Impact of Wall Impedance Phase Angle on Indoor Sound Field and Reverberation Parameters Derived from Room Impulse Response

IF 0.6 4区 物理与天体物理 Q4 ACOUSTICS Archives of Acoustics Pub Date : 2023-07-20 DOI:10.24425/aoa.2022.142008
M. Meissner, T. Zieliński
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引用次数: 0

Abstract

Accurate definition of boundary conditions is of crucial importance for room acoustic predictions because the wall impedance phase angle can affect the sound field in rooms and acoustic parameters applied to assess a room reverberation. In this paper, the issue was investigated theoretically using the convolution integral and a modal representation of the room impulse response for complex-valued boundary conditions. Theoretical considerations have been accompanied with numerical simulations carried out for a rectangular room. The case of zero phase angle, which is often assumed in room acoustic simulations, was taken as a reference, and differences in the sound pressure level and decay times were determined in relation to this case. Calculation results have shown that a slight deviation of the phase angle with respect to the phase equal to zero can cause a perceptual difference in the sound pressure level. This effect was found to be due to a change in modal frequencies as a result of an increase or decrease in the phase angle. Simulations have demonstrated that surface distributions of decay times are highly irregular, while a much greater range of the early decay time compared to the reverberation time range indicates that a decay curve is nonlinear. It was also found that a difference between the decay times predicted for the complex impedance and real impedance is especially clearly audible for the largest impedance phase angles because it corresponds approximately to 4 just noticeable differences for the reverberation metrics.
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壁阻抗相位角对室内声场的影响及由房间脉冲响应导出的混响参数
边界条件的准确定义对于房间声学预测至关重要,因为墙壁阻抗相位角会影响房间内的声场和用于评估房间混响的声学参数。在本文中,使用卷积积分和复值边界条件下房间脉冲响应的模态表示对该问题进行了理论研究。在对矩形房间进行数值模拟的同时,还考虑了理论因素。房间声学模拟中经常假设零相位角的情况作为参考,并根据这种情况确定了声压级和衰减时间的差异。计算结果表明,相位角相对于等于零的相位的微小偏差会导致声压级的感知差异。发现这种影响是由于相位角的增加或减少导致模态频率的变化。模拟表明,衰减时间的表面分布是高度不规则的,而与混响时间范围相比,早期衰减时间的范围要大得多,这表明衰减曲线是非线性的。还发现,对于最大阻抗相位角,复阻抗和实阻抗预测的衰减时间之间的差异尤其明显,因为它大约对应于混响度量的4个明显差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Archives of Acoustics
Archives of Acoustics 物理-声学
CiteScore
1.80
自引率
11.10%
发文量
0
审稿时长
6-12 weeks
期刊介绍: Archives of Acoustics, the peer-reviewed quarterly journal publishes original research papers from all areas of acoustics like: acoustical measurements and instrumentation, acoustics of musics, acousto-optics, architectural, building and environmental acoustics, bioacoustics, electroacoustics, linear and nonlinear acoustics, noise and vibration, physical and chemical effects of sound, physiological acoustics, psychoacoustics, quantum acoustics, speech processing and communication systems, speech production and perception, transducers, ultrasonics, underwater acoustics.
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