ABS 150-2006 CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS《电气系统和声学控制》.pdf
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1、 GUIDANCE NOTES ON CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS MAY 2006 American Bureau of Shipping Incorporated by Act of Legislature of the State of New York 1862 Copyright 2006 American Bureau of Shipping ABS Plaza 16855 Northchase Drive Houston, TX 77060 USA This Page Intentionally Left Bla
2、nk ABSGUIDANCE NOTES ON CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS .2006 iii Foreword Harmonics (or distortion in wave form) has always existed in electrical power systems. It is harmless as long as its level is not substantial. However, with the recent rapid advancement of power electronics t
3、echnology, so-called nonlinear loads, such as variable frequency drives for motor power/speed control, are increasingly finding their way to shipboard or offshore applications. Harmonics induced by these nonlinear loads are a potential risk if they are not predicted and controlled. The ABS Guidance
4、Notes for Control of Harmonics in Electrical Power Systems has been developed in order to raise awareness among electrical system designers of the potential risks associated with the harmonics in electrical power systems onboard ships or offshore installations. These Guidance Notes encompass topics
5、from the fundamental physics of harmonics to available means of mitigation to practical testing methods. These Guidance Notes are intended to aid designers to plan an appropriate means of harmonics mitigation early in the design stage of the electrical power distribution systems to make the system r
6、obust and predictable. This Page Intentionally Left Blank ABSGUIDANCE NOTES ON CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS .2006 v GUIDANCE NOTES ON CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS CONTENTS SECTION 1 Introduction 1 1 Background1 2 The Use of Electric Drives in Marine Applicatio
7、ns.5 3 Main Propulsion Drives7 4 The Future? .9 FIGURE 1 Input Waveforms (440 V) to 6-Pulse DC SCR Drive.2 FIGURE 2 Line-to-line Voltage (440 V) at Input to a 6-Pulse DC SCR Drive 2 FIGURE 3 415 V Line-to-line Volts on Ship with Four 1100 kW/ 1500 HP AC SCR Converter-fed Thruster Motors.3 FIGURE 4 P
8、rimary Voltage (11 kV) of Transformer Supplying a 2 MW (2680 HP) Variable Frequency Drive 3 FIGURE 5 Typical Power System Single Line Diagram for DP Class 3 Drilling Rig.5 FIGURE 6 Electrically-driven Podded Propulsor.8 FIGURE 7 Dynamically-positioned Shuttle Tanker Equipped with AC Electric Variabl
9、e Speed Main Propulsion and Thrusters.8 SECTION 2 The Production of Harmonics.11 1 Production of Harmonics .11 2 Characteristic Harmonic Currents15 3 Effect of Harmonic Currents on Impedance(s) 19 4 Calculation of Voltage Distortion20 5 Harmonic Sequence Components.22 6 Line Notching.22 7 Interharmo
10、nics .25 8 Subharmonics27 TABLE 1 Harmonic Sequence Components for 6-Pulse Rectifier22 vi ABSGUIDANCE NOTES ON CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS .2006 FIGURE 1 Voltage and Current Waveforms for Linear Load 11 FIGURE 2a Single Phase Full Wave Rectifier.11 FIGURE 2b Load and AC Supply C
11、urrents .11 FIGURE 3a Simple Single Line Diagram12 FIGURE 3b Load Current and Volt Drop Waveforms12 FIGURE 4 How Voltage Distortion is Produced (Simplified) .12 FIGURE 5 Typical Computer Nonlinear Load .13 FIGURE 6 Single-phase Switched Mode Power Supply.13 FIGURE 7 Harmonic Spectrum of Currents Dra
12、wn by Computer Switched Mode Power Supply 14 FIGURE 8 Construction of Complex Wave .14 FIGURE 9 Computer Power Supply with Single-phase Full Wave Bridge Rectifier 16 FIGURE 10 Computer SMPS Input Current Waveform 16 FIGURE 11 Typical Waveform from Computer Switched Power Supply 17 FIGURE 12 Typical
