Electronic Dynamic Switching Techniques for Efficient Drive of Asymmetric Three-Phase Motors with Single-Phase Supply
<p>Asymmetric induction machine stator connection details.</p> "> Figure 2
<p>Main system screen.</p> "> Figure 3
<p>Machine torque with load and capacitor variation.</p> "> Figure 4
<p>Step load applied to the motor.</p> "> Figure 5
<p>Asymmetric motor speed with load and capacitor variation.</p> "> Figure 6
<p>Current values during the load stage applied to the motor, yellow current phase A, blue current phase B, orange current phase C.</p> "> Figure 7
<p>Test bench.</p> "> Figure 8
<p>10 hp motor used as load.</p> "> Figure 9
<p>Current at 20% load.</p> "> Figure 10
<p>Speed at 20% load.</p> "> Figure 11
<p>Current at 50% load.</p> "> Figure 12
<p>Speed at 50% load.</p> "> Figure 13
<p>Current at 80% load.</p> "> Figure 14
<p>Speed at 80% load.</p> "> Figure 15
<p>Current at 100% load.</p> "> Figure 16
<p>Speed at 100% load.</p> "> Figure 17
<p>Current at 120% load.</p> "> Figure 18
<p>Speed at 120% load.</p> ">
Abstract
:1. Introduction
2. Mathematical Modeling of the Asymmetric Three-Phase Induction Motor
Asymmetric Motor Modelling in the Y Connection
3. Dynamic Capacitance Switching
4. Simulation with the Switching of a Single Capacitor for Every Load Level
- Load application;
- Current controller;
- Machine/control measurements;
- Switch measurements;
- Source + TRIAC;
- Asymmetric three-phase induction motor.
- Range of Analysis: Using a wide range of loads (below and above nominal load) allows for a comprehensive analysis of the motor’s behavior under different operational conditions. This includes scenarios of underload (20%, 50%, and 80%), nominal load (100%), and overload (120%).
- Compliance with Industrial Standards: In industrial practice, motors often operate under a variety of load conditions. Evaluating performance at multiple load levels ensures that the motor and power system are adequately sized for a wide range of operations.
- Study of Safety and Reliability: Operating and testing the motor beyond its nominal capacity (such as at 120%) is important for understanding safety limits and motor reliability, as well as for identifying potential failures or the need for additional protection.
5. Experimental Tests
5.1. Methodology for Load Application
5.2. Power Factor
6. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
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Time | Load Percentage |
---|---|
0–3 s | 0% |
3.0001–7 s | 20% |
7.0001–12 s | 50% |
12.0001–17 s | 80% |
17.0001–22 s | 100% |
22.0001–29 s | 120% |
Load Percentage | Rad/s |
---|---|
0% | 192 |
20% | 189 |
50% | 185 |
80% | 181 |
100% | 178.7 |
120% | 176 |
Load Percentage | Current | Current Value (A) |
---|---|---|
0% | Ia | 2.1 A |
Ib | 2.6 A | |
Ic | 4.5 A | |
20% | Ia | 2.1 A |
Ib | 3.5 A | |
Ic | 4.2 A | |
50% | Ia | 3 A |
Ib | 4.5 A | |
Ic | 4 A | |
80% | Ia | 5 A |
Ib | 6.1 A | |
Ic | 4 A | |
100% | Ia | 6 A |
Ib | 6.3 A | |
Ic | 4.1 A | |
120% | Ia | 6.8 A |
Ib | 7.2 A | |
Ic | 4.3 A |
Motor Loading | Asymmetric Motor |
---|---|
20% | 0.89 |
50% | 0.90 |
80% | 0.92 |
100% | 0.93 |
120% | 0.95 |
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Prado, W.d.; Guimarães, G.C.; Alves, G.H. Electronic Dynamic Switching Techniques for Efficient Drive of Asymmetric Three-Phase Motors with Single-Phase Supply. Energies 2024, 17, 5769. https://doi.org/10.3390/en17225769
Prado Wd, Guimarães GC, Alves GH. Electronic Dynamic Switching Techniques for Efficient Drive of Asymmetric Three-Phase Motors with Single-Phase Supply. Energies. 2024; 17(22):5769. https://doi.org/10.3390/en17225769
Chicago/Turabian StylePrado, Wellington do, Geraldo Caixeta Guimarães, and Guilherme Henrique Alves. 2024. "Electronic Dynamic Switching Techniques for Efficient Drive of Asymmetric Three-Phase Motors with Single-Phase Supply" Energies 17, no. 22: 5769. https://doi.org/10.3390/en17225769
APA StylePrado, W. d., Guimarães, G. C., & Alves, G. H. (2024). Electronic Dynamic Switching Techniques for Efficient Drive of Asymmetric Three-Phase Motors with Single-Phase Supply. Energies, 17(22), 5769. https://doi.org/10.3390/en17225769