ITU-R REPORT M 2205-2010 Results of studies of the AM(R)S allocation in the band 960-1 164 MHz and of the AMS(R)S allocation in the band 5 030-5 091 MHz to support control and non-craf.pdf
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1、 Report ITU-R M.2205(11/2010)Results of studies of the AM(R)S allocation in the band 960-1 164 MHz and of the AMS(R)S allocation in the band5 030-5 091 MHz to support control andnon-payload communications links forunmanned aircraft systemsM SeriesMobile, radiodetermination, amateurand related satell
2、ite servicesii Rep. ITU-R M.2205 Foreword The role of the Radiocommunication Sector is to ensure the rational, equitable, efficient and economical use of the radio-frequency spectrum by all radiocommunication services, including satellite services, and carry out studies without limit of frequency ra
3、nge on the basis of which Recommendations are adopted. The regulatory and policy functions of the Radiocommunication Sector are performed by World and Regional Radiocommunication Conferences and Radiocommunication Assemblies supported by Study Groups. Policy on Intellectual Property Right (IPR) ITU-
4、R policy on IPR is described in the Common Patent Policy for ITU-T/ITU-R/ISO/IEC referenced in Annex 1 of Resolution ITU-R 1. Forms to be used for the submission of patent statements and licensing declarations by patent holders are available from http:/www.itu.int/ITU-R/go/patents/en where the Guide
5、lines for Implementation of the Common Patent Policy for ITU-T/ITU-R/ISO/IEC and the ITU-R patent information database can also be found. Series of ITU-R Reports (Also available online at http:/www.itu.int/publ/R-REP/en) Series Title BO Satellite delivery BR Recording for production, archival and pl
6、ay-out; film for television BS Broadcasting service (sound) BT Broadcasting service (television) F Fixed service M Mobile, radiodetermination, amateur and related satellite services P Radiowave propagation RA Radio astronomy RS Remote sensing systems S Fixed-satellite service SA Space applications a
7、nd meteorology SF Frequency sharing and coordination between fixed-satellite and fixed service systems SM Spectrum management Note: This ITU-R Report was approved in English by the Study Group under the procedure detailed in Resolution ITU-R 1. Electronic Publication Geneva, 2011 ITU 2011 All rights
8、 reserved. No part of this publication may be reproduced, by any means whatsoever, without written permission of ITU. Rep. ITU-R M.2205 1 REPORT ITU-R M.2205 Results of studies of the AM(R)S allocation in the band 960-1 164 MHz and of the AMS(R)S allocation in the band 5 030-5 091 MHz to support con
9、trol and non-payload communications links for unmanned aircraft systems (2010) TABLE OF CONTENTS Page 1 Introduction 3 2 Terminology . 4 3 Review of radiocommunication spectrum requirements 5 4 Principles applying to services allocations . 5 5 Criteria for evaluating candidate frequency bands . 7 6
10、Frequency bands under consideration 9 6.1 960-1 164 MHz terrestrial line-of-sight communications 9 6.2 5 030-5 091 MHz satellite communications . 10 7 Conclusions 10 Annex 1 Sharing study for UAS terrestrial line-of-sight communications in the band 960-1 164 MHz . 11 1 960-1 164 MHz allocations 11 2
11、 Existing in-band systems 12 2.1 DME and TACAN 17 2.2 Secondary surveillance radar and TCAS (1 030/1 090 MHz) 20 2.3 JTIDS and MIDS 22 2.4 UAT 22 2.5 Non-ICAO standardized aeronautical radionavigation system 23 2.5.1 Results of compatibility studies between UAS and non-ICAO ARNS stations in the 960-
12、1 164 MHz band 24 3 Potential in-band systems . 28 3.1 L-DACS1 28 2 Rep. ITU-R M.2205 Page 3.2 L-DACS2 29 4 Compatibility with GNSS Systems above 1 164 MHz 30 5 Summary of 960-1164 MHz sub-bands usages 30 6 Possible CNPC system architecture . 31 6.1 Preliminary design considerations 31 6.2 Statistic
13、al considerations 32 6.3 Detailed designs 33 6.3.1 Medium/large UAS system design 33 6.3.2 Small UAS system design 37 7 Conclusion 40 Annex 2 Sharing in the band 5 030-5 091 MHz between the international standard microwave landing system (MLS) and a satellite system of the aeronautical mobile-satell
14、ite (route) service (AMS(R)S) . 41 1 Introduction 41 2 Definition 41 3 Microwave landing system . 41 3.1 General architecture 41 3.2 MLS transmitter 44 3.3 MLS receiver 45 3.4 Protection criteria 47 4 Possible AMS(R)S system . 47 4.1 General architecture 47 4.2 Space segment 48 4.3 UA terminal segme
15、nt 49 4.4 Carrier bandwidth and frequency plan . 50 4.5 Link budgets . 51 5 Coexistence studies 53 5.1 Introduction . 53 5.2 General methodology 54 5.3 Single interferer analysis 55 5.3.1 Satellite to MLS (satellite to UA link, forward) 55 Rep. ITU-R M.2205 3 Page 5.3.2 MLS to UA (satellite to UA li
16、nk, forward) 57 5.3.3 UA to MLS (UA to satellite link, return) . 58 5.3.4 MLS to satellite (UA to satellite link, return) 61 5.4 Aggregation analysis 62 5.4.1 Satellite to MLS (satellite to UA link, forward) 62 5.4.2 MLS to UA (satellite to UA link, forward) 63 5.4.3 UA to MLS study (UA to satellite
17、 link, return) . 65 5.4.4 MLS to satellite (UA to satellite link, return) 67 5.5 Frequency planning constraints determination . 69 5.6 Frequency planning 70 6 Conclusion 72 Annex 3 Glossary 73 Objective Numerous unmanned aircraft (UA) applications have been demonstrated or are planned that will sign
18、ificantly increase the numbers of UA worldwide. With integration of UA into non-segregated airspace, it is essential that adequate spectrum be found to support UA operations. At the 2007 World Radiocommunication Conference (WRC-07), a new agenda item was approved for the WRC-12 to consider the spect
19、rum requirements for unmanned aircraft system (UAS) including the spectrum requirements for command and control and air traffic control (ATC) relay systems. This Report is focused on the study of the AM(R)S allocation in the bands 960-1 164 MHz and of the AMS(R)S allocation in the band 5 030-5 091 M
20、Hz to support CNPC links for UAS. 1 Introduction Significant growth is forecast in the UAS sector of aviation. The current state of the art in UAS design and operation is leading to the rapid development of UAS applications to fill many diverse requirements. The ability of UAs to effectively support
21、 long duration and hazardous missions, are key drivers in the development and deployment of increasing numbers of UAS applications. Though UA have traditionally been used in segregated airspace where separation from other air traffic can be assured, some administrations anticipate broad deployment o
22、f UA in non-segregated airspace shared with manned aircraft. If UA operate in a non-segregated civil airspace, they must be integrated safely and adhere to operational practices that provide an acceptable level of safety comparable to that of a conventional manned aircraft. In some cases, those prac
23、tices will be identical to those of manned aircraft. It should be noted that in certain countries a wide range of frequency bands have been used for control of the UA in segregated airspace for both line-of-sight (LoS) and beyond line-of-sight (BLoS). Currently, many of these bands do not have the s
24、afety aspect required to enable UA flight in non-segregated airspace. 4 Rep. ITU-R M.2205 Thus it is envisioned that UA will operate alongside manned aircraft in non-segregated airspace using methods of control that could make the location of the pilot transparent to air traffic control (ATC) author
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