ITU-R REPORT M 2083-2006 Level of unwanted emissions of mobile-satellite service feeder links operating in the bands 1 390-1 392 MHz (Earth-to-space) and 1 430-1 432 MHz (space-to-.pdf
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1、 Rep. ITU-R M.2083 1 REPORT ITU-R M.2083 Level of unwanted emissions of mobile-satellite service feeder links operating in the bands 1 390-1 392 MHz (Earth-to-space) and 1 430-1 432 MHz (space-to-Earth) (2006) Scope This Report addresses techniques to control unwanted emission levels of mobile-satel
2、lite service (MSS) feeder links (Earth-to-space) that may operate in the band 1 390-1 392 MHz and MSS feeder links (space-to-Earth) that may operate in the band 1 430-1 432 MHz. Introduction The allocations to the fixed-satellite service (FSS) in the bands 1 390-1 392 MHz (Earth-to-space) and 1 430-
3、1 432 MHz (space-to-Earth) are limited to use by feeder links for non-geostationary-satellite networks in the MSS with service links below 1 GHz. The band 1 400-1 427 MHz is allocated to the Earth exploration-satellite service (EESS) (passive), radio astronomy and space research (passive) services o
4、n a primary basis in all Regions and that RR No. 5.340 also applies to the band 1 400-1 427 MHz. Unwanted emissions from FSS links may cause harmful interference to passive services requiring careful design of the transmission sub-system. The information provided in Annexes 1 to 3 of this Report sho
5、uld be taken into account for the control unwanted emission levels of MSS feeder links operating in the bands 1 390-1 392 MHz and 1 430-1 432 MHz. Baseband processing techniques without a specific post-amplifier filter, as described in Annex 1 for typical combinations of data rates and modulation te
6、chniques, should be used to reduce the unwanted emissions from MSS feeder links operating in the bands 1 390-1 392 MHz and 1 430-1 432 MHz into the band 1 400-1 427 MHz to the levels required for the protection of the passive services as defined in Recommendations ITU-R M.1747 and ITU-R M.1748. An a
7、dditional post-amplifier filter as described in Annex 3 should be used in cases where the baseband processing techniques are not sufficient to meet the levels required for the protection of the passive services in the band 1 400-1 427 MHz. 2 Rep. ITU-R M.2083 Annex 1 Evaluation of unwanted emissions
8、 in the 1 400-1 427 MHz band from non-GSO MSS feeder links that may operate in the 1 390-1 392 MHz and 1 430-1 432 MHz bands 1 Introduction This Annex provides power spectral-density (PSD) data generated via simulation for non-GSO MSS feeder-link transmitters that may operate in the 1 390-1 392 MHz
9、and 1 430-1 432 MHz bands. Modulation techniques considered here include offset quadrature phase shift keying (OQPSK), GMSK and 8-ary PSK (8-PSK) for channel bandwidths of 100 kHz, 300 kHz and 855 kHz. The simulation model used for this study was first validated against hardware measurement data, an
10、d then PSD data was generated via simulation for other modulation techniques and channel bandwidths. Two hardware fidelity grades were considered, low and high, in an effort to bound the expected performance of the non-GSO MSS feeder-link transmitters. 2 Technical characteristics of the MSS system T
11、he potential characteristics of non-GSO feeder links that may operate in the 1 390-1 392 MHz and 1 430-1 432 MHz bands are assumed to lie within the ranges given in Table 1. These characteristics are based primarily upon those given in Annex 2 of Recommendation ITU-R M.1184-2. TABLE 1 Potential tech
12、nical characteristics of MSS feeder links that may operate in the 1 390-1 392 MHz and 1 430-1 432 MHz bands* Link Parameter Value Band 1 390-1 392 MHz Channel bandwidth 30-855 kHz Modulation OQPSK, GMSK, 8-PSKData rate 4.8 kbit/s-3.42 Mbit/s(1) Gateway uplink (Earth-to-space) Transmit power 1-250 W
