含Sigma-Delta ADC的电能质量测量通道的幅度响应校正方法

A. Serov, A. Shatokhin, Ivan P. Konchalovsky
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引用次数: 1

摘要

目前,领先的集成电路制造商生产Sigma-Delta adc,专注于作为电能质量(PQ)测量通道仪器的一部分的应用。这种ADC的幅度响应由内置数字滤波器决定,通常采用级联积分器梳状(CIC)滤波器结构。然而,该滤波器的幅值响应(从低通滤波器函数的角度来看)没有所需的参数:滤波器在通带中具有幅值响应(MR)的斜率,并且在通带和阻带之间具有相对较大的带宽。本文考虑了校正PQ仪器测量通道中Sigma-Delta ADC幅度响应方法的两种变体。第一种方法涉及应用单个校正数字滤波器来补偿Sigma-Delta ADC通带纹波,并减少通带和阻带之间的带宽。第二种方法是应用两个校正数字滤波器,其中一个补偿ADC通带纹波,另一个降低阻带频率。考虑的两种选择都假定应用了Matlab内置函数。考虑了两种方法的校正滤波器系数的计算方法。通过仿真建模,得到了包含CIC滤波器和补偿滤波器的PQ仪器测量通道的特性。考虑了在Simulink软件包中对PQ仪器测量通道进行建模的可能性。以PQ测量通道为例,分析了cic滤波器、滤波补偿器和数据格式转换模块的建模特点。
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Correction Methods of the Magnitude Response of the Power Quality Measurement Channel Containing a Sigma-Delta ADC
Currently, the leading manufacturers of integrated circuits produce Sigma-Delta ADCs, focused on the application as a part of a measurement channels of power quality (PQ) instruments. The magnitude response of such an ADC is determined by a built-in digital filter, usually with an cascaded integrator-comb (CIC) filter structure. However, the magnitude response of this filter (from the point of view of the low-pass filter function) do not have the required parameters: the filter has a slope of the magnitude response (MR) in the passband and a relatively large bandwidth between passband and stopband. In this article, two variants of the method for correcting the Sigma-Delta ADC magnitude response which is a part of PQ instrument measurement channel are considered. The first approach involves the application of a single corrective digital filter that compensates the Sigma-Delta ADC passband ripple and reduces the bandwidth between passband and stopband. The second approach involves the application of two corrective digital filters, one of which compensates the ADC passband ripple, and the other one reduces the stopband frequency. Both options considered assume the application of Matlab built-in functions. The methods for calculating the coefficients of the correcting filters are considered for both approaches. By the application of simulation modeling, the characteristics of the PQ instrument measurement channel, which contains the CIC filter and the compensating filter, are obtained. The possibility of modeling the PQ instrument measuring channel in the Simulink software package is considered. The features of modeling of the blocks of the CIC-filter, filter-compensator and data format conversion for the case of the PQ measurement channel are analyzed.
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