建筑声学的准周期几何

R. Ajlouni
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引用次数: 6

摘要

晶体中准周期性原子秩序的发现,揭示了一种令人兴奋的、以前从未被探索过的新型对称性。由于它们的非周期平移顺序和自相似性质,准周期结构为研究与它们的声学行为相关的问题提供了独特的机会。它们独特的长程非周期结构具有以许多独特方式扩散和协调声能流动的能力;提供有趣的潜力,创新一波优化的声音扩散器。现有的周期性扩散器的一个关键限制是,它们的重复逻辑会产生重复的能量循环,这大大降低了它们均匀分散声能的能力。准周期几何可以减轻这种限制。通过在所有方向上封装无限多种不同的轮廓,准周期表面可以消除束状或环状反射的形成;大大提高了扩散器均匀分散声能的能力。为了验证这一假设,我们采用了一种实验方法,用射线追踪法模拟了准周期表面轮廓的声反射模式。采用定性和定量分析来解释模拟结果。使用国际标准(ISO)度量来验证建议的方法和验证结果。结果表明,所测准周期表面的扩散质量优于所测周期表面的扩散性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Quasi-periodic Geometry for Architectural Acoustics
The discovery of quasi-periodic atomic order in the crystalline state has uncovered an exciting new class of symmetries that has never been explored before. Because of their non-periodic translational order and self-similar properties, quasi-periodic structures offer unique opportunities for investigating questions related to their acoustical behavior. Their unique long-range non-periodic formations have the ability to diffuse and orchestrate the flow of sound energy in many unique ways; offering intriguing potential for innovating a new wave of optimized sound diffusers. One key limitation with available periodic diffusers is that their repeating logic creates repetitive energy loops, which significantly reduce their ability to uniformly disperse sound energy. Quasi-periodic geometry can mitigate such limitation. By encapsulating an infinite variety of distinct profiles in all directions, quasi-periodic surfaces can eliminate the formation of bundled or looped reflections; considerably enhancing the ability of the diffuser to uniformly disperse sound energy. To investigate this hypothesis, an experimental approach is used to simulate sound reflection patterns of the quasi-periodic surface profiles using a ray tracing method. Both qualitative and quantitative analyses are used to interpret the simulated results. The international Standards (ISO) metrics are used to validate the proposed approach and verify the results. Results show that the diffusion quality of the tested quasi-periodic surface is superior to the diffusion performance of the tested periodic surface.
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