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The logical clarinet: numerical optimization of the geometry of woodwind instruments.

机译:逻辑单簧管:木管乐器几何形状的数值优化。

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摘要

The tone hole geometry of a clarinet is optimized numerically. The instrument is modeled as a network of one dimensional transmission line elements. For each (non-fork) fingering, we first calculate the resonance frequencies of the input impedance peaks, and compare them with the frequencies of a mathematically even chromatic scale (equal temperament). A least square algorithm is then used to minimize the differences and to derive the geometry of the instrument. Various situations are studied, with and without dedicated register hole and/or enlargement of the bore. With a dedicated register hole, the differences can remain less than 10 musical cents throughout the whole usual range of a clarinet. The positions, diameters and lengths of the chimneys vary regularly over the whole length of the instrument, in contrast with usual clarinets. Nevertheless, we recover one usual feature of instruments, namely that gradually larger tone holes occur when the distance to the reed increases. A fully chromatic prototype instrument has been built to check these calculations, and tested experimentally with an artificial blowing machine, providing good agreement with the numerical predictions.
机译:单簧管的音孔几何形状在数值上进行了优化。该仪器被建模为一维传输线元素的网络。对于每个(非叉式)指法,我们首先计算输入阻抗峰值的谐振频率,并将其与数学上均匀的色标(相等气质)的频率进行比较。然后,使用最小二乘算法来最小化差异并导出仪器的几何形状。研究了各种情况,有无专用对准孔和/或孔的扩大。有了专用的定位孔,在单簧管的整个正常范围内,差异可以保持在不到10美分的水平。与普通的单簧管相反,烟囱的位置,直径和长度在乐器的整个长度上定期变化。尽管如此,我们恢复了乐器的一个通常特征,即当到簧片的距离增加时,会逐渐出现更大的音孔。已经建立了一个全彩色的原型仪器来检查这些计算结果,并用一台人工吹瓶机进行了实验测试,与数值预测值具有很好的一致性。

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