Identification of a mathematical model for a single-shaft power-generating GTE

Q3 Earth and Planetary Sciences
Anatoly Tarelin, Alexander Lyutikov, I. Annopolska
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引用次数: 0

Abstract

The design and development processes of gas turbine engines rely on the usage of mathematical models representing the physics of engine functioning processes. One way of increasing the validity of a mathematical model is its identification based on engine test results. The identification of mathematical models of modern power-generating gas turbine engines (GTEs) presents a demanding and time-consuming task due to the necessity to identify the main controlled engine parameters determined in the course of experimental studies depending on a large number of the parameters that are not controlled during the experiment. In this regard the actual direction of reducing the labour intensity of the process of mathematical model identification is using identification program complexes. The object of the study was to solve the problem of structural-parametrical identification of the power-generating GTE functioning model detailing the turbine flow path calculations to the level of blade rows in order to obtain the GTE mathematical model that describes the characteristics of a real engine with given accuracy. To achieve the objective, the following problems were solved: variable parameters, controlled parameters and characteristics, ranges of their variations were selected from the total number of the mathematical model input data, the objective functions were defined; the task of the parametric identification according to the results of bench tests through GTE operating modes was performed; analytical approximating dependences for correcting coefficients (variable parameters) were obtained; structural-parametric identification of the mathematical model was performed. The novelty of the obtained results is the identification of the mathematical model of the nonlinear component GTE of the second level performed without model linearization (without its level lowering) by using the Optimum software packages. The methodological approach for the parametric identification of the mathematical model is proposed. This approach allows reducing the number of variable parameters under the modes lower that the maximum. It shows that the identified model allows obtaining the prediction results of the GTE parameters and characteristics through operating modes with a deviation of no more than 1.4% from the experimental data and, therefore, it will allow reduction of terms and an increase in the quality of power unit development.
单轴发电GTE的数学模型辨识
燃气涡轮发动机的设计和开发过程依赖于使用数学模型来表示发动机功能过程的物理特性。提高数学模型有效性的一种方法是基于发动机试验结果对数学模型进行识别。现代发电燃气涡轮发动机数学模型的辨识是一项费时费力的任务,因为必须根据大量实验中未被控制的参数来辨识在实验研究过程中确定的主要受控发动机参数。在这方面降低数学模型识别过程劳动强度的实际方向是利用复杂的识别程序。研究的目的是解决将涡轮流道计算细化到叶片排级的发电GTE功能模型的结构参数识别问题,以获得具有给定精度的描述真实发动机特性的GTE数学模型。为实现目标,解决了以下问题:从数学模型输入数据的总数中选择变参数、受控参数和特性,其变化范围,定义目标函数;根据台架试验结果,通过GTE工作模式进行参数辨识;得到了修正系数(变参数)的解析近似依赖关系;对数学模型进行了结构参数辨识。所得结果的新颖之处在于,利用最优化软件包,在不进行模型线性化(不降低其水平)的情况下,对二阶非线性分量GTE的数学模型进行了识别。提出了数学模型参数辨识的方法学方法。这种方法允许将模态下的可变参数数量减少到低于最大值。结果表明,所识别的模型可以通过运行模式获得GTE参数和特性的预测结果,与实验数据的偏差不超过1.4%,从而减少了条件,提高了机组开发质量。
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来源期刊
Energetika
Energetika Energy-Energy Engineering and Power Technology
CiteScore
2.10
自引率
0.00%
发文量
0
期刊介绍: The journal publishes original scientific, review and problem papers in the following fields: power engineering economics, modelling of energy systems, their management and optimi­zation, target systems, environmental impacts of power engi­neering objects, nuclear energetics, its safety, radioactive waste disposal, renewable power sources, power engineering metro­logy, thermal physics, aerohydrodynamics, plasma technologies, combustion processes, hydrogen energetics, material studies and technologies, hydrology, hydroenergetics. All papers are re­viewed. Information is presented on the defended theses, vari­ous conferences, reviews, etc.
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