Power Conversion Techniques Using Multi-Phase Transformer: Configurations, Applications, Issues and Recommendations
Abstract
:1. Introduction
- (a)
- Complex design procedures.Multi-phase transformer design is not as straightforward as single-phase and three-phase transformer design due to multiple windings in each phase. Appropriate turn ratios and proper connection of multiple windings are vital in the creation of phasors of the multi-phase. Therefore, human expertise and knowledge are essential for designing multi-phase transformers.
- (b)
- Unequal series parameters.It is worth mentioning that the secondary of a multi-phase transformer is made from multiple windings with an unequal number of turns. This creates unequal series impedance of the secondary side which, in turn, creates unbalances in the output voltages. Hence, appropriate phase balancing is required to study the per phase equivalent circuit to achieve accurate outcomes.
- (c)
- Lack of fault and unbalancing studies.To find the sequence components of an unbalanced multi-phase voltage or current, the Fortescue theorem is necessary to investigate faults and any unbalancing of a multi-phase system. Unfortunately, these kinds of studies are very limited in the literature. Therefore, further studies are needed on fault and unbalancing studies.
- (d)
- Higher cost.The cost of a multi-phase transformer is higher due to larger copper requirements and design complexity. Thus, further exploration is necessary to reduce its price.
- A simplified and standard procedure to calculate the number of turns of primary and secondary windings of the multi-phase transformer is discussed.
- A three-phase to five-, seven-, eleven-, thirteen-phase transformer is discussed.
- Key issues and challenges of multi-phase power generated by three-phase to the multi-phase transformer are highlighted, discussed and accordingly, a few effective solutions are proposed.
- Some constructive recommendations are given at the end that open new research directions in the field of the multi-phase transformer.
2. Configuration of Phase Transformation Techniques
2.1. m-Phase to n-Phase Transformation
2.1.1. Two-Phase to n-Phase Transformation
2.1.2. Three-Phase to n-Phase Transformation Utilizing Optimization Methods
2.1.3. Three-Phase to n-Phase Transformation Using Phasor Algebra
2.2. Three-Phase to Five-Phase Transformation Configurations
2.2.1. Configuration 1
2.2.2. Configuration 2
2.2.3. Configuration 3
2.2.4. Comparison of Design Parameters
2.3. Three-Phase to Seven-Phase Transformation
2.3.1. Configuration 1
2.3.2. Configuration 2
- (a)
- Phase Voltage: Phase voltage with regards to neutral or star point O (e.g., Va, Vb, Vc, Vd, Ve, Vf, and Vg);
- (b)
- Adjacent Line Voltage: The voltage difference of two phases having a phase difference of 51.42° (e.g., Vab1, Vb1c, Vcd, Vde, Vef, Vfg, and Vga);
- (c)
- Nonadjacent1 Line Voltage: The voltage difference of two phases having a phase difference of 2 × 51.42° (e.g., Vac, Vb1d, Vce, Vdf, Veg, Vfa, and Vgb);
- (d)
- Nonadjacent2 Line Voltage: The voltage difference of two phases having a phase difference of 3 × 51.42° (e.g., Vad, Vb1e, Vcf, Vdg, Vea, Vfb1, and Vgc).
2.4. Other High Phase Order Systems
2.4.1. Three-Phase to Eleven-Phase System
2.4.2. Three-Phase to Thirteen-Phase Transformer
- A star-connected input and star-connected output;
- A star-connected input and tridecagon-connected output;
- A delta-connected input and star-connected output;
- A delta-connected input and tridecagon-connected output.
3. Applications of a Multi-Phase Transformer
3.1. Electric Drives
3.2. Transmission of Bulk Power
3.3. Wind Energy Conversion System
3.4. HVDC Transmission System
4. Issues and Challenges of Multi-Phase Transformer
4.1. Impedance Mismatching
4.2. Voltage Unbalance
4.3. Per-Phase Equivalent Circuit Modeling
4.3.1. Formulation of Objective Function and Analytical Modeling
4.3.2. Simulation Results
4.4. Fault Analysis of a Multi-Phase Transformer
- Fault Analysis of Multi-phase System: The fault analysis is an essential tool for evaluating various faults occurring in a specified electrical system. The appropriate information and data are needed to choose various equipment of specified ratings. The existing research works on fault analysis for a three-phase system is mature and abundant in literature but Fault analysis for a multi-phase system is absent. Therefore, an in-depth investigation is needed to develop a fault analysis mechanism of a multi-phase system.
- Per-phase equivalent circuit: An important design consideration to analyze various multi-phase transformation techniques is implementing the per-phase equivalent technique. A per-phase equivalent circuit is an Unequal number of turns in each winding of a multi-phase transformer that leads to unequal series impedance. Therefore, developing a per-phase equivalent circuit for a multi-phase transformer is a challenging task and maybe future research direction.
