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Review Articles

Review on Multi-Port DC–DC Converters

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References

  • S.-K. Changchien, T.-J. Liang, J.-F. Chen, and L.-S. Yang, “Novel high step-up DC-DC converter for fuel cell energy conversion system,” IEEE Trans. Ind. Electron., Vol. 57, no. 6, pp. 2007–2017, Jun. 2010.
  • Y. P. Hsieh, J. F. Chen, T. J. Liang, and L. S. Yang, “Novel high step-up DC-DC converter with coupled-inductor and switched-capacitor techniques,” IEEE Trans. Ind. Electron., Vol. 59, no. 2, pp. 998–907, Feb. 2012.
  • K. I. Hwu, and W. Z. Jiang, “Isolated step-up converter based on flyback converter and charge pumps,” IET Power Electron., Vol. 7, no. 9, pp. 2250–2257, Sep. 2014.
  • M. R. Banaei, and H. A. F. Bonab, “A novel structure for single switch non-isolated transformerless buck-boost dc-dc converter,” IEEE Trans. Ind. Electron., Vol. 64, no. 1, pp. 198–105, Jan. 2017.
  • Y. Zhang, L. Zhou, M. Sumner, and P. Wang, “Single-switch, wide voltage-gain range, boost DC–DC converter for fuel cell vehicles,” IEEE Trans. Power Electron., Vol. 67, no. 1, pp. 134–145, Jan. 2018.
  • V. F. Pires, D. Foitoa, and J. F. Silva, “A single switch hybrid DC/DC converter with extended static gain for photovoltaic applications,” Electr. Power Syst. Res., Vol. 146, pp. 228–235, 2017.
  • S. Ding, and F. Wang, “A new negative output buck-boost converter with wide conversion ratio,” IEEE Trans. Power Electron., Vol. 64, no. 12, pp. 9322–9333, Dec. 2017.
  • Z. Rehman, I. Al-Bahadly, and S. Mukhopadhyay, “Multiinput DC–DC converters in renewable energy applications – An overview,” Elsevier J. Renew. Sustain. Energy Rev., Vol. 41, pp. 521–539, 2015.
  • Y. Yuan-mao, and K. W. E. Cheng, “Multi-input voltage-summation converter based on switched-capacitor,” IET Power Electron., Vol. 6, no. 9, pp. 1909–1916, Nov. 2013.
  • H. Wu, J. Zhang, and Y. Xing, “A family of multi-port buck-boost converters based on DC-link-inductors (DLIs),” IEEE Trans. Power Electron., Vol. 30, no. 2, pp. 735–746, Feb. 2015.
  • K. Gummi, and M. Ferdowsi, “Double-input DC–DC power electronic converters for electric-drive vehicles – Topology exploration and synthesis using a single-pole triple-throw switch,” IEEE Trans. Ind. Electron., Vol. 57, no. 2, pp. 617–623, Feb. 2010.
  • F. Zhang, F. Z. Peng, and Z. Qian. “Study of the multilevel converters in dc-dc applications,” in Proc. IEEE 35th Annual Power Electronics Specialists Conference (PESC), Germany, 2004, vol. 2, pp. 1702–1706.
  • B. Axelrod, Y. Berkovich, and A. Ioinovici, “A cascade boost switched- capacitor-converter-two level inverter with an optimized multilevel output waveform,” IEEE Trans. Circuits Syst., Vol. 52, no. 12, pp. 2763–2770, Dec. 2005.
  • J. C. Rosas-Caro, J. M. Ramírez, and P. M. García-Vite. “Novel DC–DC multilevel boost converter,” in Proc. IEEE Power Electronics Specialists Conference, 2008. pp. 2146–2151.
  • J. L. Duarte, M. Hendrix, and M. G. Simoes, “Three-port bidirectional converter for hybrid fuel cell systems,” IEEE Trans. Power Electron., Vol. 22, no. 2, pp. 480–487, Mar. 2007.
  • H. Tao, A. Kotsopoulos, J. L. Duarte, and M. A. M. Hendrix, “Transformer coupled multiport ZVS bidirectional DC–DC converter with wide input range,” IEEE Trans. Power Electron., Vol. 23, no. 2, pp. 771–781, Mar. 2008.
  • H. Tao, J. Duarte, and M. Hendrix, “Three-port triple-half-bridge bidirectional converter with zero-voltage switching,” IEEE Trans. Power Electron., Vol. 23, no. 2, pp. 782–792, Mar. 2008.
