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一种用于时变电感系统的非线性电路分析技术。

A Nonlinear Circuit Analysis Technique for Time-Variant Inductor Systems.

作者信息

Wang Xinning, Li Chong, Song Dalei, Dean Robert

机构信息

Department Computer Science & Software Engineering, Auburn University, Auburn, AL 36849, USA.

Department Automation & Measurement, Ocean University of China, Qingdao 266100, China.

出版信息

Sensors (Basel). 2019 May 20;19(10):2321. doi: 10.3390/s19102321.

Abstract

Time-variant inductors exist in many industrial applications, including sensors and actuators. In some applications, this characteristic can be deleterious, for example, resulting in inductive loss through eddy currents in motors designed for high efficiency operation. Therefore, it is important to investigate the electrical dynamics of systems with time-variant inductors. However, circuit analysis with time-variant inductors is nonlinear, resulting in difficulties in obtaining a closed form solution. Typical numerical algorithms used to solve the nonlinear differential equations are time consuming and require powerful processors. This investigation proposes a nonlinear method to analyze a system model consisting of the time-variant inductor with a constraint that the circuit is powered by DC sources and the derivative of the inductor is known. In this method, the Norton equivalent circuit with the time-variant inductor is realized first. Then, an iterative solution using a small signal theorem is employed to obtain an approximate closed form solution. As a case study, a variable inductor, with a time-variant part stimulated by a sinusoidal mechanical excitation, is analyzed using this approach. Compared to conventional nonlinear differential equation solvers, this proposed solution shows both improved computation efficiency and numerical robustness. The results demonstrate that the proposed analysis method can achieve high accuracy.

摘要

时变电感存在于许多工业应用中,包括传感器和执行器。在某些应用中,这一特性可能是有害的,例如,在设计用于高效运行的电机中会因涡流导致电感损耗。因此,研究具有时变电感的系统的电动力学非常重要。然而,用时变电感进行电路分析是非线性的,导致难以获得闭式解。用于求解非线性微分方程的典型数值算法耗时且需要强大的处理器。本研究提出一种非线性方法来分析由时变电感组成的系统模型,该模型的约束条件是电路由直流电源供电且电感的导数已知。在该方法中,首先实现具有时变电感的诺顿等效电路。然后,采用基于小信号定理的迭代解法来获得近似闭式解。作为一个案例研究,使用这种方法分析了一个可变电感,其随时间变化的部分由正弦机械激励驱动。与传统的非线性微分方程求解器相比,该方法在计算效率和数值鲁棒性方面都有提高。结果表明,所提出的分析方法能够实现高精度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f9a8/6567026/8df5a112525d/sensors-19-02321-g001.jpg

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