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Motor Speed Control With Convex Optimization-Based Position Estimation in the Current Loop
DOI:10.1109/TPEL.2021.3068309.png)
摘要
En 中文
This article presents a sensorless machine drive scheme, combining the motion model predictive control (MPC) in the speed loop and the position estimation in the current loop. The current-loop-based position estimation algorithm is to estimate the present rotor position with the phase current information of the previous samples. These methods cannot perform perfectly in the low speed when a heavy load suddenly occurs, as the aggressive motion disturbance can impact the convergence of the low-speed position estimation, or even make divergence and estimation failure. This issue is especially terrible for the surface permanent magnet synchronous machines (SPMSMs), as the magnetic saliency is weak at heavy loads. The target of this article is to solve this issue with respect to the servo system, where the machines need to frequently start and stop with heavy loads, and hence the above risk must be considered. The convex optimization is applied in the position estimation, and the optimization cost value is extended to adjust the injection amplitude and the reference trajectory of the MPC control. With this strategy, the sensorless control can operate with a high stability and accuracy. The scheme is validated in an SPMSM test bench.
Keyword:
Estimation
Rotors
Mathematical model
Servomotors
Tracking
Photonic crystals
Magnetic materials
Convex optimization
current loop
model predictive control (MPC)
sensorless motor control
surface permanent magnet synchronous machine (SPMSM)
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期刊
IF:
6.5
论文数:
1.7W
被引数:
8.3W
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引用论文
Pseudo-Random High-Frequency Square-Wave Voltage Injection Based Sensorless Control of IPMSM Drives for Audible Noise Reduction基于伪随机高频方波电压注入的IPMSM驱动器无传感器控制,用于降低可听噪声
Unified Wide-Speed Sensorless Scheme Using Nonlinear Optimization for IPMSM Drives基于非线性优化的IPMSM驱动器统一宽速度无传感器方案