  • H. Krishnaswami, and N. Mohan, “Three-port series-resonant DC–DC converter to interface renewable energy sources with bidirectional load and energy storage ports,” IEEE Trans. Power Electron., Vol. 24, no. 10, pp. 2289–2297, Oct. 2009.
  • S. Dusmez, X. Li, and B. Akin, “A new multiinput three-level dc/dc converter,” IEEE Trans. Power Electron., Vol. 31, no. 2, pp. 1230–1240, Feb. 2016.
  • Z. Ding, C. Yang, Z. Zhang, C. Wang, and S. Xie, “A novel soft switching multiport bidirectional DC-DC converter for hybrid energy storage system,” IEEE Trans. Power Electron., Vol. 29, no. 4, pp. 1595–1509, Apr. 2014.
  • Y.-M. Chen, Y.-C. Liu, and S.-H. Lin, “Double-input PWM DC/DC converter for high-/low-voltage sources,” IEEE Trans. Ind. Electron., Vol. 53, no. 5, pp. 1538–1545, Oct. 2006.
  • G. Li, J. Shi, and S. Yu. “Dual-Input DC/DC converter for photovoltaic system with reverse charging,” in Proc. IEEE 29th Chinese Control and Decision Conference (CCDC), China, 2017, pp. 538–543.
  • O. C. Onar, and A. Khaligh, “A novel integrated magnetic structure based DC/DC converter for hybrid battery/ultracapacitor energy storage systems,” IEEE Trans. Smart Grid, Vol. 3, no. 1, pp. 296–208, Mar. 2012.
  • K. Varesi, S. H. Hosseini, M. Sabahi, E. Babaei, and N. Vosough, “Performance and design analysis of an improved non-isolated multiple input buck DC–DC converter,” IET Power Electron., Vol. 10, no. 9, pp. 1034–1045, 2017.
  • F. Akar, Y. Tavlasoglu, E. Ugur, B. Vural, and I. Aksoy, “A bidirectional nonisolated multi-input dc–dc converter for hybrid energy storage systems in electric vehicles,” IEEE Trans. Veh. Technol., Vol. 65, no. 10, pp. 7944–7955, Oct. 2016.
  • L. Zhou, B. Zhu, and Q. Luo, “High step-up converter with capacity of multiple input,” IET Power Electron., Vol. 5, no. 5, pp. 524–531, 2012.
  • M. Marchesoni, and C. Vacca, “New DC–DC converter for energy storage system interfacing in fuel cell hybrid electric vehicles,” IEEE Trans. Power Electron, Vol. 22, no. 1, pp. 301–308, 2007.
  • A. Deihimi, M. E. S. Mahmoodieh, and R. Iravani, “A new multi-input step-up DC–DC converter for hybrid energy systems,” Electr. Power Syst. Res., Vol. 149, pp. 111–124, 2017.
  • S. K. Haghighian, S. Tohidi, M. R. Feyzi, and M. Sabahi, “Design and analysis of a novel SEPIC-based multi-input DC/DC converter,” IET Power Electron., Vol. 12, no. 7, pp. 1393–1302, 2017.
  • S. Rezaee, and E. Farjah, “A DC–DC multiport module for integrating plug-in electric vehicles in a parking lot: topology and operation,” IEEE Trans. Power Electron., Vol. 29, no. 11, pp. 5688–5695, Nov 2014.
  • M. R. Banaei, H. Ardi, R. Alizadeh, and A. Farakhor, “Non-isolated multi-input– single-output DC/DC converter for photovoltaic power generation systems,” IET Power Electron., Vol. 7, no. 11, pp. 2808–2816, 2014.
  • M. Azizi, M. Mohamadian, and R. Beiranvand, “A new family of multi-input converters based on three switches leg,” IEEE Trans. Ind. Electron., Vol. 63, no. 11, pp. 6812–6822, Nov. 2016.
  • S. Hou, J. Chen, T. Sun, and X. Bi, “Multi-input step-up converters based on the switched-diode-capacitor voltage accumulator,” IEEE Trans. Power Electron., Vol. 31, no. 1, pp. 229–234, Jan. 2016.
  • K. Varesi, A. A. Ghandomi, S. H. Hosseini, M. Sabahi, and E. Babaei. “An improved structure for multi-input high step-up dc-dc converters,” in Proc. 8th Power Electronics, Drive Systems & Technologies Conference (PEDSTC), Iran, 2017, pp. 241–246.
