Harmonic Profile Enhancement of Grid Connected Fuel Cell through Cascaded H-Bridge Multi-Level Inverter and Improved Squirrel Search Optimization Technique
Abstract
:1. Introduction
- Recent evolutionary computational techniques (PSO and SSA) are applied for tuning the PID control parameters for dynamic operation.
- Design of an improved evolutionary computational technique (ISSA) for faster convergence speed and better precision.
- The testing of system power quality indices by calculating THD of the conventional and proposed technique.
- Study of power quality improvement and the dynamic response subjected to swell and sag conditions for the proposed ISSA technique.
- Use of Solid Oxide Fuel Cell as a distributed generation unit.
- Two PID controllers are designed to regulate the terminal voltage of the PCC between the SOFC and the power grid by the pulse width modulation (PWM) technique driving the 25 level CHB MLI.
2. Materials
2.1. SOFC Modelling
2.2. Modelling of Boost Converter
2.3. Modelling of Multi-Level Inverter (MLI)
3. Methods
3.1. Conventional PID Controller
3.2. Squirrel Search Algorithm (SSA)
- There is number of flying squirrels, and each squirrel is to be present on each tree.
- There are three types of trees: a hickory tree, a normal tree, and an oak tree, in which there is a single hickory tree and a triplet of oak trees.
- All flying squirrels seek food sources and desirably use them [22].
3.3. Proposed Improved Squirrel Search Algorithm (ISSA)
4. Results and Discussions
5. Conclusions
- The system can be operated with new reduced switch MLIs for better efficiency.
- Energy storage units can be added to the system undertaken to compensate for the power delivered by the SOFC during extremities.
- A new optimization technique with a better convergence speed can be implemented.
- Multiple distributed generation systems such as solar, wind, biomass can be incorporated with SOFC to enhance power delivering capacity.
- The system can be tested for other faulted conditions for justifying the performance of the proposed controller.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviation
Abbreviations | Definitions |
FC | Fuel Cell |
CHB | Cascaded H-Bridge |
MLI | Multi-Level Inverter |
PCC | Point of Common Coupling |
PSO | Particle Swarm Optimization |
SSA | Squirrel Search Algorithm |
ISSA | Improved Squirrel Search Algorithm |
THD | Total Harmonic Distortion |
SOFC | Solid Oxide Fuel Cell |
PSO | Particle Swarm Optimization |
PEMFC | Polymer Electrolyte Membrane Fuel Cell |
PWM | Pulse Width Modulation |
AFC | Alkaline Fuel Cell |
PAFC | Phosphoric Acid Fuel Cell |
PEMFC | Proton Exchange Membrane Fuel Cell |
MCFC | Molten Carbonate Fuel Cell |
D-C | Diode Clamped |
F-C | Flying Capacitor |
ISE | Integral Square Error |
ITAE | Integral Time Absolute Error |
Appendix A
System Components | Values |
FC | Vo = 60, R1 + R2 = 1.4 Ω, R3 = 1.06, C = 1.25 F |
Boost | L = 0.5 mH, C = 100 µF, Fs = 20 KHz, V0 = 500, Vin = 60 V |
MLI | IGBTs = 14, Gate Driver Circuit = 11 VOUT = 500 V |
