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Hall effect current transducer characterization under nonsinusoidal conditions (Contributo in atti di convegno)
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- Hall effect current transducer characterization under nonsinusoidal conditions (Contributo in atti di convegno) (literal)
- Anno
- 2009-01-01T00:00:00+01:00 (literal)
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#doi
- 10.1109/IMTC.2009.5168423 (literal)
- Alternative label
A.Cataliotti, D. Di Cara, S. Nuccio, A. E. Emanuel, (2009)
Hall effect current transducer characterization under nonsinusoidal conditions
in 2009 IEEE Intrumentation and Measurement Technology Conference, I2MTC 2009, Singapore, 05-07/05/2009,
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- A.Cataliotti, D. Di Cara, S. Nuccio, A. E. Emanuel, (literal)
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- cited By (since 1996)1; Conference of org.apache.xalan.xsltc.dom.DOMAdapter@6b0b0387 ; Conference Date: org.apache.xalan.xsltc.dom.DOMAdapter@2014caf8 Through org.apache.xalan.xsltc.dom.DOMAdapter@3519703c; Conference Code:78053 (literal)
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- Department of Electrical, Electronic and Telecommunication Engineering, Università di Palermo, Viale delle Scienze, 90128 Palermo, Italy; Department of Electrical and Computer Engineering, Worcester Polytechnic Institute, 100 Institute Road, Worcester, MA 01609, United States (literal)
- Titolo
- Hall effect current transducer characterization under nonsinusoidal conditions (literal)
- Http://www.cnr.it/ontology/cnr/pubblicazioni.owl#isbn
- Abstract
- The performance of Hall effect current transducers (HECT), under distorted waveform conditions, are usually characterized by means of the frequency response test. In this paper it was investigated if the frequency response is able to correctly evaluate the ratio and the phase errors under distorted conditions. A set of experimental measurements were carried out by comparing the frequency response with test conditions closer to real operation conditions. Two HECTs were characterized under two conditions: 1. sinusoidal excitation with frequencies from 30 to 800 Hz; 2. nonsinusoidal excitation using fundamental frequency and one harmonic, with adjusted phase shift. It was found that ratio and phase errors are weakly affected by the phase angle between the harmonic and the fundamental. Moreover, the effect of conductor location in the HECT window was also investigated. Harmonic phase and ratio errors depend on the position of the primary conductor in the window. These results suggest that the frequency response approach for the evaluation of HECT performance, under distorted waveform conditions, can be used for a error compensation method only if the position of the primary conductor is known. © 2009 IEEE. (literal)
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