Browse > Article
http://dx.doi.org/10.1007/s43236-022-00512-z

Proper flying capacitor selection for performance enhancement of five-level hybrid active neutral-point-clamped inverters  

Hakami, Samer Saleh (Department of Electrical and Computer Engineering, Ajou University)
Lee, Kyo-Beum (Department of Electrical and Computer Engineering, Ajou University)
Publication Information
Journal of Power Electronics / v.22, no.10, 2022 , pp. 1687-1698 More about this Journal
Abstract
Flying capacitors (FCs) are very important in multilevel inverter systems when it comes to synthesizing additional voltage levels for various medium-voltage industrial applications, including renewable energy, motor drives, and power transmission. In particular, they are responsible for forming the five-level output pole voltages in five-level hybrid active neutral-point-clamped (ANPC) topologies. This is only possible when the FCs reach their reference values (i.e., 25% of the DC-link value). When a five-level hybrid ANPC inverter operates in the high-frequency (HF) range, the output three-phase current waveforms are less distorted when compared to the low-frequency (LF) performance. Instantaneously achieving a five-level output pole voltage during HF operation is a challenging task. This is due to the large capacitance of some existing types of FCs. In this study, a novel analysis of the effects of a FC on the performance of a five-level hybrid ANPC inverter is presented with simulation and experimental validations. Film capacitors significantly enhanced system performance when compared to electrolytic capacitors due to their many advantageous features, including the ability to charge and discharge quickly during HF operation. In addition, the total harmonic distortion of the output pole voltage is significantly suppressed. Consequently, the size of the required filter can be reduced. Therefore, the proposed system is highly desirable for various industrial applications.
Keywords
Five-level hybrid ANPC inverter; Flying capacitor; HF operation; Multilevel inverters;
Citations & Related Records
Times Cited By KSCI : 3  (Citation Analysis)
연도 인용수 순위
1 Lee, K.-B., Lee, J.-S.: Reliability improvement technology for power converters. Springer, Singapore (2017)
2 Dwivedi, A., Pahariya, Y.: Design and analysis of hybrid multilevel inverter for asymmetrical input voltages. J. Electr. Eng. Technol. 16, 3025-3036 (2021)   DOI
3 Pulikanti, S., Agelidis, V.: Hybrid flying-capacitor-based active neutral-point-clamped five-level converter operated with SHEPWM. IEEE Trans. Ind. Electron. 58(10), 4643-4653 (2011)   DOI
4 Halabi, L.M., Alsofyani, I.M., Lee, K.-B.: Hardware implementation for hybrid active NPC converters using FPGA-based dual pulse width modulation. J. Power Electron 21, 1669-1679 (2021)   DOI
5 P Barbosa P Steimer J Steinke L Meysenc M Winkelnkemper N Celanovic 2005 Active neutral-point-clamped (ANPC) multilevel converter technology Proc Eur Conf Power Electron. Appl 1 10
6 Zhou, D., Ding, L., Li, Y.: Two-stage optimization-based model predictive control of 5L-ANPC converter-fed PMSM drives. IEEE Trans. Ind. Electron. 68(5), 3739-3749 (2021)   DOI
7 Hafez, A.A., Mahmoud, A.A., Yousef, A.M.: Robust and intelligent control for single-stage grid-connected modular multilevel converter in PV applications. J. Electr. Eng. Technol. 16, 917-931 (2021)   DOI
8 Shukla, A., Ghosh, A., Joshi, A.: Natural balancing of flying capacitor voltages in multicell inverter under PD carrier-based. IEEE Trans. Power Electron. 26(6), 1682-1693 (2011)   DOI
9 Terzulli, G. 2010. Film technology to replace electrolytic technology in wind power applications. AVX Tech. Note
