Non-Destructive Testing Using Transmission Line-Based Microwave Sensors

Sanam Movazzafgharehbagh, Faruk Karadağ
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Abstract

In this study, some types of antennas and metamaterial structures have been designed and produced with the aim of determining and detecting ionized chlorine of sea sand in concrete. The first structure has a Loop-like resonator with the sample, the second structure has a Bowtie-shaped resonator with the sample and the third structure has double loop resonators on both sides of concrete samples also non-destructive method is applied for all structures. Different samples of concrete are produced with different proportions of ionized sea sand. Electrical properties of concrete samples for all structures are investigated in the frequency range of 1-9 GHz. The structures are designed in the CST Microwave Studio program. Also, the simulation study of the designed structures shows that the most important resonance frequency changes, considering the dielectric constant of concrete samples, for the Loop-like structure occur in the 1-8 GHz, Bowtie-shaped structure in 1-4 GHz and double Loop structure in 1-9 GHz of frequency band. The important point in this study is the changes of the waveform at the resonance frequency. The output waveform (reflection coefficient S11/ transmission coefficient S12) should change in linear form by considering the dielectric coefficient. We have used copper for the resonators and also the material with ℇ value of 3 as the substrate layers of the structures. We have simulated three types of designed structures with CST Microwave Software and then achieve the results and evaluate them. Both numerical and experimental tests have given approximately same results and are in good agreement with each other. These proposed structures can be used in many applications where it is necessary to determine the rate of ionized sea sand in cement-based composites such as concrete.
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使用基于传输线的微波传感器进行无损检测
本研究设计并制作了一些类型的天线和超材料结构,旨在确定和检测混凝土中海砂的电离氯。第一种结构是带有样品的环状谐振器,第二种结构是带有样品的弓形谐振器,第三种结构是混凝土样品两侧的双环谐振器,所有结构都采用了非破坏性方法。使用不同比例的电离海砂制作不同的混凝土样品。在 1-9 GHz 的频率范围内,对所有结构的混凝土样品的电特性进行了研究。这些结构是在 CST Microwave Studio 程序中设计的。对所设计结构的模拟研究还表明,考虑到混凝土样品的介电常数,环状结构最重要的共振频率变化发生在 1-8 GHz,弓形结构发生在 1-4 GHz,双环结构发生在 1-9 GHz 频段。本研究的重点是共振频率下的波形变化。考虑到介电系数,输出波形(反射系数 S11/ 传输系数 S12)应呈线性变化。我们使用铜作为谐振器,并使用ℇ 值为 3 的材料作为结构的基底层。我们用 CST 微波软件模拟了三种设计结构,然后对结果进行了评估。数值测试和实验测试得出的结果大致相同,并且相互吻合。这些建议的结构可用于许多需要确定水泥基复合材料(如混凝土)中电离海砂比率的应用中。
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