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Pre-and post-disturbance transient stability assessment using intelligent systems via quick estimating of the critical clearing time

机译:使用智能系统快速估计临界清除时间,进行扰动前和扰动后的瞬态稳定性评估

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摘要

The real time transient stability assessment is the important steps of the dynamic security evaluation of power systems. To do this, intelligent systems (ISs) such as neural networks as an effective method to accurately and quickly estimate the critical clearing time (CCT) has been widely used. But, choosing the proper inputs for these systems remains a major challenge for researchers, still. Variables related to energy functions such as minimum kinetic energy, the slope of the variation of the minimum kinetic energy and maximum potential energy contain useful information in estimating CCT. Accordingly, in this paper, these variables are used as the IS inputs. However, the time-domain simulation of the power system response to obtain these inputs is time consuming. To be able to use the energy function-based inputs for real time stability assessment, in addition to the main IS used to estimate CCT, another ISs are used. By those ISs, a very limited period of system response is simulated to obtain proper inputs of the main IS. The method is simulated on the 10-generator New England test system. Simulation results show, the CCT can be found by simulation just 0.05 s of the considered power grid.
机译:实时暂态稳定性评估是电力系统动态安全评估的重要步骤。为此,神经网络等智能系统(IS)作为准确、快速估计临界清除时间(CCT)的有效方法已被广泛使用。但是,为这些系统选择适当的输入仍然是研究人员面临的一个重大挑战。与能量函数相关的变量,如最小动能、最小动能变化的斜率和最大势能,在估计 CCT 时提供了有用的信息。因此,在本文中,这些变量被用作IS输入。然而,为获得这些输入而对电力系统响应进行时域仿真非常耗时。为了能够使用基于能量函数的输入进行实时稳定性评估,除了用于估计 CCT 的主要 IS 外,还使用了其他 IS。通过这些 IS,模拟非常有限的系统响应周期,以获得主 IS 的正确输入。该方法在10台发电机的新英格兰测试系统上进行了仿真。仿真结果表明,通过仿真可以发现所考虑电网的CCT仅为0.05 s。

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