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A Novel Low Computational Burden Dual-Observer Phase-Locked Loop with Strong Disturbance Rejection Capability for More Electric Aircraft

Academic Article
Publication Date:
2021
abstract:
In the past two decades, much research and industry effort has been dedicated to transportation electrification. In particular, aerospace industry, with the more electric aircraft (MEA) revolution, is shifting toward the usage of electrical in place of mechanical energy on board to save fossil fuel and reduce polluting emissions. For this reason, phase-locked loops (PLLs) systems have been well developed for synchronizing different power sources and loads within the aircraft electrical grid. Since one of the proposed solutions for MEA power grids is to operate at variable frequency from 360 to 800 Hz, a third-order model-based steady-state linear Kalman filter PLL (SSLKF-PLL) has been proposed in the literature to achieve fast tracking performance during such grid frequency variations. To suppress the potential disturbances due to harmonics in the grid, sensor scaling errors/unbalances, and dc offsets while maintaining low computational burden, this article aims to enhance the disturbance rejection ability of SSLKF-PLL by adding a repetitive observer (RO). Simulation and experimental tests show that RO allows stable and effective suppression of disturbances from all the abovementioned sources during variable frequency operation. The execution time of the proposed PLL is only 4.23 μs using a Xilinx Zynq-7000-based platform, where the added RO takes 2.664 μs to execute, and the SSLKF-PLL alone takes 1.566 μs. © 1972-2012 IEEE.
Iris type:
1.1 Articolo in rivista
Keywords:
Aerospace industry; Disturbance rejection; Electric power transmission networks; Fossil fuels; Industrial research; Phase locked loops, Computational burden; Effective suppression; Experimental test; Linear Kalman filters; Mechanical energies; Polluting emission; Transportation electrifications; Variable frequencies, More electric aircraft; Fault tolerant control; more electric aircraft; phase-locked loops; power system harmonics; repetitive control
List of contributors:
Tang, M.; Bifaretti, S.; Pipolo, S.; Formentini, A.; Odhano, S.; Zanchetta, P.
Authors of the University:
ZANCHETTA PERICLE
Handle:
https://iris.unipv.it/handle/11571/1452469
Published in:
IEEE TRANSACTIONS ON INDUSTRY APPLICATIONS
Journal
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https://www.scopus.com/inward/record.uri?eid=2-s2.0-85105107700&doi=10.1109/TIA.2021.3075188&partnerID=40&md5=dce1c9ccc411a4ec0bc063bc45473cc7
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