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OPTIMIZATION AND SIMULATION ALGORITHMS FOR THE SOUND DESIGN OF LABIAL ORGAN PIPES

机译:低唇风琴管道声音设计的优化和仿真算法

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In the present contribution optimization and simulation methods are investigated in order to attain optimal scaling of labial organ pipes. The goal is to determine the optimal dimensions of the pipe, by which a desired steady state sound spectrum can be achieved. By modifying the geometry of the pipe body, the eigenfrequencies of the acoustic resonator can be tuned in order to amplify or repress given harmonic partials in the pipe sound. Since the dependence of the eigenfrequencies on the pipe dimensions is quite complex, obtaining the optimal scaling parameters is not trivial. To overcome this difficulty two alternative approaches are suggested and examined. In case of simple pipe forms, such as chimney pipes, the transfer (input admittance) function and the eigenfrequencies of the pipe are calculated by means of a one-dimensional model. However, when the pipe geometry is irregular (e.g. pipes with tuning slot) constructing a simple pipe model is not trivial. Therefore, numerical (finite/boundary element) methods are applied in order to predict the transfer function. These modeling techniques serve as guidelines in the development of an optimization algorithm. The usefulness and applicability of the methodology are proven by validation measurements performed on pipes built with optimized dimensions.
机译:在本贡献中,研究了优化和仿真方法,以获得唇风器官管的最佳缩放。目标是确定管道的最佳尺寸,通过该尺寸可以实现所需的稳态声光谱。通过修改管体的几何形状,可以调谐声谐振器的特征频,以便在管声中放大或压制给定的谐波部分。由于特征频官对管道尺寸的依赖性非常复杂,因此获得最佳缩放参数并不是微不足道的。为了克服这种困难,建议并检查了两种替代方法。如果简单的管道形式,例如烟囱管,通过一维模型计算转移(输入导纳)功能和管道的特征频率。然而,当管几何形状不规则(例如带调谐槽的管道)时,构造简单的管道模型并不差。因此,应用数值(有限/边界元素)方法以预测传递函数。这些建模技术作为开发优化算法的指导。通过在具有优化尺寸内置的管道上进行的验证测量,证明了方法的有用性和适用性。

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