SEARCH · Search NASA
Results for “NAVIGATION SATELLITE”
Search indexed NASA NTRS and DOE OSTI research on propulsion, heat transfer, battery materials and energy systems. Follow report and document links to the original sources.
Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.
Global navigation satellite system reflectometry (GNSS-R) algorithms for wetland observations
It is important to closely monitor the state of the world’s wetlands, as climate change and human encroachment in a rapid global urbanization trend threaten to cause large-scale wetland collapse. Because wetlands are often difficult to observe in situ, remote sensing is the only viable way to map wetland extent globally. However, current remote sensing methods suffer limitations in capturing wetland extent, and more importantly, wetland dynamics at appropriate spatial and temporal scales. GNSSReflectometry could help fill the current observation gap, as experimental data show that ground-reflected GNSS signals are very sensitive to changes in inundated areas. Furthermore, because this technique only requires a custom developed receiver and antenna system, a constellation of such instruments can potentially be launched at relatively low cost, providing global observations at sub-daily intervals. One challenge remains, however, which is quantitatively formulating the geophysical product of reflections over the land surface in various states of inundation. Here, we use a novel reflection dataset, derived from the SMAP radar receiver, to elucidate the sensitivity of reflections to small land surface features and their seasonal variations. Additionally, we quantify the dynamic range of reflections over both open and closed wetlands, and suggest an algorithm for wetland type classification.
Cyclone Global Navigation Satellite System (CYGNSS) Air-Sea Flux Applications
No abstract provided
Brazil Space Weather: Assessment of Space Weather Impact on Precision Agriculture Using the Global Navigation Satellite System in Brazilian Farms
Explore the source record for details and available documents.
Assessing the ducting phenomenon and its potential impact on Global Navigation Satellite System (GNSS) radio occultation refractivity retrievals over the northeast Pacific Ocean using radiosondes and global reanalysis
Explore the source record for details and available documents.
NON-MILITARY NAVIGATION BY SATELLITES
Nonmilitary navigation by satellites - transit satellites - meteorological satellites
The general utility and character of prospective navigation services satellite systems.
Navigation services satellite systems including position determination, communication and telemetry for ships and aircraft
Navigation experiment utilizing Relay II SATELLITE
Navigation experiment using Relay II satellite ranging measurements
Ionospheric Delay Compensation Using a Scale Factor Based on an Altitude of a Receiver
In one embodiment, a method for ionospheric delay compensation is provided. The method includes determining an ionospheric delay based on a signal having propagated from the navigation satellite to a location below the ionosphere. A scale factor can be applied to the ionospheric delay, wherein the scale factor corresponds to a ratio of an ionospheric delay in the vertical direction based on an altitude of the satellite navigation system receiver. Compensation can be applied based on the ionospheric delay.
Examining satellite techniques for navigation systems.
Satellite navigation systems for marine and aircraft industry global, all-weather position determination and communications noting range measurement, range rate, NASA techniques, etc
Linked Autonomous Interplanetary Satellite Orbit Navigation
A navigation technology known as LiAISON (Linked Autonomous Interplanetary Satellite Orbit Navigation) has been known to produce very impressive navigation results for scenarios involving two or more cooperative satellites near the Moon, such that at least one satellite must be in an orbit significantly perturbed by the Earth, such as a lunar halo orbit. The two (or more) satellites track each other using satellite-to-satellite range and/or range-rate measurements. These relative measurements yield absolute orbit navigation when one of the satellites is in a lunar halo orbit, or the like. The geometry between a lunar halo orbiter and a GEO satellite continuously changes, which dramatically improves the information content of a satellite-to-satellite tracking signal. The geometrical variations include significant out-of-plane shifts, as well as inplane shifts. Further, the GEO satellite is almost continuously in view of a lunar halo orbiter. High-fidelity simulations demonstrate that LiAISON technology improves the navigation of GEO orbiters by an order of magnitude, relative to standard ground tracking. If a GEO satellite is navigated using LiAISON- only tracking measurements, its position is typically known to better than 10 meters. If LiAISON measurements are combined with simple radiometric ground observations, then the satellite s position is typically known to better than 3 meters, which is substantially better than the current state of GEO navigation. There are two features of LiAISON that are novel and advantageous compared with conventional satellite navigation. First, ordinary satellite-to-satellite tracking data only provides relative navigation of each satellite. The novelty is the placement of one navigation satellite in an orbit that is significantly perturbed by both the Earth and the Moon. A navigation satellite can track other satellites elsewhere in the Earth-Moon system and acquire knowledge about both satellites absolute positions and velocities, as well as relative positions and velocities in space. The second novelty is that ordinarily one requires many satellites in order to achieve full navigation of any given customer s position and velocity over time. With LiAISON navigation, only a single navigation satellite is needed, provided that the satellite is significantly affected by the gravity of the Earth and the Moon. That single satellite can track another satellite elsewhere in the Earth- Moon system and obtain absolute knowledge of both satellites states.
NON-MILITARY NAVIGATION BY SATELLITES
Discussion of the various economic and technical considerations involved in the civilian application of the transit navigation satellite system
Study of a multipath rejection technique applied to aircraft navigation by satellite Final report
Aircraft rejection of diffuse multipath interference from air navigation satellites
A satellite system for radio navigation.
Radio navigation satellite system for aircraft, ships and land equipment providing position data at low cost in all weather
Navigation by satellite using two-way range and doppler data
Navigation by satellite using two-way range and Doppler data
Navigation and communication experiment at L-band on board S. S. Manhattan using ATS-5 satellite
Navigation and communication experiment at L band on board S.S. Manhattan using ATS-5 satellite with biphase PSK modulation of three tones for ranging