A THREE-PHASE CURRENT SOURCE SEPIC INVERTER

Li Zongyang, Shen Hong, Wang Liqiao, Li Jiaxin, Ning Xiaoji

Acta Energiae Solaris Sinica ›› 2023, Vol. 44 ›› Issue (1) : 24-32.

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Acta Energiae Solaris Sinica ›› 2023, Vol. 44 ›› Issue (1) : 24-32. DOI: 10.19912/j.0254-0096.tynxb.2021-0874

A THREE-PHASE CURRENT SOURCE SEPIC INVERTER

  • Li Zongyang1, Shen Hong1, Wang Liqiao1, Li Jiaxin2, Ning Xiaoji1
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Abstract

This paper proposes a novel three-phase current source SEPIC inverter, which is composed of traditional three-phase bridge circuit and SEPIC circuit. The inverter can achieve buck-boost comply with the characteristics of SEPIC circuit. Meanwhile, by means of the SPWM carrier amplitude adjustable strategy, the problem which traditional current source inverter has large inductance parameter in DC side is solved, and the output waveform quality is optimized. This paper first introduces the working mode and the corresponding modulation method of the inverter, afterwards gives the mathematical formula of the voltage gain. Moreover, based on the characteristics of the circuit, the corresponding mathematical model and the closed-loop control strategy is established. Finally, the corresponding digital control platform is built by TMS320F2812 and FPGA, and the corresponding experimental verification is carried out, which verifies the feasibility of the circuit.

Key words

current source inverter / Sepic / Buck-Boost / carrier amplitude adjustable

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Li Zongyang, Shen Hong, Wang Liqiao, Li Jiaxin, Ning Xiaoji. A THREE-PHASE CURRENT SOURCE SEPIC INVERTER[J]. Acta Energiae Solaris Sinica. 2023, 44(1): 24-32 https://doi.org/10.19912/j.0254-0096.tynxb.2021-0874

