diffraction techniques that can be used in radio occultation measurements to sharpen resolution. Chapter 12 provides brief discussions on selected special topics, such as strategies for handling interference and multipath processes that may arise for rays traveling in the lower troposphere.


    Access

    Access via TIB

    Check availability in my library


    Export, share and cite



    The application of spaceborne GPS to atmospheric limb sounding and global change monitoring

    Melbourne, W. G. / Davis, E. S. / Duncan, C. B. et al. | NTRS | 1994


    Acative Atmospheric Limb Sounding with an Orbiting GPS

    Ware, R. / Exner, M. / Herman, B. et al. | NTRS | 1993


    CHAMP Rapid Orbit Determination for GPS Atmospheric Limb Sounding

    Konig, R. / Zhu, S. / Reigber, C. et al. | British Library Conference Proceedings | 2002


    A Dedicated Constellation For Global GPS Limb Sounding

    Leroy, S. S. / Srinivasan, J. / Yunck, T. P. et al. | NTRS | 1997


    Spaceborne low frequency radar sounding: an engineering perspective

    Safaeinili, A. / Jordan, R. L. / Johnson, W. T. K. | NTRS | 2001