Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
5028069 | Procedia Engineering | 2017 | 7 Pages |
Abstract
The engineering method for the recurrent neural network construction and identification of a mathematical model of gas turbine engines on a real data is proposed, describing the learning algorithm and the network structure. The complete process of modeling and experimental investigation - from designing of a gas turbines model in form of neural networks to its testing and debugging on the test-bed - are presented. The method was approved on a hardware-in-the-loop test-bed with a FADEC closed loop control for the start-up, ground and flight modes.
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Physical Sciences and Engineering
Engineering
Engineering (General)
Authors
G.I. Pogorelov, G.G. Kulikov, A.I. Abdulnagimov, B.I. Badamshin,