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Calculate the overall [C/N0] value.
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12.36. Explain how intermodulation noise originates in a satellite link, and describe how it may be reduced. In a satellite circuit the carrier-to-noise ratios are uplink 25 dB; downlink 20 dB; intermodulation 13 dB. Calculate the overall carrier-to-noise ratio. 12.37. For the satellite circuit of Prob. 12.36, input BO is introduced that reduces the carrier-to-noise ratios by the following amounts: uplink 7 dB, downlink 2 dB, and improves the intermodulation by 11 dB. Calculate the new value of overall carrier-to-noise ratio.
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12.38. As a follow-up to Example 12.21, calculate [Eb/N0], given that the coded bit rate is 25 Mbps. 12.39. Rework Example 12.22 to find the output [S/N] for a PIN diode, all other values remaining unchanged.
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Andrew Antenna Co., Ltd. 1985. 1.8-Meter 12-GHz Receive-only Earth Station Antenna. Bulletin 1206A. Whitby, Ontario, Canada. CCIR Report 338-3. 1978. Propagation Data Required for Line of Sight Radio Relay Systems. 14th Plenary Assembly, Vol. V, Kyoto. Chen, C. L. 1996. Elements of Optoelectronics and Fiber Optics. Irwin, a Times Mirror Higher Education Group, Inc., Chicago. Freeman, R. L. 1981. Telecommunications Systems Engineering. Wiley, New York. Hogg, D. C., and T. Chu. 1975. The Role of Rain in Satellite Communications. Proc. IEEE, Vol. 63, No. 9, pp. 1308 1331. Jones, W. B. Jr. 1988. Introduction to Optical Fiber Communication Systems. Holt, Rinehart and Winston, Inc., TX. Lin, S. H., H. J. Bergmann, and M. V. Pursley. 1980. Rain Attenuation on Earth-Satellite Paths: Summary of 10-Year Experiments and Studies. Bell Syst. Tech. J., Vol. 59, No. 2, February, pp. 183 228. Maral, G., and M. Bousquet. 2002. Satellite Communications Systems. Wiley, New York. Morgan, W. L. 1999. Intersatellite Links. Space Business International, Quarter 1, pp. 9 12. Motorola Satellite Communications Inc., 1992. Minor amendment to application before the FCC to construct and operate a low earth orbit satellite system in the RDSS uplink band File No.9-DSS-P91 (87) CSS-91-010. Webber, R. V., J. I. Strickland, and J. J. Schlesak. 1986. Statistics of Attenuation by Rain of 13-GHz Signals on Earth-Space Paths in Canada. CRC Report 1400, Communications Research Centre, Ottawa, April.
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13.1 Introduction With many telecommunications services using radio transmissions, interference between services can arise in a number of ways. Figure 13.1 shows in a rather general way the possible interference paths between services. It will be seen in Fig. 13.1 that the terms earth station and terrestrial station are used, and the distinction must be carefully noted. Earth stations are specifically associated with satellite circuits, and terrestrial stations are specifically associated with ground-based microwave line-of-sight circuits. The possible modes of interference shown in Fig. 13.1 are classified by the International Telecommunications Union (ITU, 1985) as follows: A1: terrestrial station transmissions, possibly causing interference to reception by an earth station A2: earth station transmissions, possibly causing interference to reception by a terrestrial station B1: space station transmission of one space system, possibly causing interference to reception by an earth station of another space system B2: earth station transmissions of one space system, possibly causing interference to reception by a space station of another space system C1: space station transmission, possibly causing interference to reception by a terrestrial station C2: terrestrial station transmission, possibly causing interference to reception by a space station E: space station transmission of one space system, possibly causing interference to reception by a space station of another space system F: earth station transmission of one space system, possibly causing interference to reception by an earth station of another space system
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Possible interference modes between satellite circuits and a terrestrial station. (Courtesy of CCIR Radio Regulations.)
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A1, A2, C1, and C2 are possible modes of interference between space and terrestrial services. B1 and B2 are possible modes of interference between stations of different space systems using separate uplink and downlink frequency bands, and E and F are extensions to B1 and B2 where bidirectional frequency bands are used. The Radio Regulations (ITU, 1986) specify maximum limits on radiated powers (more strictly, on the distribution of energy spectral density) in an attempt to reduce the potential interference to acceptable levels in most situations. However, interference may still occur in certain cases, and what is termed coordination between the telecommunications administrations that are affected is then required. Coordination may require both administrations to change or adjust some of the technical parameters of their systems. For geostationary satellites, interference modes B1 and B2 set a lower limit to the orbital spacing between satellites. To increase the capacity of the geostationary orbit, the Federal Communications Commission (FCC) in the United States has in recent years authorized a reduction in orbital spacing from 4 to 2 in the 6/4-GHz band. Some
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