Vivaldi Tapered Slot Antenna for Microwave Imaging in Medical Applications

Randy Ivanal Hakim, Daffa Mahendra, E. Endarko
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Abstract

Microwave imaging has become an active research area in recent years, owing primarily to advancements in detecting the early stages of cancer. The study aimed to create a high-gain compact Vivaldi Tapered Slot antenna (VTSA) for microwave imaging in medical applications and also aims to address several challenges in the development of microwave imaging (MWI) technology for medical applications. These challenges include the ability to detect and identify abnormalities in human tissue and considering safe Specific Absorption Rate (SAR) limits for patients, the approach of balancing of penetration and resolution can be done on the design. The antenna operates at frequencies ranging from 1.7 to 3.1 GHz and is built on a low-cost Flame Retardant-4 (FR-4) substrate with a thickness of 1.6 mm. A compact exponential VTSA is initially presented while designing the proposed antenna for broad impedance bandwidth performances. The simulation used a back-to-back linear array of antennas with or without a phantom, specifically a without phantom (only antennas), a water phantom (cube shape), and an anomaly inside the water phantom. The results revealed a significant shift in the signal graph between the three results, indicating a difference in values between the three simulations. A transient domain solver calculation was used in the simulation. The designed antenna improved a gain of 6.09 dBi and a SAR of 0.326 W/kg by maximizing the edges of the exponential in the tapered section and the feedline slot area. The antenna exhibits differences in scattering parameters on each simulation of anomalies across the required frequency range. The result finds suitability of the experiment and simulation in assessing the microwave imaging capabilities. With the data presented, simulated antennas can be used for microwave imaging. The next study should aim on making a suitable imaging system with dimensions that supported in the antenna range and specifications.
用于医疗应用微波成像的 Vivaldi 锥形槽天线
近年来,微波成像已成为一个活跃的研究领域,主要原因是在检测癌症早期阶段方面取得了进展。这项研究旨在为医疗应用中的微波成像创建一种高增益紧凑型维瓦尔第锥形槽天线(VTSA),同时也旨在解决医疗应用中微波成像(MWI)技术发展所面临的若干挑战。这些挑战包括检测和识别人体组织异常的能力,以及考虑到病人的安全比吸收率(SAR)限制,在设计中平衡穿透力和分辨率的方法。该天线的工作频率为 1.7 至 3.1 千兆赫,采用厚度为 1.6 毫米的低成本阻燃-4(FR-4)基板。在设计具有宽阻抗带宽性能的拟议天线时,最初提出了一种紧凑型指数 VTSA。仿真使用了一个背靠背线性天线阵列,该阵列可带或不带幻影,特别是不带幻影(仅天线)、水幻影(立方体形状)和水幻影内的异常点。结果显示,三种结果之间的信号图出现了明显的偏移,表明三种模拟之间的数值存在差异。模拟中使用了瞬态域求解器计算。通过最大化锥形部分和馈线槽区域的指数边缘,设计的天线提高了 6.09 dBi 的增益和 0.326 W/kg 的 SAR。天线在所需频率范围内的每个模拟异常散射参数上都存在差异。结果发现实验和模拟在评估微波成像能力方面的适用性。根据所提供的数据,模拟天线可用于微波成像。下一步研究的目标应该是制作一个合适的成像系统,其尺寸应符合天线的范围和规格。
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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