Frequency-Insensitive Rotor Position Estimation Method for Three-Stage Synchronous Machine Based on Indirect High-Frequency Signal Injection | IEEE Journals & Magazine | IEEE Xplore

Frequency-Insensitive Rotor Position Estimation Method for Three-Stage Synchronous Machine Based on Indirect High-Frequency Signal Injection


Abstract:

A frequency-insensitive rotor position estimation method for the three-stage synchronous machine (TSM) in the starting procedure is proposed in this article, where the hi...Show More

Abstract:

A frequency-insensitive rotor position estimation method for the three-stage synchronous machine (TSM) in the starting procedure is proposed in this article, where the high-frequency signals (HFSs) are injected into the main exciter (ME), and response signals for the rotor position estimation are extracted from the main generator (MG). Due to the specific structure, the frequency of the response HFSs is distorted by the intermediate links of the ME and rotating rectifier, the frequency-response characteristics of the response signals with information of rotor position are analyzed, and the frequency-insensitive demodulation method for the rotor position estimation based on the second-order generalized integrator (SOGI) is given. Finally, the simulation and experiment results are implemented to verify the effectiveness and feasibility of the proposed frequency-insensitive rotor position estimation method for TSM.
Published in: IEEE Transactions on Transportation Electrification ( Volume: 8, Issue: 2, June 2022)
Page(s): 1785 - 1793
Date of Publication: 27 September 2021

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I. Introduction

As one of the core technologies of more electric aircraft (MEA), the integrated starters/generators (ISGs) with the combination of the traditional starter for engine cranking and electrical power generation have the obvious advantages in weight and volume reduction, and the system architecture could also be simpler and more reliable [1], [2]. As the candidates of the ISG in the aviation applications, such as a three-stage synchronous machine (TSM) [3]–[5], a permanent magnet synchronous machine (PMSM) [6], [7], and a switched reluctance machine (SRM) [8], [9], TSM with the property of mature structure and simple control in generation mode has been most attractive in the realization of the integration of start and power generation, while, due to the combination structure with the permanent magnet auxiliary exciter, main exciter (ME), and main generator (MG), in order to achieve the engine cranking, the ac excitation with different windings arrangement methods should be applied to the ME [10], [11], and the accurate rotor position information is also acquired for MG in the starting control. Thus, the additional rotor position sensor should be installed for the TSM, while it will increase the axial size and the complexity of the rotor structure of TSM, and the corresponding power density and reliability will also be decreased. Besides, the complex environment and serious operating conditions of high-temperature, high-pressure, and high-intensity vibration will further deteriorate the accuracy and reliability of the position sensor and even cause damage. Moreover, since the starting operation just takes several minutes for engine cranking, then TSM works in the generation mode, which is the long-time running condition, where the rotor position sensor is not necessary.

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