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Voltage-Balance Compensator for a Carrier-Based Modulation in the Neutral-Point-Clamped Converter | IEEE Journals & Magazine | IEEE Xplore

Voltage-Balance Compensator for a Carrier-Based Modulation in the Neutral-Point-Clamped Converter


Abstract:

This paper presents an optimal voltage-balancing compensator for a specific modulation technique applied to a neutral-point-clamped converter. The technique uses two modu...Show More

Abstract:

This paper presents an optimal voltage-balancing compensator for a specific modulation technique applied to a neutral-point-clamped converter. The technique uses two modulation signals per phase, and it is called double-signal pulsewidth modulation. It completely eliminates low-frequency oscillations in the neutral-point voltage. However, it does not provide natural voltage balancing; therefore, a compensation loop is required. The proposed control generates a feedback compensation signal that correctly modifies the three-phase modulation signals. The optimal compensation signal is calculated by a dynamic limiter according to the intrinsic limitations of the system related to the variability range of the modulation signals. It significantly improves the voltage balancing under all operating conditions of the converter. In addition, this compensation strategy does not increase the switching frequencies of the power devices. The algorithm is tested and verified using both simulation and experimentation.
Published in: IEEE Transactions on Industrial Electronics ( Volume: 56, Issue: 2, February 2009)
Page(s): 305 - 314
Date of Publication: 11 November 2008

ISSN Information:

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I. Introduction

Multilevel converters are widely used in high-power applications such as motor drives, utility applications, and, most recently, in wind generation systems [1]– [5]. Extensive research has been carried out on multilevel topologies, modulation, and control strategies [6]– [12]. However, these complex topologies still present some practical problems which require further analysis.

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1.
S. Alepuz, S. Busquets-Monge, J. Bordonau, J. Gago, D. Gonzalez and J. Balcells, "Interfacing renewable energy sources to the utility grid using a three-level inverter", IEEE Trans. Ind. Electron., vol. 53, no. 5, pp. 1504-1511, Oct. 2006.
2.
R. C. Portillo, M. M. Prats, J. I. Leon, J. A. Sanchez, J. M. Carrasco, E. Galvan, et al., "Modeling strategy for back-to-back three-level converters applied to high-power wind turbines", IEEE Trans. Ind. Electron., vol. 53, no. 5, pp. 1483-1491, Oct. 2006.
3.
J. Rodriguez, S. Bernet, B. Wu, J. O. Pontt and S. Kouro, "Multilevel voltage-source-converter topologies for industrial medium-voltage drives", IEEE Trans. Ind. Electron., vol. 54, no. 6, pp. 2930-2945, Dec. 2007.
4.
L. Shuai and C. Keith, "High power motor drives based on hybrid multilevel converters and direct torque control", Proc. IEEE APEC, pp. 1077-1083, 2007.
5.
M. E. Ortuzar, R. E. Carmi, J. W. Dixon and L. Moran, "Voltage-source active power filter based on multilevel converter and ultracapacitor DC link", IEEE Trans. Ind. Electron., vol. 53, no. 2, pp. 477-485, Apr. 2006.
6.
L. G. Franquelo, M. M. Prats, R. C. Portillo, J. I. L. Galvan, M. A. Perales, J. M. Carrasco, et al., "Three-dimensional space-vector modulation algorithm for four-leg multilevel converters using ABC coordinates", IEEE Trans. Ind. Electron., vol. 53, no. 2, pp. 458-466, Apr. 2006.
7.
C. Rech and J. R. Pinheiro, "Hybrid multilevel converters: Unified analysis and design considerations", IEEE Trans. Ind. Electron., vol. 54, no. 2, pp. 1092-1104, Apr. 2007.
8.
J. Pou, R. Pindado and D. Boroyevich, "Voltage-balance limits in four-level diode-clamped converters with passive front ends", IEEE Trans. Ind. Electron., vol. 52, no. 1, pp. 190-196, Feb. 2005.
9.
J. Pou, P. Rodriguez, J. Zaragoza, V. Sala, C. Jaen and D. Boroyevich, "Enhancement of carrier-based modulation strategies for multilevel converters", Proc. IEEE PESC, pp. 2534-2539, 2005.
10.
S. Kwak and H. A. Toliyat, "Multilevel converter topology using two types of current-source inverters", IEEE Trans. Ind. Appl., vol. 42, no. 6, pp. 1558-1564, Nov./Dec. 2006.
11.
J. Zaragoza, J. Pou, S. Ceballos, E. Robles, P. Ibaez and F. Guinjoan, "Control structure with fuzzy supervision of PI parameters in a multilevel converter application", Proc. IEEE ISIE Conf., pp. 1271-1276, 2006.
12.
S. S. Fazel, S. Bernet, D. Krug and K. Jalili, "Design and comparison of 4-kV neutral-point-clamped flying-capacitor and series-connected h-bridge multilevel converters", IEEE Trans. Ind. Appl., vol. 43, no. 4, pp. 1032-1040, Jul./Aug. 2007.
13.
A. Nabae, I. Takahashi and H. Akagi, "A new neutral-point-clamped PWM inverter", IEEE Trans. Ind. Appl., vol. IA-17, no. 5, pp. 518-523, Sep./Oct. 1981.
14.
N. Celanovic and D. Boroyevich, "A comprehensive study of neutral-point voltage balancing problem in three-level neutral-point-clamped voltage source PWM inverters", IEEE Trans. Power Electron., vol. 15, no. 2, pp. 242-249, Mar. 2000.
15.
J. Pou, R. Pindado, D. Boroyevich and P. Rodrguez, "Evaluation of the low-frequency neutral-point voltage oscillations in the three-level inverter", IEEE Trans. Ind. Electron., vol. 56, no. 6, pp. 1582-1588, Dec. 2005.
16.
J. Pou, R. Pindado, D. Boroyevich and P. Rodrguez, "Limits of the neutral-point balance in back-to-back-connected three-level converters", IEEE Trans. Power Electron., vol. 19, no. 3, pp. 722-731, May 2004.
17.
S. Busquets-Monge, J. Bordonau, D. Boroyevich and S. Somavilla, "The nearest three virtual space vector PWMA modulation for the comprehensive neutral-point balancing in the three-level NPC inverter", IEEE Power Electron. Lett., vol. 2, no. 1, pp. 11-15, Mar. 2004.
18.
J. Pou, J. Zaragoza, P. Rodrguez, S. Ceballos, V. Sala, R. Burgos, et al., "Fast-processing modulation strategy for the neutral-point-clamped converter with total elimination of the low-frequency voltage oscillations in the neutral point", IEEE Trans. Ind. Electron., vol. 54, no. 4, pp. 2288-2299, Aug. 2007.
19.
C. Newton and M. Sumner, "Neutral point control for multi-level inverters: Theory design and operational limitations", Conf. Rec. IEEE IAS Annu. Meeting, pp. 1336-1343, 1997.
20.
S. Busquets-Monge, J. D. Ortega, J. Bordonau, J. A. Beristin and J. Rocabert, "Closed-loop control design for a three-level three-phase neutral-point-clamped inverter using the optimized nearest-three virtual-space-vector modulation", Proc. IEEE PESC, pp. 1-7, 2006.
21.
J. Pou, D. Boroyevich and R. Pindado, "Effects of imbalances and nonlinear loads on the voltage balance of a neutral-point-clamped inverter", IEEE Trans. Power Electron., vol. 20, no. 1, pp. 123-131, Jan. 2005.
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References

References is not available for this document.