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Propagation of acoustic perturbations in non-uniform ducts with non-uniform mean flow using eigen analysis in general curvilinear coordinate systems

机译:在一般曲线坐标系中使用特征分析,在具有非均匀平均流动的非均匀管道中的声学扰动的传播

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A new framework, Eigen Analysis in General Curvilinear Coordinates (EAGCC), is presented for internal propagation of linear acoustic flow disturbances through irregular but smoothly varying duct geometries and non-uniform but smoothly varying mean flows. The framework is based on an eigen analysis of the linearised Euler equations for a perfect gas formulated in a general curvilinear coordinate system. A series of test cases are studied, from a simple uniform cylindrical annular duct with uniform mean flow to an axially and circumferentially non-uniform duct with non-uniform mean flow, which together validate the method for acoustic propagation through non-uniform annular ducts and non-uniform but irrotational and homentropic mean flow: although the framework provides for rotational and non-homentropic mean flow, and for modelling vortical and entropic flow perturbations, these features are not validated in this paper. Two propagation methods are presented. The first is a one-way "single sweep" calculation, in which only information travelling in the direction of propagation is retained. The second is an iterative "two-way sweep" method that accurately captures reflected waves and returns transmitted and reflected perturbations. Previous eigenvector analyses were subject to limitations on geometry and mean flow (for instance slowly-varying ducts) that are not required in the current method, for which the only limitations are that the duct and mean flow vary smoothly with position. This work extends the scope of the eigenvector approach to include acoustic problems previously limited to volumetric or surface-based methods. (C) 2018 Elsevier Ltd. All rights reserved.
机译:一种新的框架,在一般曲线坐标(EAGCC)中的特征分析,用于通过不规则但平滑地不同的导管几何形状和不均匀但平滑地变化平均流动的线性声学流干扰的内部传播。该框架基于在一般曲线坐标系中配制的完美气体的线性化欧拉方程的特征分析。研究了一系列测试用例,从简单的均匀圆柱形环形管道,具有均匀的平均流向轴向和周向不均匀的管道,其具有非均匀平均流量,它们一起通过非均匀的环形管道验证了声学传播的方法和不均匀但无论是无均匀的和常熵的平均流量:虽然框架提供旋转和非常常平均流量,并且用于对涡流和熵流扰动建模,但本文未验证这些功能。提出了两个传播方法。第一是单向“单扫描”计算,其中保留在传播方向上行进的信息。第二种是一种迭代的“双向扫描”方法,可以精确地捕获反射波并返回发送和反射扰动。先前的特征向量分析受到当前方法中不需要的几何形状和平均流量的限制(例如缓慢变化的管道),其中唯一的限制是管道和平均流量随位置变化。这项工作扩展了特征向量方法的范围,包括以前限于基于体积或基于表面的方法的声学问题。 (c)2018年elestvier有限公司保留所有权利。

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