BS IEC 62232-2011 Determination of RF field strength and SAR in the vicinity of radiocommunication base stations for the purpose of evaluating human exposure《为评估人体受辐射程度 在无线电通信基站附近进.pdf
《BS IEC 62232-2011 Determination of RF field strength and SAR in the vicinity of radiocommunication base stations for the purpose of evaluating human exposure《为评估人体受辐射程度 在无线电通信基站附近进.pdf》由会员分享,可在线阅读,更多相关《BS IEC 62232-2011 Determination of RF field strength and SAR in the vicinity of radiocommunication base stations for the purpose of evaluating human exposure《为评估人体受辐射程度 在无线电通信基站附近进.pdf(184页珍藏版)》请在麦多课文档分享上搜索。
1、raising standards worldwideNO COPYING WITHOUT BSI PERMISSION EXCEPT AS PERMITTED BY COPYRIGHT LAWBSI Standards PublicationDetermination of RF field strength and SAR in the vicinity of radiocommunicationbase stations for the purpose of evaluating human exposureBS IEC 62232:2011National forewordThis B
2、ritish Standard is the UK implementation of IEC 62232:2011.The UK participation in its preparation was entrusted to Technical CommitteeGEL/106, Human exposure to low frequency and high frequency electromagnetic radiation.A list of organizations represented on this committee can be obtained onrequest
3、 to its secretary.This publication does not purport to include all the necessary provisions of acontract. Users are responsible for its correct application. BSI 2011ISBN 978 0 580 55621 0ICS 13.280; 17.240; 33.070.01Compliance with a British Standard cannot confer immunity fromlegal obligations.This
4、 British Standard was published under the authority of the StandardsPolicy and Strategy Committee on 31 July 2011.Amendments issued since publicationAmd. No. Date Text affectedBRITISH STANDARDBS IEC 62232:2011IEC 62232 Edition 1.0 2011-05 INTERNATIONAL STANDARD NORME INTERNATIONALE Determination of
5、RF field strength and SAR in the vicinity of radiocommunication base stations for the purpose of evaluating human exposure Dtermination des champs de radiofrquences et du DAS aux environs des stations de base utilises pour les communications radio dans le but dvaluer lexposition humaine INTERNATIONA
6、L ELECTROTECHNICAL COMMISSION COMMISSION ELECTROTECHNIQUE INTERNATIONALE XJ ICS 13.280; 17.240 PRICE CODE CODE PRIX ISBN 978-2-88912-493-0 Registered trademark of the International Electrotechnical Commission Marque dpose de la Commission Electrotechnique Internationale colourinsideBS IEC 62232:2011
7、 2 62232 IEC:2011 CONTENTS FOREWORD . 7 INTRODUCTION . 9 1 Scope . 10 2 Normative references . 11 3 Terms and definitions . 11 4 Symbols and abbreviated terms 17 4.1 Physical quantities 17 4.2 Constants 17 4.3 Abbreviations 17 5 Developing the evaluation plan . 18 5.1 Overview . 18 5.2 Key tasks 19
8、6 Evaluation methods 21 6.1 Overview . 21 6.2 Measurement methods 22 6.2.1 Overview of measurement methods . 22 6.2.2 RF field strength measurement 23 6.2.3 SAR measurement method 32 6.3 Computation methods 36 6.3.1 Overview and general requirements 36 6.3.2 Basic computation methods . 38 6.3.3 Adva
9、nced computation methods 43 6.4 Extrapolation from the evaluated SAR / RF field strength to the required assessment condition 52 6.4.1 Extrapolation method . 52 6.4.2 Extrapolation to maximum RF field strength using broadband measurements . 53 6.4.3 Extrapolation to maximum RF field strength for fre
10、quency and code selective measurements 53 6.5 Summation of multiple RF fields 54 6.5.1 Applicability . 54 6.5.2 Uncorrelated fields 54 6.5.3 Correlated fields 55 6.5.4 Ambient fields 55 7 Uncertainty . 55 7.1 Background . 55 7.2 Requirement to estimate uncertainty . 55 7.3 How to estimate uncertaint
11、y 56 7.4 Uncertainty bounds on measurement equipment influence quantities 56 7.5 Applying uncertainty for compliance assessments . 56 8 Reporting . 57 8.1 Background . 57 8.2 Evaluation report . 57 8.2.1 General . 57 8.2.2 Measurement data sheet . 57 8.2.3 Computational data sheet 58 8.2.4 Final rep
