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Gas Turbine Design and Off-Design Simulation Model: Analytical and Neural Network Approaches

机译:燃气轮机设计和非设计仿真模型:分析和神经网络方法

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This paper presents a gas turbine design and off-design model in which the difficulties due to a lack of knowledge about stage-by-stage performance are overcome by constructing artificial machine maps through appropriate scaling techniques applied to generalized maps taken from the literature and validating them with test measurement data from real plants. The set of equations of the developed zero-dimensional model is solved by a commercial package that provides great flexibility in the choice of independent variables of the overall system. The results obtained from this simulator are used for neural network training: problems associated with the construction and use of neural networks are discussed and their capability as a tool for predicting machine performance is analyzed.
机译:本文介绍了一种燃气轮机设计和非设计模型,其中通过适当地构建从文献和验证的广义地图构造人造机械地图,通过构造人造机器映射而导致的逐步性能缺乏困难它们具有从真实植物的测试测量数据。开发零维模型的等式由商业包解决,可在选择整个系统的独立变量方面提供具有很大的灵活性。从该模拟器获得的结果用于神经网络训练:讨论了与构建和使用神经网络相关的问题,并分析了它们作为预测机器性能的工具的能力。

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