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Modeling of power system dynamic devices incorporated in Dynamic Computation for Power Systems (DCPS) for transient stability analysis

机译:包含在电力系统动态计算(DCPS)中的电力系统动态设备建模,用于瞬态稳定性分析

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An electrical power system consists of many individual dynamic devices connected together to form a large and complex dynamic system. To analyze the behavior of such devices, its physical model needs to be transformed into mathematical model before it can be solved on a computer. In electric utility practices, the aspect of modeling and computational methods for power system dynamic devices such as generator, exciter and governor has not been given much attention by many engineers because such tasks could be solved using commercial software packages. The two most important requirements of such software packages are; i) the correct input data and assumptions; and ii) the output results that can be analyzed and understood. Hence, there was a lack of understanding of the modeling and computational methods and also the limitations of the individual dynamic devices. This paper presents the fundamental modeling and computation methods related to power system dynamics and performing the power system transient stability analysis by using Dynamic Computation for Power Systems (DCPS) software package. This C/C++ based software has been developed for research purposes and can be used to simulate load flow and transient stability analysis. The Improved Euler Method has been employed in this software to solve the mathematical model of power system dynamic devices namely synchronous generator, turbine-governor and exciter. The results showed that this software has been successfully developed to perform the transient stability analysis. The effect of varying load demand on the critical clearing time, tCCT has been tested on heavily loaded IEEE 9-bus test system when three phase fault is applied at bus 5. The simulation results showed that the critical clearing time decreases linearly with increasing load demand.
机译:电力系统由许多单独的动态设备组成,这些设备连接在一起以形成一个大型而复杂的动态系统。为了分析此类设备的行为,需要先将其物理模型转换为数学模型,然后才能在计算机上对其进行求解。在电力公司的实践中,许多工程师并未对电力系统动态设备(例如发电机,励磁机和调速器)的建模和计算方法的方面给予太多关注,因为可以使用商业软件包解决此类任务。这种软件包的两个最重要的要求是: i)正确的输入数据和假设; ii)可以分析和理解的输出结果。因此,缺乏对建模和计算方法以及单个动态设备的局限性的理解。本文介绍了与电力系统动力学相关的基本建模和计算方法,并通过使用电力系统动态计算(DCPS)软件包来进行电力系统暂态稳定性分析。此基于C / C ++的软件已出于研究目的而开发,可用于模拟潮流和瞬态稳定性分析。该软件采用了改进的欧拉方法来求解电力系统动态装置的数学模型,即同步发电机,汽轮机调速器和励磁机。结果表明,该软件已经成功开发,可以进行暂态稳定性分析。当在总线5上施加三相故障时,已在重载IEEE 9总线测试系统上测试了变化的负载需求对临界清除时间t CCT 的影响。仿真结果表明,临界清除时间随着负载需求的增加而线性减少。

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