Real-time electrical variables estimation based on recursive wavelet transform.
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| Title: | Real-time electrical variables estimation based on recursive wavelet transform. |
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| Authors: | Rahmati, A.1 arahmati@ieee.org, Adhami, R.2 rradhami@uah.edu, Dimassi, M.3 gte014z@gatech.edu |
| Source: | International Journal of Electrical Power & Energy Systems. Jun2015, Vol. 68, p170-179. 10p. |
| Subjects: | Recursive functions, Wavelet transforms, Phasor measurement, Algorithms, Electrical harmonics, Discrete Fourier transforms, Frequency deviation (Radio frequency modulation) |
| Abstract: | In frequency and phasor estimation algorithms, the undesired components are required to be filtered out from the original signals. In power systems, the undesired components are the decaying dc offset and harmonics. These components could cause delay in algorithm convergence time and deviation from the desired results to a great extent. This paper proposes a new recursive algorithm for accurate and fast estimation of the instantaneous electrical variables such as frequency, amplitude and phase angle. The new algorithm provides an improvement over the existing recursive wavelet transform and, therefore, it is called IRWT. The IRWT performance is compared with the commonly used full-cycle discrete Fourier transform (DFT) and the recursive wavelet transform (RWT) methods. Since it uses a special mother wavelet function, it reduces computational complexity compared to the conventional DFT based method. Compared to the recursive wavelet transform (RWT) method, it has a faster response time. It is shown that IRWT possesses an improvement over a wide range of decaying dc component, harmonic distortions, frequency deviation and sampling frequency compared to the previously proposed methods. This characteristic of IRWT makes it a good candidate for the real-time applications in any power systems. [ABSTRACT FROM AUTHOR] |
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| Database: | Engineering Source |
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