ITU-R REPORT M 2041-2003 Sharing and adjacent band compatibility in the 2 5 GHz band between the terrestrial and satellite components of IMT-2000《2 5 GHz频段的国际移动通信-2000(IMT-2000)中陆地.pdf
《ITU-R REPORT M 2041-2003 Sharing and adjacent band compatibility in the 2 5 GHz band between the terrestrial and satellite components of IMT-2000《2 5 GHz频段的国际移动通信-2000(IMT-2000)中陆地.pdf》由会员分享,可在线阅读,更多相关《ITU-R REPORT M 2041-2003 Sharing and adjacent band compatibility in the 2 5 GHz band between the terrestrial and satellite components of IMT-2000《2 5 GHz频段的国际移动通信-2000(IMT-2000)中陆地.pdf(83页珍藏版)》请在麦多课文档分享上搜索。
1、 Rep. ITU-R M.2041 1 REPORT ITU-R M.2041 Sharing and adjacent band compatibility in the 2.5 GHz band between the terrestrial and satellite components of IMT-2000 (2003) TABLE OF CONTENTS Page 1 Introduction 3 2 Sharing and adjacent band compatibility methods. 3 2.1 Interference mechanisms 3 2.2 Mini
2、mum coupling loss (MCL) and Monte Carlo approaches. 6 2.3 Propagation models 7 3 Co-frequency sharing conclusions . 7 4 Adjacent band summary results 8 5 Adjacent band conclusions and discussions . 13 5.1 Overall conclusions 13 5.2 Feasibility of adjacent band compatibility for SRI-E . 17 5.3 Feasib
3、ility of adjacent band compatibility for S-DMB 18 6 Glossary and abbreviations. 19 Annex 1 System parameters 20 1 T-IMT-2000 system parameters . 20 2 Satellite radio interface E (SRI-E) system parameters . 23 3 S-DMB system parameters. 27 Annex 2 Detailed sharing and compatibility analysis. 35 1 Int
4、erference from MSS satellites into T-IMT-2000 . 35 2 Interference from MSS MES into T-IMT-2000 . 47 3 Interference from T-IMT-2000 into MSS satellites . 59 4 Interference from T-IMT-2000 into MSS MES . 67 5 Sensitivity analysis for the SRI-E. 79 NOTE Concerning the satellite component of IMT-2000, t
5、his Report covers some current and potential IMT-2000 satellite radio interfaces. 2 Rep. ITU-R M.2041 1 Introduction WRC-2000 identified three different blocks of additional spectrum for IMT-2000, including the band 2 500-2 690 MHz. The band 2 500-2 690 MHz is currently allocated on a primary basis
6、to several space services, the fixed service and the mobile service. This Report restricts its scope to the interference between the MSS and terrestrial component of IMT-2000. This Report uses the relevant parameters needed in interference studies at the date of publication. It should be noted that
7、the parameters assumed in this Report for the IMT-2000 terrestrial system are those of IMT-2000 CDMA direct spread/CDMA TDD (referred to hereafter in this Report as T-IMT-2000); no other terrestrial IMT-2000 radio interfaces have been considered because the current studies only consider that interfa
8、ce. The interference problems are investigated by deterministic and statistical approaches, for the different scenarios. This Report gives technical conclusions regarding the necessary guardbands between T-IMT-2000 and the MSS in the band 2 500-2 690 MHz. Since these conclusions are based on paramet
9、ers correct at the date of publication and predicted deployment scenarios, it should be noted that any changes in parameters, for example, in the T-IMT-2000 emission masks, would require the conclusions of this Report to be reconsidered. 2 Sharing and adjacent band compatibility methods 2.1 Interfer
10、ence mechanisms 2.1.1 Interference paths for S-IMT-2000/T-IMT-2000 sharing and compatibility assessments The various interference paths can be categorized in a number of ways. The approach selected is based on the wanted or interfering system and whether the interference path is the satellite compon
11、ent (including eventually terrestrial repeaters) or the terrestrial component. This approach was selected as the satellite IMT-2000 (S-IMT-2000) direction (uplink or downlink) determines the approach to modelling. The result is four main interference paths, as shown in Table 1 and Figs. 1 to 4. TABL