- Fixed Frequency operation: Usually, the converter circuits operate at a fixed frequency; nonetheless, the phase displacement controls the output voltage at the latter conversion stages. In the case of a transformer, the operation is conducted at a fixed frequency; nonetheless, it is not suitable for a variable frequency drive. In association with this multi-phase VSI has superiority over multi-phase transformer.
- Lack of multi-phase Circuit breaker and Relays: The circuit breaker and relays are considered important equipment for control and protection in electrical power systems. However, the application of multi-phase circuit breakers and relay has not been explored significantly. Therefore, the development of circuit breakers and relays operating at multi-phase power might be breakthrough research.
5. Validation and Experimental Results
5.1. Experiment 1
5.2. Experiment 2
6. Conclusions and Recommendations
- An in-depth comparative analysis of efficiencies between three-phase and multi-phase transformers is essential to be performed.
- Thermal modeling of a transformer is performed to accurately predict winding and the component temperature rises above ambient temperature. Each phase of a multi-phase transformer winding comprises two or more windings. Connecting windings together may cause a local hotspot if not appropriately addressed. Therefore, advanced thermal modeling of a multi-phase transformer is necessary to examine the winding temperature, oil temperature, and local hotspot at the winding junction point.
- The finite element method (FEM) is used to simulate the core losses of a transformer and investigate the flux density behavior in the transformer’s core. Hence, it is vital in the design process of a transformer, especially a multi-phase transformer. Substantial literature can be found for finite element analysis of a three-phase transformer. Different numbers of turns for each phase in a multi-phase transformer may create a spark at the junction or joint, leading to localized hotspots or discharge. A finite element analysis-based five-phase transformer design is presented in the literature but the study is limited to magnetics only. The same can be extended to all multi-phase transformers.
- Further exploration related to the fault tolerance ability of the multi-phase conversion system can be carried out, which could lead to an increase in robustness and efficiency.
- The multi-phase circuit breaker and electrical relay are significant in future research activities. Therefore, the execution of multi-phase circuit breakers and relay circuits in a multi-phase system needs to be further investigated.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Properties | Three-Phase Machine | Multi-phase Machines |
---|---|---|
Torque ripple frequency (f-fundamental frequency) | 6f | 2nf(>6f) |
Ordre of the lowest spatial mmf harmonics | 5 and 7 | 2n + 1 |
Power/Torque per-phase (P/Te) | P/3(Te/3) | P/n(Te/n) |
Continues operation after an open-phase fault | Not possible without modification of the power converter topology | Continuous post-fault operation but at reduced capacity |
Torque enhancement by stator current harmonic injection | Not possible | Yes (concentrated winding machines) |
Transmission Line Towers | Higher Tower Heights, | Lower Tower Heights |
Phase-to-Phase voltage at rated power | Higher | Lower |
Magnetic Interference due to transmission lines and transposition requirements | Higher | Lower |
Current/Conductor | P/3Vp (Vp is Phase Voltage) | P/nVp (reduced as n > 3) |
Parameters | Configuration #1 | Configuration #2 | Configuration #3 |
---|---|---|---|
Total Primary Turns | 387 | 387 | 387 |
Total Secondary Turns | 825 | 648 | 709 |
Total Turns | 1212 | 1035 | 1096 |
Primary Resistance (Ω) | 0.053 | 0.053 | 0.053 |
Secondary Resistance (Ω) | 0.049 | 0.038 | 0.042 |
Space required by primary (mm2) | 418 | 418 | 418 |
Space required by secondary (mm2) | 1310 | 1030 | 1126 |
Total space required (mm2) | 1728 | 1448 | 1544 |
Winding | N2/N1 | Winding | N2/N1 | Winding | N2/N1 |
---|---|---|---|---|---|
a1a2 | 0.1721 | b1b2 | 0.7854 | c1c2 | 0.5010 |
a3a4 | 1.000 | b3b4 | 0.5010 | c3c4 | 0.7854 |
a5a6 | 0.1721 | b5b6 | 0.9028 | c5c6 | 0.3404 |
a7a8 | 0.6505 | b7b8 | 0.3404 | c7c8 | 0.9028 |
a9a10 | 0.6505 | - | - | - | - |
α Axis | aα | β Axis | aβ |
---|---|---|---|
a1a2 | 1 | - | - |
b1b2 | +0.6234 | b3b4 | +0.7818 |
c1c2 | −0.2225 | c3c4 | +0.9749 |
d1d2 | −0.9009 | d3d4 | +0.4338 |
e1e2 | −0.9009 | e3e4 | −0.4338 |
