ITU-T K 18-1988 Calculation of Voltage Induced into Telecommunication Lines from Radio Station Broadcasts and Methods of Reducing Interference《电信线路中无线电广播感应电压的计算和降低干扰的方法-抗干扰防护(研究组5).pdf
《ITU-T K 18-1988 Calculation of Voltage Induced into Telecommunication Lines from Radio Station Broadcasts and Methods of Reducing Interference《电信线路中无线电广播感应电压的计算和降低干扰的方法-抗干扰防护(研究组5).pdf》由会员分享,可在线阅读,更多相关《ITU-T K 18-1988 Calculation of Voltage Induced into Telecommunication Lines from Radio Station Broadcasts and Methods of Reducing Interference《电信线路中无线电广播感应电压的计算和降低干扰的方法-抗干扰防护(研究组5).pdf(21页珍藏版)》请在麦多课文档分享上搜索。
1、INTERNATIONAL TELECOMMUNICATION UNION)45G134 + TELECOMMUNICATIONSTANDARDIZATION SECTOROF ITU02/4%#4)/.G0G0!).34G0G0).4%2&%2%.#%#!,#5,!4)/.G0G0/&G0G06/,4!%G0G0).$5#%$G0G0).4/4%,%#/-5.)#!4)/.G0G0,).%3G0G0&2/-G02!$)/34!4)/.G0G0“2/!$#!343G0G0!.$G0G0-%4(/$3G0G0/&2%$5#).G0G0).4%2&%2%.#%)45G134G0G0Recommen
2、dationG0G0+ (Extract from the “LUEG0“OOK)NOTES1 ITU-T Recommendation K.18 was published in Volume IX of the Blue Book. This file is an extract from theBlue Book. While the presentation and layout of the text might be slightly different from the Blue Book version, thecontents of the file are identica
3、l to the Blue Book version and copyright conditions remain unchanged (see below).2 In this Recommendation, the expression “Administration” is used for conciseness to indicate both atelecommunication administration and a recognized operating agency. ITU 1988, 1993All rights reserved. No part of this
4、publication may be reproduced or utilized in any form or by any means, electronic ormechanical, including photocopying and microfilm, without permission in writing from the ITU.Volume IX - Rec. K.18 1Recommendation K.18Volume IX - Rec. K.18CALCULATION OF VOLTAGE INDUCED INTO TELECOMMUNICATIONLINES F
5、ROM RADIO STATION BROADCASTS AND METHODSOF REDUCING INTERFERENCEGeneva, 1980, modified at Malaga-Torremolinos, 1984 and at Melbourne, 1988)1 IntroductionAlthough inductive interference from radio waves is seldom observed on circuits in underground cables, manyexamples of such interference have been
6、reported in circuits carried by open wires, aerial cables or cables inside buildings.Interference on voice-frequency circuits occurs because the induced radio wave is detected and demodulated by thenonlinear components in a telephone set or by metal oxide layers formed at conductor joints. This inte
7、rference is mostlyintelligible noise and may occur up to 5 km from a radio station whose radiating power is more than several tens ofkilowatts.On carrier or video transmission circuits, the induced radio wave impairs circuit performance when the radio-wavefrequency is within the operating frequency
8、of the transmission system. The interference usually consists of a singlefrequency tone within a telephone channel and is unintelligible. It reduces the signal-to-noise ratio (SNR) for thetransmission system. This interference may occur within a wide area around a radio station. Interference on vide
9、otransmission circuits has been reported in only a few cases, but it is expected to cause serious problems when videotransmission services increase in number in the future.An unusual example of interference may arise in which outside plant maintenance personnel receive burns due toradio frequency cu
10、rrents. Such problems have been reported only in the immediate vicinity of a radio station antenna.2 Analysis of interferenceIn the theoretical analysis of the voltage induced from a radio wave, the following conditions are assumed: Earth resistivity is homogeneous and uniform. A cable or a wire is
11、supported in a straight line at a constant height above the earths surface. The metallic screen of a cable is earthed at both ends. The radio-wave electric field has a constant intensity and a constant incidence angle, and phase change along thecable is uniform. The radio wave is originally polarize
12、d vertically. However, while it propagates along the surface of the earth, ahorizontal component is generated due to the finite conductivity of the earth.Constants and variables used for theoretical analysis are shown in Annex A.2.1 For telecommunication lines without a metallic screen, the horizont
13、al component of the radio-wave electric field actsdirectly as an electromotive force on the telecommunication line. This causes induced noise at terminals when the circuit hasan impedance unbalance with respect to earth. Induced longitudinal voltages at the ends of a telecommunication line withouta
14、metallic screen are given by Equations (B-1) and (B-2).2.2 For telecommunication cables with a metallic screen, the horizontal component of the radio-wave electric field actsas an electromotive force, causing induced current to flow in the earth return circuit composed of the metallic screen of thec
15、able and the earth. Due to the current in the screen, an electromotive force is induced in the conductors through the transferimpedance between the conductors and the metallic screen. This electromotive force may cause disturbance to metalliccircuits in the cable, according to the degree of their un
16、balance with respect to the metallic screen (or the earth).Induced longitudinal voltages at the ends of a telecommunication cable with a metallic screen are given by Equations(B-3) and (B-4). In reference 1 the values obtained by using these equations are shown to agree with measured values.2 Volume
17、 IX - Rec. K.182.3 The equations in Annex B are very complicated and involve many parameters. It is therefore useful to estimate theapproximate value of the maximum induced longitudinal voltage by the following simplified equation:( )()()VVl VPE ZZfvK22 2012020430 20 3001010 10 10(0) dB log 020 log
18、cos log log (2-1)=+wherelfZZ Zf(2 - 2)(2 - 3)j(dB / km)1R 1L=+=15 1020100280122 22203., 20is the attenuation coefficient at 1 MHz (dB/km)f is the radio-wave frequency expressed in Hz.Other constants and variables are shown in Annex A.Equation (2-1), which gives the maximum induced longitudinal volta
19、ge in dB (0 dB = 0.775 V), is obtained on thebasis of the following:The induced longitudinal voltage calculated by the equations in Annex B reaches an initial peak value when cablelengthlf=15 10028. and subsequently describes a series of peak values. Its maximum value occurs at one of the earlies pe
20、ak values along thecable length.lf15 10028.The induced longitudinal voltage reaches its maximum at one of the earliest peak values due to the attenuation of theinduced radio wave along the cable (Figure 3/K.18).The errors involved in using Equation (2-1) instead of the full equations of Annex B are
21、described in detail in AnnexC.2.4 If the line configuration is very complicated, it is necessary to divide the line into several segments and to estimatethe induced longitudinal voltage for each segment by Equations (B-1) to (B-4). Estimated induced voltages for each segmentare then combined to obta
22、in the overall induced voltage, taking into account the transmission characteristics and theboundary conditions of the line involved.When the simplified equation (2-1) is applied to a complicated line, a straight line model may be used to estimate themaximum induced longitudinal voltage. Calculation
23、s should commence at the point nearest to the radio station and thesmallest value of radio wave incidence angle should be used.2.5 When field measurement of the radio-wave electric field strength is carried out, the measured value may be used forEvin Equation (2-1).When the measured value is not ava
24、ilable, the radio-wave electric field strength Evcan be calculated by Equation (2-4), taking into account the distance from the radio station and the power of the radio station transmitter (see 2).Volume IX - Rec. K.18 3ErPZv= 1(2 - 4)15 20.piwhereP is the radio station transmitting power (W)r is th
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