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ALTERNATIVE METHOD TO SIMULATE A SUB-IDLE ENGINE OPERATION IN ORDER TO SYNTHESIZE ITS CONTROL SYSTEM

机译:有序方法模拟次怠速发动机运行以综合控制系统

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The steady-state and transient engine performances of gas turbine control system development are usually evaluated by applying full thermodynamic engine models. Most models only address the operating range between the idle and maximum power points, but more recently, they also address a sub-idle operating range. The lack of information about the component maps at the sub-idle modes creates major challenges for the starting system and control system designers. A common method to cope with the problem extrapolates the performances of the engine components to the sub-idle operation range. Precise extrapolation is a challenge to be studied by many scientists. As a rule, many scientists are only concerned about particular aspects of the problem such as the lighting combustion chamber or the turbine operation under the turned-off conditions of the combustion chamber. However, there are no known reports about a model that considers all of these mentioned aspects and simulates the engine starting. To synthesize a thermodynamic model of starting, most known methods require the performance of the components in the sub-idle range. The proposed paper addresses a new method that simulates the engine starting. The method substitutes the non-linear thermodynamic model with a linear dynamic model, which is supplemented with a simplified static model. The latter model is the set of direct relations between parameters that are used in the control algorithms instead of commonly used component performances. Specifically, the static model consists of simplified relations between the gas path parameters and the corrected rotational speed. The paper also describes an algorithm for model synthesis and its practical application to real data.
机译:通常通过应用完整的热力学发动机模型来评估燃气轮机控制系统开发的稳态和瞬态发动机性能。大多数型号仅解决空闲和最大功率点之间的工作范围,但是最近,它们也解决了次空闲的工作范围。子怠速模式下有关组件映射的信息的缺乏给启动系统和控制系统设计人员带来了重大挑战。解决该问题的常用方法将发动机部件的性能推算到副怠速工作范围内。精确外推是许多科学家要研究的挑战。通常,许多科学家只关注问题的特定方面,例如在燃烧室关闭条件下点燃燃烧室或涡轮机运行。但是,没有关于模型的已知报告,该模型考虑了所有上述方面并模拟了发动机启动。为了合成启动的热力学模型,大多数已知方法都要求在子怠速范围内执行部件的性能。拟议论文提出了一种模拟发动机启动的新方法。该方法用非线性动态模型代替了非线性热力学模型,并用简化的静态模型进行了补充。后一种模型是控制算法中使用的参数之间的直接关系集,而不是常用的组件性能。具体而言,静态模型由气路参数和校正后的转速之间的简化关系组成。本文还描述了一种用于模型合成的算法及其在实际数据中的实际应用。

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