抽气器诺顿等效模型耦合与解耦导纳矩阵方法参数确定

Tecnura Pub Date : 2022-09-25 DOI:10.14483/22487638.18806
Alejandra Martínez Peñaloza, G. Osma-Pinto, G. Ordóñez-Plata
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引用次数: 0

摘要

背景:在低压网络中进行的研究已经探索了线性单相负载(如电机)和非线性负载(如基于电力电子的负载)的建模。然而,感应电动机由于其磁性部分的饱和,在电压和电流之间表现出非线性特性。因此,有必要在频域研究感应电机,建立一个能够回顾其电压-电流相互作用特征非线性的模型。方法:本文介绍了作为无声空气提取器(127 V, 60 Hz, 66 W)的单相感应电动机的频域建模,当以127 V的纯正弦电压馈电时,它呈现出电容性行为(fp = 0.93)和由于三阶分量(7.0%)引起的谐波失真。结果:本文建立了诺顿等效模型的两种方法(耦合和解耦导纳矩阵)的参数,用于估计畸变电流信号和消耗的有功和无功功率值。结果表明,P、Q、THDi和NRMSE指标的比较误差分别小于7%、4%、14%和3%。结论:所估计的单相感应电动机的诺顿等效模型参数可以高精度地计算电流信号。该信号表现出非线性特征和电容行为,因为电容器的永久存在有助于发动机的启动和运行。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Parameter Determination of Coupled and Decoupled Admittance Matrix Methods of the Norton Equivalent Model for an Air Extractor
Context: Studies carried out in low voltage networks have explored the modeling of linear single-phase loads (such as motors) and non-linear ones (such as those based on power electronics). However, induction motors exhibit non-linear characteristics between voltage and current due to the saturation of their magnetic parts. Therefore, it is necessary to study induction motors in the frequency domain with a model that allows reviewing the characteristic nonlinearity of their voltage-current interaction. Methodology: This article presents the frequency domain modeling of a single-phase induction motor used as a silent air extractor (127 V, 60 Hz, 66 W), which presents a capacitive behavior (fp = 0,93 in leading) and harmonic distortion due to a third-order component (7,0%) when fed with a pure sinusoidal voltage of 127 V. Results: This work establishes the parameters of two approaches to the Norton equivalent model (coupled and decoupled admittance matrix) which are used to estimate the distorted current signal and the values ​​of consumed active and non-active power. The results show comparisons errors of P, Q, THDi, and NRMSE indices of less than 7, 4, 14, and 3%, respectively. Conclusions: The parameters of the Norton equivalent model estimated for the single-phase induction motor allow calculating the current signal with a high degree of precision. This signal exhibits nonlinear characteristics and a capacitive behavior due to the permanent presence of a capacitor aiding the start and operation of the engine.
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