  • A. Tomar, and S. Mishra. “Multi-input single-output DC-DC converter based PV water pumping system,” in Proc. 1st IEEE International Conference on Power Electronics, Intelligent Control and Energy Systems (ICPEICES), 2016. pp. 1–5.
  • J. Song, and A. Kwasinski. “Analysis of the effects of duty cycle constraints in multiple-input converters for photovoltaic applications”, in Proc. 31st IEEE International Telecommunications Energy Conference, South Korea, 2009, pp. 1–5.
  • Y. Yuan-mao, and K. W. E. Cheng, “Multi-input voltage-summation converter based on switched-capacitor,” IET Power Electron., Vol. 6, no. 9, pp. 1909–1916, 2003.
  • B. G. Dobbs, and P. L. Chapman, “A multiple-input DC-DC converter topology,” IEEE Power Electron. Lett., Vol. 1, no. 1, pp. 6–9, Mar. 2003.
  • A. Thiyagarajan, and B. Gokulavasan, “Design of four input buck-boost dc-dc converter for renewable energy application,” Int. J. Indus. Eng., Vol. 1, no. 2, pp. 1–6, Aug. 2014.
  • S. Athikkal, G. G. Kumar, K. Sundaramoorthy, and A. Sankar, “Performance analysis of novel bridge type dual input DC-DC converters,” IEEE Access Journal, Vol. 5, pp. 15341–15353, 2017.
  • A. Khaligh, J. Cao, and Y.-J. Lee, “A multiple-input DC–DC converter topology,” IEEE Trans. Power Electron., Vol. 24, no. 3, pp. 862–868, Mar. 2009.
  • C. Balaji, S. S. Dash, N. Hari, and P. C. babu. “A four port non-isolated multi input single output dc-dc converter fed induction motor,” in Proc. 6th International Conference on Renewable Energy Research and Applications, USA, 2017, pp. 5–8.
  • S. Athikkal, G. G. Kumar, K. Sundaramoorthy, and A. Sankar, “Design, fabrication and performance analysis of a two input—single output DC-DC converter,” Energies J., Vol. 10, pp. 2–18, 2017.
  • L. Kumar, and S. Jain, “Multiple-input DC/DC converter topology for hybrid energy system,” IET Power Electron., Vol. 6, no. 8, pp. 1483–1401, 2013.
  • L. Kumar, and S. Jain, “A multiple source DC/DC converter topology,” J. Electr. Power Energy Syst., Vol. 51, pp. 278–291, 2013.
  • K. Kanhav, and M. Chaudhari, “Experimental realization of a multi-input buck-boost dc-dc converter,” Turk. J. Electr. Eng. Comp. Sci., Vol. 26, pp. 1453–1469, 2018.
  • B. Vural, “FC/UC hybridization for dynamic loads with a novel double input DC-DC converter topology,” Int. J. Hydrogen Energy, Vol. 38, pp. 1104–1110, 2013.
  • F. Nejabatkhah, S. Danyali, S. H. Hosseini, M. Sabahi, and S. M. Niapour, “Modeling and control of a new three-input dc-dc boost converter for hybrid PV/FC/battery power system,” IEEE Trans. Power Electron., Vol. 27, no. 5, pp. 2309–2324, May 2012.
  • R. R. Ahrabi, H. Ardi, M. Elmi, and A. Ajami, “A novel step-up multiinput DC–DC converter for hybrid electric vehicles application,” IEEE Trans. Power Electron., Vol. 32, no. 5, pp. 3549–3561, May 2017.
  • H. Wu, K. Sun, S. Ding, and Y. Xing, “Topology derivation of non-isolated three-port DC–DC converters from DIC and DOC,” IEEE Trans. Power Electron., Vol. 28, no. 7, pp. 3297–3207, July 2013.
  • L. Solero, A. Lidozzi, and J. A. Pomilio, “Design of multiple-input power converter for hybrid vehicles,” IEEE Trans. Power Electron., Vol. 20, no. 5, pp. 1007–1016, Sept. 2005.
  • X. Sun, Y. Zhou, W. Wang, B. Wang, and Z. Zhang, “Alternative source-port-tolerant series-connected double-input DC–DC converter,” IEEE Trans. Power Electron., Vol. 30, no. 5, pp. 2733–2742, May. 2015.
  • M. Dhananjaya, and S. Pattnaik. “Design and implementation of a multi-input single-output DC-DC Converter”, in Proc. IEEE International Conference on Sustainable Energy Technologies and Systems (ICSETS) Conference 2019, Bhubaneswar, India, pp. 194–199.
