Submitted:
16 July 2025
Posted:
16 July 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Coupled Inductance Based High Gain DC/DC Conversion System Configuration
2.1. System Configuration
2.2. Operation Principle of the Proposed Converter
3. System Performance Analysis
3.1. Output Voltage Gain of the System
3.2. Analysis of Voltage Stress on Capacitors and Inductors
3.3. Analysis of Voltage Stress on Power Switches
3.4. Performance Comparison of Different Converters
3.5. Soft Switching Condition
4. Control System Design
5. Analysis of Simulation Results
5.1. Open-Loop Scanning
5.2. Closed-Loop Simulation
6. Analysis of Experimental Results
6.1. Open-Loop Scanning
6.2. Closed-Loop Scanning of the Converter
7. Conclusion
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Converter | Number of switches |
Number of diodes |
Switching voltage stress | Voltage gain |
|---|---|---|---|---|
| Ref. [16] | 1 | 4 | ||
| Ref. [18] | 2 | 8 | ||
| Ref. [20] | 2 | 4 | ||
| Ref. [21] | 1 | 3 | ||
| Proposed converter | 1 | 3 |
| Mods | Model number |
|---|---|
| 100 kHz | |
| DPF30I300PA | |
| , | |
| , | |
| 1mH, | |
| n | |
| Load R |
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