Combining reflector focused and phased array beamforming for microwave diagnosis and therapy

K. Karathanasis, I. Karanasiou
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引用次数: 9

Abstract

In this paper we continue our recently reported work on the exploitation of the focusing properties of a conductive ellipsoidal reflector in conjunction with directive phased antenna configurations in order to achieve diagnosis and therapy at the microwave frequency regime. Both aforementioned modules are parts of a hybrid microwave radiometry and hyperthermia system comprising a symmetrical axis ellipsoidal conductive wall cavity which ensures the necessary beamforming and focusing on the body/brain areas of interest. The proposed system operates in an entirely non-invasive contactless manner providing temperature and/or conductivity variations monitoring while it is also designed to provide hyperthermia treatment. Recently, the effect of the use of patch antennas as receiving or emitting elements on the system's focusing properties and specifically the use of two-element phased array setups to achieve scanning of the areas under measurement was investigated. In the present paper, four element antenna setups are used and extensive simulations to compute the electric field distributions inside the whole ellipsoidal reflector and inside two types of human head models were carried out. The results show that clear focusing (creation of “hot spots”) inside the head models is achieved at 1GHz. In the case of the four element antennas, the “hot spot” performs a linear scan around the brain area of interest while the phase values of the four antenna elements significantly affect the way the scanning inside the head model is achieved. The proposed setups enhance and increase the dimensions and scanning of the focusing area toward the acquisition of tomography images without the need of subject movement.
反射聚焦与相控阵波束形成相结合的微波诊断与治疗
在本文中,我们继续我们最近报道的工作,利用导电椭球反射器的聚焦特性,结合定向相控天线配置,以实现在微波频率下的诊断和治疗。上述两个模块都是混合微波辐射测量和热疗系统的一部分,该系统包括一个对称轴椭球形导电壁腔,可确保必要的波束形成并聚焦于感兴趣的身体/大脑区域。该系统以完全非侵入式非接触式方式运行,提供温度和/或电导率变化监测,同时还可以提供热疗治疗。最近,使用贴片天线作为接收或发射元件对系统聚焦特性的影响,特别是使用双元件相控阵设置来实现被测量区域的扫描进行了研究。本文采用四元天线装置,对整个椭球面反射镜内部和两种人体头部模型内部的电场分布进行了广泛的仿真计算。结果表明,在1GHz的频率下,头部模型内部可以实现清晰的对焦(产生“热点”)。在四单元天线的情况下,“热点”在感兴趣的大脑区域周围进行线性扫描,而四个天线单元的相位值显着影响头部模型内部扫描的方式。所提出的装置增强和增加了聚焦区域的尺寸和扫描,从而在不需要受试者移动的情况下获得断层成像图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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