1、 IEC 62920 Edition 1.0 2017-07 INTERNATIONAL STANDARD NORME INTERNATIONALE Photovoltaic power generating systems EMC requirements and test methods for power conversion equipment Systmes de production dnergie photovoltaque Exigences de CEM et mthodes dessai pour les quipements de conversion de puissa
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19、h/csc Si vous dsirez nous donner des commentaires sur cette publication ou si vous avez des questions contactez-nous: csciec.ch. IEC 62920 Edition 1.0 2017-07 INTERNATIONAL STANDARD NORME INTERNATIONALE Photovoltaic power generating systems EMC requirements and test methods for power conversion equi
20、pment Systmes de production dnergie photovoltaque Exigences de CEM et mthodes dessai pour les quipements de conversion de puissance INTERNATIONAL ELECTROTECHNICAL COMMISSION COMMISSION ELECTROTECHNIQUE INTERNATIONALE ICS 27.160 ISBN 978-2-8322-4603-0 Registered trademark of the International Electro
21、technical Commission Marque dpose de la Commission Electrotechnique Internationale Warning! Make sure that you obtained this publication from an authorized distributor. Attention! Veuillez vous assurer que vous avez obtenu cette publication via un distributeur agr. colour inside 2 IEC 62920:2017 IEC
22、 2017 CONTENTS FOREWORD . 5 INTRODUCTION . 7 1 Scope 8 2 Normative references 8 3 Terms and definitions 9 4 Classification of PCE . 12 4.1 Category of environment . 12 4.2 Division into classes . 13 4.3 Information for users . 13 5 Test setup for type test 14 5.1 General . 14 5.2 Configuration of te
23、st setups 14 5.2.1 General . 14 5.2.2 Setups for immunity requirement test . 15 5.2.3 Setups for low frequency emission requirement test 16 5.2.4 Setups for high frequency emission requirement test . 16 6 Operating conditions during testing 17 6.1 General . 17 6.2 Operating conditions for immunity r
24、equirement test . 17 6.3 Operating conditions for low frequency emission requirement test 17 6.4 Operating conditions for high frequency emission requirement test . 17 7 Immunity requirements 18 7.1 Requirements . 18 7.2 Performance criteria . 21 8 Emission requirements 22 8.1 Low frequency 22 8.2 H
25、igh frequency 24 8.2.1 Conducted emission 24 8.2.2 Radiated emission . 27 9 Test results and test report 28 Annex A (informative) Configuration examples of test setups . 29 A.1 General . 29 A.2 Setups for immunity requirement test 29 A.2.1 Electrostatic discharge 29 A.2.2 Radiated disturbances . 31
26、A.2.3 Electrical fast transient/burst . 32 A.2.4 Surge 34 A.2.5 Conducted disturbances, induced by radio-frequency fields . 36 A.2.6 Voltage dips and interruption . 36 A.3 Setups for high frequency emission requirement test 37 A.3.1 Conducted disturbances 37 A.3.2 Radiated disturbances . 39 Annex B
27、(informative) Setups for low frequency emission requirement test 40 B.1 General . 40 B.2 Example of a test circuit for low frequency emission requirement test . 40 B.2.1 Harmonics . 40 IEC 62920:2017 IEC 2017 3 B.2.2 Voltage fluctuations and flicker 42 Annex C (informative) Test setup for conducted
28、disturbance measurement 44 C.1 General . 44 C.2 Examples of a test setup . 44 Annex D (informative) Alternative test methods for high-power PCE 47 D.1 General . 47 D.2 Alternative method for immunity requirement test 47 D.2.1 Alternative method for EFT/burst immunity test 47 D.2.2 Alternative method
29、 for surge test . 47 D.2.3 Alternative test method for conducted disturbances, induced by radio- frequency fields . 48 D.2.4 Conducted disturbances measurement 49 Bibliography 51 Figure 1 Example of ports 10 Figure 2 Examples of installation of PV systems in both environments 13 Figure 3 Overview of
30、 harmonic requirements up to 75 A 23 Figure 4 Overview of voltage change requirements up to 75 A . 24 Figure A.1 Example of a test setup for direct application of discharges to PCE 30 Figure A.2 Example of a test setup for indirect application of discharges to PCE . 30 Figure A.3 Example of a test s
