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Investigation of a Parabolic Iterative Solver for Three-dimensional Configurations

机译:三维结构的抛物线迭代解法的研究

摘要

A parabolic iterative solution procedure is investigated that seeks to extend the parabolic approximation used within the internal propagation module of the duct noise propagation and radiation code CDUCT-LaRC. The governing convected Helmholtz equation is split into a set of coupled equations governing propagation in the positive and negative directions. The proposed method utilizes an iterative procedure to solve the coupled equations in an attempt to account for possible reflections from internal bifurcations, impedance discontinuities, and duct terminations. A geometry consistent with the NASA Langley Curved Duct Test Rig is considered and the effects of acoustic treatment and non-anechoic termination are included. Two numerical implementations are studied and preliminary results indicate that improved accuracy in predicted amplitude and phase can be obtained for modes at a cut-off ratio of 1.7. Further predictions for modes at a cut-off ratio of 1.1 show improvement in predicted phase at the expense of increased amplitude error. Possible methods of improvement are suggested based on analytic and numerical analysis. It is hoped that coupling the parabolic iterative approach with less efficient, high fidelity finite element approaches will ultimately provide the capability to perform efficient, higher fidelity acoustic calculations within complex 3-D geometries for impedance eduction and noise propagation and radiation predictions.
机译:研究了抛物线迭代求解程序,该程序试图扩展在管道噪声传播和辐射代码CDUCT-LaRC的内部传播模块中使用的抛物线近似。控制对流Helmholtz方程分为一组控制正向和负向传播的耦合方程。所提出的方法利用迭代过程来求解耦合方程,以试图解决内部分叉,阻抗不连续和管道终端的可能反射。考虑了与NASA兰利弯管试验台相符的几何形状,并包括了声学处理和非消声终止的效果。研究了两个数值实现,初步结果表明,对于截止率为1.7的模式,可以在预测的幅度和相位方面获得更高的精度。截止比为1.1的模式的进一步预测表明,预测相位有所改善,但幅度误差增加了。根据分析和数值分析,提出了可能的改进方法。希望将抛物线迭代方法与效率较低,高保真度的有限元方法结合起来,最终将提供在复杂的3D几何形状内执行高效,较高保真度的声学计算的能力,以进行阻抗产生,噪声传播和辐射预测。

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