<div class="csl-bib-body">
<div class="csl-entry">Montero, E. R., Vogelsberger, M., Teppan, W., & Wolbank, T. (2021). Sensorless Saliency Extraction using Quadratic-Regression-based Current Derivative Estimation. In <i>2021 IEEE International Electric Machines & Drives Conference (IEMDC)</i>. 2021 IEEE International Electric Machines and Drives Conference (IEMDC), Hartford, CT, United States of America (the). IEEE. https://doi.org/10.1109/iemdc47953.2021.9449558</div>
</div>
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/91381
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dc.description.abstract
Stable field oriented control of induction machines in the proximity of zero electrical frequency relies on the extraction of machine saliencies for rotor flux/positon acquisition. To obtain such saliency information, voltage step excitation methods can be used. They excite the machine with a voltage step caused by the inverter and calculate the resulting phase current derivative, which contains several terms including the superposition of saliency components. Multiple strategies have been used to calculate the current derivative, such as FFT, neural networks, or linear regression. However, they do not take into account the influence of a curvature of the current response. This paper proposes using a least-square quadratic regression to calculate machine saliency information. In this sense, the linear response of the phase current can be accurately isolated from the inherent curvature. It will be proved by experimental measurements that the different saliencies' components are observed in both the second order and also first order term of the quadratic regression function. A performance comparison between linear regression and quadratic regression will be shown in terms of saliency acquisition.
en
dc.language.iso
en
-
dc.title
Sensorless Saliency Extraction using Quadratic-Regression-based Current Derivative Estimation
en
dc.type
Konferenzbeitrag
de
dc.type
Inproceedings
en
dc.relation.publication
2021 IEEE International Electric Machines & Drives Conference (IEMDC)
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dc.contributor.affiliation
LEM Advisory Services SA, Switzerland
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dc.relation.isbn
9781665405102
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dc.relation.doi
10.1109/iemdc47953.2021
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dc.type.category
Full-Paper Contribution
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tuw.booktitle
2021 IEEE International Electric Machines & Drives Conference (IEMDC)
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tuw.peerreviewed
true
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tuw.relation.publisher
IEEE
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tuw.publication.orgunit
E370-02 - Forschungsbereich Antriebe und Leistungselektronik
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tuw.publisher.doi
10.1109/iemdc47953.2021.9449558
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dc.description.numberOfPages
6
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tuw.author.orcid
0000-0001-8823-5565
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tuw.event.name
2021 IEEE International Electric Machines and Drives Conference (IEMDC)
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tuw.event.startdate
17-05-2021
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tuw.event.enddate
20-05-2021
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tuw.event.online
On Site
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tuw.event.type
Event for scientific audience
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tuw.event.place
Hartford, CT
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tuw.event.country
US
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tuw.event.presenter
Montero, Eduardo Rodriguez
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wb.sciencebranch
Elektrotechnik, Elektronik, Informationstechnik
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wb.sciencebranch
Maschinenbau
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wb.sciencebranch.oefos
2020
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wb.sciencebranch.oefos
2030
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wb.facultyfocus
System- und Automatisierungstechnik
de
wb.facultyfocus
System and Automation Engineering
en
wb.facultyfocus.faculty
E350
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item.openairecristype
http://purl.org/coar/resource_type/c_5794
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item.openairetype
conference paper
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item.fulltext
no Fulltext
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item.languageiso639-1
en
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item.grantfulltext
none
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item.cerifentitytype
Publications
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crisitem.author.dept
E370-02 - Forschungsbereich Elektrische Antriebe und Maschinen
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crisitem.author.dept
E370-02 - Forschungsbereich Elektrische Antriebe und Maschinen
-
crisitem.author.dept
LEM Advisory Services SA, Switzerland
-
crisitem.author.dept
E370-02 - Forschungsbereich Elektrische Antriebe und Maschinen
-
crisitem.author.orcid
0000-0001-8835-1312
-
crisitem.author.orcid
0000-0001-8823-5565
-
crisitem.author.parentorg
E370 - Institut für Energiesysteme und Elektrische Antriebe
-
crisitem.author.parentorg
E370 - Institut für Energiesysteme und Elektrische Antriebe
-
crisitem.author.parentorg
E370 - Institut für Energiesysteme und Elektrische Antriebe