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A frequency domain finite element solver for acoustic simulations of 3D rooms with microperforated panel absorbers

机译:带有微孔板式吸收器的3D房间声学模拟的频域有限元求解器

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摘要

Microperforated panel (MPP) absorbers, which provide broadband sound absorption without the use of fibrous materials, have favorable material properties that support recyclability, flexibility of design, hygiene demands, and cleaning. Many earlier studies have specifically examined the development of absorbers themselves. However, to use the absorption performance of MPP absorbers sufficiently in room acoustic applications, it is beneficial to develop accurate prediction methods of sound fields in rooms with MPP absorbers. Such methods are expected to be useful for room acoustics design and absorber design tools. This study constructs a frequency domain finite element (FE) solver for acoustic simulations of a practical sized room with MPP absorbers. Then the accuracy and effectiveness are evaluated. In the FE solver, spatial domains are discretized by fourth-order accurate FEs in terms of dispersion error, and MPP absorbers are modeled using first-order hexahedral limp MPP elements that can deal with sound propagation in the backing structure of absorbers. First, the accuracy of present FE solver is demonstrated using impedance tube problems in comparison with conventional second-order accurate FEs. Results show higher convergence of solutions for the present FE solver. Then, exploration of an iterative solver for efficient multi-frequency analyses reveals that the recently developed CSQMOR is a faster and more stable solver. Finally, comparison with a conventional surface impedance model based on a locally reacting assumption confirms the effectiveness of present FE solver by presenting the importance of dealing with the incident angle dependence of reactance of a rigid-backed air cavity in the modeling of single leaf MPP absorbers. (C) 2017 Elsevier Ltd. All rights reserved.
机译:微孔板(MPP)吸收器可在不使用纤维材料的情况下提供宽带吸声,具有有利的材料性能,可回收利用,设计灵活,卫生要求和清洁度高。许多早期的研究专门研究了吸收体本身的发展。但是,要在房间声学应用中充分利用MPP吸收器的吸收性能,开发具有MPP吸收器的房间中声场的准确预测方法是有益的。预期这些方法对于室内声学设计和吸收器设计工具是有用的。这项研究构造了一个频域有限元(FE)求解器,用于带有MPP吸收器的实际大小房间的声学模拟。然后评估准确性和有效性。在有限元求解器中,在色散误差方面,四阶精确有限元将空间域离散化,MPP吸收器使用一阶六面体软性MPP元素建模,该元素可以处理吸收器背衬结构中的声音传播。首先,与传统的二阶精确有限元相比,使用阻抗管问题来说明当前有限元求解器的精度。结果表明,对于当前的有限元求解器,解决方案具有更高的收敛性。然后,对用于高效多频分析的迭代求解器的探索表明,最近开发的CSQMOR是一种更快,更稳定的求解器。最后,与基于局部反应假设的传统表面阻抗模型进行比较,通过在单叶MPP吸收器建模中提出处理刚性支撑气腔的电抗的入射角依赖性的重要性,从而证实了本有限元求解器的有效性。 。 (C)2017 Elsevier Ltd.保留所有权利。

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