  • A. Nami, F. Zare, A. Ghosh, and F. Blaabjerg, “Multi-output DC–DC converters based on diode-clamped converters configuration: topology and control strategy,” IET Power Electron., Vol. 3, no. 2, pp. 197–108, 2010.
  • A. A. Boora, A. Nami, F. Zare, A. Ghosh, and F. Blaabjerg, “Voltage sharing converter to supply single-phase asymmetrical four-level diode clamped inverter with high power factor load,” IEEE Trans. Power Electron., Vol. 25, no. 10, pp. 2507–2521, Oct. 2010.
  • W.-H. Ki, and D. Ma. “Single-inductor multiple-output switching converters,” in Proc. IEEE 32nd Annual Power Electronics Specialists Conference 2001, Vol. 1, pp. 226–231.
  • M. Belloni, E. Bonizzoni, and F. Maloberti. “On the design of single-inductor double output dc–dc buck, boost and buck–boost converters,” in Proc. of the IEEE electronics, circuits and systems Conference, 2008, pp. 626–629.
  • P. Patra, A. Patra, and N. Misra, “A single-inductor multiple-output switcher with simultaneous buck, boost, and inverted outputs,” IEEE Trans. Power Electron, Vol. 27, no. 4, pp. 1936–1951, April 2012.
  • W.-H. Ki, and D. Ma. “Single-inductor multiple-output switching converters,” in Proc. IEEE Power Electronics Specialists Conference, 2001, Vol. 1, pp. 226–231.
  • M. Abbasi, A. Afifi, and M. R. A. Pahlavani, “Comments on A single-inductor multiple-output switcher with simultaneous buck, boost, and inverted outputs,” IEEE Trans. Power Electron., Vol. 34, no. 2, pp. 1980–1984, February 2019.
  • K. Taehyung, and S. Baek. “Multiple bus motor drive based on a single inductor multi output converter in 48 v electrified vehicles,” in Proc. International Electric Machines and Drives Conference (IEMDC), USA, 2017, pp. 1–6.
  • W. Xu, Y. Li, X. Gong, Z. Hong, and D. Killat, “A dual-mode single-inductor dual-output switching converter with small ripple,” IEEE Trans. Power Electron., Vol. 25, no. 3, pp. 614–623, March 2010.
  • M.-H. Huang, and K.-H. Chen, “Single-inductor multi-output (SIMO) dc-dc converters with high light-load efficiency and minimized cross-regulation for portable devices,” IEEE J. Solid State Circ., Vol. 44, no. 4, pp. 1099–1011, Apr. 2009.
  • J. D. Dasika, B. Bahrani, M. Saeedifard, A. Karimi, and A. Rufer, “Multivariable control of single-inductor dual-output buck converters,” IEEE Trans. Power Electron., Vol. 29, no. 4, pp. 2061–2070, Apr. 2014.
  • L. Li, M. Begbie, and D. Uttamchandani, “Single- input, dual-output MEMS DC/DC converter,” IET Electron. Lett., Vol. 43, no. 15, pp. 809–810, July 2007.
  • E. C. D. Santos, “Dual-output DC–DC buck converters with bidirectional and unidirectional characteristics,” IET Power Electron., Vol. 6, no. 5, pp. 999–909, 2013.
  • O. Ray, A. Josyula, S. Mishra, and A. Joshi, “Integrated dual-output converter,” IEE Trans. Ind. Electron., Vol. 62, no. 1, pp. 371–382, Jan. 2015.
  • R. Wai, L. Hong, and J. Liaw, “High-efficiency bidirectional single-input multiple-output power converter,” IET Power Electron., Vol. 7, no. 5, pp. 1278–1293, 2013.
  • M. S. B. Ranjana, N. S. Reddy, and R. K. P. Kumar. “A novel sepic based dual output dc-dc converter for solar applications,” in Proc. 2014 Power and Energy Systems: Towards Sustainable Energy Conference (PESTSE 2014), 2014. pp. 1–5.
  • J. Marjani, A. Imani, E. Afjei, and A. Hekmati. “A new dual output dc-dc converter with enhancing output voltage level,” in Proc. 24th Iranian Conference on Electrical Engineering (ICEE), 2016, pp. 573–577.
  • N. Gular, and E. Irmak. “Design and applications of a novel single input-multi output DC-DC converter,” in Proc. IEEE 5th International Conference on renewable energy research and application, UK, 2016. pp. 1039–1045.
