Graduate Program in Architectural Acoustics, School of Architecture, Rensselaer Polytechnic Institute, Troy, New York 12180, USA.
J Acoust Soc Am. 2010 Apr;127(4):2323-31. doi: 10.1121/1.3303981.
In this paper, the accuracy and efficiency of the previously discussed one-dimensional transport equation models [Y. Jing et al., J. Acoust. Soc. Am. 127, 2312-2322 (2010)] are examined both numerically and experimentally. The finite element method is employed to solve the equations. Artificial diffusion is applied in the numerical implementation to suppress oscillations of the solution. The transport equation models are then compared with the ray-tracing based method for different scenarios. In general, they are in good agreement, and the transport equation models are substantially less time consuming. In addition, the two-group model is found to yield more accurate results than the one-group model for the tested cases. Lastly, acoustic experimental results obtained from a 1:10 long room scale-model are used to verify the transport equation models. The results suggest that the transport equation models are able to accurately model the sound field in a long space.
在本文中,我们对之前讨论的一维传输方程模型[Y. Jing 等人,J. Acoust. Soc. Am. 127, 2312-2322(2010)]的准确性和效率进行了数值和实验研究。采用有限元方法求解方程。在数值实现中应用人工扩散来抑制解的振荡。然后针对不同情况将传输方程模型与基于射线追踪的方法进行了比较。总的来说,它们吻合得很好,而且传输方程模型的耗时要少得多。此外,对于测试的情况,两组模型比一组模型得出更准确的结果。最后,使用 1:10 长房间比例模型获得的声学实验结果来验证传输方程模型。结果表明,传输方程模型能够准确地模拟长空间中的声场。