Pseudorandom high-frequency injection synchronous reluctance motor sensorless control with parameter variation consideration

IF 1.5 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Jianyuan Wang, Hanghui Jing, Yanping Zhang, Zhonggang Yin, Yupeng Guo
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引用次数: 0

Abstract

The sensorless control of synchronous reluctance motor (SynRM) in the zero and low-speed domain using the traditional high-frequency injection method has the problems of audible noise caused by the high-frequency injection and high-frequency loss caused by the change of working conditions, which limits the practical application of SynRM in the industrial field. To solve the problem of high-frequency noise and loss, a pseudo-random high-frequency injection method considering parameter variation is proposed in this paper. Firstly, the signal injection form was adjusted to expand the power spectral density of the high-frequency current, and the current energy spike was suppressed to reduce high-frequency noise. Secondly, the current demodulation was combined with the flux map model to complete the injection voltage amplitude adjustment, so that the response current was kept constant under multiple operating conditions to reduce the high-frequency loss. At the same time, the flux map model is applied to the observer to reduce the rotor position estimation error caused by the cross-coupling effect. Under the condition of satisfying the dynamic and steady performance requirements of sensorless control, the high-frequency loss and sharp noise caused by the high-frequency injection method are effectively suppressed. Finally, experiments were carried out on a 1.5 kW SynRM drive platform to verify the feasibility and effectiveness of the sensorless control scheme in this paper.

Abstract Image

考虑参数变化的伪随机高频注入同步磁阻电机无传感器控制
采用传统高频注入方式对同步磁阻电机(SynRM)在零低速域的无传感器控制存在高频注入引起的可听噪声和工作条件变化引起的高频损耗等问题,限制了SynRM在工业领域的实际应用。为了解决高频噪声和损耗问题,提出了一种考虑参数变化的伪随机高频注入方法。首先,调整信号注入形式,扩大高频电流的功率谱密度,抑制电流能量尖峰,降低高频噪声;其次,将电流解调与磁通图模型相结合,完成注入电压幅度调节,使响应电流在多种工况下保持恒定,降低高频损耗;同时,将磁链图模型应用于观测器,减小了交叉耦合效应引起的转子位置估计误差。在满足无传感器控制动态稳定性能要求的条件下,有效地抑制了高频注入方式带来的高频损耗和尖锐噪声。最后,在1.5 kW的SynRM驱动平台上进行了实验,验证了本文无传感器控制方案的可行性和有效性。
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来源期刊
Iet Electric Power Applications
Iet Electric Power Applications 工程技术-工程:电子与电气
CiteScore
4.80
自引率
5.90%
发文量
104
审稿时长
3 months
期刊介绍: IET Electric Power Applications publishes papers of a high technical standard with a suitable balance of practice and theory. The scope covers a wide range of applications and apparatus in the power field. In addition to papers focussing on the design and development of electrical equipment, papers relying on analysis are also sought, provided that the arguments are conveyed succinctly and the conclusions are clear. The scope of the journal includes the following: The design and analysis of motors and generators of all sizes Rotating electrical machines Linear machines Actuators Power transformers Railway traction machines and drives Variable speed drives Machines and drives for electrically powered vehicles Industrial and non-industrial applications and processes Current Special Issue. Call for papers: Progress in Electric Machines, Power Converters and their Control for Wave Energy Generation - https://digital-library.theiet.org/files/IET_EPA_CFP_PEMPCCWEG.pdf
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