DocumentCode :
666132
Title :
A new design method of full-order extended electromotive force observer for position sensorless control of IPMSM
Author :
Nohara, S. ; Tomita, Masaru ; Hasegawa, Mikio ; Doki, Shinji ; Kato, Shigeo
Author_Institution :
Dept. of Electr. & Electron. Eng., Kyoto Univ., Kyoto, Japan
fYear :
2013
fDate :
10-13 Nov. 2013
Firstpage :
2512
Lastpage :
2517
Abstract :
Several position sensorless control methods of PMSMs(Permanent Magnet Synchronous Motors) using the full-order observers have been proposed. However, the designs of the full-order observers are difficult, because the error equations of the observers become one of the fourth order. On the other hand, the the extended electromotive force(eemf) model which can be applied to all synchronous motors included Syn-RMs(Synchronous reluctance motors) had been proposed by authors, for the position sensorless control of IPMSMs(Interior Permanent Magnet Synchronous Motors). A full-order observer based on the eemf model(full-order eemf observer) which can be applied to the position sensorless control of all synchronous motors included SynRMs(Synchronous reluctance motors) have been proposed by authors. However, the design of a full-order eemf observer is also difficult. Therefore, this paper proposes a design method of the full-order eemf observer with the objective of the robust position estimation against the velocity estimation error using H control theory. Moreover, a new design method of the more robust full-order eemf observer is proposed by restudying the error system of the observer, and the simulation results and the experimental results show that a new design method of full-order eemf observer is very useful.
Keywords :
H control; angular velocity control; control system synthesis; electric potential; estimation theory; force control; observers; permanent magnet motors; position control; reluctance motors; robust control; sensorless machine control; synchronous motors; EEMF model; H control theory; IPMSM; PMSM; SynRM; full-order extended electromotive force observer; interior permanent magnet synchronous motor; permanent magnet synchronous motor; position sensorless control method; robust position estimation; synchronous reluctance motor; velocity estimation error; Design methodology; Equations; Estimation error; Mathematical model; Observers; Robustness; Sensorless control;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Industrial Electronics Society, IECON 2013 - 39th Annual Conference of the IEEE
Conference_Location :
Vienna
ISSN :
1553-572X
Type :
conf
DOI :
10.1109/IECON.2013.6699526
Filename :
6699526
Link To Document :
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