10 Streibl, M., Karmazin, R., Moos, R.: Materials and applications of polymer films for power capacitors with special respect to nanocomposites. IEEE Trans. Dielectr. Electr. Insul. 25(6), 2429-2442 (2018)   DOI
11 Abu-Rub, H., Holtz, J., Rodriguez, J., Ge, B.: Medium-voltage multilevel converters-state of the art, challenges, and requirements in industrial applications. IEEE Trans. Ind. Electron. 57(8), 2581-2596 (2010)   DOI
12 Rodriguez, J., Bernet, S., Steimer, P., Lizama, I.: A survey on neutral-point-clamped inverters. IEEE Trans. Ind. Electron. 57(7), 2219-2230 (2010)   DOI
13 Sathyaseelan, B., Vijay Shankar, S., Suresh, K., et al.: Design and implementation of comprehensive converter. J. Electr. Eng. Technol. 16, 3093-3101 (2021)   DOI
14 Kouro, S., et al.: Recent advances and industrial applications of multilevel converters. IEEE Trans. Ind. Electron. 57(8), 2553-2580 (2010)   DOI
15 Kim, S.-H. 2017 Electric motor control. DC, AC, and BLDC motors. Elsevier
16 Guan, Q., et al.: An extremely high efficient three-level active neutral-point-clamped converter comprising SiC and Si hybrid power stages. IEEE Trans. Power Electron. 33(10), 8341-8352 (2018)   DOI
17 Song, M.-G., Kim, S.-M., Lee, K.-B.: Independent switching technique to remove abnormal output voltage in hybrid active NPC inverters. J. Power Electron 21, 85-93 (2021)   DOI
18 Abdennadher, K., Venet, P., Rojat, G., Retif, J.-M.: A real time predictive maintenance system of aluminum electrolytic capacitors used in uninterrupted power supplies. Proc. IEEE Ind. Appl. Soc. Conf. 46(1), 1644-1652 (2008)
19 Jo, H.-R., Kim, Y.-J., Lee, K.-B.: LCL-Filter design based on modulation index for grid-connected three-level hybrid ANPC inverters. J. Electr. Eng. Technol. 16, 1517-1525 (2021)   DOI
20 Sivasubramanian, M., Boopathi, C.S.: A switched capacitor based seven level active neutral point clamped (ANPC) inverter topology with reduced switching devices. J. Electr. Eng. Technol. 16, 3103-3112 (2021)   DOI
21 F Kieferndorf M Basler LA Serpa JH Fabian A Coccia GA Scheuer 2010 A new medium voltage drive system based on ANPC-5L technology Proc Int Conf Ind Technol. 643 649
22 Jiang, L., et al.: SVPWM algorithm for five-level active-neutralpoint- clamped H-bridge inverters. J. Power Electron. 21, 1123-1134 (2021)   DOI
23 Narimani, M., Wu, B., Zargari, N.R.: A novel five-level voltage source inverter with sinusoidal pulse width modulator for medium-voltage applications. IEEE Trans. Power Electron. 31(3), 1959-1967 (2016)   DOI
24 Dekka, A., Narimani, M.: Capacitor voltage balancing and current control of a five-level nested neutral-point-clamped converter. IEEE Trans. Power Electron. 33(12), 10169-10177 (2018)   DOI
25 Wang, K., Zheng, Z., Xu, L., Li, Y.: An optimized carrier-based PWM method and voltage balancing control for five-level ANPC converters. IEEE Trans. Ind. Electron. 67(11), 9120-9132 (2020)   DOI
26 Ghias, A.M.Y.M., Pou, J., Ciobotaru, M., Agelidis, V.G.: Voltage balancing method using phase-shifted PWM for the flying capacitor multilevel. IEEE Trans. Power Electron. 29(9), 4521-4531 (2014)   DOI
27 Wang, K., Li, Y.D., Zheng, Z.D., Xu, L., Ma, H.W.: Self-precharge of floating capacitors in a five-level ANPC inverter. Proc. 7th. Power Electron. Motion Control Conf. 3, 1776-1780 (2012)
28 KEMET 2022 Printed circuit board mount power film capacitors. C4AQ datasheet.
29 Sayyad, J., Nasikkar, P., Singh, A.P., Ozana, S.: Capacitive loadbased smart OTF for high power rated SPV module. Energies 14, 788 (2021)   DOI
30 KEMET 2021 Screw terminal aluminum electrolytic capacitors. ALS30/31 datasheet