阻尼对普通钢琴声板振荡模式的影响

IF 1.3 Q3 ACOUSTICS Acoustics (Basel, Switzerland) Pub Date : 2022-12-02 DOI:10.3390/acoustics4040062
R. Bader, N. Plath
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引用次数: 0

摘要

利用时域有限差分(FDTD)物理模型和实验测量,研究了内部阻尼对钢琴响板振动的影响。该模型的阻尼常数根据一个范围变化,该范围与在不同生产阶段对真正的三角钢琴进行测量时发现的范围相似。在强阻尼的情况下,发现了强迫弦振荡对响板振荡模式的明显驱动点依赖性。当降低阻尼时,这种驱动点依赖性正在降低,然而,它仍然存在。因此,当琴弦以响板的固有频率驱动响板时,高阻尼可以降低响板的振动。然而,当琴弦以非本征频率的频率驱动响板时,这种大的阻尼会增加响板的振动。因此,强阻尼使仪器的频率响应谱平滑。在没有任何不同本征模存在的情况下,极端阻尼会导致弦声频谱的辐射,而无需响板过滤。低阻尼会导致共鸣板对琴弦辐射声音的强烈影响。因此,可以通过选择材料(包括木材或清漆)和几何形状来设计吸音板特性的数量,以改变内部阻尼过程。此外,阻尼减少了“死点”的存在,与其他音符相比,死点的音量要低得多。
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Impact of Damping on Oscillation Patterns on the Plain Piano Soundboard
The influence of internal damping on the vibration of a piano soundboard is investigated using a Finite-Difference Time Domain (FDTD) physical model and experimental measurements. The damping constant of the model is varied according to a range similar to those found with measurements on a real grand piano at different production stages. With strong damping, a clear driving-point dependency of the forced string oscillation on the oscillation pattern of the soundboard is found. When decreasing the damping, this driving-point dependency is decreasing, nevertheless, it is still present. High damping, therefore, decreases soundboard vibration when strings drive the soundboard at the soundboard’s eigenfrequencies. However, such large damping increases soundboard vibrations when strings drive the soundboard at frequencies which are not eigenfrequencies. Therefore, strong damping smooths out the frequency response spectrum of an instrument. Extreme damping without any presence of distinct eigenmodes leads to a radiation of the strings sound spectrum without soundboard filtering. Low damping leads to a strong influence of the soundboard on the string’s radiated sound. Therefore, the amount of soundboard characteristics can be designed to alter internal damping process by choice of materials, including wood or varnish, and geometry. Additionally, damping reduces the presence of ’dead spots’, notes which are considerably lower in volume compared to other notes.
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来源期刊
CiteScore
3.70
自引率
0.00%
发文量
0
审稿时长
11 weeks
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