ITU-R F 1613-2003 Operational and deployment requirements for fixed wireless access systems in the fixed service in Region 3 to ensure the protection of systems in the Earth explore re.pdf
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1、 Rec. ITU-R F.1613 1 RECOMMENDATION ITU-R F.1613*,* Operational and deployment requirements for fixed wireless access systems in the fixed service in Region 3 to ensure the protection of systems in the Earth exploration-satellite service (active) and the space research service (active) in the band 5
2、 250-5 350 MHz (Questions ITU-R 113/9 and 218/7) (2003) The ITU Radiocommunication Assembly, considering a) that the frequency band 5 250-5 350 MHz is allocated to the Earth exploration-satellite service (EESS) (active) and space research service (SRS) (active) for spaceborne active sensors and to t
3、he radiolocation service on a primary basis; b) that the allocations in the frequency band 5 250-5 350 MHz will be reviewed by WRC-03 under agenda item 1.5 with a view to allocating this band to the fixed service in Region 3 on a primary basis; c) that some administrations in Region 3 have proposed
4、using the band 5 250-5 350 MHz for licence-based fixed wireless access (FWA) systems in the fixed service; d) that these FWA systems operating outdoors may cause unacceptable interference to the EESS/SRS (active) in the above band; e) that there is a need to specify operational and deployment requir
5、ements for FWA systems in Region 3 in order to protect spaceborne active sensor systems, *This Recommendation was developed jointly by Radiocommunication Study Groups 7 and 9, and any future revision will also be undertaken jointly. *This Recommendation should be brought to the attention of Radiocom
6、munication Study Groups 7 and 8. 2 Rec. ITU-R F.1613 noting a) that the interference from EESS/SRS (active) systems into FWA systems with the characteristics described in Annex 1 is considered to be acceptable, recognizing a) that it is difficult for FWA and other types of wireless access systems (i
7、ncluding radio local area networks (RLANs) to operate simultaneously on a co-coverage, co-frequency basis, recommends 1 that the aggregate interference from FWA systems (sum of the directional e.i.r.p. towards the satellite) should be smaller than 7.6 dB(W/20 MHz) at the Earths surface within the fo
8、otprint of the active sensor of the EESS/SRS satellite (see Notes 1, 2 and 3); 2 that the methodology described in Annex 1 should be used to assess the aggregate interference level from FWA systems; 3 that, based on the FWA system characteristics presented in Table 4 for Region 3, a maximum density
9、of 23 FWA base stations per 220 km2should be allowed within a satellite active sensor footprint. Variation of the maximum e.i.r.p., antenna pattern and frequency planning would imply a variation in the maximum allowed density of FWA base stations; 4 that the maximum e.i.r.p. of each FWA station shou
10、ld be no more than 3 dB(W/20 MHz) (see Notes 4 and 5); 5 that administrations should control these systems to ensure that the deployment requirements for FWA systems specified in the above recommends are satisfied. NOTE 1 This aggregate interference level is derived from the interference threshold o
11、f 132.35 dB(W/20 MHz) at the satellite receiver specified for the SAR4 in Table 5. NOTE 2 The footprint of the active sensor of the EESS/SRS the satellite referred to here has an area of about 220 km2. NOTE 3 The aggregate interference from FWA systems toward the spaceborne active sensor satellite d
12、epends on such parameters as transmit power of the FWA systems, the antenna directivity and the number of the FWA base stations using the same RF channel within the satellite active sensor footprint. NOTE 4 If the main beam direction is above 10 in elevation, a 6 dB lower e.i.r.p. limit should apply
13、, i.e. a maximum e.i.r.p. of 3 dB(W/20 MHz). NOTE 5 The direction of FWA station antennas should be controlled in order to avoid accidental direct illumination to the satellite due to misalignment of antenna direction, for example, a remote station not pointing towards the base station. NOTE 6 Addit
14、ional guidance should be developed in order to facilitate the application of this Recommendation. This matter requires further study. Rec. ITU-R F.1613 3 Annex 1 Frequency sharing between FWA systems and spaceborne active sensor systems in the EESS (active) and the SRS (active) in the band 5 250-5 3
15、50 MHz 1 Introduction The frequency band 5 250-5 350 MHz is considered to be suitable for FWA systems in the fixed service to provide high-speed Internet or other multimedia service applications. Since the frequency band is allocated in the ITU Radio Regulations to the EESS (active) and the SRS (act
16、ive) on a worldwide basis, sharing feasibilities between FWA systems and systems in the EESS/SRS (active) needs to be determined. In this frequency band various types of spaceborne synthetic aperture radar (SAR), spaceborne radar altimeter and spaceborne scatterometer systems in the EESS/SRS (active
17、) are operating. This Annex deals with sharing consideration between FWA systems and these spaceborne active sensors, using typical system parameters that are currently available or being considered in the developmental stage. 2 Technical characteristics of spaceborne active sensors Technical charac
18、teristics of spaceborne active sensors in the 5 250-5 350 MHz are given in Tables 1 to 3. TABLE 1 5.3 GHz typical spaceborne SAR characteristics Value Parameter SAR2 SAR3 SAR4 Orbital altitude (km) 600 (circular) 400 (circular) Orbital inclination (degrees) 57 RF centre frequency (MHz) 5 405 5 305 5
19、 300 Peak radiated power (W) 4 800 1 700 Polarization Horizontal and vertical (HH, HV, VH, VV) Pulse modulation Linear FM chirp Pulse bandwidth (MHz) 310 40 Pulse duration (s) 31 33 4 Rec. ITU-R F.1613 TABLE 1 (end) Value Parameter SAR2 SAR3 SAR4 Pulse repetition rate (pps) 4 492 1 395 Duty cycle (%
20、) 13.9 5.9 Range compression ratio 9 610 10 230 1 320 Antenna type (m) Planar phased array 1.8 3.8 Planar phased array 0.7 12.0 Antenna peak gain (dBi) 42.9 42.7/38 (full focus/beamspoiling) Antenna median side-lobe gain (dBi) 5 Antenna orientation (degrees) 20-38 from nadir 20-55 from nadir Antenna
21、 beamwidth 1.7 (El), 0.78 (Az) 4.9/18 (El), 0.25 (Az) Antenna polarization Linear horizontal/vertical Receiver noise figure (dB) 4.62 Receiver front end 1 dB compression point referred to receiver input 62 dBW input Receiver input maximum power handling (dBW) +7 Operating time 30% of the orbit Minim
22、um time for imaging (s) 15 Service area Land masses and coastal areas Image swath width (km) 20 16/320 Footprint (km2) 159.03 76.5 76.5-220 Receiver bandwidth (MHz) 356.5 46.00 Interference threshold (dB) I/N = 6 Rec. ITU-R F.1613 5 TABLE 2 5.3 GHz typical spaceborne altimeter characteristics TABLE
23、3 5.3 GHz typical spaceborne scatterometer characteristics Jason mission characteristics Lifetime 5 years Altitude (km) 1 347 15 Inclination (degrees) 66 Poseidon 2 altimeter characteristics Signal type Pulsed chirp linear frequency modulation C band PRF (Hz) 300 Pulse duration (s) 105.6 Carrier fre
24、quency (GHz) 5.3 Bandwidth (MHz) 320 Emission RF peak power (W) 17 Emission RF mean power (W) 0.54 Antenna gain (dBi) 32.2 3 dB aperture (degrees) 3.4 Side-lobe level/Maximum (dB) 20 Back-side-lobe level/Maximum (dB) 40 Beam footprint at 3 dB (km) 77 Interference threshold (dBW) 118 Parameter Value
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