An Improvement Method Based on Similarity Theory for Equilibrium Manifold Expansion Model

Linhai Zhu, Jinfu Liu, Weixing Zhou, Daren Yu
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引用次数: 3

Abstract

Data-driven model has been employed as a powerful tool for identification of complex industrial systems with nonlinear dynamics, such as gas turbines (GT). In this study, a methodology based on data and prior knowledge fusion was developed to improve the equilibrium manifold expansion model to be a multi-input-multi-output (MIMO) model for offline system identification of a two-spool gas turbine. The methodology is evaluated through a case study involving data that are generated by general gas turbine simulation. Simulations show good precision of the proposed model in capturing the nonlinear behavior of the gas turbine.
基于相似理论的平衡流形展开模型改进方法
数据驱动模型已成为识别复杂工业系统非线性动力学的有力工具,如燃气轮机(GT)。本文提出了一种基于数据和先验知识融合的方法,将平衡流形展开模型改进为多输入多输出(MIMO)模型,用于双轴燃气轮机离线系统辨识。该方法通过一个案例研究进行评估,该案例研究涉及由一般燃气轮机模拟产生的数据。仿真结果表明,该模型能较好地反映燃气轮机的非线性特性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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