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Analytical methods of solving discrete nonlinear problems in electrical engineering

机译:解决电气工程中离散非线性问题的解析方法

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More often than not, the nonlinear problems of electrical engineering arise from discrete physical systems and are usually reducible mathematically to the solution of systems of non-linear total differential equations or to systems of nonlinear integral equations. Six independent methods of solving discrete non-linear problems are given in this paper. Each method is illustrated by means of an electrical engineering problem. The illustrative examples employed pertain to a-c and d-c non-linear circuits, reluctance-induction motors, hunting of and dynamic braking of synchronous machines. References to additional methods are given in the bibliography. The 88 given references listed represent approximately ten per cent of the field, but many of the entries contain a bibliography on their respective fields. The accelerated growth of research in the field of non-linearity is due to different causes. The general advancement of science requires increasingly more precise expressions for the laws of science. Accurate nonlinear equations frequently depart from the linearized or postulated linear equations which have been previously used for approximate results. The quest for perfection and generalization and the love of difficult investigations by professional mathematicians play a large part in this growth. A recent incentive is the increasingly exacting requirements of modern manufacturing. These requirements are born of the competitive necessity of producing ever improved machines and equipment in the most economical manner.
机译:电气工程的非线性问题通常是由离散的物理系统引起的,通常可以在数学上简化为非线性总微分方程组或非线性积分方程组的解。给出了解决离散非线性问题的六种独立方法。每种方法都通过电气工程问题进行说明。所采用的说明性示例涉及交流和交流非线性电路,磁阻感应电动机,同步电机的振荡和动态制动。参考书目中提到了其他方法。列出的88种给定参考文献约占该领域的百分之十,但许多条目在其各自领域均包含书目。非线性领域研究的加速增长是由于不同的原因。科学的普遍进步要求对科学定律的表达越来越精确。精确的非线性方程经常偏离先前已用于近似结果的线性化或假定线性方程。对完美性和概括性的追求以及专业数学家对困难的研究的热爱在这种增长中起着很大的作用。最近的动机是对现代制造业的要求越来越严格。这些要求源于以最经济的方式生产不断改进的机器和设备的竞争必要性。

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