ITU-R M 1477-2000 Technical and Performance Characteristics of Current and Planned Radionavigation-Satellite Service (Space-to-Earth) and Aeronautical Radionavigation Service Recei in .pdf
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1、 Rec. ITU-R M.1477 1 RECOMMENDATION ITU-R M.1477 TECHNICAL AND PERFORMANCE CHARACTERISTICS OF CURRENT AND PLANNED RADIONAVIGATION-SATELLITE SERVICE (SPACE-TO-EARTH) AND AERONAUTICAL RADIONAVIGATION SERVICE RECEIVERS TO BE CONSIDERED IN INTERFERENCE STUDIES IN THE BAND 1 559-1 610 MHz (Questions ITU-
2、R 91/8 and ITU-R 217/8) (2000) Rec. ITU-R M.1477 The ITU Radiocommunication Assembly, considering a) that Resolution 220 (WRC-97) calls for studying the technical criteria and operational and safety requirements to determine if sharing between aeronautical radionavigation/radionavigation satellite s
3、ervices (ARNS/RNSS) and MSS in the space-to-Earth direction is feasible in a portion of the band 1 559-1 567 MHz; b) that the band 1 559-1 610 MHz is allocated on a primary basis to RNSS (space-to-Earth) and ARNS; c) that Recommendations ITU-R M.1088 and ITU-R M.1317 provide characteristics and desc
4、riptions of several types of receivers that are used with the radionavigation-satellite systems, known as the GPS and the GLONASS; d) that there is an essential need to protect systems operating in the ARNS and RNSS in the band 1 559-1 610 MHz; e) that GPS and GLONASS navigation safety services exis
5、t for a variety of applications including aeronautical, land and marine applications, and that the use of these services will expand in the future; f) that any properly equipped earth station may receive navigation information from the GPS, GLONASS and other RNSS systems on a worldwide basis; g) tha
6、t the International Civil Aviation Organization (ICAO) is developing standards for the GNSS, whose elements include GPS and GLONASS; h) that the International Maritime Organization (IMO) requires ships to equip with RNSS for navigation in narrow waterways and for docking; j) that RR No. S4.10 states
7、 that the safety-of-life aspects of radionavigation and other safety services require special measures to ensure their freedom from harmful interference (see also RR No. S1.169), recognizing a) that there are a number of receivers of GPS and its augmentations used in safety-of-life applications that
8、 process the GPS signals in different ways as described in Annex 1, within the RNSS/ARNS band; b) that there are a number of receivers of GLONASS used in safety-of-life applications that process the GLONASS signals in different ways, as described in Annex 2, within the RNSS/ARNS band; c) that at the
9、 current time, the Standards and Recommended Practices (SARPs) of ICAO do not recognize, for use in aircraft, the use of the wideband signals of GPS or GLONASS, nor their use of carrier frequencies above 1 604.25 MHz, on a worldwide basis, after 2005; d) that there are a number of different existing
10、 and planned augmentations of GPS and GLONASS which support safety-of-life services in aeronautical and other environments; e) that there are a large number of non-aeronautical GNSS applications used in support of both safety-of-life and non-safety-of-life services; f) that Recommendation ITU-R M.13
11、43 defines the essential technical requirements of mobile earth stations (MESs) for global non-GSO MSS systems in the bands 1-3 GHz, 2 Rec. ITU-R M.1477 recommends 1 that the characteristics of the receivers described in Annexes 1 to 4 be used in performing interference analyses that include ARNS an
12、d RNSS in the band 1 559-1 610 MHz (see Note 1); 2 that a safety margin, as discussed in Annex 5, be applied for the protection of the safety-of-life aspects and applications of RNSS and ARNS, when performing interference analyses. NOTE 1 This Recommendation is not intended to be used to form the ba
13、sis for future modifications to maximum unwanted emission levels for the band 1 559-1 610 MHz that are stated in the Annexes to Recommen-dation ITU-R M.1343. The maximum unwanted emission levels for the band 1 559-1 610 MHz stated in Recommendation ITU-R M.1343 have been developed pursuant to a spec
14、ific interference scenario, and are not intended to be applied to any service other than MSS MESs operating in the 1-3 GHz range without further study. ANNEX 1 GPS receiver and signal characteristics 1 GPS receiver characteristics Several GPS receiver types are described in this Annex. There are thr
15、ee aeronautical receivers for which the requirements are relatively well developed. Each has its counterpart for land and/or marine applications, and it is intended that the characteristics stated in this Annex would apply to GPS receivers that are used in such applications. At this time it is not k
16、nown whether the non-aviation applications are more susceptible to interference or less, nor is it known how susceptible future applications will be, considering both the current GPS with its augmentations and evolutions of GPS. The first aeronautical receiver is a civil navigation receiver designed
17、 to provide category I precision approach guidance. It must meet the requirements of a satellite-based augmentation system (SBAS) specification. It must track both GPS satellites and SBAS satellites, which have GPS-like codes and transmit at the same centre frequency of 1 575.42 MHz. The SBAS signal
18、 is modulated with data using a symbol rate of 500 bit/s, which is then decoded with a convolutional decoding scheme to output information at a rate of 250 bit/s. The second aeronautical receiver is an air navigation receiver designed to provide Category II/III precision approach guidance. It must m
19、eet the requirements of a ground-based augmentation system (GBAS). It must track GPS satellites and pseudolites. Pseudolites are ground-based transmitters which emit a signal having the characteristics of GPS, but utilizing different spreading codes. There are wideband and narrow-band pseudolites cu
20、rrently under consideration. Wideband pseudolites emit a code similar to the Y code (see Note 1), thus the signal has the spectral characteristics of the Y code. The pseudolites are pulsed with a duty cycle of less than 4%. The narrow-band pseudolites emit a signal having C/A code characteristics, o
21、ffset from the L1 (L1 band is at 1 559-1 610 MHz) centre frequency by 10.23 MHz. They are pulsed, with a duty cycle of about 9%. NOTE 1 Y code is a modified P code, having the same chipping rate and spectral characteristics as that of the P code. The third receiver is a ground-based receiver which i
22、s used in SBAS operations to determine ionospheric delays. It is also used in non-SBAS ground applications. This receiver uses a semi-codeless technique that exploits a unique feature of the GPS architecture whereby the L1 and L2 (L2 band is at 1 215-1 260 MHz) Y code signals are cross-correlated to
23、 provide a measurement of signal delay at L2, thus making it possible to determine the signal delay due to the ionosphere. The cross-correlation scheme is made possible by the fact that the GPS L1 and L2 signals have identical codes. This receiver must acquire and track both GPS and SBAS satellites
24、at L1. Semi-codeless receivers are more sensitive to interference because they operate without benefit of knowing the Y code. In the following descriptions power levels at the antenna input refer to the power that would be received by an isotropic, circularly polarized antenna of the proper polarity
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