ITU-R S 1712-2005 Methodologies for determining whether an FSS earth station at a given location could transmit in the band 13 75-14 GHz without exceeding the pfd limits in No 5 50mit.pdf
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1、 Rec. ITU-R S.1712 1 RECOMMENDATION ITU-R S.1712 Methodologies for determining whether an FSS earth station at a given location could transmit in the band 13.75-14 GHz without exceeding the pfd limits in No. 5.502 of the Radio Regulations, and guidelines to mitigate excesses (2005) Scope WRC-03 adop
2、ted Resolution 144 to invite the ITU-R to develop Recommendations to establish technical or operational methods to facilitate sharing and greater flexibility in deployment of FSS earth stations smaller than 4.5 m in the band 13.75-14 GHz in conformity with Radio Regulations (RR) No. 5.502, and which
3、 may also be used to establish a basis for bilateral agreements between administrations. This Recommendation proposes three methods for determining whether FSS earth stations at a given location can transmit in the band 13.75-14 GHz without exceeding the pfd limit in RR No. 5.502. It also provides a
4、dditional measures that administrations of small and narrow countries can consider when deploying FSS earth stations. The ITU Radiocommunication Assembly, considering a) that WRC-03 revised the sharing constraints on the fixed-satellite service (FSS) (Earth-to-space) in the band 13.75-14 GHz; b) tha
5、t this FSS band is shared with the radiolocation and radionavigation services; c) that the revised sharing conditions approved at WRC-03 permit the operation of geostationary FSS earth stations in the band 13.75-14 GHz with antennas of diameter D, with 1.2 m D TP, this path is trans-horizon. Note th
6、at while Path 2 and Path 3 do not cross contours higher than the earth station, their lengths exceed the nominal radio horizon found in Step B. Therefore, these are known to be trans-horizon without application of the Recommendation ITU-R P.452 test. Path 4 is both longer than Path 1 and crosses a h
7、igher contour. Calculation of the angles shows this path is indeed trans-horizon. By inspection, there are no other paths that would be expected to produce results different from the paths shown in the map above. Therefore, this earth station site is not within LoS of any point on the coast (low-wat
8、er mark). The trans-horizon curve of Fig. 4 shows that the required separation distance for this earth station is 34 km. Since the shortest path is greater than this value, the earth station site is found to be compliant with the pfd limit criteria. Note that the true peak in the profile in Fig. 3 w
9、as not actually used in the calculations. The contour map in Fig. 2 only provided with certainty elevation data in 25 m increments. A higher resolution source of terrain data could have been used to take advantage of the true height of the intervening terrain. 8 Rec. ITU-R S.1712 FIGURE 4 Method 1:
10、Separation distance curves (minimum distance from the low-water mark as a function of the e.i.r.p. density toward the horizon) Note that the LoS curve is derived from the loss for LoS paths found in Recommendation ITU-R P.452-11. The trans-horizon curve is simply the LoS curve shifted up the e.i.r.p
11、. axis by Y dB. In reality, diffraction loss is not simply the LoS loss shifted by a constant value. Further analysis of the Recommendation ITU-R P.452-11 model may show that the trans-horizon curve may require some adjustment. Annex 2 Method 2: pfd contours based on actual terrain data, the propaga
12、tion model in Recommendation ITU-R P.452-11, the FSS earth stations e.i.r.p. in 10 MHz bandwidth and the diameter and height above ground of its antenna 1 Generalities This method produces a set of contours, using actual terrain data, showing the minimum separation distance from the low-water mark o
13、r neighbouring countrys land border, an FSS earth station would need to meet in order to respect the pfd limits in RR No. 5.502, as a function of the earth station e.i.r.p. and the diameter and height of its antenna. An FSS earth station deployed within the contour based on its on-axis e.i.r.p. is a
14、ssumed to meet the pfd limit criteria. No further analyses are required. This method, using more accurate data than Method 1, permits to obtain larger areas inside which an earth station can be deployed while meeting pfd limits of RR No. 5.502. However, it should be noted that deployment in areas ex
15、cluded by this method is still possible provided a Rec. ITU-R S.1712 9 potential site can be shown to meet the pfd limit criteria through application of Method 3 (Annex 3). To account for different path loss due to different antenna heights, contours are to be defined for a range of earth station he
16、ights above local terrain level. 2 Step-by-step description of Method 2 Step 1: Definition of contours: Assuming several typical combinations of antenna diameter and associated on-axis e.i.r.p., a set of contours can be defined as figuring the areas where the considered earth station can be deployed
17、 while respecting the limits of RR No. 5.502. Taking into account the earth station discrimination between its direction of pointing and the direction of the border, a value of necessary path loss can be associated with each defined contour. Step 2: Computation of contours: Knowing the value of the
18、path loss to be associated with each contour, and taking into account an actual terrain database, it is possible to compute the position of each contour on a map. The propagation model to be used is the one described in Recommendation ITU-R P.452-11. Step 3: Compliance with the pfd limits criteria i
19、n RR No. 5.502: This compliance is assessed by the comparison of the position of the earth station intended to be deployed with the contour associated with the corresponding profile: if the position of the earth station intended to be deployed is inside the associated contour, the earth station can
20、be deployed with no additional measures while respecting the criteria of RR No. 5.502; if the position of the earth station intended to be deployed is outside the associated contour, additional considerations on the actual site environment are required. 3 Possible application of Method 2 3.1 Interfe
21、rence scenario The scenario for interference at the border of a country produced by an earth station within the country is illustrated in Figs. 5 and 6. 10 Rec. ITU-R S.1712 E: earth station e.i.r.p. toward satellite (dB(W/10 MHz) Gm: on-axis gain of earth station antenna (dBi) G(): earth station an
22、tenna gain in direction of horizon along the lowest-loss path to border (dBi) a: azimuth angle of earth station antenna axis (degrees West of South) e: elevation angle of earth station antenna axis (degrees) h: elevation angle of the horizon in the direction of the lowest-loss path (degrees) hE: hei
23、ght above local ground level of earth station antenna focal point (m) hR: height above local ground level of radar antenna focal point (m) pfd: power flux-density of interference at border (dB(W/(m2 10 MHz) : azimuth angle of lowest-loss path to the border (degrees West of South) It should be noted
24、that the off-axis angle, , of interest here is the angle between the main beam axis and the axis representing the first part of the lowest-loss interference path, which in general will include a small elevation angle, h (usually between about 1 and +3) (see Fig. 6). Rec. ITU-R S.1712 11 The pfd at t
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