Measurements of complex permittivity with waveguide resonator using perturbation technique

Author(s):  
M. Hajian ◽  
K. T. Mathew ◽  
L. P. Ligthart
2016 ◽  
Vol 723 ◽  
pp. 154-159
Author(s):  
En Li ◽  
Shu Ke Hao ◽  
Yun Peng Zhang ◽  
Yong Gao

A double-ridge waveguide resonator loaded with rod like dielectric material was analyzed based on the electromagnetic simulation software HFSS and microwave resonant cavity perturbation technique in this paper. The perturbation method is used to calculate the complex permittivity of the material due to the change of the resonator's tiny change. The calculation expression of complex permittivity was deduced and proper test system was built for the validation at several specific frequencies, the resonant parameters of the cavity were measured by the external Agilent vector network analyzer, according to the calibration of standard quartz sample, the complex permittivity of the quartz, sapphire and PTFE samples were calculated. Experimental result showed that the method has a good performance for measuring the complex permittivity of low dielectric loss dielectric materials.


Sensors ◽  
2018 ◽  
Vol 18 (11) ◽  
pp. 4005 ◽  
Author(s):  
Zhihua Wei ◽  
Jie Huang ◽  
Jing Li ◽  
Guoqing Xu ◽  
Zongde Ju ◽  
...  

In this study, a novel non-invasive and contactless microwave sensor using a square substrate integrated waveguide (SIW) re-entrant cavity is proposed for complex permittivity measurement of chemical solutions. The working principle of this sensor is based on cavity perturbation technique, in which the resonant properties of cavity are utilized as signatures to extract the dielectric information of liquid under test (LUT). A winding microfluidic channel is designed and embedded in the gap region of the cavity to obtain a strong interaction between the induced electric field and LUT, thus achieving a high sensitivity. Also, a mathematical predictive model which quantitatively associates the resonant properties of the sensor with the dielectric constant of LUT is developed through numerical analysis. Using this predictive model, quick and accurate extraction of the complex permittivity of LUT can be easily realized. The performance of this sensor is then experimentally validated by four pure chemicals (hexane, ethyl acetate, DMSO and water) together with a set of acetone/water mixtures in various concentrations. Experimental results demonstrate that the designed sensor is capable of characterizing the complex permittivities of various liquids with an accuracy of higher than 96.76% (compared with the theoretical values obtained by Debye relaxation equations), and it is also available for quantifying the concentration ratio of a given binary mixture.


2014 ◽  
Vol 590 ◽  
pp. 629-633 ◽  
Author(s):  
Qian Chen ◽  
Yang Yang ◽  
Ka Ma Huang ◽  
Cheng Chen ◽  
Kai Yong Wang

Effective complex permittivity measurements of materials are important in microwave engineering and microwave chemistry. This paper describes a convenient laboratory method designed to obtain the permittivity for some materials. The hole for temperature measurement has been designed. The permittivity of materials at deferent temperature can be measured. The measurement results of the real part and imaginary part of the permittivity agree well with literature data at 2.45GHz.


2014 ◽  
Vol 1052 ◽  
pp. 427-432
Author(s):  
Kun Peng Tian ◽  
Gao Feng Guo ◽  
Jun Hu Wang ◽  
En Li

A novel cavity perturbation technique utilizing open-ended coaxial resonator is presented in order to measure the complex permittivity of insulating substrates at microwave frequencies. This technique can afford quite high accurate measurement results without singularities, and simply. According to the operation frequency of the resonator, the geometric parameters of the resonator are designed. Based on the perturbation technique, a new formulaic method of data analysis has been proposed which can extract complex permittivity of samples, and with the resonant frequency and the quality factor shift, one can calculate the complex permittivity of the measured materials. Experiment has been conducted with the quartz and sapphire to verify the formulaic, and the test results fully verify the correctness of the proposed method.


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