31、etup for wall-mounted PCE 32 Figure A.4 Example of a test setup for direct coupling of the test voltage to AC mains power ports 33 Figure A.5 Example of a test setup for application of the test voltage with a capacitive coupling clamp . 34 Figure A.6 Example of a test setup for AC mains power ports
32、35 Figure A.7 Example of a test setup for DC power ports 35 Figure A.8 Example of a setup of conducted disturbances immunity test applied for wall-mounted PCE 36 Figure A.9 Example of a test setup using a generator for voltage dips and short interruptions 37 Figure A.10 Example of a test setup of co
33、nducted disturbances measurement applied for wall-mounted PCE . 38 Figure A.11 Example of a test setup of conducted disturbances measurement applied for wall-mounted PCE with power circulation 38 Figure A.12 Example of a test setup of conducted disturbances measurement applied for wall-mounted PCE w
34、ith direct connection to AC mains 39 Figure A.13 Example of a test setup of radiated disturbances measurement applied for wall-mounted PCE . 39 Figure B.1 Measurement circuit for single-phase two-wire PCE 40 Figure B.2 Measurement circuit for single-phase three-wire PCE . 41 Figure B.3 Measurement c
35、ircuit for three-phase three-wire PCE 41 Figure B.4 Measurement circuit for three-phase four-wire PCE 41 Figure B.5 Measurement circuit for single-phase two-wire PCE 42 Figure B.6 Measurement circuit for single-phase three-wire PCE . 42 Figure B.7 Measurement circuit for three-phase three-wire PCE 4
36、3 Figure B.8 Measurement circuit for three-phase four-wire PCE 43 4 IEC 62920:2017 IEC 2017 Figure C.1 Example of a standardized test setup for conducted disturbances measurement with AC mains power supply . 45 Figure C.2 Example of a standardized test setup for conducted disturbances measurement wi
37、th a laboratory AC power source 46 Figure D.1 Example of an alternative method for EFT/Burst immunity test 47 Figure D.2 Example of an alternative coupling/decoupling network for AC mains power ports . 48 Figure D.3 Example of a test setup applying clamp injection method to AC mains power ports . 49
38、 Figure D.4 Alternative test method of conduced disturbances measurement using artificial networks as voltage probes . 50 Table 1 Immunity requirements for class B PCE . 19 Table 2 Immunity requirements for class A PCE . 20 Table 3 Voltage dips and interruption immunity requirements for class B PCE
39、21 Table 4 Voltage dips and interruption immunity requirements for class A PCE 21 Table 5 Performance criteria for immunity tests . 22 Table 6 Disturbance voltage limits at the AC mains power port for class A PCE measured on a test site . 25 Table 7 Disturbance voltage limits at the AC mains power p
40、ort for class B PCE measured on a test site . 25 Table 8 Disturbance limits at the DC power port for class A PCE measured on a test site . 26 Table 9 Disturbance limits at the DC power port for class B PCE measured on a test site . 26 Table 10 Limits of conducted common mode (asymmetric mode) distur
41、bance at the wired port for class A PCE 27 Table 11 Limits of conducted common mode (asymmetric mode) disturbance at the wired port for class B PCE 27 Table 12 Electromagnetic radiation disturbance limits for class A PCE measured on a test site . 27 Table 13 Electromagnetic radiation disturbance lim
42、its for class B PCE measured on a test site . 28 IEC 62920:2017 IEC 2017 5 INTERNATIONAL ELECTROTECHNICAL COMMISSION _ PHOTOVOLTAIC POWER GENERATING SYSTEMS EMC REQUIREMENTS AND TEST METHODS FOR POWER CONVERSION EQUIPMENT FOREWORD 1) The International Electrotechnical Commission (IEC) is a worldwide
43、 organization for standardization comprising all national electrotechnical committees (IEC National Committees). The object of IEC is to promote international co-operation on all questions concerning standardization in the electrical and electronic fields. To this end and in addition to other activi
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