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An intelligent system for short-time loading capability assessment of transmission lines

机译:用于传输线路的短时间加载能力评估的智能系统

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This paper describes an application of the intelligent system (IS) combining an expert system (ES) and an artificial neural network (ANN) for the evaluation of the short time thermal rating and temperature rise of overhead power transmission lines. The IS was developed as a rule-based system using the Leonardo expert system shell in conjunction with a neural network and database. The ANN and regression best-fitting techniques were employed to determine the hourly solar irradiance. The neural network was trained for the prediction of maximum hourly values of the direct and diffuse solar radiation dependent on astronomic and meteor-climatic conditions. The developed IS can be used to assist operators in loading of transmission lines in different operating, ambient, geographic latitude, cloud and ground reflection conditions. It also assists the operators to determine the permissible duration of the conductor overload.
机译:本文介绍了智能系统(IS)的应用,所述专家系统和人工神经网络(ANN)与人工神经网络(ANN)进行评估,用于评估架空输电线的短时间热额定值和温度升高。使用Leonardo Expert System Shell与神经网络和数据库一起开发为基于规则的系统。 ANN和回归最佳拟合技术用于确定每小时太阳辐照度。神经网络训练,用于预测直接和漫射太阳辐射的最大小时值,取决于天文学和流星气候条件。开发的可用于帮助运营商加载不同操作,环境,地理纬度,云和地面反射条件的传输线路。它还帮助操作员确定导体过载的允许持续时间。

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