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Reduced switching loss based DC-bus voltage balancing algorithm for three-level neutral point clamped (NPC) inverter for electric vehicle applications

机译:基于降低开关损耗的直流母线电压平衡算法,用于电动汽车三电平中点钳位(NPC)逆变器

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A performance comparison study for two proposed DC-bus voltage balancing algorithms is carried out, with a three-level NPC based permanent magnet synchronous machine (PMSM) drive for the electric vehicle propulsion application. Both the control algorithms are able to keep the two DC-link capacitor voltage variation within a tolerance level with wider range of speed and torque variation of the load drive cycle. However, with the second proposed control strategy inverter total switching losses can be reduced considerably, compared to the first proposed strategy. Both the losses are then compared with a conventional two-level inverter, with a wider variation in switching frequency. Results show a significant reduction in total inverter losses at higher switching frequencies with three-level inverter. Both the two- and three-level inverter control strategies are developed using space-vector pulse width modulation (SV-PWM) scheme. The switching and conduction loss distribution in different switches and diodes for both the two- and three-level inverters are also studied. Finally the total voltage harmonic distortion (%THD), percentage torque ripple (%T), and capacitor voltage fluctuation (%V) are also compared. Switching losses are calculated in a PLECS environment using data sheet parameters from Infineon and control logics are developed in MATLAB/Simulink. For this study a 110 kW surface-PMSM is considered. A scaled down prototype is built in laboratory for both the inverters and tested with a 6.0 kW surface-PMSM. Both the simulation and experimental results show satisfactory performance of the proposed system.
机译:针对电动汽车推进应用的三级基于NPC的永磁同步电机(PMSM)驱动器,对两种建议的DC总线电压平衡算法进行了性能比较研究。两种控制算法都能够将两个直流母线电容器的电压变化保持在容限范围内,并且负载驱动周期的速度和转矩变化范围更广。但是,与第一个建议的策略相比,使用第二个建议的控制策略,逆变器的总开关损耗可以大大降低。然后将这两种损耗与传统的两电平逆变器进行比较,后者的开关频率变化更大。结果表明,三电平逆变器在较高开关频率下的总逆变器损耗显着降低。两级和三级逆变器控制策略都是使用空间矢量脉冲宽度调制(SV-PWM)方案开发的。还研究了两级和三级逆变器在不同开关和二极管中的开关损耗和传导损耗。最后,还比较了总电压谐波失真(%THD),转矩波动百分比(%T)和电容器电压波动(%V)。在PLECS环境中,使用英飞凌的数据表参数计算开关损耗,并在MATLAB / Simulink中开发了控制逻辑。对于本研究,考虑使用110 kW表面PMSM。在实验室中为这两个逆变器构建了按比例缩小的原型,并通过6.0 kW表面PMSM进行了测试。仿真和实验结果均表明该系统具有令人满意的性能。

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