ITU-R S 446-4-1993 Carrier Energy Dispersal for Systems Employing Angle Modulation by Analogue Signals or Digital Modulation in the Fixed-Satellite Service《固定卫星业务中使用模拟信号角度调制或数字调制的系.pdf
《ITU-R S 446-4-1993 Carrier Energy Dispersal for Systems Employing Angle Modulation by Analogue Signals or Digital Modulation in the Fixed-Satellite Service《固定卫星业务中使用模拟信号角度调制或数字调制的系.pdf》由会员分享,可在线阅读,更多相关《ITU-R S 446-4-1993 Carrier Energy Dispersal for Systems Employing Angle Modulation by Analogue Signals or Digital Modulation in the Fixed-Satellite Service《固定卫星业务中使用模拟信号角度调制或数字调制的系.pdf(19页珍藏版)》请在麦多课文档分享上搜索。
1、CCIR RECMNa44b-4 93 m 4855232 O520933 856 m 32 Rec. ITU-R S.446-4 RECOMMENDATION ITU-R S.446-4* CARRIER ENERGY DISPERSAL FOR SYSTEMS EMPLOYING ANGLE MODULATION BY ANALOGUE SIGNALS OR DIGITAL MODULATION IN THE FIXED-SATELLITE SERVICE (1966- 1974- 1978- 1992- 1993) The ITU Radiocommunication Assembly,
2、 considering a) that use of carrier energy dispersai techniques in systems in the fixed-satellite service can result in a substantial reduction of interference to stations of a terrestrial service operating in the same frequency bands; b) that in many cases the use of such techniques can result in a
3、 moderate to substantial reduction in the level of interference between systems in the fixed-sateiite service operating in the same frequency bands, although in other cases the use of such techniques may not reduce the level of interference between such systems; cl that such techniques are being reg
4、ularly and successfully employed in systems in the fixed-satellite service without noticeable deterioration of the quality of operation; 4 that Recommendation No. 103, relating to canier energy dispersal in systems in the fixed-satellite service, was adopted by the World Administrative Radio Confere
5、nce for Space Telecommunications (Geneva, 1979); e) that performance evaluation of various techniques of FM-TV signal dispersion is given in Annex 1 to Recommendation ITU-R S.671*, recommends 1. that systems in the fixed-satellite service should use carrier energy dispersai techniques, as far as is
6、practicable and in a manner consistent with satisfactory operation of the systems, with a view to spreading energy such that the interference to stations of a terrestrial service operating in the same frequency bands is maintained within specified tolerable limits at all times; 2. that the capabilit
7、y for carrier energy dispersai up to the maximum degree practicable should be included in the design of satellite systems to be available for implementation when necessary to maintain a reduced level of interference between systems in the fixed-satellite service operating in the same frequency bands
8、; 3. Note I - Annex 1 describes various dispersion techniques for use with FM analogue and PSK digital signals which can be recommended for practical utilization. that the following Note should be regarded as part of this Recommendation. ANNEX 1 Energy dispersal in the fixed-satellite service 1. Int
9、roduction It is clear from studies of frequency sharing between the fixed-satellite service and terrestrial radio-relay systems and between different fixed-satellite networks that, to ensure that mutual interference between the systems is kept to a tolerable level, it will be essential in most cases
10、 to use energy dispersai techniques to reduce the spectral * New version of CCIR Recommendation 446. This Recommendation was developed rom work carried out under ex-CCIR Study Programme 27N4 which was suppressed according to Resolution 109 (Dsseldorf, 1990). * Former CCIR Recommendation 671. CCIR RE
11、CMN*YYb-4 93 4855232 8520732 772 W Rec. ITU-R S.446-4 33 energy density of the transmissions of the fixed-satellite service during periods of light loading. The reduction of the maximum energy density will also facilitate: efficient use of the geostationary-satellite orbit by minimizing the orbital
12、separation needed between satellites using the same frequency band; and multiple-carrier operation of broadband transponders. - - The amount of energy dispersal required obviously depends on the characteristics of the systems in each particular case. It is clear, however, that it is desirable that t
13、he maximum energy density under light loading conditions should be kept as close as possible to the value corresponding to the conditions of busy hour loading. In this Annex, the results of some theoretical and experimental studies of energy dispersal techniques, separately applicable to analogue fr
14、equency-modulation and to digital radiocommunication-satellite systems, are reported. It is concluded that substantial energy dispersal can be obtained in most circumstances. However, there are some possible limitations on the efficiency of the dispersai and these are mentioned in the Annex. 2. Ener
15、gy dispersal for analogue multi-channel telephony FM systems In studying ways of achieving high degrees of carrier energy dispersal, it is useful to know what is the dispersing effect of the fully-loaded baseband signai, in order to have some reference value with which to compare what can be obtaine
16、d artificially. It is legitimate, for the general class of wide-deviation frequency-modulation systems under consideration, i.e. those in which the multi-channel r.m.s. deviation (6F) exceeds the highest baseband frequency, and greatly exceeds the lowest baseband frequency, to assume that the mean p
17、ower spectrum under the conventional busy-hour loading conditions is of Gaussian form. Hence, the dispersing effect obtained under these conditions is: 6F is expressed in MHz) The dispersing effect when 6F is less than the highest baseband frequency can be calculated using the information contained
18、in Annex 1 of Recommendation ITU-R SF.675* . There are a number of methods of maintaining a high degree of carrier energy dispersal in telephony systems, where the obtained dispersal is a function of the complexity of the means of dispersal and the increase in occupied radio-frequency bandwidth resu
19、lting from distortion. The methods fall into one or other of two general cases; one which adds a dispersal waveform not necessarily of constant magnitude to the input signal and the second which, in addition, effectively controls the deviation sensitivity of the frequency modulator. Various arrangem
20、ents of these two me.thods are illustrated in Fig. 1. 2.1 Dispersal by added waveforms 2.1.2 Method la) The simplest way of bringing about some degree of carrier energy dispersal is to add to the baseband signal, a suitable low-frequency dispersing waveform of fixed magnitude, as in Method la) of Fi
21、g. 1. Of a variety of dispersal waveforms that have been proposed, the following are examined in this Annex: - - a sinusoidal signai (Curve A of Fig. 2), a sinusoidal signal plus 30% third harmonic added in suitable phase (Curve B of Fig. 2), * Former CCIR Recommendation 675 CCIR RECMN*446-4 93 W 48
22、55212 0520933 629 34 Rec. RU-R S.446-4 - a band of low-frequency noise (Curve C of Fig. 2), a low-frequency triangular waveform (Curve D of Fig. 2). - FIGURE 1 Simplified block diagram 4- ? 1 I F Method A = E-i- U 5 tG A: baseband signal input B: r.m.s. detector C: amplifier 1 D: amplifier 2 E: r.m.
23、s. detector F: output to frequency-modulator G: dispersal waveform Full load No control No control Gain O v, Gain 1 1 O 5 Full load (Possible filters, buffer-amplifiers and gain-regulating pilots omitted) To provide some basis for comparing the efficiencies of these waveforms, the maximum energy spe
24、ctral density, which they produce when applied to an unmodulated carrier, has been calculated for an assumed 10% increase in occupied radio-frequency bandwidth. The results are plotted in Fig. 2, relative to that which would occur under the conditions of busy-hour loading; the curves of Fig. 2 have
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