...
首页> 外文期刊>Smart Materials & Structures >Origami acoustics: using principles of folding structural acoustics for simple and large focusing of sound energy
【24h】

Origami acoustics: using principles of folding structural acoustics for simple and large focusing of sound energy

机译:折纸声学:使用折叠结构声学原理进行简单和大的声能聚焦

获取原文
获取原文并翻译 | 示例
           

摘要

Fixed in spatial distribution, arrays of planar, electromechanical acoustic transducers cannot adapt their wave energy focusing abilities unless each transducer is externally controlled, creating challenges for the implementation and portability of such beamforming systems. Recently, planar, origami-based structural tessellations are found to facilitate great versatility in system function and properties through kinematic folding. In this research we bridge the physics of acoustics and origami-based design to discover that the simple topological reconfigurations of a Miura-ori-based acoustic array yield many orders of magnitude worth of reversible change in wave energy focusing: a potential for acoustic field morphing easily obtained through deployable, tessellated architectures. Our experimental and theoretical studies directly translate the roles of folding the tessellated array to the adaptations in spectral and spatial wave propagation sensitivities for far field energy transmission. It is shown that kinematic folding rules and flat-foldable tessellated arrays collectively provide novel solutions to the long-standing challenges of conventional, electronically-steered acoustic beamformers. While our examples consider sound radiation from the foldable array in air, linear acoustic reciprocity dictates that the findings may inspire new innovations for acoustic receivers, e.g. adaptive sound absorbers and microphone arrays, as well as concepts that include water-borne waves.
机译:固定在空间分布中的平面机电声换能器阵列不能适应其波能量聚焦能力,除非每个换能器都由外部控制,这给这种波束成形系统的实现和便携性带来了挑战。近来,发现基于折纸的平面结构棋盘形通过运动学折叠促进系统功能和特性的极大通用性。在这项研究中,我们将声学和基于折纸的设计的物理联系起来,发现基于Miura-ori的声学阵列的简单拓扑重新配置在波能聚焦方面产生了许多数量级的可逆变化:潜在的声场变形通过可部署的细分化架构可以轻松获得。我们的实验和理论研究将折叠棋盘形阵列的作用直接转化为光谱和空间波传播灵敏度适应性的远场能量传输。结果表明,运动学的折叠规则和可平面折叠的棋盘格阵列共同为传统的电子转向声波束形成器的长期挑战提供了新颖的解决方案。虽然我们的示例考虑了空气中可折叠阵列的声音辐射,但线性声学互易性表明,这一发现可能会激发声学接收器的新创新,例如自适应吸声器和麦克风阵列,以及包含水波的概念。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号