首页> 外文会议>2002 ASME International Mechanical Engineering Congress and Exposition , Nov 17-22, 2002, New Orleans, Louisiana >DEVELOPMENT OF AN INTELLIGENT AUTOMATIC GENERATION CONTROL SYSTEM FOR ELECTRICAL POWER PLANTS
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DEVELOPMENT OF AN INTELLIGENT AUTOMATIC GENERATION CONTROL SYSTEM FOR ELECTRICAL POWER PLANTS

机译:电厂智能自动发电控制系统的开发

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The United States electric grid is a complex structure that requires high precision control of frequency and tieline power flows among different generation areas. Highly varying loads introduce a major challenge for the present automatic generation control systems. Arc furnaces, rolling mills and other large motors can create large demands on the system which result in an unsatisfactory area control error (ACE). Recent studies have shown that very-short term load prediction can be incorporated into control schemes which are then able to compensate for the highly varying demand. Using a neural network prediction of the area load a new fuzzy logic controller has been developed that adjusts the set point of the area generation to attempt to match the upcoming changes on the system. Performance of the neural-fuzzy controller in a two-area tie-line model with actual load data from a collaborating utility is demonstrated and compared with the present AGC system through simulations.
机译:美国电网是一个复杂的结构,需要对不同发电区域之间的频率和联络线功率流进行高精度控制。高度变化的负载为当前的自动发电控制系统带来了重大挑战。电弧炉,轧机和其他大型电动机可能会对系统产生很大的要求,导致区域控制误差(ACE)不能令人满意。最近的研究表明,可以将非常短期的负荷预测并入控制方案中,从而可以补偿需求变化很大的情况。使用神经网络预测区域负荷,开发了一种新的模糊逻辑控制器,该控制器可调整区域发电的设定点,以尝试匹配系统上即将发生的变化。演示了神经模糊控制器在两区域联络线模型中的性能,该模型具有来自协作公用事业公司的实际负荷数据,并通过仿真与当前的AGC系统进行了比较。

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