IEEE 1775-2010 en Power Line Communication Equipment Electromagnetic Compatibility (EMC) Requirements Testing and Measurement Methods《电线通信设备 电磁兼容性(EMC)要求 试验和测量方.pdf
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1、 IEEE Standard for Power Line Communication Equipment Electromagnetic Compatibility (EMC) RequirementsTesting and Measurement Methods Sponsored by the Standards Committee IEEE 3 Park Avenue New York, NY 10016-5997 USA 7 January 2011 Sponsored by the Power System Communications Committee of the IEEE
2、Power +1 978 750 8400. Permission to photocopy portions of any individual standard for educational classroom use can also be obtained through the Copyright Clearance Center. Introduction This introduction is not part of IEEE Std 1775-2010, IEEE Standard for Power Line Communication EquipmentElectrom
3、agnetic Compatibility (EMC) RequirementsTesting and Measurement Methods. Power line communication (PLC) technology has developed over a long period of time. As early as 1838 Edward Davy proposed remote electricity supply metering for the purpose of checking the voltage levels of the batteries at unm
4、anned sites in the London-Liverpool telegraph system. The first carrier-current system for mains signaling was established in 1893 by the Swiss Electricity Board. The carrier frequency transmission of voice over power lines began in the 1920s. Due to low attenuation and low noise in the transmission
5、 lines at the carrier frequencies (15 KHz to 500 KHz), a distance of 900 km between transmitter and receiver could be attained with a power of 10 W. In 1930 Ripple Carrier Signaling was implemented in Germany over medium- and low-voltage distribution power lines. Such systems typically operated in t
6、he frequency band 125 Hz to 3000 Hz, so a carrier signal propagated with low losses. Advances in communication technology in the late 1990s led to new research and development activities related to data communication through the power grid. Known widely as power line communications (PLC), this techn
7、ology is also named broadband over power line (BPL), power line telecommunication (PLT), and power line technology (PLT). PLC created a mix of high expectations and concerns mainly due to perceived EMC problems and absence of regulatory and standardization framework to address them. In 2000 several
8、European countries independently proposed EMC regulations for PLC. Later, the Joint Working Group of CENELEC and ETSI started developing a standard covering the EMC aspects of wire-line telecommunications networks including their in-home extension. The standard scope is focusing on the limits and in
9、 situ measurements procedures for EMI measurements. Currently the standard is under development. In 2004 the regulatory uncertainty in the U.S. ended when the FCC approved the Report and Order “Amendment of Part 15 regarding new requirements and measurement guidelines for Access Broadband over Power
10、 Line Systems” (ET Docket No. 04-37). The Amendment: (a) defines the Access and In-House BPL system; (b) contains the emission limits for them; and (c) describes in detail the measurement procedure for emissions measurements from BPL equipment verification and certification. However, immunity requir
11、ements and testing were not covered under this document. In the U.S., narrowband carrier-current systems are regulated by the Federal Communication Commission (FCC) under CFR 47 Part 15 Rules for unintentional radiators. Therefore, for such systems the methods provided by ANSI C63.4 are fully applic
12、able for emissions measurements.aIn 2004 the IEEE published IEEE Std 643-2004 B31 for low-frequency power line communications covering 50 kHz to 450 kHz band operations.bIn 2005 CENELEC published EN 50412-2-1, which is the first immunity standard for PLC equipment. In 2007 the Japanese Ministry of I
13、nterior and Communication (MIC) published “Japanese (radio) Regulations for the Broadband PLC (or PLT or BPL),” which is part of Japanese Radio Law and Ordinance regulating radio equipment. In 2008 CISPR sent out for circulation the Draft Amendment to CISPR 22, which will describe the limits and met
14、hod of measurement of broadband telecommunication equipment over power lines. Both the Japanese and CISPR documents are applicable for In-premises BPL devices. aInformation on references can be found in Clause 2. bThe numbers in brackets correspond to those of the bibliography in Annex G. iv Copyrig
15、ht 2011 IEEE. All rights reserved. The growing concerns from PLC manufacturers and utility operators about the absence of an internationally recognized EMC measurement and testing methodology for PLC equipment and installations was addressed when in 2004 IEEE Standards Association established the PL
16、C EMC Working Group P1775 to develop this standard. The Working Group is co-sponsored by the Power (2) parallel to the ground and parallel to the power line (HY); and (3) perpendicular to the ground (HZ). To establish the measurement values, the loop antenna shall not be rotated to maximize each of
17、the readings; rather, its axis is positioned in only the three orientations described above at each distance and the three separate measurements are combined into one linear RMS value H in A/m at that measurement distance according to: H = (HX2+ HY2+ HZ2)1/29Information on references can be found in
18、 Clause 2. 10NTIA Report 08-450 on broadband over power line systems notes that “the use of the optional 1 meter measurement height coupled with a 5 dB correction factor will, in general, provide similar results to measurements performed using a 1 m to 4 m measurement height.” 14 Copyright 2011 IEEE
19、. All rights reserved. IEEE Std 1775-2010 IEEE Standard for Power Line Communication EquipmentElectromagnetic Compatibility (EMC) RequirementsTesting and Measurement Methods Readings are converted from magnetic field strength in dBA/m where dBA/m = 20log10(A/m) to V in dBV/m by adding 51.5 dB.11See
20、CISPR 16-1-4. When using active magnetic loops, care shall be taken to prevent ambient signals from overloading the spectrum analyzer or antenna pre-amplifier. High ambient signals may create overload, which should be addressed by the use of a band stop or band pass filter. h) Where specified by nat
21、ional regulations the lateral or slant distance in the regulation between the EUT and measurement antennas shall be used. In the absence of the regulation, where feasible a lateral distance of 10 m (33 ft) shall be used. i) Where measurements at 10 m (33 ft) lateral distance are not feasible, measur
22、ed data shall be scaled to the reference distance by a distance correction factor according to national regulations or, in their absence, calculated from data taken at three or more different distances (see Annex A). j) All operational modes shall be tested, including all frequency bands of operatio
23、n. k) EMC criteria for disturbance emission shall be met by compliance with radiated emission limits for specified devices and environments, which are subject to national regulations for BPL devices and installations. These limits are outside of the scope of this standard. 6.2 Immunity testing a) Te
24、sting shall be performed with equipment powered. b) All tests, except the surge tests, shall be performed with equipment operating and passing data. c) The auxiliary equipment (AE) and the simulated line shall be arranged so that the received signal level shall be set near the sensitivity threshold
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