High Gain Non-isolated DC-DC Converter Topologies for Energy Conversion Systems

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dc.contributor.author Ahmad, Musa
dc.contributor.author Moumin, Ali
dc.contributor.author Panhwar, Fahad
dc.contributor.author Adam, Abdimajid
dc.date.accessioned 2020-11-03T14:45:04Z
dc.date.available 2020-11-03T14:45:04Z
dc.date.issued 2018-11-15
dc.identifier.citation 1. Armstrong, M., et al., Low order harmonic cancellation in a grid connected multiple inverter system via current control parameter randomization. IEEE Transactions on Power Electronics, , 2005. 20(4): p. 885-892. 2. Armstrong, M., et al., Auto-Calibrating DC Link Current Sensing Technique for Transformerless, Grid Connected, H-Bridge Inverter Systems. IEEE Transactions on Power Electronics,, 2006. 21(5): p. 1385-1393. 3. Bialasiewicz, J.T., Renewable Energy Systems With Photovoltaic Power Generators: Operation and Modeling. IEEE Transactions on Industrial Electronics,, 2008. 55(7): p. 2752-2758. 4. Kuo-Ching, T., H. Chi-Chih, and S. Wei-Yuan, A High Step-Up Converter With a Voltage Multiplier Module for a Photovoltaic System. IEEE Transactions on Power Electronics,, 2013. 28(6): p.3047-3057. 5. Green, S., et al., Fault tolerant, variable frequency, unity power factor converters for safety critical PM drives. Electric Power Applications, IEE Proceedings -, 2003. 150(6): p.663-672. 6. Branco, C.G.C., et al., A Nonisolated Single-Phase UPS Topology With 110-V/220-V Input-Output Voltage Ratings. IEEE Transactions on Industrial Electronics, , 2008. 55(8): p.2974-2983. 7. Torrico-Bascope, R.P., et al., A UPS With 110-V/220-V Input Voltage and High- Frequency Transformer Isolation. IEEE Transactions on Industrial Electronics,, 2008. 55(8): p.2984-2996. 8. Sung-Sae, L., C. Seong-Wook, and M. Gun-Woo, High-Efficiency Active-Clamp Forward Converter With Transient Current Build-Up (TCB) ZVS Technique. IEEE Transactions on Industrial Electronics,, 2007. 54(1): p. 310-318. 9. Emadi, A., L. Young Joo, and K. Rajashekara, Power Electronics and Motor Drives in Electric, Hybrid Electric, and Plug-In Hybrid Electric Vehicles. IEEE Transactions on Industrial Electronics,, 2008. 55(6): p. 2237-2245. 10. Qun, Z. and F.C. Lee, High-efficiency, high step-up DC-DC converters. IEEE Transactions on Power Electronics,, 2003. 18(1): p.65-73. 11. Yuequan, H. and M.M. Jovanovic. High-Intensity-Discharge Lamp Ballast With Igniter Driven by Dual-Frequency Inverter. inApplied Power Electronics Conference, APEC 2007 - Twenty Second Annual IEEE.2007. 12. Dragicevic, T., et al., DC Microgrids-Part I: A Review of Control Strategies and Stabilization Techniques. IEEE Transactions on Power Electronics, , 2015. PP(99): p. 1-1. 13. Rashid, M.H., Power Electronics Circuits, Devices, and Applications. Third Edition, 2004(Pearson EducationInc,). 14. R.W. Erickson, D.M., Fundamental of Power Electronics. Second Edition, 2004(Kluwer Academic Publishers). 15. Xiaogang, F., L. Jinjun, and F.C. Lee, Impedance specifications for stable DC distributed power systems. IEEE Transactions on Power Electronics,, 2002. 17(2): p. 157-162. 16. Watson, R., F.C. Lee, and G.C. Hua, Utilization of an active-clamp circuit to achieve soft switching in flyback converters. IEEE Transactions on Power Electronics,, 1996. 11(1): p.162-169. 17. Crescimbini, F., et al., High-Speed Electric Drive for Exhaust Gas Energy Recovery Applications. IEEE Transactions on Industrial Electronics,, 2014. 61(6): p.2998-3011. 18. REN21, Renewables 2015 Global Status Report. REN21 Renewables Energy Policy Network For the 21st Century,2015. 19. Wuhua, L. and H. Xiangning, Review of Nonisolated High-Step-Up DC/DC Converters in Photovoltaic Grid-Connected Applications. IEEE Transactions on Industrial Electronics,, 2011. 58(4): p. 1239-1250. 20. Khan, M.A., et al., Performance Analysis of Bidirectional DC-DC Converters for Electric Vehicles. IEEE Transactions on Industry Applications, , 2015. 51(4): p. 3442- 3452. 21. Luo,S.,AreviewofdistributedpowersystemspartI:DCdistributedpowersystem. Aerospace and Electronic Systems Magazine, IEEE, 2005. 