  • G. Chen, Y. Deng, J. Dong, Y. Hu, L. Jiang, and X. He, “Integrated multiple-output synchronous buck converter for electric vehicle power supply,” IEEE Trans. Veh. Technol., Vol. 66, no. 7, pp. 5752–5761, July 2017.
  • P. Kumar, and M. Rojas-Gonzalez. Novel 3-switch dual output buck voltage regulator,” in Proc. Twenty-First Annual IEEE Applied Power Electronics Conference and Exposition (APEC), 2006. pp. 467–473.
  • A. Ganjavi, H. Ghoreishy, and A. A. Ahmad, “A novel single-input dual-output three-level dc-dc converter,” IEEE Trans. Ind. Electron, Vol. 65, no. 10, pp. 8101–8111, Oct. 2018.
  • M. Dhananjaya, and S. Pattnaik, “Design and analysis of improved single input dual-output DC-DC converter,” Electr. Power Comp. Syst. Taylor Francis, Vol. 48, no. 9-10, pp. 906–918, 2020.
  • H. Behjati, and A. Davoudi. “A MIMO topology with series outputs: an interface between diversified energy sources and diode-clamped multilevel inverter,” in Proc. Twenty-Seventh Annual IEEE Applied Power Electronics Conference and Exposition (APEC), 2012, pp. 1–6.
  • H. Behjati, and A. Davoudi. “A multi-port dc-dc converter with independent outputs for vehicular applications,” in Proc. IEEE Vehicle Power and Propulsion Conference, 2011, pp. 1–5.
  • B. Wang, L. Xian, V. R. K. Kanamarlapudi, K. J. Tseng, A. Ukil, and H. B. Gooi, “A digital method of power-sharing and cross-regulation suppression for single-inductor multiple-input multiple-output DC–DC converter,” IEEE Trans. Ind. Electron., Vol. 64, no. 4, pp. 2836–2847, April 2017.
  • H. Behjati, and A. Davoudi, “Single-stage multi-port DC–DC converter topology,” IET Power Electron., Vol. 6, no. 2, pp. 392–303, 2013.
  • A. Nahavandi, M. T. Hagh, M. B. B. Sharifian, and S. Danyali, “A non-isolated multi-input multi-output DC–DC boost converter for electric vehicle applications,” IEEE Trans. Power Electron., Vol. 30, no. 4, pp. 1818–1897, April, 2015.
  • N. Umamaheswari, M. B. Priya, and M. Sengolan. “Multi-input multi-output DC-DC converter with multilevel inverter application,” in Proc. IEEE National Conference on Emerging Trends In New & Renewable Energy Sources And Energy Management (NCET NRES EM), 2014, pp. 94–101.
  • A. A. Nilangeka, and R. G. Kale. “Design and development of electric vehicle battery charging using MIMO boost converter,” in Proc. Online International Conference on Green Engineering and Technologies (IC-GET) Conference, 2016. pp. 1–6.
  • R. G. Kale, and A. A. Nilangekar. “Implementation of multiple input and multiple output boost converter for electric vehicle charging system,” in Proc. International Conference on Nascent Technologies in the Engineering Field (ICNTE), 2017, pp. 1–6.
  • M. Jafari, G. Hunter, and J. G. Zhu. “A new topology of multi-input multi-output buck-boost dc-dc converter for microgrid applications,” in Proc. IEEE International Conference on Power and Energy (PECON), 2012. pp. 286–291.
  • E. Babaei, and O. Abbasi, “Structure for multi-input multi-output DC–DC boost converter,” IET Power Electron., Vol. 9, no. 1, pp. 9–19, 2016.
  • E. Babaei, and O. Abbasi, “A new topology for bidirectional multi-input multi-output buck direct current–direct current converter,” Int. Trans. Electr. Energ. Syst., Vol. 27, no. 2, pp. 1–15, 2016.
  • A. A. d. M. Bento, D. A. A. Bueno, and E. R. C. da Silva. “Dual input dual output single switch DC-DC converter for renewable energy applications,” in Proc. IEEE Energy Conversion Congress and Exposition (ECCE) Conference, 2016. pp. 1–8.
  • M. Alzgool, and H. Nouri. “Design, control and modelling of a novel multi- input-multi-output boost converter hub,” in Proc. 10th Jordan International Electrical and Electronics Engineering Conference 2017. pp. 1–7.
  • G. Chen, Z. Jin, Y. Deng, X. He, and X. Qing, “Principle and topology synthesis of integrated single-input dual-output and dual-input single-output dc-dc converters,” IEEE Trans. Ind. Electron., Vol. 65, no. 5, pp. 3815–3825, May. 2018.

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