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An enhanced adaptive data processing Technique for computing synchrophasor measurements under power system frequency variation

机译:一种增强的自适应数据处理技术,用于计算电力系统频率变化下的同步素测量

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This work proposes a frequency-adaptive data processing technique for reliable synchrophasor measurements estimation under power system frequency variation. The proposed technique consists of four steps in which frequency estimation, filtering process, fast linear interpolation, and Radix-2 decimation-in-time (DIT) fast Fourier transform (FFT) approach are applied in a synergistic manner to provide accurate synchrophasor estimates. The sampling rate remains unchanged and the frequency measurement is estimated from the classical weighted least-squares approach, filtering process is executed by a Finite Impulse Response (FIR) filter bank, composed by lowpass and bandpass filters, whose goal is to separate all input signal harmonic components. The digital filter bank's size is limited by the desired harmonic component imposed by the 3-dB cut-off frequency, related to the analog anti-aliasing lowpass filter, and an optimized design has been employed to obtain symmetric coefficients and odd length (type 1 FIR filter). Fast linear interpolation based on trigonometric identities, using adaptive-angles related to the estimated frequency, is applied at each filter output data whose outcomes are used by the half-cycle Radix-2 DIT FFT approach to provide raw data in which the corrected synchrophasor measurements are obtained after the filter phase and amplitude compensations. The proposed technique aims also to evaluate the impact of the frequency variation on each harmonic component present in the input signal. Test signals with ±3 Hz offset-nominal corrupted by harmonics components are applied to evaluate the technique's performance and the results demonstrate its capability in dealing efficiently with signals corrupted by spurious frequencies, being envisaged for potential applications involving M-Class PMU model.
机译:该工作提出了一种用于在电力系统频率变化下可靠的同步擦手测量估计的频率自适应数据处理技术。所提出的技术由四个步骤组成,其中频率估计,过滤过程,快速线性插值和基数-2抽取时间(DIT)快速傅立叶变换(FFT)方法以协同方式应用,以提供准确的同步验证估计。采样率保持不变,并且从经典加权最小二乘法估计频率测量,过滤过程由有限脉冲响应(FIR)滤波器组执行,由Lowpass和带通滤波器组成,其目标是分离所有输入信号谐波成分。数字滤波器组的尺寸受到与模拟抗混叠低通滤波器相关的3dB截止频率施加的所需谐波分量的限制,并且已经采用了优化的设计来获得对称系数和奇数长度(类型1 FIR滤波器)。基于三角函数的快速线性插值,使用与估计频率相关的自适应角度,在每个滤波器输​​出数据上应用,其结果由半周期基数-2 DIT FFT方法使用,以提供校正的同步素测量的原始数据在过滤阶段和幅度补偿之后获得。所提出的技术还旨在评估频率变化对输入信号中存在的每个谐波分量的影响。应用谐波组件±3 Hz偏移名义损坏的测试信号应用于评估技术的性能,结果表明其在有效地处理其与杂散频率损坏的信号的能力,以便涉及涉及M类PMU模型的潜在应用。

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