20(8): p. 5-16. 22. Shiguo, L. and I. Batarseh, A review of distributed power systems. Part II. High frequency AC distributed power systems. Aerospace and Electronic Systems Magazine, IEEE, 2006. 21(6): p. 5-14. 23. Prudente, M., et al., Voltage Multiplier Cells Applied to Non-Isolated DC-DC Converters. IEEE Transactions on Power Electronics,, 2008. 23(2): p.871-887. 24. Sanghyuk, L., K. Pyosoo, and C. Sewan, High Step-Up Soft-Switched Converters Using Voltage Multiplier Cells. Power Electronics, IEEE Transactions on, 2013. 28(7): p.3379-3387. 25. Spiazzi, G., P. Mattavelli, and A. Costabeber, High Step-Up Ratio Flyback Converter With Active Clamp and Voltage Multiplier. IEEE Transactions on Power Electronics,, 2011. 26(11): p.3205-3214. 26. Jiann-Fuh, C., C. Ren-Yi, and L. Tsorng-Juu, Study and Implementation of a Single- Stage Current-Fed Boost PFC Converter With ZCS for High Voltage Applications. IEEE Transactions on Power Electronics,, 2008. 23(1): p.379-386. 27. Kong, X. and A.M. Khambadkone, Analysis and Implementation of a High Efficiency, Interleaved Current-Fed Full Bridge Converter for Fuel Cell System. IEEE Transactions on Power Electronics,, 2007. 22(2): p.543-550. 28. Jang, S.J., et al., Fuel Cell Generation System With a New Active Clamping Current- Fed Half-Bridge Converter. IEEE Transactions on Energy Conversion, , 2007. 22(2): p.332-340. 29. Sang-Kyoo, H., et al., A new active clamping zero-voltage switching PWM current-fed half-bridge converter. IEEE Transactions on Power Electronics,, 2005. 20(6): p. 1271- 1279. 30. Quan, L. and P. Wolfs, A Current Fed Two-Inductor Boost Converter With an Integrated Magnetic Structure and Passive Lossless Snubbers for Photovoltaic Module Integrated Converter Applications. IEEE Transactions on Power Electronics,, 2007. 22(1): p.309-321. 31. Gopinath, R., et al., Development of a low cost fuel cell inverter system with DSP control. IEEE Transactions on Power Electronics,, 2004. 19(5): p.1256-1262. 32. Blaabjerg, F., C. Zhe, and S.B. Kjaer, Power electronics as efficient interface in dispersed power generation systems. IEEE Transactions on Power Electronics,, 2004. 19(5): p.1184-1194. 33. Jung-Min, K., et al., High-Efficiency Fuel Cell Power Conditioning System With Input Current Ripple Reduction. IEEE Transactions on Industrial Electronics,, 2009. 56(3): p.826-834. 34. Sung-Ho, L., et al., Hybrid-Type Full-Bridge DC/DC Converter With HighEfficiency. IEEE Transactions on Power Electronics,, 2015. 30(8): p. 4156-4164. 35. Wuhua, L., et al., High-Step-Up and High-Efficiency Fuel-Cell Power-Generation System With Active-Clamp Flyback-Forward Converter. IEEE Transactions on Industrial Electronics, , 2012. 59(1): p. 599-610. 36. Lin, B.R. and J.J. Chen, Analysis and implementation of a soft switching converter with high-voltage conversion ratio. IET Power Electronics,, 2008. 1(3): p.386-394. 37. Wijeratne, D.S. and G. Moschopoulos, Quadratic Power Conversion for Power Electronics: Principles and Circuits. IEEE Transactions on Circuits and Systems I: Regular Papers,, 2012. 59(2): p.426-438. 38. Shahin,A.,etal.,HighVoltageRatioDC-DCConverterforFuel-CellApplications. IEEE Transactions on Industrial Electronics,, 2010. 57(12): p. 3944-3955. 39. Leyva-Ramos, J., et al., Switching regulator using a quadratic boost converter for wide DC conversion ratios. IET Power Electronics,, 2009. 2(5): p.605-613. 40. Axelrod, B., Y. Berkovich, and A. Ioinovici, Switched-Capacitor/Switched-Inductor Structures for Getting Transformerless Hybrid DC–DC PWM Converters. IEEE Transactions on Circuits and Systems I: Regular Papers, 2008. 55(2): p. 687- 696. 41. Fang Lin, L. and Y. Hong, Positive output super-lift converters. IEEE Transactions on Power Electronics, , 2003. 18(1): p. 105-113. 42. Lung-Sheng, Y., L. Tsorng-Juu, and C. Jiann-Fuh, Transformerless DC-DC Converters With High Step-Up Voltage Gain. IEEE Transactions on Industrial Electronics,, 2009. 56(8): p.3144-3152. 