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Wave Field Synthesis Acoustics, Electromagnetics and LC Lattices

机译:波场合成声学,电磁学和LC晶格

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摘要

By calculating accurately the signals of wave sources following specific techniques, one can use their induced wave fields, in orderto synthesize wave patterns with predefined spatial and temporal characteristics, inside various wave media.Using the previous idea, the first part of this thesis presents a linear wave field synthesis method which has potential applications in acoustic and electromagnetic media. Virtual sound reproduction mechanisms used in theaters and teleconference systems, as well as medical devices using ultrasound and electromagnetic radiation, could benefit from this method. The method is compared withtraditional acoustic wave field synthesis techniques and simulations demonstrating its applicability on different source topologies with different radiation characteristics are also presented.Unlike the linear analysis of the first part, the second part of this thesis is focused on the theoretical and experimental study ofcertain nonlinear wave field synthesis phenomena which appear on twodimensional nonlinear LC lattices. More specifically, it is demonstrated how nonlinearity can help in synthesizing highfrequency and high power wave pulses at the central points of these lattices, using many low power and low frequency sources at theboundaries. This idea has potential applications in ultra wide band communication and imaging systems and holds a promise of "closing the Terahertz window" formed by the power vs. frequency performance of electronic and optical devices.
机译:通过使用特定技术准确地计算波源的信号,人们可以利用它们的感应波场,以便在各种波媒内部合成具有预定的时空特征的波型。本文的第一部分提出了一种方法。线性波场合成方法,在声学和电磁介质中具有潜在的应用前景。剧院和电话会议系统以及使用超声和电磁辐射的医疗设备中使用的虚拟声音再现机制可以从此方法中受益。将该方法与传统声波场合成技术进​​行了比较,并通过仿真验证了该方法在具有不同辐射特性的不同源拓扑中的适用性。与第一部分的线性分析不同,本论文的第二部分着重于理论和实验研究出现在二维非线性LC晶格上的某些非线性波场合成现象。更具体地,证明了非线性如何在边界处使用许多低功率和低频源来帮助在这些晶格的中心点合成高频和高功率波脉冲。这个想法在超宽带通信和成像系统中具有潜在的应用前景,并有望实现由电子和光学设备的功率与频率性能形成的“关闭太赫兹窗口”。

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  • 作者

    LILIS GEORGIOS;

  • 作者单位
  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 en_US
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