Characterization of a resonant system based on a rectangular waveguide with two diaphragms

I. V. Grymaliuk
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Abstract

Microwave methods for the study and control of the dielectric properties of substances using regular and irregular rectangular metal waveguides have many applications and are of great practical interest. The dielectric properties of materials are assessed based on the determination of the reflection and transmission coefficients in a resonant system. This article considers resonant phenomena of electromagnetic oscillations in a prismatic cavity based on a length of a rectangular waveguide with two diaphragms and with a dielectric specimen in the form of a cylinder centrally positioned between them. The goal of this work is to evaluate the resonant properties of a prismatic cavity based on a length of a rectangular waveguide with two diaphragms as a function of the geometrical dimensions of the rectangular diaphragm windows, the distance between the diaphragms, and the dimensions and dielectric properties of the specimen located at the center of the waveguide length. By computer simulation, the resonant properties of the system were determined as a function of the dielectric constant and diameter of the specimen and the geometrical dimensions of the diaphragm windows. It was found that for each value of the specimen diameter there exists a maximum allowable value of the dielectric constant at which the resonant properties of the system are kept in a selected operating frequency range. The effect of the height of the diaphragm windows on the resonant frequency of a prismatic cavity and the reflection and transmission coefficients was studied, and the behavior of the intrinsic Q factor was assessed qualitatively. A minimum possible diaphragm window height was found such that both the required coupling between the rectangular cavity and the external microwave line is provided and the maximum value of the loaded Q factor in the absence of a dielectric specimen is kept. The results of this work may be used in the design of high-frequency sensors for controlling the dielectric properties of materials in various industries.
基于双膜片矩形波导的谐振系统的特性
使用规则和不规则矩形金属波导研究和控制物质介电特性的微波方法有许多应用,具有很大的实际意义。材料的介电特性是基于谐振系统中反射系数和透射系数的测定来评估的。本文考虑了棱镜腔中电磁振荡的共振现象,该谐振现象是基于两个膜片的矩形波导的长度,以及介电样品以圆柱体的形式位于它们之间的中心位置。本工作的目的是评估基于两个横隔膜的矩形波导长度的棱镜腔的谐振特性,作为矩形横隔膜窗口的几何尺寸,横隔膜之间的距离以及位于波导长度中心的样品的尺寸和介电特性的函数。通过计算机模拟,确定了该系统的谐振特性是介电常数、试样直径和膜窗几何尺寸的函数。结果发现,对于试样直径的每一个值,存在一个最大允许值的介电常数,该介电常数使系统的谐振特性保持在选定的工作频率范围内。研究了隔振窗高度对棱镜腔谐振频率、反射系数和透射系数的影响,定性地评价了固有Q因子的行为。最小可能的隔膜窗高度是这样的,即提供了矩形腔和外部微波线之间所需的耦合,并且在没有介电样品的情况下保持了加载Q因子的最大值。本工作的结果可用于各种工业中控制材料介电特性的高频传感器的设计。
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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