43. Yan, D., et al., Single-Switch High Step-Up Converters With Built-In Transformer Voltage Multiplier Cell. IEEE Transactions on Power Electronics,, 2012. 27(8): p. 3557-3567. 44. Shih-Kuen, C., et al., Novel High Step-Up DC-DC Converter for Fuel Cell Energy Conversion System. IEEE Transactions on Industrial Electronics,, 2010. 57(6): p. 2007-2017. 45. Wuhua, L., et al., Interleaved Converter With Voltage Multiplier Cell for High Step- Up and High-Efficiency Conversion. IEEE Transactions on Power Electronics,, 2010. 25(9): p.2397-2408. 46. Sungsik, P., et al., Soft-Switched Interleaved Boost Converters for High Step-Up and High-Power Applications. IEEE Transactions on Power Electronics,, 2011. 26(10): p. 2906-2914. 47. Ching-Ming, L. and L. Yi-Hung, Modeling, Analysis, and Design of an Interleaved Four-Phase Current-Fed Converter With New Voltage Multiplier Topology. IEEE Transactions on Industry Applications,, 2013. 49(1): p. 208-222. 48. Yi, Z., L. Wuhua, and H. Xiangning, Single-Phase Improved Active Clamp Coupled- Inductor-Based Converter With Extended Voltage Doubler Cell. IEEE Transactions on Power Electronics,, 2012. 27(6): p. 2869-2878. 49. On-Cheong, M., W. Yue-Chung, and A. Ioinovici, Step-up DC power supply based on a switched-capacitor circuit. IEEE Transactions on Industrial Electronics,, 1995. 42(1): p.90-97. 50. Wuhua, L., et al., Single-Stage Single-Phase High-Step-Up ZVT Boost Converter for Fuel-Cell Microgrid System. IEEE Transactions on Power Electronics,, 2010. 25(12): p. 3057-3065. 51. N. Mohan, T.M.U., W. P. Robbins, Power Electronics Converter, Applications, and Design. Third Edition, 2006(John Wiley & Sons,Inc). 52. Pahlevaninezhad, M., et al., A Novel ZVZCS Full-Bridge DC/DC Converter Used for Electric Vehicles. IEEE Transactions on Power Electronics,, 2012. 27(6): p. 2752- 2769. 53. Yao-Ching, H., C. Ming-Ren, and C. Hung-Liang, An Interleaved Flyback Converter Featured With Zero-Voltage Transition. IEEE Transactions on Power Electronics,, 2011. 26(1): p.79-84. 54. Hongfei, W. and X. Yan, Families of Forward Converters Suitable for Wide Input Voltage Range Applications. IEEE Transactions on Power Electronics,, 2014. 29(11): p.6006-6017. 55. Tsang, C.W., et al., Analysis and Design of LLC Resonant Converters With Capacitor Diode Clamp Current Limiting. IEEE Transactions on Power Electronics, 2015. 30(3): p.1345-1355. 56. Huber, L. and M.M. Jovanovic. A design approach for server power supplies for networking applications. inApplied Power Electronics Conference and Exposition, 2000. APEC 2000. Fifteenth Annual IEEE.2000. 57. Tsai-Fu, W. and L. Sihh-An, A systematic approach to developing single-stage soft switching PWM converters. IEEE Transactions on Power Electronics,, 2001. 16(5): p. 581-593. 58. Tsai-Fu, W. and Y. Te-Hung, Unified approach to developing single-stage power converters. IEEE Transactions on Aerospace and Electronic Systems,, 1998. 34(1): p. 211-223. 59. Barreto, L.H.S.C., et al., A quasi-resonant quadratic boost converter using a single resonant network. IEEE Transactions on Industrial Electronics,, 2005. 52(2): p. 552- 557. 60. Mahdavikhah, B. and A. Prodic, Low-Volume PFC Rectifier Based on Nonsymmetric Multilevel Boost Converter. IEEE Transactions on Power Electronics,, 2015. 30(3): p. 1356-1372. 61. Zhang, M.T., et al. Single-phase three-level boost power factor correction converter. inApplied Power Electronics Conference and Exposition, 1995. APEC '95. Conference Proceedings 1995., Tenth Annual. 1995. 62. Barbi, I. and R. Gules, Isolated DC-DC converters with high-output voltage for TWTA telecommunication satellite applications. IEEE Transactions on Power Electronics, , 2003. 18(4): p.975-984. 63. Ismail, E.H., et al., A Family of Single-Switch PWM Converters With High Step-Up Conversion Ratio. IEEE Transactions on Circuits and Systems I: Regular Papers, , 2008. 55(4): p.1159-1171. 64. Abutbul, O., et al., Step-up switching-mode converter with high voltage gain using a switched-capacitor circuit. IEEE Transactions on Circuits and Systems I: Fundamental Theory and Applications,, 2003. 50(8): p.1098-1102. 