Mechanical flux weakening methods for the achievement of a very wide constant power speed range in automotive applications
Autor: | Jonida Cekani, Federico Caricchi, Fabio Giulii Capponi, Giulio De Donato |
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Jazyk: | angličtina |
Rok vydání: | 2022 |
Předmět: |
automotive applications
Computer science Automotive industry Energy Engineering and Power Technology Flux torque Automotive engineering inductance Range (aeronautics) mechanical flux weakening Torque Electrical and Electronic Engineering inverters automotive couplings engines permanent magnet rotors wide constant power speed range business.industry Flux linkage Electricity generation Magnet Current (fluid) business |
Popis: | Permanent Magnet Machines are widespread in the automotive industry, thanks to their high torque density and high efficiency. In automotive applications such as, for example, integrated starter alternators, a very wide Constant Power Speed Range is also required, for electricity generation on-board. To maintain a constant voltage, flux weakening must be employed during generation. With the conventional Electrical Flux Weakening methods, considerable amounts of current would have to be consumed to weaken the strong flux linkage from the magnets, which results on an efficiency decrease. Conversely, mechanical methods adjust the linked flux by manipulating the position of certain machine parts, avoiding the consumption of current. Thus, Mechanical Flux Weakening might be more suitable for the automotive applications, where a very wide Constant Power Speed Range is required, while preserving high levels of motoring torque capabilities. In the present Literature Review, various implementations of Mechanical Flux Weakening, from several authors, are analyzed and compared. The aim is to gain insight on the effectiveness of this method, in comparison with the electrical one, on fulfilling the mentioned automotive requirements. |
Databáze: | OpenAIRE |
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