Institute of Technical Acoustics, RWTH Aachen University, 52066 Aachen, NRW, Germany.
J Acoust Soc Am. 2013 Aug;134(2):1082-9. doi: 10.1121/1.4812250.
High-quality numerical simulations in room acoustics require a detailed knowledge of the acoustic reflection characteristics of the materials in the room, in order to realistically model the interferences between multiple sound reflections at the room boundaries. While different standardized measurement methods exist for the determination of the absorption coefficient and reflection factor these methods can generally not be applied in situ. Thus time-consuming laboratory measurements and the supply of material samples are required. Driven by the obvious demand for a reliable in situ measurement technique, a pu-probe based method has emerged during the last years, which derives the reflection factor based on the simultaneous measurement of sound pressure and velocity. However, previous investigations of the setup and publications by other authors have shown that the measurement results are affected by various uncertainty factors. The present study aims at the identification, separation, and quantitative assessment of the uncertainty factors related to reflection and diffraction effects at the loudspeaker, sensor, and the absorber geometry. Therefore, a purely simulative approach will be used that replicates the actual measurement situation in every detail, including the geometries of sensor, loudspeaker, and absorber. The simulation setup is validated by measurements and is used to systematically separate the different uncertainty factors.
高质量的室内声学数值模拟需要详细了解房间内材料的声学反射特性,以便在房间边界处对多次声音反射的干扰进行真实建模。虽然存在用于确定吸声系数和反射系数的不同标准化测量方法,但这些方法通常不能在现场应用。因此,需要进行耗时的实验室测量和材料样品供应。由于对可靠的现场测量技术的明显需求,近年来出现了一种基于 pu 探头的方法,该方法基于声压和速度的同时测量来推导反射系数。然而,之前的研究和其他作者的出版物表明,测量结果受到各种不确定因素的影响。本研究旨在识别、分离和定量评估与扬声器、传感器和吸声体几何形状的反射和衍射效应相关的不确定因素。因此,将使用纯粹的模拟方法来复制实际测量情况的每个细节,包括传感器、扬声器和吸声体的几何形状。通过测量验证了仿真设置,并用于系统地分离不同的不确定因素。