摘要(英) |
This thesis mainly used in the development of an electric vehicle on the drive system, and the motor is used as an interior permanent magnet synchronous motor drive, mainly due to its high power density, high efficiency, high torque inertia and a fairly broad speed operating range. Compared to the two electric vehicles currently on the market are using the six-step square wave control wheel stock motor, because the permanent magnet motor with sinusoidal drive, so the torque output of the smoothness of shares than the wheel motors to well, and this feature can also use an internal combustion engine-driven way comparable locomotives, users do not need to adapt to the electric car ride control methods. In order to meet the demand for electric cars high speed and cost considerations, the CVT is not in use to improve the speed of traffic conditions, the interior permanent magnet synchronous motor is required to operate in the field weakening region, to meet high requirements. In this paper, using the MTPA weakening control strategy for the motor to build its weak magnetic table, and then to implement a microcontroller SH7137 make this drive to verify that the full segment can operate stably. |
參考文獻 |
[1] Jang-Mok Kim, and Seung-Ki Sul, “Speed Control of Interior Permanent Magnet Synchronous Motor Drive for the Flux Weakening Operation,” IEEE Transactions on Industry Applications, vol. 33, no. 1, January/February 1997.
[2] M. Nasir Uddin, and M. Azizur Rahman, “High Speed Control of IPMSM Drives Using Improved Fuzzy Logic Algorithms,” IEEE Transactions on Industry Applications, vol. 54, no. 1, February 2007.
[3] Gianmario Pellegrino, Eric Armando, and Paolo Guglielmi, “Direct Flux Field-Oriented Control of IPM Drives With Variable DC Link in the Field-Weakening Region,” IEEE Transactions on Industry Applications, vol. 45, no. 5, September/October 2009.
[4] Alfio Consoli, Giuseppe Scarcella, Giacomo Scelba, and Antonio Testa, “Steady-State and Transient Operation of IPMSMs Under Maximum Torque per Ampere Control,” IEEE Transactions on Industry Applications, vol. 46, no. 1, January/February 2010.
[5] Anno Yoo, and Seung-Ki Sul, “Design of Flux Observer Robust to Interior Permanent-Magnet Synchronous Motor Flux Variation,” IEEE Transactions on Industry Applications, vol. 45, no. 5, September/October 2009.
[6] Christos Mademlis and Vassilios G. Agelidis, “On Considering Magnetic Saturation with Maximum Torque to Current Control in Interior Permanent Magnet Synchronous Motor Drives,” IEEE Transactions on Energy Conversion, vol. 16, no. 3, September 2001.
[7] Yasser Abdel Rady Ibrahim Mohamed, and Tsing K. Lee, “Adaptive Self Tuning MTPA Vector Controller for IPMSM Drive System,” IEEE Transactions on Energy Conversion, vol. 21, no. 3, September 2006.
[8] Bing Cheng, and Tod R. Tesch, ”Torque Feedforward Control Technique for Permanent-Magnet Synchronous Motors,” IEEE Transactions on Industry Electronics, vol. 57, no. 3, March 2010.
[9] Gabriel Gallegos-Lopez, Fani S. Gunawan, And James E. Walters, “Optimum Torque Control of Permanent-Magnet AC Machines in the Field-Weakened Region,” IEEE Transactions on Industry Electronics, vol. 41, no. 4, July/August 2005.
[10] Shinn Ming Sue, and Ching Tsai Pan, IEEE, “Voltage Constraint Tracking-Based Field-Weakening Control of IPM Synchronous Motor Drives,” IEEE Transactions on Industry Electronics, vol. 55, no. 1, January 2008.
[11] 巫昌圜,“內藏式永磁同步馬達弱磁控制於電動載具速度提升之探討與實現”,國立成功大學電機工程學系碩士論文,93年6月。
[12] 劉昌煥,“交流電機控制-向量控制與直接轉矩控制原理”,東華書局,2005 第三版。
[13] 楊勝明,”永磁同步馬達驅動技術之理論與實務”,財團法人自強工業科學基金會。
[14] Austriamicrosystems AG, “Datasheet of AS5040,” Austriamicrosystems AG, 2009.
[15] Renesas Electronics, “SH7137 Group Hardware Manual,” Renesas Electronics, 2010. |