Application of a Model-Based Method to the Online Detection of Rotating Rectifier Faults in Brushless Synchronous Machines
Abstract
:1. Introduction
2. Description of the Fault Detection Method
- First stage: Main machine.
- 2.
- Rectifier stage relationship.
- 3.
- Second stage: Exciter.
3. Computer Simulations
3.1. Computer Simulation Model
3.2. Computer Simulation Verification
4. Experimental Tests
4.1. Experimental Test Bench
- Hall effect DC current sensor, in order to measure the exciter field current.
- Three 10/5A current transformers (CT), compliant with EN-IEC 61869-2 standard, one per output phase.
- Industrial programmable multi-transducer, compliant with EN-IEC 61000 standard regarding electromagnetic compatibility, with EN 60688 standard regarding electrical measuring transducers and with EN 55011 standard regarding radiofrequency disturbance.
- F1: Open-diode fault. A circuit-breaker is placed in series with one of the diodes. It is closed in healthy conditions and suddenly opened when the fault is performed.
- F2: Shorted-diode fault. A short-circuit branch is connected in parallel with one of the diodes and it is provided with a circuit-breaker. It is open in healthy conditions and suddenly closed when the fault is carried out. The fault has been performed with a fault resistance value of 6 Ω (Rf = 6 Ω) in order to limit the fault current below the rated exciter current, and, therefore, to avoid excessive fault currents that could damage the exciter, as shown in Figure 11.
- F3: Open-phase fault. A circuit-breaker is placed in series with one of the input phase lines. It is closed in healthy conditions and suddenly opened when the fault is produced.
4.2. Experimental Test Results
- Regarding the open-diode fault (F1), the initial healthy condition point is (U = 400 V; P = 1500 W; Q = 0 var). When the fault is produced, Q drops to −594 var defining a new operating point at (U = 400 V; P = 1500 W; Q = −594 var), as shown in Figure 18a. In healthy conditions, the value of the measured current (Ie,mea) is similar to the theoretical one computed through the model (Ie,cal), i.e., r ≈ 1, but after the fault takes place, while Ie,mea stays constant at 230 mA, the value of Ie,cal experiences a drop as the new output operating point should be attained with less need of excitation power if the system was healthy, as per Figure 18b. This fact gives rise to a value difference obtained from the comparison of Ie,mea and Ie,cal after the fault, represented by the stepwise gap (r > 1).
- Similarly to the previous case, in the case of the shorted-diode fault (F2) with Rf = 6 Ω, the initial healthy condition point (U = 400 V; P = 1500 W; Q = 0 var) gives place to a new operating point at (U = 400 V; P = 1500 W; Q = −1012 var) after the fault is produced, as shown in Figure 19a. As represented parallelly in Figure 19b, the value of Ie,mea passes from being similar to the theoretical one computed through the model (Ie,cal) before the fault, i.e., r ≈ 1, to having a clear difference after the fault, as Ie,mea stays constant at 230 mA but the value of Ie,cal drops when the calculation is performed with the healthy model at the new operating point (r > 1).
- Finally, regarding the open-phase fault (F3), the healthy-to-faulty transition implies that the (U = 400 V; P = 1500 W; Q = 0 var) is left and a new operating point at (U = 400 V; P = 1500 W; Q = −610 var) is attained, as represented in Figure 20a. As shown parallelly in Figure 20b, a stepwise gap between Ie,mea and Ie,cal is also obtained after the fault (r > 1) due to the drop of Ie,cal at the new operating point.
5. Conclusions
Author Contributions
Funding
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Category | Subcategories | References | Challenges Overcome by Model-Based Methods |
---|---|---|---|
Electrical signal analysis | Output voltage | [12,13,32] | Suboptimal accuracy Electrical measurement error dependence Computational complexity |
Output current | [14,19] | ||
Exciter field current | [14,15,16,17,18,19,20] | ||
Mechanical signal analysis | Acoustics | [21] | Audio signal acquisition technical constraints Acoustic noise Additional equipment Difficult fault classification Computational complexity |
Vibrations | [22] | Suboptimal accuracy Vibration signal acquisition technical constraints Additional equipment Difficult fault classification Computational complexity Cost | |
Thermal signal analysis | n/a | [23] | Computational complexity Additional equipment Material cost |
Airgap flux analysis | n/a | [24,25] | Invasiveness Additional equipment Installation constraints Machine design constraints Computational complexity Cost |
Stray flux analysis | n/a | [26,27] | Low accuracy Computational complexity Additional equipment Cost |
Alternator Type | Synchronous 3-Phase | |
---|---|---|
Rated power | 5 | kVA |
Rated speed | 1500 | rpm |
Rated voltage | 400 | V |
Rated current | 7.2 | A |
Pole pairs | 2 | |
Rated frequency | 50 | Hz |
IP | 21 | |
Isolation class | F | |
Rated excitation voltage | 33 | V |
Rated excitation current | 4.10 | A |
Alternator Type | Synchronous 3-Phase | |
---|---|---|
Rated power | 277 | VA |
Rated speed | 1500 | rpm |
Rated voltage | 40 | V |
Rated current | 4 | A |
Pole pairs | 4 | |
Rated frequency | 100 | Hz |
IP | 21 | |
Isolation class | F | |
Rated excitation voltage | 33 | V |
Rated excitation current | 0.61 | A |
Maximum Voltage | 26 | V |
Maximum current | ±3.2 (±0.8 resolution) | A (mA) |
Precision amplifier | 0.1 (1% precision) | Ω |
Interface | I2C |
Type | Single Phase, Wound Primary | |
---|---|---|
Ratio | 10/5 | |
Rated current | 10 | A |
Class and power | 0.5 (2.5) 1 (5) 3 (7) | (VA) |
Maximum operating voltage | 0.72 | kV |
Number of Outputs | 3 | |
---|---|---|
Type of output | Analogue | |
Rated input current | 1 to 6 | A |
Rated input voltage | 57.7 to 400 (phase-to-neutral) 100 to 693 (phase-to-phase) | V |
Accuracy class | 0.2 (voltage and current) 0.5 (all other quantities) | |
Computer interface | RS232 |
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Mahtani, K.; Guerrero, J.M.; Beites, L.F.; Platero, C.A. Application of a Model-Based Method to the Online Detection of Rotating Rectifier Faults in Brushless Synchronous Machines. Machines 2023, 11, 223. https://doi.org/10.3390/machines11020223
Mahtani K, Guerrero JM, Beites LF, Platero CA. Application of a Model-Based Method to the Online Detection of Rotating Rectifier Faults in Brushless Synchronous Machines. Machines. 2023; 11(2):223. https://doi.org/10.3390/machines11020223
Chicago/Turabian StyleMahtani, Kumar, José M. Guerrero, Luis F. Beites, and Carlos A. Platero. 2023. "Application of a Model-Based Method to the Online Detection of Rotating Rectifier Faults in Brushless Synchronous Machines" Machines 11, no. 2: 223. https://doi.org/10.3390/machines11020223
APA StyleMahtani, K., Guerrero, J. M., Beites, L. F., & Platero, C. A. (2023). Application of a Model-Based Method to the Online Detection of Rotating Rectifier Faults in Brushless Synchronous Machines. Machines, 11(2), 223. https://doi.org/10.3390/machines11020223