f1f2 | −0.2225 | f3f4 | −0.9749 |
g1g2 | +0.6234 | g3g4 | −0.7818 |
References | Configuration | Transformation Techniques | Primary Connection | Secondary Connection | Advantages | Disadvantages |
---|---|---|---|---|---|---|
[1,7,20] | m-Phase to n-Phase Transformation | -Two-Phase to n-Phase Transformation | -Scott | -Star or Delta alike | -Design is simple and straightforward. | -Unbalance in input as well as output side. |
[21] | -Optimized Three-Phase to n-Phase transformation | -Star or Delta | -Star or Delta alike | -Winding materials used are minimized using optimization technique. | -Winding design is lengthy and cumbersome. | |
[5,6] | -Phasor Algebra-based three-Phase to n-Phase Transformation | -Star | -Star or Delta alike | -No primary side unbalance. | -Winding design is complex. | |
[22] | Three-Phase to Five-Phase Transformation | -Configuration 1 | -Star | -Star | -Simple configuration. | -Copper requirement is high. |
[6,22] | -Configuration 2 | -Star | -Star | -Most economical design. | -Unbalance in input as well as output side. | |
[7,22] | -Configuration 3 | -Star | -Star | -Copper requirement is high. | ||
[5] | Three-Phase to Seven-Phase Transformation | -Configuration 1 | -Star | -Star | -No primary side unbalance. | -Winding design is difficult. |
[20] | -Configuration 2 | -Scott | -Star | -Copper requirement is less. | -Unbalance in primary as well as secondary side. | |
[21,25,26] | Other High Phase Order Systems | -Three-Phase to Eleven-Phase System | -Star | -Star | -Less number of windings required. | -Winding design is complicated as an optimization technique is used. |
[28] | -Three-Phase to Thirteen-Phase Transformer | -Star | -star | -No primary side unbalance. | -Winding design is lengthy and cumbersome. |
Three Phases | Seven Phases | ||
---|---|---|---|
Transformer Connection | Number of Pulses in a Cycle | Transformer Connection | Number of Pulses in a Cycle |
Half wave (Star) | 3 | Half wave (Star) | 7 |
Center tapper T/F | 6 | Center tapper T/F | 14 |
Y–Y and Y–Δ | 12 | Star–star and star–heptane | 28 |
--------- | 18 | --------- | 42 |
--------- | 24 | --------- | 56 |
--------- | 48 | --------- | 112 |
Serial Number | Five-Phase System | Seven-Phase System |
---|---|---|
1 | Positive Sequence | Adjacent Positive Sequence |
2 | Adjacent Negative Sequence | Adjacent Negative Sequence |
3 | Nonadjacent Positive Sequence | Nonadjacent1 Positive Sequence |
4 | Nonadjacent Negative Sequence | Nonadjacent1 Negative Sequence |
5 | Zero Sequence | Nonadjacent2 Positive Sequence |
6 | - | Nonadjacent2 Negative Sequence |
7 | - | Zero Sequence |
Technique | Attained Optimum Value of k | Corresponding Value of Objective Function |
---|---|---|
GA | 1.2363 | 0.0972204 |
PSO | 1.2364 | 0.0972200 |
From Plot | 1.2360 | 0.0973 |
Testing Methods | Applications |
---|---|
Thermal monitoring | Transformer condition monitoring and assessment |
Partial discharge measurements | |
dissolved gas analysis (DGA) | |
Tan δ and capacitance | |
Turns ratio, winding impedance and inductance measurement | |
Magnetizing current measurements | |
Thermal monitoring | |
Reactance measurement method and low voltage impulse (LVI) | Winding deformations |
Frequency Response Analysis (FRA) | Short circuits Loss of clamps Inter-disk fault Axial displacement Dielectric test of transformer bushings and associated faults |
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Tabrez, M.; Sadhu, P.K.; Hossain Lipu, M.S.; Iqbal, A.; Husain, M.A.; Ansari, S. Power Conversion Techniques Using Multi-Phase Transformer: Configurations, Applications, Issues and Recommendations. Machines 2022, 10, 13. https://doi.org/10.3390/machines10010013
Tabrez M, Sadhu PK, Hossain Lipu MS, Iqbal A, Husain MA, Ansari S. Power Conversion Techniques Using Multi-Phase Transformer: Configurations, Applications, Issues and Recommendations. Machines. 2022; 10(1):13. https://doi.org/10.3390/machines10010013
Chicago/Turabian StyleTabrez, Md, Pradip Kumar Sadhu, Molla Shahadat Hossain Lipu, Atif Iqbal, Mohammed Aslam Husain, and Shaheer Ansari. 2022. "Power Conversion Techniques Using Multi-Phase Transformer: Configurations, Applications, Issues and Recommendations" Machines 10, no. 1: 13. https://doi.org/10.3390/machines10010013
APA StyleTabrez, M., Sadhu, P. K., Hossain Lipu, M. S., Iqbal, A., Husain, M. A., & Ansari, S. (2022). Power Conversion Techniques Using Multi-Phase Transformer: Configurations, Applications, Issues and Recommendations. Machines, 10(1), 13. https://doi.org/10.3390/machines10010013