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Wave separation in the trumpet under playing conditions and comparison with time domain finite difference simulation

机译:演奏条件下小号中的波分离以及与时域有限差分模拟的比较

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摘要

Wave separation within a trumpet is presented using three high pressure microphones to measure pressure waves within the curved, constant cross-section tuning slide of the instrument while the instrument was being played by a virtuoso trumpet player. A closer inter-microphone spacing was possible in comparison to previous work through the use of time domain windowing on non-causal transfer functions and performing wave separation in the frequency domain. Time domain plots of the experimental wave separation were then compared to simulations using a physical model based on a time domain finite difference simulation of the trumpet bore coupled to a one mass, two degree of freedom lip model. The time domain and frequency spectra of the measured and synthesized sounds showed a similar profile, with the sound produced by the player showing broader spectral peaks in experimental data. Using a quality factor of 5 for the lip model was found to give greater agreement between the simulated and experimental starting transients in comparison to the values in the range 1–3 often assumed. Deviations in the spectral content and wave shape provide insights into the areas where future research may be directed in improving the accuracy of physical modeling synthesis.
机译:使用三个高压麦克风在小号演奏家演奏乐器时,使用三个高压麦克风测量乐器弯曲,恒定横截面的音调幻灯片内的压力波,从而实现小号内的波分离。与以前的工作相比,通过在非因果传递函数上使用时域窗并在频域中执行波分离,可以实现更近的麦克风间距。然后将实验波分离的时域图与使用物理模型的仿真进行比较,该物理模型基于与一个质量,两个自由度唇形模型耦合的喇叭孔的时域有限差分仿真。测得的和合成的声音的时域和频谱显示出相似的轮廓,播放器产生的声音在实验数据中显示出更宽的频谱峰值。与通常假定的1-3范围内的值相比,对于唇形模型使用5的品质因数可以使仿真的瞬态和实验的瞬态瞬变之间的一致性更高。频谱含量和波形的偏差提供了对未来领域的见解,这些领域可能会在提高物理模型合成的准确性方面针对未来的研究。

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