Paul Alexandre A. Bardella, R. Botez, Pierre Pageaud
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引用次数: 7
摘要
航空工业有动力开发和验证用于预测发动机性能的新飞机模型。这些模型用于飞机的初步设计,以预测其发动机的性能。本研究的目的是设计一个精确的风扇和压气机发动机部件模型。然后,该模型将被集成到基于组件建模方法的完整引擎模型中。已有几种方法可以对压缩组件建模。其中,本文采用的是阶段叠加法。这种方法既可用于预测压缩机的性能,也可用于预测其恶化情况(例如:“结垢”)。在这两种情况下,原理是相同的。每个阶段都是分开的,第一阶段的输出用作下一阶段的输入,直到到达最后阶段,获得最终输出。CAE公司设计的Cessna Citation X Level D研究型飞行模拟器用于采集数据,以识别和验证为整个飞行包线精心设计的发动机模型。D级是美国联邦航空局对飞行动力学给出的最高级别认证。因此,该模拟器可以作为真实的飞机飞行动力学数据。针对不同的飞行条件(马赫数从0到0.92;高度从0到50000ft,油门杆角度,TLA,从“怠速”到“最大”度)。然而,阶段叠加法需要的信息并不总是可用的,比如叶片角度。我们选择了一种“灰盒”方法。识别不可测参数,对模型进行调优,从而减小模型与仿真数据之间的全局误差。“黑盒”方法还使用优化算法将输出近似为输入的多项式函数。在这两种情况下,结果都是准确的。
Cessna citation X engine model experimental validation
The aviation industry is motivated to develop and validate new aircraft models for the prediction of engine performance. These models are used in the preliminary aircraft design in order to predict its engines performance. The purpose of this study is to design an accurate model of the fan and compressor engine components. This model will then be integrated in a full engine model based on a component modeling approach. Several methods already exist to model compressing components. Among them, the stage-stacking method is used in this paper. This method can be used to predict the compressor performance but also its deterioration (ex: “fouling”). In both cases, the principle is the same. Each stage is separated, and the first stage outputs are used for the next stage as inputs until the last stage is reached, when the final outputs are acquired. A Cessna Citation X Level D Research Flight Simulator designed by CAE Inc. is used to sample the data needed to identify and validate the engine models elaborated for the whole flight envelope. Level D is the highest level of certification given by the FAA for the flight dynamics. Thus the simulator is used as real aircraft flight dynamics data. Different flight tests were performed to mesh the flight envelope for different flight conditions (Mach numbers from 0 to 0.92; altitude from 0 to 50000ft and Throttle Lever Angle,TLA, from “idle” to “max” in degrees). Nonetheless, the stage stacking method needs information which is not always available, such as the blade angle. A “grey box” approach was chosen. The unmeasurable parameters were identified in order to tune the model, and thus to reduce the global error between the model and the simulation data. A “black box” approach was also with an optimisation algorithm to approximate the outputs as polynomial functions of the inputs. In both cases the results were found to be accurate.
期刊介绍:
The aim of MIC is to present Nordic research activities in the field of modeling, identification and control to the international scientific community. Historically, the articles published in MIC presented the results of research carried out in Norway, or sponsored primarily by a Norwegian institution. Since 2009 the journal also accepts papers from the other Nordic countries.