Response of RLC network circuit with steady source via rohit transform

Rohit Gupta, R. Gupta, D. Verma
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Abstract

The electric network circuits are designed by using the elements like resistor R, inductor L, and capacitor Ϲ. There are a number of techniques: exact, approximate, and purely numerical available for analyzing the R L Ϲ network circuits. Since the application of numerical method becomes more complex, computationally intensive, or needs complicated symbolic computations, there is a need to seek the help of integral transform methods for analyzing the RLϹ network circuits. Integral transform methods provide effective ways for solving a variety of problems arising in basic sciences and engineering. In thispaper, a new integral transform Rohit transform is discussed for obtaining the response of a series RLϹ electric network circuit connected to a steady voltage source, and a parallel R L Ϲ electric network circuit connected to a steady current source. The response of a series R L Ϲ network circuit connected to a steady voltage source via the application of Rohit transform will provide an expression for the electric current, and that of a parallel R L Ϲ network circuit connected to a steady current source will provide an expression for the voltage across the parallel RLϹ electric network circuit. The nature of the response of such series (or parallel) network circuits is determined by the values of R, L, and Ϲ of the electric network circuit. The Rohit transform will come out to be a powerful technique for analyzing such series or parallel electric network circuits with steady voltage or current sources.
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稳定源RLC网络电路的罗希特变换响应
电子网络电路是通过使用电阻R、电感L和电容器Ϲ等元件来设计的。有许多技术:精确,近似和纯数值可用于分析rl Ϲ网络电路。由于数值方法的应用变得更加复杂,计算量大,或者需要复杂的符号计算,因此需要寻求积分变换方法的帮助来分析RLϹ网络电路。积分变换方法为解决基础科学和工程中出现的各种问题提供了有效的途径。本文讨论了一种新的积分变换Rohit变换,用于获得串联RLϹ电网电路与稳定电压源连接的响应,以及并联rl Ϲ电网电路与稳定电流源连接的响应。串联rl Ϲ网络电路通过罗希特变换连接到稳定电压源的响应将提供电流的表达式,并联rl Ϲ网络电路连接到稳定电流源的响应将提供横跨并联RLϹ网络电路的电压表达式。这种串联(或并联)网络电路的响应性质是由网络电路的R、L和Ϲ的值决定的。罗希特变换将成为分析具有稳定电压或电流源的串联或并联电网电路的一种强有力的技术。
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