65. Chun-Kit, C., et al., On Energy Efficiency of Switched-Capacitor Converters. IEEE Transactions on Power Electronics,, 2013. 28(2): p.862-876. 66. Fan, Z., et al., A New Design Method for High-Power High-Efficiency Switched- Capacitor DC-DC Converters. IEEE Transactions on Power Electronics, , 2008. 23(2): p.832-840. 67. Fang Lin, L. and Y. Hong, Negative output super-lift converters. IEEE Transactions on Power Electronics,, 2003. 18(5): p.1113-1121. 68. Fang Lin, L. and Y. Hong, Hybrid split capacitors and split inductors applied in positive output super-lift Luo-converters. IET Power Electronics,, 2013. 6(9): p. 1759- 1768. 69. Berkovich, Y., et al., Improved Luo converter modifications with increasing voltage ratio. IET Power Electronics,, 2015. 8(2): p.202-212. 70. Yu, T., W. Ting, and H. Yaohua, A Switched-Capacitor-Based Active-Network Converter With High Voltage Gain. IEEE Transactions on Power Electronics, , 2014. 29(6): p.2959-2968 en_US
dc.identifier.uri http://hdl.handle.net/123456789/647
dc.description Supervised by Mr. Fahim Faisal Lecturer, Department of Electrical and Electronic Engineering, Islamic University of Technology (IUT), Boardbazar, Gazipur-1704. en_US
dc.description.abstract Emerging applications driven by low voltage level power sources, such as photovoltaics, batteries and fuel cells require static power converters for appropriate energy conversion and conditioning to supply the requirements of the load system. Increasingly, for applications such as grid connected inverters, uninterruptible power supplies (UPS), and electric vehicles (EV), the performance of a high efficiency high static gain power converter is of critical importance to the overall system. Theoretically, the conventional boost and buck-boost converters are the simplest non-isolated topologies for voltage step-up. However, these converters typically operate under extreme duty ratio, and severe output diode reverse recovery related losses to achieve high voltage gain. This thesis presents derivation, analysis and design issues of advanced high step-up topologies with coupled inductor and voltage gain extension cell. The proposed innovative solution can achieve significant performance improvement compared to the recently proposed state of the art topologies. Two unique topologies employing coupled inductor and voltage gain extension cell are proposed. Power converters utilising coupled inductors traditionally require a clamp circuit to limit the switch voltage excursion. Firstly, a simple low-cost, high step-up converters employing active and passive clamp scheme is proposed. Performance comparison of the clamps circuits shows that the active clamp solution can achieve higher efficiency over the passive solution. Secondly, the primary detriment of increasing the power level of a coupled inductor based converters is high current ripple due to coupled inductor operation. It is normal to interleaved DC-DC converters to share the input current, minimize the current ripple and increase the power density. This thesis presents an input parallel output series converter integrating coupled inductors and switched capacitor demonstrating high static gain. Steady state analysis of the converter is presented to determine the power flow equations. Dynamic analysis is performed to design a closed loop controller to regulate the output voltage of the interleaved converter. The design procedure of the high step-up converters is explained, simulation and experimental results of the laboratory prototypes are presented. The experimental results obtained via a 250 W single phase converter and that of a 500 W interleaved converter prototypes; validate both the theory and operational characteristics of each power converter en_US
dc.language.iso en en_US
dc.publisher Department of Electrical and Electronic Engineering, Islamic University of Technology, Board Bazar, Gazipur, Bangladesh en_US
dc.title High Gain Non-isolated DC-DC Converter Topologies for Energy Conversion Systems en_US
dc.type Thesis en_US


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