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Study on technology of engine exhaust gas temperature margin prediction

机译:发动机废气温度裕度预测技术研究

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摘要

The aviation safety status is more prominent and important with the development of aircraft. The aero engine is the system with the highest failure rate and maximum maintenance workload. The exhaust gas temperature is one of the performance parameters which reflected aero-engine operation state mostly. The methods of combining RBFPN (radial basis function prediction network) and FAR (functional coefficient autoregressive model) and wavelet process neural network analysis are used to make the EGTM prediction. They both get the better results.
机译:随着飞机的发展,航空安全状况更为突出和重要。 Aero发动机是具有最高故障率和最大维护工作量的系统。排气温度是主要反映航空发动机操作状态的性能参数之一。组合RBFPN(径向基函数预测网络)和远(功能系数自回归模型)和小波过程神经网络分析的方法用于使EGTM预测。他们都得到了更好的结果。

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