Transmission Line Parameters | Resistance = 0.01755 Ω, Inductance = 0.8737 × 10−3 H, Capacitance = 13.33 × 10−9 F |
Grid | V = 600, X/R = 9, F = 50 Hz |
Fault type | Values |
Oscillatory Transient | Capacitance = 2000 × 10−6 F, F = 40 HZ |
Swell | Resistive Load = 1000 Ω, Capacitance = 2500 × 10−6 F, Inductance = 5 × 10−3 H |
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Cases | Type of Controllers | Types of Inverter | |||
---|---|---|---|---|---|
Multi-Level Inverter | Classical Inverter | ||||
Control Parameters | |||||
VFC | VPCC | VFC | VPCC | ||
1 | Proposed ISSA Based PID | 0.71 | 0.95 | 4.51 | 6.46 |
SSA Based PID | 1.21 | 1.52 | 5.08 | 7.34 | |
PSO Based PID | 2.23 | 3.14 | 6.54 | 8.41 | |
Conventional PID | 3.81 | 4.36 | 9.17 | 9.25 | |
2 | Proposed ISSA Based PID | 0.83 | 1.0 | 5.82 | 6.69 |
SSA Based PID | 1.71 | 1.88 | 7.56 | 7.82 | |
PSO Based PID | 2.79 | 3.22 | 8.81 | 8.99 | |
Conventional PID | 3.96 | 4.46 | 9.19 | 9.80 |
Types of Controller | System Parameters | |||||
---|---|---|---|---|---|---|
Voltage of FC | Voltage of Grid | |||||
Peak Time | Rise Time | Settling Time | Peak Time | Rise Time | Settling Time | |
ISSA-PID | 1.53 | 1.2 | 1.37 | 2.13 | 1.9 | 1.87 |
SSA-PID | 2.38 | 2.17 | 2.28 | 3.73 | 2.39 | 2.91 |
PSO-PID | 3.45 | 2.93 | 2.86 | 4.3 | 3.7 | 3.51 |
PID | 5.34 | 5.23 | 5.16 | 7.12 | 6.117 | 6.11 |
Controllers Parameters | ISSA-PID | SSA-PID | PSO-PID | PID | ||||||||
---|---|---|---|---|---|---|---|---|---|---|---|---|
Kp | Ki | Kd | Kp | Ki | Kd | Kp | Ki | Kd | Kp | Ki | Kd | |
FC Voltage | 0.2 | 0.1 | 0.5 | 1.1 | 1.1 | 1.4 | 2.1 | 2.5 | 2.7 | 4.5 | 4.6 | 4.9 |
GRID Voltage | 0.3 | 0.1 | 0.6 | 1.6 | 1.9 | 1.5 | 2.3 | 3.9 | 3.5 | 5.8 | 5.8 | 6.4 |
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Choudhury, S.; Acharya, S.K.; Khadanga, R.K.; Mohanty, S.; Arshad, J.; Ur Rehman, A.; Shafiq, M.; Choi, J.-G. Harmonic Profile Enhancement of Grid Connected Fuel Cell through Cascaded H-Bridge Multi-Level Inverter and Improved Squirrel Search Optimization Technique. Energies 2021, 14, 7947. https://doi.org/10.3390/en14237947
Choudhury S, Acharya SK, Khadanga RK, Mohanty S, Arshad J, Ur Rehman A, Shafiq M, Choi J-G. Harmonic Profile Enhancement of Grid Connected Fuel Cell through Cascaded H-Bridge Multi-Level Inverter and Improved Squirrel Search Optimization Technique. Energies. 2021; 14(23):7947. https://doi.org/10.3390/en14237947
Chicago/Turabian StyleChoudhury, Subhashree, Shiba Kumar Acharya, Rajendra Kumar Khadanga, Satyajit Mohanty, Jehangir Arshad, Ateeq Ur Rehman, Muhammad Shafiq, and Jin-Ghoo Choi. 2021. "Harmonic Profile Enhancement of Grid Connected Fuel Cell through Cascaded H-Bridge Multi-Level Inverter and Improved Squirrel Search Optimization Technique" Energies 14, no. 23: 7947. https://doi.org/10.3390/en14237947
APA StyleChoudhury, S., Acharya, S. K., Khadanga, R. K., Mohanty, S., Arshad, J., Ur Rehman, A., Shafiq, M., & Choi, J. -G. (2021). Harmonic Profile Enhancement of Grid Connected Fuel Cell through Cascaded H-Bridge Multi-Level Inverter and Improved Squirrel Search Optimization Technique. Energies, 14(23), 7947. https://doi.org/10.3390/en14237947