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Theory and simulation of an orthogonal-coil directional beam antenna for biomedical applications

机译:生物医学应用正交线圈定向波束天线的理论与仿真

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Many biomedical applications, including in-body localization, in vivo sensor data acquisition, and measurement of the electrical properties of human tissues require or may greatly benefit from a highly concentrated and directional beam emanating from a transmitting antenna. While many beam focusing efforts have utilized large aperture antennas or large antenna arrays, these methods are not always convenient for biomedical use. Furthermore, sensing modalities operating in the far-field susceptive to multi-path issues related to the many diverse material property interfaces within the human body. This work presents the theoretical background related to the construction and operation of a very small and easily located antenna that generates a highly directive signal ideal for biomedical use. The antenna, constructed from a pair of orthogonally oriented magnetic dipoles excited in quadrature, utilizes the advantages associated with operating in the Fresnel region, directing most of its emitted energy 45 degrees from broadside. Numerical simulations support this operation and have led to a number of applications as identified herein prompting the development of a Finite Element Method compatible human body model based on the Visible Human Project data maintained by the National Institute of Health.
机译:许多生物医学应用,包括体内定位,体内传感器数据采集以及人体组织电学特性的测量,都需要或可能极大地受益于发射天线发出的高度集中和定向的波束。尽管许多波束聚焦努力已经利用大孔径天线或大天线阵列,但是这些方法并不总是方便于生物医学用途。此外,在远场中操作的感测模态易受与人类体内多种多样的材料特性界面有关的多径问题的影响。这项工作提供了与非常小且易于放置的天线的构造和操作有关的理论背景,该天线会产生非常适合生物医学用途的高定向信号。该天线由一对正交激发的正交磁偶极子构成,利用了在菲涅耳区域工作的相关优势,将其大部分发射能量从宽边定向成45度。数值模拟支持此操作,并导致了此处确定的许多应用,从而促进了基于由美国国立卫生研究院维护的可见人类项目数据的有限元方法兼容人体模型的开发。

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