Design Optimisation of a Current-Fed Solid-State Transformer for MV Grid-Connected Applications †
Abstract
:1. Introduction
2. CF-SST System Configuration
3. CF-SST Power Losses Calculations
3.1. Transformer Core and Copper Losses
3.2. Choke Core and Copper Losses
3.3. Power Electronics Losses
4. CF-SST Design Optimisation Strategy
5. Simulation Results
5.1. Validation of Power Losses
5.1.1. Transformer Core Losses
5.1.2. Power Electronics Losses
5.2. CF-SST Design, Case Study
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Nomenclature
Notation | Nomenclature |
Cross-sectional area of the choke coil core | |
Transformer cross-sectional areas of the primary winding conductors | |
Transformer cross-sectional areas of the secondary winding conductors | |
Transformer core cross-sectional area | |
Area product of the choke coil core | |
Transformer core window area | |
Choke coil core window area | |
Transformer maximum flux density | |
Maximum transformer core flux | |
Choke coil maximum flux density. | |
Minimum transformer core flux | |
Initial flux density | |
CF-DAB | Current-fed Dual Active Bridge |
Duty cycle of the transformer voltage | |
Duty cycle of the H-bridge 1 | |
DAB | Dual Active Bridge |
Effective core diameter of the transformer | |
Choke coil circumscribing circle | |
Transformer’s voltage per turn | |
Energy in watt-seconds | |
ESS | Energy Storage System |
Transformer operating frequency | |
Minimum operating frequency | |
Maximum operating frequency | |
Initial frequency | |
High of the choke coil core cross-section | |
, | Height of the choke coil core window |
RMS value of the supply current | |
RMS value of the leakage inductance current (primary current) | |
Switch current when the switch is ON | |
Average supply current | |
Current density | |
Ratio of the net core cross-sectional area to the circumscribing circle of the transformer | |
Choke coil ratio of the winding area to the core cross-section area. | |
Choke coil filling factor | |
Transformer core staking factor | |
Choke coil window utilization factor | |
Effective window factor for the choke coil core | |
Transformer winding fill factor. | |
, , | Core material power losses constants |
Clearance distance between the transformer windings | |
Choke coil inductance | |
Total length of the primary winding of the transformer | |
Total length of the secondary winding of the transformer | |
Choke coil mean length of the winding turn | |
Number of turns | |
Transformer turns ratio | |
Choke coil total number of turns | |
Transformer core losses | |
Transformer copper losses | |
Conduction losses of the diode | |
Conduction losses of the switch | |
Switching losses of the diode | |
Switching losses of the switch | |
Transformer time-average power losses per unit volume | |
Constant depending on the flux and ampere-turn of the transformer. | |
RES | Renewable Energy Source |
On-state resistances for the IGBT | |
Choke coil resistance | |
On-state resistances for diode | |
Radii of the transformer primary winding conductors, respectively | |
Radii of the transformer secondary winding conductors, respectively | |
Transformer ac primary winding resistance | |
Transformer ac secondary winding resistance | |
Thermal resistance | |
Ratio of the winding window height to the width for transformer core | |
SST | Solid State Transformers |
Switching period | |
Ambient temperature. | |
Time when the diode is OFF | |
Junction temperature | |
Time when the switch is OFF | |
Collector to emitter voltage, when the switch is ON | |
Maximum voltage. | |
Chock coilvolume | |
Converters’ heat sink volume | |
Total volume of the transformer | |
Volumetric resistance | |
VF-DAB | Voltage-fed Dual Active Bridge |
Primary voltage of the transformer | |
Secondary voltages of the transformer | |
Width of the choke coil core cross-section | |
Width of the choke coil core window | |
Maximum allowed ripple in the dc supply current | |
Transformer peak-to-peak flux density | |
Resistivity of the winding material | |
Skin depth. | |
Clearance between two coils constraint | |
Voltage per turn constraint | |
Ratio of the supply ripple current over the average supply current |
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Parameter | Value |
---|---|
Iron core cross-section | 0.0147 m2 |
Diameter of the core circumscribing circle | 0.158 m |
Width of winding window | 0.216 m |
Height of winding window | 0.541 m |
Number of primary turns | 21 Turns |
Number of secondary winding turns | 325 Turns |
Width of the winding allowing for clearance | 0.004 m |
Distance between windings | 0.05 m |
Height of winding | 0.441 m |
Parameter | Value |
---|---|
Iron core cross-section | 0.0375 m2 |
Diameter of the core circumscribing circle | 0.25 m |
Width of winding window | 0.178 m |
Height of winding window | 0.265 m |
Number turns | 36 Turns |
Area product | 23.48 m4 |
Parameter | Value | Parameter | Value |
---|---|---|---|
3.1 V | 1.43 J | ||
450 A | 2.25 V | ||
1800 V | 0.58 J |
Efficiency | Optimum Flux [T] | Optimum Frequency [Hz] | Total Cores Volume [m3] |
---|---|---|---|
>80 | 1.2 | 3613 | 1.142 |
>90 | 1.2 | 3275 | 1.144 |
>92 | 1.2 | 2318 | 1.199 |
>93 | 1.2 | 1840 | 1.274 |
>94 | 1.2 | 1359 | 1.419 |
>95 | 1.18 | 962 | 1.684 |
>95.5 | 1.056 | 809 | 1.8988 |
>96 | 0.903 | 647 | 2.245 |
>96.5 | 0.651 | 470 | 3.001 |
>97.5 | 0.249 | 372 | 5.245 |
>98 | Not achievable |
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Hussain, E.; Abusara, M.; Sharkh, S. Design Optimisation of a Current-Fed Solid-State Transformer for MV Grid-Connected Applications. Energies 2021, 14, 3283. https://doi.org/10.3390/en14113283
Hussain E, Abusara M, Sharkh S. Design Optimisation of a Current-Fed Solid-State Transformer for MV Grid-Connected Applications. Energies. 2021; 14(11):3283. https://doi.org/10.3390/en14113283
Chicago/Turabian StyleHussain, Essam, Mohammad Abusara, and Suleiman Sharkh. 2021. "Design Optimisation of a Current-Fed Solid-State Transformer for MV Grid-Connected Applications" Energies 14, no. 11: 3283. https://doi.org/10.3390/en14113283
APA StyleHussain, E., Abusara, M., & Sharkh, S. (2021). Design Optimisation of a Current-Fed Solid-State Transformer for MV Grid-Connected Applications. Energies, 14(11), 3283. https://doi.org/10.3390/en14113283