A New Smart Grid Hybrid DC–DC Converter with Improved Voltage Gain and Synchronized Multiple Outputs
Abstract
:1. Introduction
- ➢
- Development of a New Hybrid Converter: The paper introduces a novel hybrid DC–DC converter that integrates elements from both the Zeta converter and the Mahafzah converter. By combining these converter topologies, the proposed hybrid converter achieves enhanced voltage gain, contributing to higher efficiency and reduced voltage stress on the controlled switch.
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- Improved Efficiency and Performance: Through the integration of the Zeta and Mahafzah converters, the new hybrid converter offers improved performance characteristics, such as better voltage regulation and transient response. The synchronization between multiple output voltages ensures seamless operation and optimal power delivery, making it an attractive solution for various applications.
- ➢
- Multi-Load Capability: The proposed hybrid converter is designed to supply three different loads, including one with inverted polarity. This flexibility in load handling expands the converter’s versatility, making it suitable for a wide range of applications.
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- Architecture and Design Analysis: The paper thoroughly discusses the architecture and design of the proposed hybrid converter. It includes detailed parameter selection and loss calculations, providing valuable insights into the converter’s operational behavior and efficiency.
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- Application Scenarios: The research presents two different applications of the proposed hybrid converter. The first scenario involves its use as a DC–DC converter, while the second explores its application as an AC–DC converter. This demonstrates the converter’s adaptability in diverse energy conversion tasks.
- ➢
- Practical Implementations: The findings of this paper have the potential for practical implementation in various fields, including power supplies, telecommunications, electric vehicles, and renewable energy systems. The compact and efficient nature of the hybrid converter offers a viable solution for generating multiple synchronized output voltages from a single input source.
2. The Proposed Converter
2.1. The Proposed Converter Architecture
2.2. The Proposed Converter Modeling and Design
- During Ton of M, both Do1 and Do2 are in reverse bias. The inductors’ currents’ directions are shown in Figure 4.
- During Toff of M, both Do1 and Do2 are conducting. The inductors’ currents’ directions are shown in Figure 5.
- To calculate the duty cycle of the proposed converter, each converter has its own duty cycle, which is given by:
2.3. Design of the Proposed Hybrid Converter for AC–DC Adapter Applications
2.4. Loss Calculations
3. Simulation Results
- Application in Renewable Energy Systems: The hybrid converter was employed as a DC–DC converter in a renewable energy system. The results demonstrated its ability to efficiently convert and manage energy flows from renewable sources, making it a promising solution for sustainable energy applications.
- Application as an Electric Vehicle Adapter (AC–DC Converter): The hybrid converter was tested as an AC–DC converter for electric vehicles. The simulation outcomes illustrated its capability to deliver reliable and regulated power supply to electric vehicles, highlighting its potential in the transportation sector.
3.1. As a DC–DC Converter
3.2. As an AC–DC Converter
3.3. Cost Analysis
4. Conclusions
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Literature Review | Hybrid DC–DC Converter | Topologies Combined | Advantages |
---|---|---|---|
[1,2,7,8,9,10] | Buck-Boost Converter | Buck, Boost | Voltage step-up and step-down capability, flexible voltage conversion, wide input range |
[2,11,12,13,14] | SEPIC-Cuk Converter | SEPIC, Cuk | Wide input voltage range, galvanic isolation, continuous currents, |
[3,15,16,17,18] | Flyback-Forward Converter | Flyback, forward | Bidirectional power flow, multiple isolated outputs |
[4,19,20,21,22] | Full-Bridge LLC Converter | Full-Bridge, LLC | High efficiency, high power density, low EMI |
[23,24,25,26,27] | Hybrid Multilevel Converter | Various multilevel topologies | High voltage, high power, reduced harmonics, low switching losses |
[5,28,29] | Flyback-Cuk Converter | Flyback, CuK | High efficiency, high voltage regulation, improved transient response |
[6,14,30] | Flyback-SEPICConverter | Flyback, SEPIC | High efficiency, High voltage regulation, improved transient response |
Main Features Comparison | |||
Hybrid converter | Number of Outputs | Voltage Gain | THD |
[5] | 2 | 27.69% | |
[6] | 2 | 27.26% | |
Proposed converter | 3 | 21.11% |
The Selected Parameters | The Calculated Parameters Based on [31,32] | ||
---|---|---|---|
Parameter | Value | Parameter | Value |
Pin/Po | 25 kW | Io3 | 137 A |
Vin-RMS | 220 V | IL1 | 240 A |
Vo1 | 100 V | IL2 | 240 A |
Vo2 | −100 V | ILin | 480 A |
Vo3 | 200 V | Ro1 | 1 Ω |
ΔILin | 2 A | Ro2 | 1 Ω |
ΔIL1 | 1 A | Ro3 | 1.5 Ω |
ΔIL2 | 2 A | ILin | 7.5 mH |
ΔVCp1 | <10 V | L1 | 3 mH |
ΔVCp2 | <10 V | L2 | 3 mH |
Duty Cycle (D) | 50% | Cp1 | 200 µF |
fs | 20 kHz | Cp2 | 200 µF |
Co1 | 1.2 mF | ||
Co2 | 1.2 mF |
Losses Type | Equation | Conditions | |
---|---|---|---|
Losses of Figure 3 | |||
Conduction Loss | In M | Ron: MOSFET m on-state resistance Rs: Series resistance of the current loop | |
In Do1 or Do2 | Vf: Diode forward voltage | ||
Switching Loss | In M | Coss: Switch M output capacitance | |
In Do1 or Do2 | Cd: Diode parasitic capacitance | ||
Control Loss | Qg: Switch gate charge Vg: Voltage needed to charge the gate | ||
Total Loss |
Component | Zeta Converter | Mahafzah Converter | Proposed Converter |
---|---|---|---|
Number of switches | 1 | 1 | 1 |
Number of diodes | 1 | 1 | 2 |
Number of capacitors | 1 | 1 | 2 |
Number of inductors | 2 | 2 | 3 |
Output low pass filter | 1 | 1 | 2 |
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Mahafzah, K.A.; Obeidat, M.A.; Mansour, A.; Sanseverino, E.R.; Zizzo, G. A New Smart Grid Hybrid DC–DC Converter with Improved Voltage Gain and Synchronized Multiple Outputs. Appl. Sci. 2024, 14, 2274. https://doi.org/10.3390/app14062274
Mahafzah KA, Obeidat MA, Mansour A, Sanseverino ER, Zizzo G. A New Smart Grid Hybrid DC–DC Converter with Improved Voltage Gain and Synchronized Multiple Outputs. Applied Sciences. 2024; 14(6):2274. https://doi.org/10.3390/app14062274
Chicago/Turabian StyleMahafzah, Khaled A., Mohammad A. Obeidat, Ayman Mansour, Eleonora Riva Sanseverino, and Gaetano Zizzo. 2024. "A New Smart Grid Hybrid DC–DC Converter with Improved Voltage Gain and Synchronized Multiple Outputs" Applied Sciences 14, no. 6: 2274. https://doi.org/10.3390/app14062274
APA StyleMahafzah, K. A., Obeidat, M. A., Mansour, A., Sanseverino, E. R., & Zizzo, G. (2024). A New Smart Grid Hybrid DC–DC Converter with Improved Voltage Gain and Synchronized Multiple Outputs. Applied Sciences, 14(6), 2274. https://doi.org/10.3390/app14062274