13、6-Pulse PWM AC Drive .17 FIGURE 13 6-Pulse AC PWM Drive Input Current Waveforms for One Phase18 FIGURE 14 Typical Harmonic Spectrum for 6-Pulse AC PWM Drive.18 FIGURE 15 Distorted Currents Induce Voltage Distortion 19 FIGURE 16 How Individual Harmonic Voltage Drops Develop Across System Impedances 1
14、9 FIGURE 17 Simple Three-phase SCR Bridge for Phase Control23 FIGURE 18 Exaggerated Example of “Line Notching” 23 FIGURE 19 Voltage Notching due to SCR Bridge Commutation24 FIGURE 20 SCR Line Notching and Associated “Ringing”.24 FIGURE 21 Cycloconverter Current Spectrum Includes Interharmonics .25 F
15、IGURE 22 Waveform Containing both Harmonics and Interharmonics .26 FIGURE 23 Peak Voltage Deviations due to Interharmonics Voltage.27 SECTION 3 Effects of Harmonics. 29 1 Generators .29 1.1 Thermal Losses.29 1.2 Effect of Sequence Components.30 1.3 Voltage Distortion 30 1.4 Line Notching and Generat
16、ors.32 1.5 Shaft Generators .33 ABSGUIDANCE NOTES ON CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS .2006 vii 2 Transformers33 2.1 Thermal Losses.33 2.2 Unbalance, Distribution Transformers and Neutral Currents 34 2.3 Transformer Derating or K-factor Transformer34 3 Induction Motors 36 3.1 Thermal
17、 Losses.36 3.2 Effect of Harmonic Sequence Components 37 3.3 Explosion-proof Motors and Voltage Distortion .38 4 Variable Speed Drives .39 5 Lighting 41 5.1 Flicker .41 5.2 Effects of Line Notching on Lighting42 5.3 Potential for Resonance42 6 Uninterruptible Power Supplies (UPS).42 7 Computers and
18、Computer Based Equipment43 8 Cables45 8.1 Thermal Losses.45 8.2 Skin and Proximity Effects 45 8.3 Neutral Conductors in Four-wire Systems.47 8.4 Additional Effects Associated with Harmonics 48 9 Measuring Equipment48 10 Telephones 51 11 Circuit Breakers .51 12 Fuses .52 13 Relays 52 14 Radio, Televi
19、sion, Audio and Video Equipment 53 15 Capacitors53 FIGURE 1 Equivalent Circuit for a Generator .31 FIGURE 2 Low Pass Filter for Generator AVR Sensing on Nonlinear Loads.33 FIGURE 3 Typical Transformer Derating Curve for Nonlinear Load .35 FIGURE 4 Proposed NEMA Derating Curve for Harmonic Voltages .
20、38 FIGURE 5 AC PWM Drive Current Distortion on Weak Source40 FIGURE 6 PWM Drive “Flat Topping” due to Weak Source41 FIGURE 7 Voltage “Flat Topping” due to Pulse Currents .43 FIGURE 8 Effect of DC Bus Voltage with Flat Topping.43 FIGURE 9 Flat Topping Reducing Supply Ride-through.44 FIGURE 10 Cable A
21、C/DC Resistance, kcas a Function of Harmonic Numbers 46 FIGURE 11 4/0 AWG Cable Proximity and Skin Effect due to Harmonics47 viii ABSGUIDANCE NOTES ON CONTROL OF HARMONICS IN ELECTRICAL POWER SYSTEMS .2006 FIGURE 12 12 AWG Cable Proximity and Skin Effect due to Harmonics47 FIGURE 13 Peak and rms Val
22、ues of Sinusoidal Waveform49 FIGURE 14 Difficulties Conventional Meters Have Reading Distorted Waveforms .49 SECTION 4 Sources of Harmonics. 55 1 Distribution Systems with Single-phase Nonlinear Loads .55 1.1 Three-wire Distribution Systems55 1.2 Four-wire Distribution Systems55 2 Single-phase Nonli
23、near Loads.58 2.1 Computer-based Equipment58 2.2 Fluorescent Lighting 60 2.3 Televisions 64 2.4 Single-phase AC PWM Drives.64 3 Three-phase Nonlinear Loads .65 3.1 DC SCR drives 66 3.2 AC PWM drives .70 3.3 AC Cycloconverter Drives .76 3.4 AC Load Commutated Inverter (LCI).84 4 Additional Three-phas
24、e Sources of Harmonics .90 4.1 Rotating Machines.90 4.2 Transformers.90 4.3 UPS Systems 91 4.4 Shaft Generators .92 FIGURE 1 Four-wire System Linear Phase Currents Return via Neutral Conductor where Balanced Phase Current Cancel Out 56 FIGURE 2 Triplen Harmonics Add Up Cumulatively in Neutral Conduc
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