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Minimum current magnitude control of surface PM synchronous machines during constant power operation

机译:恒定功率运行期间表面永磁同步电机的最小电流幅值控制

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The dual-mode inverter control (DMIC) was initially developed to provide broad constant power speed range (CPSR) operation for a surface mounted permanent magnet machine (PMSM) having low inductance. The DMIC interfaces the output of a common voltage source inverter (VSI) to the PMSM through an ac voltage controller. The ac voltage controller consists of three pairs of anti-parallel silicon controlled rectifiers (SCRs), one anti-parallel SCR pair in series with each winding of the motor. In a recent paper a fundamental frequency model of DMIC type controllers was developed using an equivalent reactance interpretation of the in-line SCRs. In this work, the same fundamental frequency model is used to show that the DMIC may have considerable loss reduction benefits even if the motor winding inductance is large. Specifically, it is shown that the SCRs enable maximum watts per rms amp control during constant power operation. The rms motor current can be minimized for any given power level and sufficiently large speed with DMIC. A fixed winding inductance and a conventional inverter can only be optimized for a single speed and power level. The performance predicted by the fundamental frequency model of the DMIC is compared to that of a conventional PMSM drive where the motor has sufficiently large inductance to achieve an infinite CPSR. It is shown that the SCRs can reduce motor current by a factor of 0.7071 at high speed and rated power. This would reduce the motor copper losses by 50% and reduce the conduction losses in the VSI by 29.3%. At less than rated power the percentage of motor/VSI loss reduction enabled by the SCRs is seen to be even larger.
机译:最初开发双模式逆变器控制(DMIC)是为了为具有低电感的表面安装永磁电机(PMSM)提供宽广的恒定功率速度范围(CPSR)操作。 DMIC通过交流电压控制器将公共电压源逆变器(VSI)的输出连接到PMSM。交流电压控制器由三对反并联可控硅整流器(SCR)组成,一对反并联SCR对与电动机的每个绕组串联。在最近的一篇论文中,使用在线SCR的等效电抗解释,开发了DMIC型控制器的基本频率模型。在这项工作中,使用相同的基本频率模型来表明即使电动机绕组电感很大,DMIC仍可能具有可观的降低损耗的好处。具体而言,显示出在恒定功率运行期间,SCR能够实现最大rms / rms amp控制。对于D给定的任何功率水平和足够大的速度,均方根电动机电流可以最小化。固定绕组电感和常规逆变器只能针对单个速度和功率水平进行优化。将DMIC基本频率模型预测的性能与常规PMSM驱动器的性能进行比较,在传统PMSM驱动器中,电机具有足够大的电感以实现无限的CPSR。结果表明,SCR可以在高速和额定功率下将电动机电流降低0.7071倍。这样可以将电动机的铜损耗降低50%,并将VSI中的传导损耗降低29.3%。在低于额定功率的情况下,可控硅使电机/ VSI损耗降低的百分比看起来更大。

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