ITU-R BS 639-1986 Necessary Bandwidth of Emission in LF MF and HF Broadcasting - Section 10A-1 - Amplitude-Modulation Sound Broadcasting in Bands 5 (LF) 6 (MF) and 7 (HF)《低频、中频和高频广.pdf
《ITU-R BS 639-1986 Necessary Bandwidth of Emission in LF MF and HF Broadcasting - Section 10A-1 - Amplitude-Modulation Sound Broadcasting in Bands 5 (LF) 6 (MF) and 7 (HF)《低频、中频和高频广.pdf》由会员分享,可在线阅读,更多相关《ITU-R BS 639-1986 Necessary Bandwidth of Emission in LF MF and HF Broadcasting - Section 10A-1 - Amplitude-Modulation Sound Broadcasting in Bands 5 (LF) 6 (MF) and 7 (HF)《低频、中频和高频广.pdf(7页珍藏版)》请在麦多课文档分享上搜索。
1、CCIR VOLUMEUX-3 90 4855232 0503947 5 Rec. 639 69 RECOMMENDATION 639 * NECESSARY BANDWIDTH OF EMISSION IN LF, MF AND HF BROADCASTING * The CCIR, (Question 44/10, Study Programme 44A/10) (1986) CONSIDERING (a) that in amplitude modulated double-sideband (AM-DSB) sound broadcasting, the bandwidth of em
2、ission is twice the audio-frequency (AF) bandwidth; (b) that for quality reasons, the AF bandwidth should be as high as possible; (c) that adjacent-channel interference is determined by, among other factors, the bandwidth of the modulating signal, and that some sound processing of the audio programm
3、e may significantly increase the higher frequency audio components; (d) that the bandwidth of the complete AM-DSB transmission system (system bandwidth) is determined by the combined effect of the bandwidth of emission and the receiver bandwidth; (e) that in most practical cases the bandwidth of emi
4、ssion considerably exceeds the receiver bandwidth, although receivers with wider or double bandwidths are becoming more prevalent in some parts of the world; (f) that, among other factors, efficiency of spectrum utilization is affected by the carrier spacing and also by the necessary bandwidth of em
5、ission; (g) that adjacent-channel interference decreases in areas relatively close to the wanted transmitter, where, for a transmitter of medium to low power, a larger concentration of audience can usually be presumed: (h) that where adjacent-channel interference is minimized by appropriate geograph
6、ical spacing of stations, some advantage can be taken of bandwidths of emission significantly greater than the channel spacing, thus increasing system bandwidth, particularly where receivers of wider bandwidth are employed, UNANIMOUSLY RECOMMENDS that where required, either for optimizing spectrum u
7、tilization or for providing an improved overall system AF response, the overall system can be optimized and planning problems can be reduced by taking advantage of the existing knowledge of the interrelation between system bandwidth, channel spacing and adjacent-channel protection ratio, as given in
8、 Annex I. ANNEX I NECESSARY BANDWIDTH OF EMISSION IN LF, MF, AND HF SOUND BROADCASTING 1. Introduction In an amplitude-modulation double-sideband sound broadcasting system the bandwidth of emission is approximately twice the audio-frequency bandwidth of the programme and, therefore, greatly influenc
9、es the quality of reception. On the other hand, for a given frequency separation between adjacent channels, a limitation of the bandwidth of emission is desirable to avoid mutual interference. The difference between the transmitted bandwidth for amplitude-modulation sound broadcasting and the receiv
10、er bandwidth has led to research CCIR, 1966-69a and b; Netzband and Sverkriibbe, 1968; Sverkriibbe, 1969: Petke, 19731 aimed at improving the whole transmission system. It appears that it would be useful to fix values for the audio-frequency bandwidth of the programme to be radiated as well as for t
11、he overall response of the receivers and to obtain these values by the use of band-limiting filters. If both these bandwidths are nearly equal and are suitably related to the channel spacing the transmission system provides for the full utilization of the transmitted bandwidth as well as for the mos
12、t favourable protection against adjacent channel interference Eden, 19671. * * This Recommendation should be brought to the attention of Study Group 1. The essential contents of Report 457 having been transferred into Annex I of this Recommendation, Report 457 is hereby cancelled. CCIR VOLUME*X-3 90
13、 m 4855232 0503948 7 m 70 Rec. 639 2. Necessary bandwidth of emission 2.1 Bands 5 (LF) and 6 (MU Obviously, the bandwidth of emission, as well as the passband of the receivers, should be chosen in such a way that there is no unnecessary impairment of reception quality or any increase in adjacent-cha
14、nnel interference Netzband and Sverkrbbe, 19681. In areas where adjacent-channel interference is expected not to be negligible, the use of equal values for channel spacing, bandwidth of emission and receiver passband would be a good solution, In areas where less adjacent-channel interference is to b
15、e expected, different values may be suitable, e.g., the bandwidth of emission and the receiver passband may be equal and considerably exceed the channel spacing. This is especially true if the same transmitter network is operated during day and night. In such circumstances receivers, equipped with f
16、ilters of switchable bandwidths, may be used successfully to improve the reception quality under different propagation conditions. 2.2 Band 7(HF) In shortwave broadcasting, the necessary bandwidth of emission for AM-DSB should in no case exceed the value of 9 kHz. Recommendation 640 specifies a maxi
17、mum of 4.5 kHz necessary bandwidth for AM-SSB broadcasting. 3. General considerations 3.1 There exists a well-known interrelation between system bandwidth, carrier spacing and adjacent-channel radio-frequency protection ratio Sverkrbbe, 1969; Petke, 19731. 3.2 The theoretically obtainable optimum va
18、lue of protection against adjacent channel interference can be assessed by using an ideal receiver with rectangular passband characteristics. In this case the radio-frequency protection ratio is mainly determined by non-linear distortion in the transmitter. 3.3 A theoretical study of the energy spec
19、trum including, out-of-band radiation caused by transmitter non-linearities is contained in Kettel, 19681. Experimental investigations of the energy spectrum of a high-power transmitter operating in band 6 (MF) CCIR, 1966-69c show that the term occupied bandwidth as defined in Article 1, No, 147 of
20、the Radio Regulations does not give an adequate indication of the effects of bandwidth limitation on adjacent channel interference. 4. 4.1 Measurement results Relationship between AF bandwidth, RF protection ratio and channel spacing Measurements of the radio-frequency protection ratios for the case
21、 of various values of audio-frequency bandwidths, which are equal at both transmitter and receiver, and at different channel spacings have been carried out in the Federal Republic of Germany Sverkrbbe, 19691 using the objective two-signal measuring method given in Recommendations 559 and 560. For th
22、e measurements a high quality commercial receiver with an almost ideal passband characteristic was used. The interrelation between?the parameters involved is shown in Fig. 1. For a given channel spacing there are many pairs of values of audio-frequency bandwidths and adjacent channel protection rati
23、os. If, however, two of the parameters have been chosen, the third is definitely fixed. 4.2 Computation results The relationship between system bandwidth, adjacent channel protection ratio and channel spacing can be determined by means of the numerical method (Recommendation 559). Studies carried ou
24、t were based on the assumption that both the carrier spacing and the adjacent channel protection ratio are predetermined values. Using Recommendation 560, a relative value of the radio-frequency protection ratio of -26 dB corresponding to a channel spacing of 9 kHz hac been assumed. Thereby due acco
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