不同输入功率下基于开放式同轴探头的不同介电常数材料感测深度分析

IF 4.3 2区 综合性期刊 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC
Guifeng Yang;Shaohua Zhou;Hui Huang;Jianhua Yang
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引用次数: 0

摘要

现有的研究仅定性地分析了开放式同轴探头的输入功率与感应深度的关系。随着科学技术的发展,介电常数的测量需要量化开放式同轴探头的输入功率与传感深度之间的关系。本文首次定量分析了不同功率和不同介电常数材料对探针传感深度的影响,推导出2.2 mm孔径探针的最大传感深度。更重要的是,为了更好地处理少量样品材料、薄材料和多层材料,并保证测量精度,我们还建立了传感深度计算模型。利用该模型的计算公式,可以快速准确地计算出不同介电常数材料在不同输入功率下探头的感应深度。这是业界首个开放式同轴探头传感深度的计算模型,为该方法的精确测量提供了有力的保证。最后,通过实验对模型公式进行了验证。结果表明,对于介电常数为1 ~ 80的材料,在−20 ~ 20 dBm (5.8 ghz频率)范围内,计算模型是准确有效的,2.2 mm孔径探头的最大探测深度为2.8 mm。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Sensing Depth Analysis of Different Permittivity Materials Based on Open-Ended Coaxial Probes at Different Input Powers
Existing studies have only qualitatively analyzed the relationship between input power and depth of induction of open-ended coaxial probe. Along with the development of science and technology, the measurement of permittivity requires the quantification of the relationship between the input power and the sensing depth of an open-ended coaxial probe. In this article, for the first time, the effect of different power and materials with different permittivity on the sensing depth of the probe is quantitatively analyzed and the maximum sensing depth of 2.2-mm aperture probe is derived. More importantly, to better handle small amounts of sample materials, thin and multilayer materials, and ensure measurement accuracy, we have also established a sensing depth calculation model. The calculation formula of the model can be used to quickly and accurately calculate the sensing depth of the probe for different permittivity materials under different input powers. This is the industry’s first computational model for the sensing depth of open-end coaxial probes, which provides a strong guarantee of the method’s accurate measurement. Finally, this article validates the model formulation for sensing depth calculation by experimental means. Results show that in the range of −20 to 20 dBm (5.8-GHz frequency) for materials with permittivity between 1 and 80, the computational model is accurately valid and that the maximum depth of sensing for a 2.2-mm aperture probe is 2.8 mm.
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来源期刊
IEEE Sensors Journal
IEEE Sensors Journal 工程技术-工程:电子与电气
CiteScore
7.70
自引率
14.00%
发文量
2058
审稿时长
5.2 months
期刊介绍: The fields of interest of the IEEE Sensors Journal are the theory, design , fabrication, manufacturing and applications of devices for sensing and transducing physical, chemical and biological phenomena, with emphasis on the electronics and physics aspect of sensors and integrated sensors-actuators. IEEE Sensors Journal deals with the following: -Sensor Phenomenology, Modelling, and Evaluation -Sensor Materials, Processing, and Fabrication -Chemical and Gas Sensors -Microfluidics and Biosensors -Optical Sensors -Physical Sensors: Temperature, Mechanical, Magnetic, and others -Acoustic and Ultrasonic Sensors -Sensor Packaging -Sensor Networks -Sensor Applications -Sensor Systems: Signals, Processing, and Interfaces -Actuators and Sensor Power Systems -Sensor Signal Processing for high precision and stability (amplification, filtering, linearization, modulation/demodulation) and under harsh conditions (EMC, radiation, humidity, temperature); energy consumption/harvesting -Sensor Data Processing (soft computing with sensor data, e.g., pattern recognition, machine learning, evolutionary computation; sensor data fusion, processing of wave e.g., electromagnetic and acoustic; and non-wave, e.g., chemical, gravity, particle, thermal, radiative and non-radiative sensor data, detection, estimation and classification based on sensor data) -Sensors in Industrial Practice
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