ITU-R P 533-13-2015 Method for the prediction of the performance of HF circuits《高频电路性能的预测方法》.pdf
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1、 Recommendation ITU-R P.533-13 (07/2015) Method for the prediction of the performance of HF circuits P Series Radiowave propagation ii Rec. ITU-R P.533-13 Foreword The role of the Radiocommunication Sector is to ensure the rational, equitable, efficient and economical use of the radio-frequency spec
2、trum by all radiocommunication services, including satellite services, and carry out studies without limit of frequency range on the basis of which Recommendations are adopted. The regulatory and policy functions of the Radiocommunication Sector are performed by World and Regional Radiocommunication
3、 Conferences and Radiocommunication Assemblies supported by Study Groups. Policy on Intellectual Property Right (IPR) ITU-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 statem
4、ents and licensing declarations by patent holders are available from http:/www.itu.int/ITU-R/go/patents/en where the Guidelines 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 Recommendations (Also av
5、ailable online at http:/www.itu.int/publ/R-REC/en) Series Title BO Satellite delivery BR Recording for production, archival and play-out; film for television BS Broadcasting service (sound) BT Broadcasting service (television) F Fixed service M Mobile, radiodetermination, amateur and related satelli
6、te services P Radiowave propagation RA Radio astronomy RS Remote sensing systems S Fixed-satellite service SA Space applications and meteorology SF Frequency sharing and coordination between fixed-satellite and fixed service systems SM Spectrum management SNG Satellite news gathering TF Time signals
7、 and frequency standards emissions V Vocabulary and related subjects Note: This ITU-R Recommendation was approved in English under the procedure detailed in Resolution ITU-R 1. Electronic Publication Geneva, 2015 ITU 2015 All rights reserved. No part of this publication may be reproduced, by any mea
8、ns whatsoever, without written permission of ITU. Rec. ITU-R P.533-13 1 RECOMMENDATION ITU-R P.533-13 Method for the prediction of the performance of HF circuits* (1978-1982-1990-1992-1994-1995-1999-2001-2005-2007-2009-2012-2013-2015) Scope This Recommendation provides a method for the prediction of
9、 available frequencies, of signal levels and of the predicted reliability for both analogue and digital modulated systems at HF, taking into account not only the signal-to-noise ratio but also the expected time and frequency spreads of the channel. Keywords Ionosphere, HF, prediction The ITU Radioco
10、mmunication Assembly, considering a) that tests against ITU-R Data Bank D1 show that the method of Annex 1 of this Recommendation has comparable accuracy to the other more complex methods; b) that information on the performance characteristics of transmitting and receiving antennas is required for t
11、he practical application of this method1, recommends 1 that the information contained in Annex 1 should be used for the prediction of sky-wave propagation at frequencies between 2 and 30 MHz; 2 that administrations and ITU-R should endeavour to improve prediction methods to enhance operational facil
12、ities and to improve accuracy. * A computer program (ITURHFProp) associated with the prediction procedures described in this Recommendation is available from that part of the ITU-R website dealing with Radiocommunication Study Group 3. 1 Detailed information on a range of antennas with an associated
13、 computer program is available from the ITU; for details, see Recommendation ITU-R BS.705. 2 Rec. ITU-R P.533-13 Annex 1 Table of Contents Page 1 Introduction 4 PART 1 Frequency availability. 4 2 Location of control points. 4 3 Basic and operational maximum usable frequencies 4 3.1 Basic maximum usa
14、ble frequencies 4 3.2 E-layer critical frequency (foE) 4 3.3 E-layer basic MUF 6 3.4 F2-layer characteristics . 6 3.5 F2-layer basic MUF 6 3.6 Within the month probability of ionospheric propagation support 7 3.7 The path operational MUF 8 4 E-layer maximum screening frequency (fs) 8 PART 2 Median s
15、ky-wave field strength 9 5 Median sky-wave field strength . 9 5.1 Elevation angle . 9 5.2 Paths up to 9 000 km 11 5.3 Paths longer than 7 000 km 16 5.4 Paths between 7 000 and 9 000 km 20 6 Median available receiver power 21 PART 3 The prediction of system performance . 22 7 Monthly median signal-to
16、-noise ratio. 22 8 Sky-wave field strength, available receiver signal power and signal-to-noise ratios for other percentages of time 22 9 Lowest usable frequency (LUF) . 23 Rec. ITU-R P.533-13 3 Page 10 Basic circuit reliability (BCR) 23 10.1 The reliability of analogue modulated systems 23 10.2 The
17、 reliability of digitally modulated systems, taking account of the time and frequency spreading of the received signal 23 10.3 Equatorial scattering . 25 Attachment 1 to Annex 1 A model for equatorial scattering of HF signals 25 4 Rec. ITU-R P.533-13 1 Introduction This prediction procedure applies
18、a ray-path analysis for path lengths up to 7 000 km, composite mode empirical formulations from the fit to measured data beyond 9 000 km and a smooth transition between these two approaches over the 7 000-9 000 km distance range. Monthly median basic MUF, incident sky-wave field strength and availab
19、le receiver power from a lossless receiving antenna of given gain are determined. The method includes an estimation of the parameters of the channel transfer function for use for the prediction of performance of digital systems. Methods are given for the assessment of circuit reliability. Signal str
20、engths are standardized against an ITU-R measurement data bank. The method requires the determination of a number of ionospheric characteristics and propagation parameters at specified “control points”. In equatorial regions, in the evening hours (local time), it is possible to have distortions in t
21、he predicted results due to regional ionospheric structural instabilities which are not fully accounted for by this method. PART 1 Frequency availability 2 Location of control points Propagation is assumed to be along the great-circle path between the transmitter and receiver locations via E modes (
22、up to 4 000 km range) and F2 modes (for all distances). Depending on path length and reflecting layer, control points are selected as indicated in Table 1. 3 Basic and operational maximum usable frequencies The estimation of operational MUF, the highest frequency that would permit acceptable operati
23、on of a radio service, is in two stages: first, the estimation of basic MUF from a consideration of ionospheric parameters and second, the determination of a correction factor to allow for propagation mechanisms at frequencies above the basic MUF. 3.1 Basic maximum usable frequencies The basic MUFs
24、of the various propagation modes are evaluated in terms of the corresponding ionospheric layer critical frequencies and a factor related to hop length. Where both E and F2 modes are considered the higher of the two basic MUFs of the lowest-order E and F2 modes give the basic MUF for the path. 3.2 E-
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