The Phasor Diagram of a Superconducting Synchronous Electrical Machine

IF 2.1 Q2 ENGINEERING, MULTIDISCIPLINARY Inventions Pub Date : 2023-05-08 DOI:10.3390/inventions8030068
R. Ilyasov
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Abstract

This paper describes a universal method proposed by the author for the evaluative analytical calculation of the main parameters of synchronous electrical machines, including superconducting ones. Traditional methods for analytical calculation of parameters to build a phasor diagram of electrical machines require a calculation of all dimensions of the active zone, tooth-slot zone and frontal parts of armature windings. All sizes and local states of magnetic circuit saturation are necessary for the calculation of magnetic conductivities. Traditional analytical methods use, among other things, empirical formulas and non-physical coefficients and allow one to calculate only standard machines with classic tooth-slot zones and armature winding types. As a result of drawing a phasor diagram using traditional methods, the angle between the electromotive force and voltage is calculated, which is the machine’s internal parameter and has no major significance for users. The application of modern computer programs for simulation requires a preliminary analytical calculation in order to obtain all dimensions of the three-dimensional model. FEM simulation programs are expensive, require expensive high-performance computers and highly paid skilled personnel. Fast analytical techniques are also required to assess the correctness of the obtained automatic computer simulation results. The proposed analytical method makes it possible to quickly obtain all the main parameters of a newly designed machine (including superconducting ones and those of non-traditional design) without a detailed calculation of the dimensions of the tooth-slot zone and armature end-windings. The characteristic values of load angles are set according to the results of simple calculations, and the desired values, obtained via plotting, represent the inductive resistances of armature winding and inductive voltage drop across it. Results of practical significance, calculated from the voltage diagram, are as follows: the inductor’s magnetomotive force necessary to maintain the nominal load voltage value, regardless of the magnitude (including double overload) and type of the connected load, or the main dimensions of the active zone.
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超导同步电机的相量图
本文介绍了作者提出的同步电机(包括超导电机)主要参数的评价性分析计算的通用方法。建立电机相量图的传统参数解析计算方法需要计算电枢绕组主动区、齿槽区和正面部分的所有尺寸。磁路饱和的所有尺寸和局部状态都是计算磁导率所必需的。传统的分析方法使用经验公式和非物理系数,只允许计算具有经典齿槽区和电枢绕组类型的标准机器。由于采用传统方法绘制相量图,计算的是电动势与电压之间的夹角,这是机器的内部参数,对用户没有太大意义。应用现代计算机程序进行模拟,需要进行初步的分析计算,以获得三维模型的所有维度。有限元仿真程序昂贵,需要昂贵的高性能计算机和高薪的技术人员。还需要快速分析技术来评估所获得的自动计算机模拟结果的正确性。所提出的分析方法可以在不详细计算齿槽区和电枢端部绕组尺寸的情况下,快速获得新设计机器(包括超导和非传统设计机器)的所有主要参数。根据简单的计算结果设定负载角的特征值,并通过绘图得到所需值,表示电枢绕组的感应电阻及其上的感应压降。从电压图中计算得出的具有实际意义的结果如下:无论所连接负载的大小(包括双过载)和类型,或主动区的主要尺寸如何,都需要电感器的磁动势来维持标称负载电压值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Inventions
Inventions Engineering-Engineering (all)
CiteScore
4.80
自引率
11.80%
发文量
91
审稿时长
12 weeks
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