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Vibroacoustics of the piano soundboard : (Non)linearity and modal properties in the low- and mid-frequency ranges

机译:钢琴共鸣板的振动声学:低频和中频范围内的(非)线性和模态特性

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摘要

The piano soundboard transforms the string vibration into sound and therefore, its vibrations are of primary importance for the sound characteristics of the instrument. An original vibro-acoustical method is presented to isolate the soundboard nonlinearity from that of the exciting device (here: a loudspeaker) and to measure it. The nonlinear part of the soundboard response to an external excitation is quantitatively estimated for the first time, at 40 dB below the linear part at the ff nuance. Given this essentially linear response, a modal identification is performed up to 3 kHz by means of a novel high resolution modal analysis technique [K. Ege, X. Boutillon, B. David, High-resolution modal analysis, Journal of Sound and Vibration 325 (4–5) (2009) 852–869]. Modal dampings (which, so far, were unknown for the piano in this frequency range) are determined in the mid-frequency domain where FFT-based methods fail to evaluate them with an acceptable precision. They turn out to be close to those imposed by wood. A finite-element modelling of the soundboard is also presented. The low-order modal shapes and the comparison between the corresponding experimental and numerical modal frequencies suggest that the boundary conditions can be considered as blocked, except at very low frequencies. The frequency-dependency of the estimated modal densities and the observation of modal shapes reveal two well-separated regimes. Below 1 kHz, the soundboard vibrates more or less like a homogeneous plate. Above that limit, the structural waves are confined by ribs, as already noticed by several authors, and localised in restricted areas (one or a few inter-rib spaces), presumably due to a slightly irregular spacing of the ribs across the soundboard.
机译:钢琴音板将琴弦振动转换为声音,因此,其振动对于乐器的声音特性至关重要。提出了一种原始的振动声学方法,用于将音板非线性与激励设备(在此为扬声器)的非线性隔离并进行测量。第一次定量评估共鸣板对外部激励的非线性部分,在线性部分之下比线性部分低40 dB。在这种基本线性响应的情况下,借助一种新颖的高分辨率模态分析技术,模态识别可在高达3 kHz的频率下进行[K. Ege,X. Boutillon,B. David,高分辨率模态分析,《声音与振动学报》 325(4-5)(2009)852-869]。模态阻尼(到目前为止,在该频率范围内尚不为钢琴所知)是在中频域中确定的,而基于FFT的方法无法以可接受的精度对其进行评估。事实证明,它们接近于木材施加的强度。还介绍了共鸣板的有限元建模。低阶模态形状以及相应的实验模态频率和数值模态频率之间的比较表明,除了非常低的频率外,边界条件可以被认为是受阻的。估计模态密度的频率依赖性和模态形状的观察揭示了两种完全分开的体系。低于1 kHz,共鸣板或多或少像均质板一样振动。超过该限制,结构波受到肋骨的限制,正如一些作者已经注意到的那样,并局限在受限区域(一个或几个肋间空间)中,这可能是由于肋在整个音板上的间距略有不规则所致。

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