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Physical lumping methods for developing linear reduced models for high speed propulsion systems

机译:为高速推进系统开发线性简化模型的物理集总方法

摘要

In gasdynamic systems, information travels in one direction for supersonic flow and in both directions for subsonic flow. A shock occurs at the transition from supersonic to subsonic flow. Thus, to simulate these systems, any simulation method implemented for the quasi-one-dimensional Euler equations must have the ability to capture the shock. In this paper, a technique combining both backward and central differencing is presented. The equations are subsequently linearized about an operating point and formulated into a linear state space model. After proper implementation of the boundary conditions, the model order is reduced from 123 to less than 10 using the Schur method of balancing. Simulations comparing frequency and step response of the reduced order model and the original system models are presented.
机译:在气体动力系统中,信息在超音速流动的一个方向上传播,而在亚音速流动的两个方向上传播。在从超音速流到亚音速流的过渡处会发生冲击。因此,为了模拟这些系统,为准一维Euler方程实施的任何模拟方法都必须具有捕获冲击的能力。本文提出了一种将后向和中心差分相结合的技术。随后将等式围绕一个工作点进行线性化,并公式化为线性状态空间模型。正确执行边界条件后,使用Schur平衡方法将模型阶数从123减少到小于10。给出了比较降阶模型和原始系统模型的频率和阶跃响应的仿真。

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