基于优化驻留角的开关磁阻电机直接瞬时转矩控制

Swasti Chakrabarty, R. Kanagaraj
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引用次数: 0

摘要

开关磁阻电机(SRM)作为一种可靠的电机在许多工业应用中崭露头角。在电动汽车、混合动力汽车、涡轮增压器、涡轮复合、家用和航空航天应用中,SRM的应用越来越广泛。由于SRM具有高度非线性的特性,其控制机制比较复杂。由于突出的结构,气隙中存在不均匀性,导致SRM存在转矩脉动和噪声振动等问题。转矩脉动包括低速运行时的电流滞后和相间换相。而在高速运行时,单脉冲电流分布会降低转矩的质量。在间接转矩控制中,将电流作为控制变量间接控制转矩,增加了计算量。直接利用转矩作为控制变量的直接转矩控制技术正受到研究人员的关注。本文提出了一种考虑驻留角优化及其对转矩脉动影响的直接瞬时转矩控制方法。将所提出的DITC模型与传统的电流控制进行了进一步的比较。对一个5kw、1500rpm、8/6、4相SRM进行了建模,并利用MATLAB模型进行了电流控制;在低速运行时进行迟滞控制,在高速运行时进行单脉冲控制。为了实现最小的转矩脉动,利用ANSYS MAXWELL对导通角进行了优化。然后利用优化的导通角实现了DITC方法。最后,对稳态转矩脉动和电流波形进行了比较。与传统控制相比,所提出的DITC模型具有显著的转矩脉动减小效果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Direct Instantaneous Torque Control for Switched Reluctance Motor through Optimized Dwell Angle
Switched Reluctance Motor (SRM) is emerging as a reliable motor in many industrial applications. There has been an emerging adoption of SRM in electric vehicles, hybrid electric vehicles, turbochargers, turbo-compounding, household, and aerospace applications. The control mechanism for SRM is complicated because of its highly non-linear characteristics. Because of the salient structure, there is a non-uniformity in the air gap, which lead to issues like torque ripple and noise and vibration in SRM. The torque ripple comprises the current hysteresis and commutation between phases while operating at low speeds. Whereas during high-speed operation, the single pulse current profile degrades the quality of the torque. In indirect torque control, the torque is indirectly controlled by considering current as a control variable, thereby increasing the computational burden. Direct torque control techniques, which directly use torque as a control variable, are attracting attention from researchers. This work presents a novel Direct Instantaneous Torque Control (DITC) method that considers the dwell angle optimization and its effect on the torque ripple. Further comparison of the proposed DITC model with the conventional current control is performed. A 5 kW, 1500 rpm, 8/6, 4-phase SRM is modelled, and the current control is carried out using the MATLAB model; hysteresis control is performed at low operating speed and single pulse control at high speeds. To achieve the minimized torque ripple, the conduction angle is optimized using ANSYS MAXWELL. The DITC method is then implemented using the optimized conduction angles. Finally, the comparisons of steady-state torque ripple and the current waveform are presented. The proposed DITC model performs dramatic torque ripple reduction compared to conventional control.
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