Voltage Control of Multiphase Cage Induction Generators at a Speed Varying over a Wide Range
Abstract
:1. Introduction
2. Application Suggestions
3. Properties of MIMs and the Induced Generator Voltage
3.1. MMF Distribution and Main Properties
3.2. Induced No-Load Voltage
4. The Control System
5. Laboratory Tests of the Nine-Phase Induction Generator
5.1. Measuring System
- Torque meter and encoder (TM, ENC): quadrature encoder 720 imp/rev with the speed sensor built-in DATAFLEX 32/300 torque meter.
- Control system (CTRL) based on digital signal controller: Texas Instruments TMS320F28379D.
- IGBT modules (VSC): Mitsubishi CM50DY-24H.
- Current measurement probes: Chauvin Arnoux E3N; voltage measurement probes: TESTEC TT-SI 9001, PINTEK DP-35.
- Data acquisition card (AS): National Instruments USB-6211.
- DC commutator motor (DCM): 4.5 kW, 220 V, 1460 rev/min.
- UDC0 charges capacitor Cd to initial voltage of = 80 V.
5.2. Experimental Tests
5.2.1. Steady-State Measurements
5.2.2. Example of Transient States
6. Conclusions
- A step change in voltage by switching the sequence of phase currents, causing a change in the number of poles of the magnetic field, extends the range of voltage regulation. The most useful is switching between = 2 and 3, between = 3 and 4, etc. Switching between = 1 and 2 at the speed causes difficulties in maintaining a sufficiently high efficiency of the generator.
- A multiphase induction generator has only one winding, allowing it to work with a varying number of pole pairs 1, 2, 3, 4, … When using a Dahlander winding in a three-phase machine, the number of pole pairs can be changed in a ratio of 1 to 2.
- The dimensions of a multiphase induction machine are similar to a three-phase machine with the same power. Cage induction machines are cheaper than synchronous generators with permanent magnets, which usually have to work with a back-boost converter.
- Multiphase induction generators can be used in wind and hydropower plants at significantly variable speeds. Even at relatively low speeds, a rated voltage will be produced.
- The best efficiency = 0.74 (Figure 13) was not significantly worse than the rated efficiency of the motor Sf112M-4 = 0.88 (the stator core and the cage rotor were used for the generator), since the generator was working below its rating.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Glossary
flux density in the air-gap | |
capacitance | |
number of coils in the group creating the phase winding | |
electromotive force | |
magnetomotive force (MMF) | |
stator frequency | |
sets of harmonic orders | |
current of k-th phase winding | |
amplitude of stator phase current | |
length of the stator core | |
inductance | |
number of phases | |
supply sequence number | |
number of sequences for one direction of rotation | |
number of turns | |
power | |
number of pole pairs | |
resistance | |
stator core bore radius | |
indicator of machine winding type | |
torques | |
voltage | |
wind velocity | |
number of stator slots | |
slot angle | |
pitch angle | |
equivalent width of the machine air-gap | |
phase angle | |
vacuum permeability | |
harmonic orders of MMF Fourier series | |
magnetic flux | |
instantaneous rotational speed | |
steady-state rotational speed |
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Parameters | First Type Winding (Figure 5) S = 1 | Second Type Winding (Figure 6) S = 2 | ||||||
---|---|---|---|---|---|---|---|---|
1 | 2 | 3 | 4 | 1 | 3 | 5 | 7 | |
8 | 7 | 6 | 5 | 17 | 15 | 13 | 11 | |
0.4980 | 0.8528 | 0.9659 | 0.8137 | 0.9961 | −0.9659 | 0.9063 | −0.8191 | |
−0.6634 | −0.4095 | 0 | 0.4531 | 0.0871 | −0.2588 | 0.4226 | −0.5735 | |
0.498 | 0.426 | 0.322 | 0.203 | 0.996 | −0.322 | 0.181 | −0.117 | |
−0.083 | 0.058 | 0 | 0.090 | 0.005 | −0.017 | 0.032 | 0.052 | |
0.248 | 0.182 | 0.103 | 0.041 | 0.992 | 0.103 | 0.033 | 0.013 |
Speed Range | Sequence Number |
---|---|
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Drozdowski, P.; Cholewa, D. Voltage Control of Multiphase Cage Induction Generators at a Speed Varying over a Wide Range. Energies 2021, 14, 7080. https://doi.org/10.3390/en14217080
Drozdowski P, Cholewa D. Voltage Control of Multiphase Cage Induction Generators at a Speed Varying over a Wide Range. Energies. 2021; 14(21):7080. https://doi.org/10.3390/en14217080
Chicago/Turabian StyleDrozdowski, Piotr, and Dariusz Cholewa. 2021. "Voltage Control of Multiphase Cage Induction Generators at a Speed Varying over a Wide Range" Energies 14, no. 21: 7080. https://doi.org/10.3390/en14217080
APA StyleDrozdowski, P., & Cholewa, D. (2021). Voltage Control of Multiphase Cage Induction Generators at a Speed Varying over a Wide Range. Energies, 14(21), 7080. https://doi.org/10.3390/en14217080