12、ort 58 BS IEC 62232:201162232 IEC:2011 3 8.3 Interpretation of results . 59 8.3.1 Comparison with limit 59 8.3.2 Comparing results . 59 8.3.3 Opinions and interpretations 59 Annex A (normative) Developing the evaluation plan . 60 Annex B (normative) Defining the source-environment plane . 69 Annex C
13、 (informative) Guidance on the application of the standard to specific evaluation purposes 78 Annex D (normative) Evaluation parameters 84 Annex E (normative) RF field strength measurement equipment requirements . 88 Annex F (informative) Basic computation implementation. 89 Annex G (normative) Adva
14、nced computation implementation . 97 Annex H (normative) Validation of computation methods 101 Annex I (informative) Guidance on spatial averaging schemes . 110 Annex J (informative) Guidance on addressing time variation of signals in measurement 112 Annex K (informative) Guidance on determining amb
15、ient field levels 113 Annex L (informative) Guidance on comparing evaluated parameters with a limit value . 117 Annex M (informative) Guidance on assessment schemes . 119 Annex N (informative) Guidance on specific technologies 127 Annex O (informative) Guidance on uncertainty . 151 Annex P (informat
16、ive) Case studies . 165 Bibliography 175 Figure 1 Overview of evaluation methods . 21 Figure 2 Overview of RF field strength measurement methods . 22 Figure 3 Positioning of the EUT relative to the relevant phantom . 33 Figure 4 Overview of computation methods 37 Figure 5 Reflection due to the prese
17、nce of a ground plane . 39 Figure 6 Enclosed cylinder around collinear arrays, with and without electrical downtilt . 40 Figure 7 Directions for which SAR estimation expressions are given 41 Figure 8 Ray tracing (synthetic model) geometry and parameters 44 Figure B.1 Source-environment plane concept
18、 . 69 Figure B.2 Geometry of an antenna with largest linear dimension Leffand largest end dimension Lend. 70 Figure B.3 Maximum path difference for an antenna with largest linear dimension L 75 Figure B.4 Example source-environment plane regions near a roof-top antenna which has a narrow vertical (e
19、levation plane) beamwidth (not to scale) . 77 Figure C.1 Example of complex compliance boundary . 79 Figure C.2 Example of circular cylindrical compliance boundaries: (a) sector coverage antenna, (b) horizontally omnidirectional antenna 79 Figure C.3 Example of parallelepipedic compliance boundary 8
20、0 Figure C.4 Example illustrating the linear scaling procedure 80 Figure C.5 Example investigation process 83 BS IEC 62232:2011 4 62232 IEC:2011 Figure D.1 Cylindrical, cartesian and spherical coordinates relative to the RBS antenna 84 Figure F.1 Reference frame employed for cylindrical formulae for
21、 field strength computation at a point P (left), and on a line perpendicular to boresight (right) . 89 Figure F.2 Two (a) and three (b) dimensional views illustrating the three valid zones for field strength computation around an antenna 90 Figure F.3 Leaky feeder geometry . 95 Figure H.1 Cylindrica
22、l formulae reference results . 101 Figure H.2 Spherical formulae reference results 102 Figure H.3 Line 4 far-field positions for ray tracing validation example . 103 Figure H.4 Antenna parameters for ray tracing algorithm validation example . 104 Figure H.5 Generic 900 MHz RBS antenna with nine dipo
23、le radiators 106 Figure H.6 Line 1, 2 and 3 near-field positions for full wave and ray tracing validation . 106 Figure H.7 Generic 1 800 MHz RBS antenna with five slot radiators 108 Figure H.8 RBS antenna placed in front of a multi-layered lossy cylinder . 109 Figure I.1 Spatial averaging schemes re
24、lative to foot support level 111 Figure I.2 Spatial averaging relative to spatial-peak field strength point height . 111 Figure K.1 Evaluation locations 115 Figure K.2 Relationship of separation of remote radio source and evaluation area to separation of evaluation points . 116 Figure M.1 Target unc
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