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Capacitive Impedance Measurement: Dual-frequency Approach

机译:电容阻抗测量:双频方法

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摘要

The most widely used technique for measuring capacitive impedances (or complex electrical permittivity) is to apply a frequency signal to the sensor and measure the amplitude and phase of the output signal. The technique, although efficient, involves high-speed circuits for phase measurement, especially when the medium under test has high conductivity. This paper presents a sensor to measure complex electrical permittivity based on an alternative approach to amplitude and phase measurement: The application of two distinct frequencies using a current-to-voltage converter circuit based in a transimpedance amplifier, and an 8-bit microcontroller. Since there is no need for phase measurement and the applied frequency is lower compared to the standard method, the circuit presents less complexity and cost than the traditional technique. The main advance presented in this work is the use of mathematical modeling of the frequency response of the circuit to make it possible for measuring the dielectric constant using a lower frequency than the higher cut-off frequency of the system, even when the medium under test has high conductivity (tested up to 1220 μS/cm). The proposed system caused a maximum error of 0.6% for the measurement of electrical conductivity and 2% for the relative dielectric constant, considering measurement ranges from 0 to 1220 μS/cm and from 1 to 80, respectively.
机译:测量电容性阻抗(或复数介电常数)的最广泛使用的技术是将频率信号施加到传感器,并测量输出信号的幅度和相位。该技术虽然有效,但涉及用于相位测量的高速电路,尤其是在被测介质具有高电导率的情况下。本文提出了一种基于振幅和相位测量的替代方法来测量复介电常数的传感器:使用基于互阻放大器的电流-电压转换器电路和8位微控制器来应用两个不同的频率。与标准方法相比,由于不需要相位测量并且所施加的频率更低,因此该电路的复杂性和成本均低于传统技术。这项工作的主要进展是使用电路频率响应的数学模型,即使在被测介质中,也可以使用比系统更高的截止频率更低的频率来测量介电常数。具有高电导率(经测试高达1220μS/ cm)。考虑到测量范围分别为0至1220μS/ cm和1至80,建议的系统对电导率的测量造成的最大误差为0.6%,对相对介电常数的误差为2%。

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