12、E 1 Interference paths Interference path MSS downlink at 2 520 MHz MSS uplink at 2 670 MHz T-IMT-2000 wanted MSS interfering A B T-IMT-2000 interfering MSS wanted D C Rep. ITU-R M.2041 3 Rap 2041-01A3A1A2A4MSS satelliteSatellite downlinkIn band TxMobileearthstation(MES)Terrestrialrepeater(TR)Base st
13、ation(BS)TerrestrialUser equipment(UE)FIGURE 1Interference path A2 500-2 520 MHzInterference path:A1: MSS UEA2: MSS BSA3: TR UEA4: TR BSRap 2041-02B1B2MSS satelliteSatellite uplinkMESBSTerrestrialUEFIGURE 2Interference path B2 670-2 690 MHzInterference path:B1: MES UEB2: MES BS4 Rep. ITU-R M.2041 Ra
14、p 2041-03C1C2MSS satelliteSatellite uplinkMESBSTerrestrialUEsInterference path:C1: UE MSSC2: BS MSSFIGURE 3Interference path C2 670-2 690 MHzRap 2041-04D2, D4D1, D3MSS satelliteSatellite downlinkIn bandTxMESTRBSTerrestrialUEsInterference path:D1: UE MES (receiving from satellite)D2: BS MES (receivin
15、g from satellite)D3: UE MES (receiving from TR)D4: BS MES (receiving from TR)FIGURE 4Interference path D2 500-2 520 MHzRep. ITU-R M.2041 5 2.2 Minimum coupling loss (MCL) and Monte Carlo approaches In this Report, two approaches have been used so far to assess interference between two systems. a) Th
16、e first one, the minimum coupling loss (MCL), allows computation, for a given system (a given set of transmitter and receiver parameters) of the minimum propagation loss (and hence derivation of the minimum separation distance) and/or the minimum adjacent band isolation (and hence derivation of the
17、minimum guardband). For 3GPP compliant systems (terrestrial or satellite) operating with the same bandwidth, the adjacent band isolation is expressed by the adjacent channel interference ratio (ACIR), as explained below. It should be noted that the ACIR concept is useful when standard frequency carr
18、ier separations of 5, 10 or 15 MHz are envisaged. In other cases, the use of Tx/Rx spectrum masks is necessary. The MCL between an interfering transmitter (Tx) and a victim receiver (Rx) is defined as: )dBm/Ref.Bw()dBi()dBi()Ref.Bw/dBm(thresholdceinterferenRgainantennaRgainantennaTpowerTMCLxxxx+=In
19、the case of a minimum separation distance calculation, Dmin: )(minDn modelPropagatioMCL = In the case of a minimum guardband calculation, fseparation: )()(separationminfACIRDmodelnPropagatioMCL = The ACIR is defined as: ACSACLRACIR111+= (in linear terms) ACLR is the adjacent channel leakage ratio of
20、 the interfering transmitter (i.e. the out-of-band power ratio falling into the adjacent channel), and ACS is the adjacent channel selectivity (i.e. the power received in the adjacent channel after the input filter) of the victim receiver. However, in T-IMT-2000 systems, the interference usually res
21、ults in loss of capacity and/or of coverage. The assessment of the impact of interference therefore requires in some cases a simulation over a large number of transmitters and receivers and MCL may not be adequate to investigate this loss. In addition, MCL does not model power control or dynamic sit
22、uations, which may be determining for some scenarios, such as for example, those involving user terminals as a victim. b) The second approach is the Monte Carlo simulation, which gives a probability of interference for the given set of parameters and a deployment and power control model. The accepta
23、ble interference probability used in Monte Carlo studies will depend on the scenario under consideration. For example, in the case of interference between MES and the terrestrial UE, the maximum acceptable interference probability for terrestrial IMT-2000 CDMA direct spread is considered to be 2%. 6
24、 Rep. ITU-R M.2041 The Seamcat1Monte Carlo tool was used in most of the Monte Carlo simulations presented in that Report. The assumptions used in the Monte Carlo simulations are detailed in Annex 2, and are based on work in ITU-R. Additional information is also included alongside the reported compat
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