參考文獻 |
[ 1 ] Jaldanki Sreenivasa Siva Prasad, Gopalaratnam Narayanan, “Minimum switching loss pulse width modulation for reduced power conversion loss in reactive power compensators”, IET Electron. Power Appl., Vol. 7, No. 3, pp.545-551, March 2014.
[ 2 ] Zhao, D., Hari, V.S.S.P.K., Narayanan, G., Ayyanar, R, “Space-vector-based hybrid pulsewidth modulation techniques for reduced harmonic distortion and switching loss”, IEEE Trans. Power Electron., Vol. 25, No. 3, pp. 760–774, March 2010.
[ 3 ] Trzynadlowski, A.M., Legowski, S., “Minimum-loss vector PWM strategy for three-phase inverters”, IEEE Trans. Power Electron., Vol. 9, No. 1, pp. 26–34, January 1994.
[ 4 ] Nguyen, N.V., Nguyen, B.X., Lee, H.H., “An optimized discontinuous PWM method to minimize switching loss for multilevel inverters”, IEEE Trans. Ind. Electron., Vol. 58, No. 9, pp. 3958–3966, September 2011.
[ 5 ] Yunxiang Wu., Shafi, M.A., Knight, A.M., McMohan, R.A., “Comparison of the effects of continuous and discontinuous PWM schemes on power losses of voltage-sourced inverters for induction motor drives”, IEEE Trans. Power Electron., Vol. 26, No. 1, pp. 182–191, January 2011.
[ 6 ] Zhao, D., Narayanan, G., Ayyanar, R., “Switching loss characteristics of sequences involving active state division in space vector based PWM”. Proc. IEEE Applied Power Electronics Conf. (APEC)., Vol. 1, pp. 479–485, February 2004.
[ 7 ] Narayanan, G., Krishnamurthy, H.K., Zhao, D., Ayyanar, R., “Advanced bus-clamping PWM techniques based on space vector approach”, IEEE Trans. Power Electron., Vol. 21, No. 4, pp. 974–984, July 2006.
[ 8 ] Holmes, D.G., Lipo, T.A., “Pulse width modulation for power converters: principles and practice”, Wiley-IEEE Press., Edi. 1, pp. 57-94, 2003.
[ 9 ] Bhavsar, T., Narayanan, G., “Harmonic analysis of advanced bus-clamping PWM techniques”, IEEE Trans. Power Electron., Vol. 24, No. 10, pp. 2347–2352, October 2009.
[ 10 ] Hari, V.S.S., Narayanan, G., “Space vector based hybrid PWM technique to reduce line current distortion in induction motor drives”, IET Power Electron., Vol. 5, No. 8, pp. 1463–1471, September 2012.
[ 11] Basu, K., Siva Prasad, J.S., Narayanan, G., Krishnamurthy, H.K., Ayyanar, R., “Reduction of torque ripple in induction motor drives using an advanced hybrid PWM technique”, IEEE Trans. Ind. Electron., Vol. 57, No. 6, pp. 2085–2091, June 2010.
[ 12] Houldsworth, John A., Grant, Duncan A., “The use of harmonic distortion to increase the output voltage of a three-phase PWM inverter”, IEEE Trans. Ind. Appl., Vol. IA-20, No. 5, pp. 1224–1228, September 1984.
[ 13 ] van der Broeck, H.W., Skudelny, H.-C., “Analytical analysis of the harmonic effects of a PWM ac drive”, IEEE Trans. Power Electron., Vol. 3, No. 2, pp. 216–223, Aprill 1988.
[ 14 ] van der Broeck, H.W., “Analysis of the harmonics in voltage fed inverter drives caused by PWMschemes with discontinuous switching operation”, in Proc. EPE, pp. 261–266, September 1991.
[ 15 ] Fukuda S., Suzuki K., “Harmonic evaluation of two-level carrier-based PWM methods,” in Proc. EPE, pp. 331– 336, September 1997.
[ 16 ] Narayanan G., Ranganathan V. T., “Analytical evaluation of harmonic distortion in PWMAC drives using the notion of stator flux ripple”, IEEE Trans. Power Electron., Vol. 20, No. 2, pp. 466–474, March 2005.
[ 17 ] Wells J. R., Geng X., Chapman P. L., Krein P. T., Nee B. M., “Modulation-based harmonic elimination”, IEEE Trans. Power Electron., Vol. 22, No. 1, pp. 336–340, January 2007.
[ 18 ] Lopes L. A. C., Naguib M. F., “Space vector modulation for low switching frequency current source inverters with reduced low-order noncharacteristic harmonics”, IEEE Trans. Power Electron., Vol. 24, No. 4, pp. 903–910, April 2009.
[ 19 ] Mehrizi-Sani A., Filizadeh S., “An optimized space vector modulation sequence for improved harmonic performance”, IEEE Trans. Ind. Electron., Vol. 56, No. 8, pp. 2894–2903, August 2009.
[ 20 ] 李銘恆,「無刷直流馬達具啟動調整策略之無感測驅動器研製」,國立中央大電機工程學系,碩士論文,民國101年6月。
[ 21 ] Fei Yang, Chenguang Jiang, Taylor A., Hua Bai, “Design of a High-Efficiency Minimum-Torque-Ripple 12-V/1-kW Three-Phase BLDC Motor Drive System for Diesel Engine Emission Reductions”, IEEE Trans. Vehicular techology., Vol. 48, No. 6, pp. 3107–3115, November 2012.
[ 22 ] 詹佳晉,「結合模糊控制並以反電動勢為基礎之無感測永磁同步馬達驅動系統」,國立中央大學電機工程學系,碩士論文,民國102年6月。
[ 23 ] Stirban, A., Boldea I., “Motion-Sensorless Control of BLDC-PM Motor With Offline FEM-Information-Assisted Position and Speed Observer”, IEEE Trans. Industry Applications., Vol. 63, No. 7, pp. 1950–1958, September 2014.
[ 24 ] dsPIC30F5015/5016 Datasheet, Microchip, 2007
[ 25 ] 劉剛編著,「永磁無刷直流電機控制技術與應用」,機械工業出版社,民國97年。
|