References

[1] KOURO S, LEON J I, VINNIKOV D, et al.Grid-connected photovoltaic systems: an overview of recent research and emerging PV converter technology[J]. IEEE industrial electronics magazine, 2015, 9(1): 47-61.
[2] 丁明, 王伟胜, 王秀丽, 等. 大规模光伏发电对电力系统影响综述[J]. 中国电机工程学报, 2014, 34(1): 1-14.
DING M, WANG W S, WANG X L, et al.A review on the effect of large-scale PV generation on power systems[J]. Proceedings of the CSEE, 2014, 34(1): 1-14.
[3] 曾正, 邵伟华, 胡博容, 等. SiC 器件在光伏逆变器中的应用与挑战[J]. 中国电机工程学报, 2017, 37(1): 221-232.
ZENG Z, SHAO W H, HU B R, et al.Application and challenge of SiC devices in photovoltaic inverters[J]. Proceedings of the CSEE, 2017, 37(1): 221-232.
[4] 王立乔, 韩啸, 石珊珊. 一种单级三相Cuk三电平逆变器研究[J]. 中国电机工程学报, 2020, 40(13): 4290-4301.
WANG L Q, HAN X, SHI S S.Research on a single-stage three-phase Cuk three-level inverter[J]. Proceedings of the CSEE, 2020, 40(13): 4290-4301.
[5] WEI L B, ZHANG Z M, LI J Z.A single-stage three-phase grid-connected photovoltaic system with modified MPPT method and reactive power compensation[J]. IEEE transactions on energy conversion, 2007, 22(4):881-886.
[6] GUACCI M, ZHANGD F, TATIC M, et al.Three-phase two-third-PWM buck-boost current source inverter system employing dual-gate monolithic bidirectional GaN e-FETs[J]. IEEE transactions on power electronics and applications, 2019, 4(4): 339-354.
[7] HO A, CHUN T.Single-phase modified quasi-Z-source cascaded hybrid five-level inverter[J]. IEEE transactions on industrial electronics, 2018, 65(6): 5125-5134.
[8] SAHAN B, ARAUJO S V, NODING C.Comparative evaluation of three-phase current source inverters for grid interfacing of distributed and renewable energy systems[J]. IEEE transactions on power electronics, 2010, 26(8): 2304-2318.
[9] DARWISH A, MASSOUD A M, HOLLIDAY D, et al.Single-stage three-phase differential-mode buck-boost inverters with continuous input current for PV applications[J]. IEEE transactions on power electronics, 2016, 31(12): 8218-8236.
[10] MELIN P E, ROHTENJ A, ESPINOZAJ R, et al.Analysis and design of a multicell topology based on three-phase/single-phase current-source cells[J]. IEEE transactions on power electronics, 2016, 31(9): 6122-6133.
[11] ANAND S, GUNDLAPALLI S K, FERNANDES B G.Transformer-less grid feeding current source inverter for solar photovoltaic system[J]. IEEE transactions on industrial electronics, 2014, 61(10): 5334-5344.
[12] FANG Z P.Z-source inverter[J]. IEEE transactions on industry applications, 2003, 39(2): 504-510.
[13] LIU Y S, ABU-RUB H, GE B M.Z-Source/quasi-Z-source inverters: derived networks, modulations, controls, and emerging applications to photovoltaic conversion[J]. IEEE industrial electronics magazine, 2014, 8(4): 32-44.
[14] TANG Y, XIE S J, ZHANG C H, et al.Improved Z-source inverter with reduced Z-source capacitor voltage stress and soft-start capability[J]. IEEE transactions on power electronics, 2009, 24(2): 409-415.
[15] RAVEENDHRA D, PATHAK M K.Three-phase capacitor clamped boost inverter[J]. IEEE journal of emerging and selected topics in power electronics, 2019, 7(3): 1999-2011.
[16] DIAB M S, ELSEROUGI A, MASSOUD A M, et al.A Four-switch three-phase SEPIC-based inverter[J]. IEEE transactions on power electronics, 2015, 30(9): 4891-4905.
[17] DIAB M S, ELSEROU A, ABDEL-KHALIK A S, et al. A Zeta-converter based four-switch three-phase DC-AC inverter[C]//2015 IEEE Energy Conversion Congress and Exposition (ECCE),Montreal, Canada, 2015: 4671-4677.
[18] 王立乔, 刁亚飞. 基于有源X型电感网络的多电平逆变器研究[J]. 太阳能学报, 2017, 38(2): 347-356.
WANG L Q, DIAO Y F.Research on multilevel inverter based on active X-type inductive network[J]. Acta solaris energiae sinica, 2017, 38(2): 347-356.
[19] SHAWKY A, TAKESHITA T, SAYE M A.Single-stage three-phase grid-tied isolated sepic-based differential inverter with improved control and selective harmonic compensation[J]. IEEE access, 2020, 8: 147407-147421.
[20] RAHMAN M D, KABIR M S, RABBI M N, et al.Design of a flexible three-phase inverter using cascaded boost SEPIC (CBS) converter for renewable energy application[C]//2020 2nd International Conference on Innovative Mechanisms for Industry Applications, Bangalore, India, 2020: 652-657.
[21] 王立乔, 秦栎雯, 朱文通. 一种无电解电容三相Zeta整流器[J]. 中国电机工程学报, 2019, 39(11): 3353-3355.
WANG L Q, QIN L W, ZHU W T.A three-phase zeta rectifier without electrolytic capacitor[J]. Proceedings of the CSEE, 2019, 39(11): 3353-3355.
[22] 王立乔, 杨博生, 邬伟扬. 载波幅值可调PWM技术及其在级联型多电平变流器中的应用[J]. 电工技术学报, 2010, 25(11): 122-128.
WANG L Q, YANG B S, WU W Y.PWM technology with adjustable carrier amplitude and its application in cascade multilevel converter[J]. Transactions of China Electrotechnical Society, 2010, 25(11): 122-128.
[23] 徐德鸿. 电力电子系统建模及控制[M]. 北京: 机械工业出版社, 2006: 40-43.
XU D H.Modeling and control for power electronics system[M]. Beijing: China Machine Press, 2006: 40-43.
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