各种衍射效应及其在人体组织非均匀性检测中的重要性

IF 0.6 Q4 ENGINEERING, ELECTRICAL & ELECTRONIC
N. Petrovic, P. Risman
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引用次数: 1

摘要

迄今为止描述的用于检测人体组织(如乳房和头部)内部不均匀性的微波模式是通过图像重建,需要耗时的计算资源。MDH开发的方法是基于磁场换能器的使用,产生一个本质上是圆形的电场。这又被介电不均匀性衍射,信号被一个在适当位置的电场传感器接收。传输应用器的独特之处在于不需要接触所研究的对象(ou),也不会在其上产生任何表面波。初级磁场具有来自磁单极子的性质。接收三维接触涂敷器包含高介电常数陶瓷,并且谐振以提供所需的场极化灵敏度。通过优化利用原磁场、感应电场和衍射电场的正交性,实现了所需的系统特性。关键词:衍射,磁场,施加器,内部不均匀性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Various diffraction effects and their importance for detection of inhomogeneites in human tissues
Hitherto described microwave modalities for detection of internal inhomogeneities in human tissues such as breasts and heads are by image reconstruction, requiring time-consuming computational resources. The method developed at MDH is instead based on the use of a magnetic field transducer, creating an essentially circular electrical field. This is in turn diffracted by the dielectric inhomogenity and that signal is received by an E-field sensor in an appropriate position. The transmitting applicator is unique by no need to contact the object under study (OUS) and does not generate any surface waves at it. The primary field has properties behaving as coming from a magnetic monopole. The receiving 3D contacting applicator contains a high-permittivity ceramic and is resonant in order to provide the desired field polarisation sensitivity. The desired system properties are achieved by optimized use of the orthogonality properties of the primary magnetic, induced electric, and diffracted electric fields. Key words: Diffraction, magnetic field, applicator, internal inhomogeneity.
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来源期刊
Facta Universitatis-Series Electronics and Energetics
Facta Universitatis-Series Electronics and Energetics ENGINEERING, ELECTRICAL & ELECTRONIC-
自引率
16.70%
发文量
10
审稿时长
20 weeks
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