人脑幻象模型对5.8 GHz偶极子天线性能的影响

Septian Wahyu Kusuma Wardhani, Basari, F. Zulkifli, E. Rahardjo
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引用次数: 3

摘要

如今,许多常用的无线设备要么戴在身上,要么紧贴身体。这些设备是为活动或生命体征监测等应用而设计的,通常使用蓝牙/Zigbee技术在以身体为中心的无线通信系统(BWCS)下与外部设备通信。此外,目前,微波层析成像(MWT)系统因其便携、经济、无创的特点而受到广泛的研究。无论是用于BWCS的可穿戴式和可植入式天线,还是用于MWT系统的天线/阵列,都不可避免地要对人体与电磁波的相互作用进行研究。电磁相互作用主要包括两种方式:人体对天线性能的影响和电磁波对人体的影响。本文针对这一现象,设计了两种针对头部体的数值模型,即均匀体模型和5.8 GHz多层体模型。对于头部均质幻影,它被设置为一个模拟头骨的组织,其介电常数和电导率都被设置为5.8 GHz。多层头部幻影由皮肤、脂肪、颅骨、脑脊液、大脑和肌肉六层构成。在本文中,我们将偶极子放置在头部模型附近,研究了由于电磁场相互作用,这些模型对其5.8 GHz性能的影响。结果表明:与自由空间模拟相比,偶极子天线在靠近头模体的位置有低频偏移的趋势;此外,模体的结构对偶极子的波束宽度有显著影响。最后,可以得出不同结构的组织模拟模型,由于每种结构的吸收特性不同,会影响不同的现象。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of human head phantom models on the performance of dipole antenna at 5.8 GHz
Many wireless devices in common use today are worn either on or in close proximity to the body. Those devices are designed for applications such as activity or vital-signs monitoring, typically using Bluetooth/Zigbee technology to communicate with external devices under body-centric wireless communications system (BWCS). In addition, currently, microwave tomography (MWT) system is widely researched since it offers a portable, affordable and non-invasively modality. Study on interaction between the human body and electromagnetic (EM) waves inevitably must be evaluated for wearable and implantable antennas for BWCS or antennas/array for MWT system. Basically, the EM interaction includes two ways: an influence of the human body on the performance of antennas and an influence of EM waves on the human body. This paper studies on such phenomenon by designing two numerical phantom models particularly for head phantom, i.e. a homogeneous phantom model and multilayer phantom at 5.8 GHz. As for the head homogeneous phantom, it is set as a skull-mimicking tissue, whose permittivity and conductivity are set equally at 5.8 GHz. The multilayer head phantom is constructed by six layers namely skin, fat, skull, CSF (cerebrospinal fluid), brain and muscle. In this paper, a dipole is then put in proximity to the head phantom models for investigating the influence of such models on its performances at 5.8 GHz due to EM field interaction. The results show that the frequency center of dipole antenna tends to shift at lower frequency when situated close to the head phantom, comparing to the simulation in free space. Moreover, the width of beam-pattern of the dipole is significantly affected by phantom's structure. Finally, it can be stated that different structure of tissue-mimicking model will affect different phenomenon due to absorption properties for each structure.
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