Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current

In Permanent Magnet (PM) machines, a turn-turn Short-Circuit (SC) fault is the most critical fault to eradicate. The fault introduces high SC current in the shorted turn which may consequently lead to secondary faults unless the fault is appropriately controlled. This paper proposes feasible conduct...

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Main Author: Arumugam, Puvaneswaran
Format: Article
Published: IEEE 2016
Subjects:
Online Access:https://eprints.nottingham.ac.uk/36116/
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author Arumugam, Puvaneswaran
author_facet Arumugam, Puvaneswaran
author_sort Arumugam, Puvaneswaran
building Nottingham Research Data Repository
collection Online Access
description In Permanent Magnet (PM) machines, a turn-turn Short-Circuit (SC) fault is the most critical fault to eradicate. The fault introduces high SC current in the shorted turn which may consequently lead to secondary faults unless the fault is appropriately controlled. This paper proposes feasible conductors’ placement in a slot of PM machine to minimize such turn-turn fault current. In order to minimize the fault current, the conductor arrangement in a slot is optimized using multi-objective Genetic Algorithm (GA) incorporating with both analytical and Finite Element (FE) numerical tool. The possible combinations of conductors’ placement are set as variables and optimized for a given machine which is designed for safety critical applications. It is shown that the fault current associated to a single turn fault can be significant for the random winding placement even though the remedial strategies are put in place. It is also shown that the fault current can be limited significantly by rearranging the winding placement in a way to share slot-leakage fluxes. This is confirmed via experiment on E-core. Influences of the winding arrangement on both frequency dependent resistances and windings capacitances are experimented. It is demonstrated that adopting the winding arrangement that shares the slot-leakage flux effectively benefits to minimize the AC losses in addition to improved fault tolerance. But it increases the turn-turn capacitances whose effect however can be neglected as the resonance frequency occurs beyond the operational frequency range of the machines of interest
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spelling nottingham-361162020-05-04T17:32:37Z https://eprints.nottingham.ac.uk/36116/ Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current Arumugam, Puvaneswaran In Permanent Magnet (PM) machines, a turn-turn Short-Circuit (SC) fault is the most critical fault to eradicate. The fault introduces high SC current in the shorted turn which may consequently lead to secondary faults unless the fault is appropriately controlled. This paper proposes feasible conductors’ placement in a slot of PM machine to minimize such turn-turn fault current. In order to minimize the fault current, the conductor arrangement in a slot is optimized using multi-objective Genetic Algorithm (GA) incorporating with both analytical and Finite Element (FE) numerical tool. The possible combinations of conductors’ placement are set as variables and optimized for a given machine which is designed for safety critical applications. It is shown that the fault current associated to a single turn fault can be significant for the random winding placement even though the remedial strategies are put in place. It is also shown that the fault current can be limited significantly by rearranging the winding placement in a way to share slot-leakage fluxes. This is confirmed via experiment on E-core. Influences of the winding arrangement on both frequency dependent resistances and windings capacitances are experimented. It is demonstrated that adopting the winding arrangement that shares the slot-leakage flux effectively benefits to minimize the AC losses in addition to improved fault tolerance. But it increases the turn-turn capacitances whose effect however can be neglected as the resonance frequency occurs beyond the operational frequency range of the machines of interest IEEE 2016-01-11 Article PeerReviewed Arumugam, Puvaneswaran (2016) Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current. IEEE Transactions on Magnetics, 52 (5). ISSN 0018-9464 Electric Fault Tolerance Genetic Algorithm Mitigation Optimization Permanent magnet Reliability Short-Circuit http://ieeexplore.ieee.org/document/7378315/?arnumber=7378315&tag=1 doi:10.1109/TMAG.2016.2516504 doi:10.1109/TMAG.2016.2516504
spellingShingle Electric
Fault Tolerance
Genetic Algorithm
Mitigation
Optimization
Permanent magnet
Reliability
Short-Circuit
Arumugam, Puvaneswaran
Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current
title Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current
title_full Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current
title_fullStr Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current
title_full_unstemmed Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current
title_short Design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current
title_sort design optimization on conductor placement in the slot of permanent magnet machines to restrict turn-turn short-circuit fault current
topic Electric
Fault Tolerance
Genetic Algorithm
Mitigation
Optimization
Permanent magnet
Reliability
Short-Circuit
url https://eprints.nottingham.ac.uk/36116/
https://eprints.nottingham.ac.uk/36116/
https://eprints.nottingham.ac.uk/36116/