ITU-R S 738-1992 Procedure for Determining If Coordination Is Required between Geostationary-Satellite Networks Sharing the Same Frequency Bands - Section 4D2 - Coordination Method.pdf
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1、208 CCIR RECMN*738 72 4855232 0538828 700 W Rec. 738 RECOMMENDATION 738 PROCEDURE FOR DETERMiNiNG IF COORDINATION IS REQUIRED BETWEEN GEOSTATIONARYSATELLITE NETWORKS SHARING THE SAME FREQUENCY BANDS (Question 49/4) (1992) The CCIR, considering that FSS networks may share the same frequency bands; th
2、at they may cause and experience mutual interference; that this mutual interference can be minimized through coordination: that it is necessary to determine whether there is a need for coordination, a) b) c d recognizing that under Article 11 of the Radio Regulations, the need for coordination is de
3、termined by Appendix 29, recommends that the method given in Annex 1, called the ATIT method, be used to determine if coordination is required 1. between geostationary-satellite networks sharing the same frequency bands: 2. greater than 6%; 3. Note I - The AT/T method gives an apparent increase in e
4、quivalent satellite link noise temperature, and treats the effect of interference as an increase in thermal noise in the wanted network. The power of the interfering signal is assumed to be spread evenly over the frequency bandwidth, with a power density equal to its maximum power density. The ratio
5、 ATIT is expressed as a percentage. Note 2 - The above approach is similar to that in Appendix 29 of the Radio Regulations and is applicable with the data provided under Appendix 4 of the Radio Regulations. It also includes additional information to facilitate the application of Appendix 29. Note 3
6、- The threshold value of 6% is consistent with Appendix 29. that coordination be required when the calculated value of AT/T of the potentially interfered with network is that the following Notes will be considered part of this Recommendation. ANNEX 1 Method of calculation for determining if coordina
7、tion is required between geostationary-satellte networks sharing the same frequency bands 1. Characteristics of networks Radiocommunication satellites require frequency assignments in two bands, one for the up link and the other for the down link. It is current practice for frequency bands to be ass
8、ociated in pairs, one of each pair being used for up links and the other for down links. Case I below is concerned with the possibility of interference between two systems which have been assigned frequency bands in this way. However, it should be feasible to use a pair of frequency bands _. CCIR RE
9、CMN*738 92 4855212 0518829 647 H Rec. 738 209 in the reverse sense (bidirectional use) for some systems, the up-link band for one network being the same as the down-link band for the network using an adjacent satellite; this is Case II. These two cases cover all relative satellite positions from clo
10、sely-spaced to near-antipodal positions. Let A be a satellite link of network R associated with satellite S and A be a satellite link of network R associated with satellite S. The symbols such as a, b and c refer to satellite link A and symbols such as a, b and c refer to Satellite link A (see Figs.
11、 la and lb). FIGURE la Geometry - Case I -Wanted and interfering networks sharing the same frequency band in the same direction of transmission S S I Wanted network R Interfering network R The parameters are defined as follows (for satellite link A): T : the equivalent satellite link noise temperatu
12、re, referred to the output of the receiving antenna of the earth station (K); T,: the receiving system noise temperature of the space station, referred to the output of the receiving antenna of the space station (K); Te: the receiving system noise temperature of the earth station, referred to the ou
13、tput of the receiving antenna of the earth station (K); AT : apparent increase in the equivalent noise temperature for the entire satellite link referred to the output of the receiving earth station antenna, caused by interference emissions from other satellite networks: 210 Rec. 738 FIGURE lb Geome
14、try - Case II -Wanted and interfering networks sharing the same frequency band in opposite directions of transmission (bidirectional use) Wanted network R Interfering network R ATs : apparent increase in the rece,. -.ig system noise temperature a emission, referred to the output of the receiving ant
15、enna of this satellite (K); apparent increase in the receiving system noise temperature of the earth station eR, caused by an interfering emission, referred to the output of the receiving antenna of this station (K); maximum power density per Hz delivered to the antenna of satellite S (averaged over
16、 the worst 4 kz band for a carrier frequency below 15 GHz or over the worst 1 MHz band above 15 GHz) e satellite S, Caus% -y an interfeug ATe: ps: wm); g3(q) : transmitting antenna gain of satellite S in the direction q (numerical power ratio); q : qe : Note - The product psg3(qe) is the maximum e.i
17、.r.p. per Hz of satellite S in the direction of the receiving earth station eR of satellite link A, direction, from satellite S, of the receiving earth station eR of Satellite link A; direction, from satellite S, of the receiving earth station eR of satellite link A; CCIR RECMN*?38 92 4855232 053883
18、L 2T5 Rec. 738 211 Ils : pe: direction, from satellite S, of satellite S; maximum power density per Hz delivered to the antenna of the transmitting earth station eT (averaged over the worst 4 kHz band for a carrier frequency below 15 GKZ or over the worst 1 MHz band above 15 GHz) (WHz); g2() : recei
19、ving antenna gain of satellite S in the direction 6 (numerical power ratio): SA : 6d : 6d : direction, from satellite S, of the transmitting earth station eT of Satellite link A; direction, from satellite S, of the transmitting earth station eT of satellite link A: direction, from satellite S, of sa
20、tellite S; gi(cp) : transmitting antenna gain of the earth station eT in the direction of satellite S (numerical power ratio); g4(cp) : receiving antenna gain of the earth station t?R in the direction of satellite S (numerical power ratio): topocentric angular separation between the two satellites,
21、taking the longitudinal station-keeping tolerances into account. Note - Only the topocentric angle cp should be used in dealing with Case I: geocentric angular separation in degrees between the two satellites, taking the longitudinal station- keeping tolerance into account. Note - Only the geocentri
22、c angle pg should be used in dealing with Case II, Boltzmanns constant (1.38 x 10-23 JE): free-space transmission loss on the down link (numerical power ratio); evaluated from satellites to the receiving earth station eR for satellite link A; free-space transmission loss on the up link (numerical po
23、wer ratio): evaluated from the earth station eT to satellite S for satellite link A; free-space transmission loss on the inter-satellite link (numerical power ratio), evaluated from satellite S to satellite S; transmission gain of a specific satellite link subject to interference evaluated from the
24、output of the receiving antenna of the space station S to the output of the receiving antenna of the earth station eR (numerical power ratio, usually less than 1). In the foregoing symbols, the gains gi(q) and g4(cp) are those of the earth stations concerned. In the event of precise numerical data r
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