13、Band 1 430-1 432 MHz Channel bandwidth 30-855 kHz Modulation OQPSK, GMSK, 8PSKData rate 4.8 kbit/s-1.2825 Mbit/s(1) Gateway downlink (space-to-Earth) Transmit power 1-250 W * Except where noted, these characteristics are based upon the characteristics given in Annex 2 of Recommendation ITU-R M.1184-
14、2. (1)Range selected based upon data rates given in Annex 2 of Recommendation ITU-R M.1184-2 and based upon data rates which produce null-to-null bandwidths of 100 kHz, 300 kHz and 855 kHz for the modulation techniques considered in this study. Rep. ITU-R M.2083 3 3 Simulation model 3.1 Approach Fig
15、ure 1 provides the transmitter reference architecture assumed for this analysis. Figure 2 provides the power amplifier power out versus power in curve. The operating points assumed for this study are indicated on the plot. Figure 3 provides the power amplifier phase change versus power in curve. Aga
16、in, the operating points are shown. Figure 4 provides the duplexer filter attenuation characteristics assumed for this study. Also provided in Fig. 4 are the attenuation characteristics of example two-stage resonant cavity filters. The amount of duplexer attenuation was determined by assuming the MS
17、S feeder link receive band will need over 50 dB of protection from the local MSS feeder-link transmission with about 10 dB of this protection coming from isolation introduced by the return loss of the antenna and about 1 dB of loss through the circulator. Figure 5 provides a diagram of the duplexer.
18、 Table 2 describes the transmitter architecture characteristics assumed for this analysis. The use of a digital modulator with pre- or post-modulation digital filtering for the simulations is a valid assumption, as the highest modulation symbol rate considered in this study is 427.5 kbit/s (= 855/2
19、kbit/s), whereas digital modulators can be built to support modulation symbol rates up to at least 100 Mbit/s. Table 3 provides the transmitter distortion values assumed for this study. It should be noted that this study assumed that the baseband data provided to the modulator was random. If a patte
20、rn data is assumed, the results presented in this paper could change slightly. Although in general, pattern data will introduce modulation spurs in the PSD, these will likely be negligible given the large offset in frequencies between the passive service band and the proposed MSS feeder-link bands.
21、FIGURE 1 Assumed transmitter architecture 4 Rep. ITU-R M.2083 FIGURE 2 Assumed transmitter power amplifier Poutversus Pincharacteristics FIGURE 3 Assumed transmitter power amplifierchangeversus Pincharacteristics Rep. ITU-R M.2083 5 FIGURE 4 Assumed duplexer attenuation characteristics TABLE 2 Assum
22、ed transmitter architecture characteristics Value Component group Component Parameter Fidelity grade: lowFidelity grade: highComments Filter type Gaussian, raised cosine (RC) Gaussian, RC Filter can be optionally bypassed (e.g. for unfiltered case or post-modulation filtered case). Gaussian filter u
23、sed for GMSK; RC used for OQPSK; filter bypassed for 8-PSK and QAM which utilize post-modulation filtering Modulator Pre-modulation bit-shaping filter Filter implemen-tation 64-tap finite impulse response(FIR) 128-tap FIR Fewer taps can result in higher Tx output PSD levels especially beyond the fir
24、st few side lobes. Most hardware would likely use 128 taps, however, 64 taps considered here as worst case 6 Rep. ITU-R M.2083 TABLE 2 (continued) Value Component group Component Parameter Fidelity grade: lowFidelity grade: highComments Quantization 6-bit(1)12-bit(1) Fewer quantization bits can resu
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- ITURREPORTM20832006LEVELOFUNWANTEDEMISSIONSOFMOBILESATELLITESERVICEFEEDERLINKSOPERATINGINTHEBANDS13901392MHZEARTHTOSPACEAND14301432MHZSPACETOPDF

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