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An input-independent method for solving weakly nonlinear partial differential equations in the frequency domain: application to the Euler equations

机译:频域弱非线性偏微分方程的输入无关方法:在欧拉方程中的应用

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In this work a novel approach in determining the first and second order frequency-domain Volterra kernels for weakly nonlinear partial differential equations (PDEs) in semi-discrete form based on the application of the harmonic probing (HP) method is presented. This represents a formal extension of the linearized-frequency domain (LFD) methods to a nonlinear framework, leading to a so-called LFD2 method. The method allows for the representation of weak nonlinearities by solving two input-independent linear algebraic systems of equations in the frequency domain and thus circumvents the solution of the nonlinear PDE by numerical integration for each different input, representing a nonlinear reduced-order model (ROM) for the physical phenomena. The general form of the equations is derived and an application to the well known viscous Burgers' equation to show its suitability in representing the nonlinear convective term is shown. Next, an application to the compressible quasi one-dimensional unsteady flow described by the Euler equations is presented. The proposed method overcomes two constraints present in other methods for the solution of nonlinear PDEs, namely, the consideration of exclusively periodic solutions as in the harmonic balance (HB) method and the dependency of the kernels with the input signal as in the Volterra kernel identification methods.
机译:在这项工作中,提出了一种基于谐波探测(HP)方法确定半离散形式的弱非线性偏微分方程(PDE)的一阶和二阶频域Volterra核的新颖方法。这代表了线性化频域(LFD)方法到非线性框架的形式扩展,从而导致了所谓的LFD2方法。该方法可以通过在频域中求解两个独立于输入的线性代数方程组来表示弱非线性,从而通过对每个不同输入进行数值积分来绕开非线性PDE的求解,从而代表非线性降阶模型(ROM )的物理现象。推导了方程的一般形式,并显示了对众所周知的粘性伯格斯方程的应用,以表明其在表示非线性对流项方面的适用性。接下来,提出了对由欧拉方程描述的可压缩拟一维非定常流动的应用。所提出的方法克服了解决非线性PDE的其他方法中存在的两个限制,即像谐波平衡(HB)方法那样只考虑周期解,以及像Volterra核识别中那样依赖核对输入信号的依赖性方法。

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    《AIAA aviation forum》|2019年|1540-1553|共14页
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    David Quero;

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