Power Balance and Power Factors of Distorted Electrical Systems and Variable Speed Asynchronous Electric Drives
Abstract
:1. Introduction
2. Theoretical Determination of the Power Factor of a Distorted Electrical System
3. Experimental Study of Adjustable Asynchronous Electric Drive
4. Conclusions
- The analysis of electro-energetic and electromagnetic compatibility in distorted electrical systems requires considering not only the reactive power due to fundamental current phase shift and voltage but also other “inactive” powers, including reactive power due to the higher harmonic components. Any electrical system, especially a distorted one, requires determination of its electromagnetic and electro-energetic compatibility. Expressions of the power factor as a quantitative parameter of electro-energetic and electromagnetic compatibility for distorted systems are proposed.
- The analysis and determination of the power components and power factor of a frequency-controlled asynchronous electric drive is carried out. The possibility of determining this coefficient in two ways is confirmed by using relatively inexpensive and generally available equipment, which is predominant in practical application.
- The balance of powers at different frequencies of voltages and currents of the electrical system of a controlled asynchronous electric drive is experimentally confirmed. The method for determining the coefficients from the results of oscillograms is more preferable. Measuring instruments are characterized by accuracy classes, the increase in which leads to a significant increase in their cost. There is a relative similarity of coefficient values determined from the measured power values and from the results of processing oscillograms using the coefficients of non-sinusoidal distortions. The shift coefficient on the grid side under consideration is practically equal to 1.
- The power factor and phase shift factors of AM and ASED at a certain load are calculated as average over a certain range of speed or are determined by considering a given tachogram of speed changes. For the studies performed, the value of the power factors when operating on a certain tachogram based on the results of processing the oscillograms at the drive input and at the motor input are as follows: χED = 0.506, χIM = 0.698.
Author Contributions
Funding
Conflicts of Interest
Nomenclature
—coefficients of voltage unbalance | |
—coefficients of current unbalance | |
—coefficients of voltage lack of balance | |
—coefficients of current lack of balance | |
THD | —total harmonic distortion |
ASED | —asynchronous electric drives |
—apparent power | |
—effective values of phase voltages | |
—effective values of phase currents | |
—effective values of the fundamental harmonics of phase voltages | |
—effective values of the fundamental harmonics of phase currents | |
—total values of higher harmonics of voltages | |
—total values of higher harmonics of currents | |
—current distortion power | |
—voltage distortion power | |
—harmonic distortion power | |
—effective values of zero, direct and reverse voltage sequences | |
—effective values of zero, direct and reverse current sequences | |
—active power | |
—reactive power | |
—distortion power | |
—“pulsating” power | |
—“latent” power | |
—“modular” power | |
—total harmonic distortion of current | |
—total harmonic distortion of voltage | |
—unity phasor = ej120° | |
—shift angle between the first harmonics of current and voltage | |
—power factor |
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S, V·A | P, W | Q, VAr | D, VAr | |
---|---|---|---|---|
Grid side | 921 | 395 | 175 | 814 |
Motor side | 470 | 338 | 210 | 246 |
Parameter | Measurement Method | |
---|---|---|
Devices | Oscillograms | |
χED | 0.563 | 0.45 |
cosφ1 ED | 0.942 | 0.914 |
THDI ED | – | 1.772 |
Parameter | Measurement Method | |
---|---|---|
Devices | Oscillograms | |
χIM | 0.777 | 0.651 |
cosφ1 IM | 0.902 | 0.848 |
THDI IM | – | 0.0826 |
THDU IM | – | 0.828 |
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Petrushyn, V.; Horoshko, V.; Plotkin, J.; Almuratova, N.; Toigozhinova, Z. Power Balance and Power Factors of Distorted Electrical Systems and Variable Speed Asynchronous Electric Drives. Electronics 2021, 10, 1676. https://doi.org/10.3390/electronics10141676
Petrushyn V, Horoshko V, Plotkin J, Almuratova N, Toigozhinova Z. Power Balance and Power Factors of Distorted Electrical Systems and Variable Speed Asynchronous Electric Drives. Electronics. 2021; 10(14):1676. https://doi.org/10.3390/electronics10141676
Chicago/Turabian StylePetrushyn, Viktor, Vasiliy Horoshko, Juriy Plotkin, Nurgul Almuratova, and Zhanar Toigozhinova. 2021. "Power Balance and Power Factors of Distorted Electrical Systems and Variable Speed Asynchronous Electric Drives" Electronics 10, no. 14: 1676. https://doi.org/10.3390/electronics10141676
APA StylePetrushyn, V., Horoshko, V., Plotkin, J., Almuratova, N., & Toigozhinova, Z. (2021). Power Balance and Power Factors of Distorted Electrical Systems and Variable Speed Asynchronous Electric Drives. Electronics, 10(14), 1676. https://doi.org/10.3390/electronics10141676