Recurrent Adaptive NeuroFuzzy Paradigms

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Details

Vehicle stability and comfort of passenger is greatly in influenced by the uneven and bumpy roads. When visualizing the conventional semi-active and passive systems, they have fixed parameters and can not adapt with uneven roads. Main objective of this work is to get enhanced active suspension of the full car model. Mathematical modeling of full car model is evaluated and update parameter equations of the active controllers, i.e. Recurrent Fuzzy Wavelet Neural Network-1(a),Recurrent Fuzzy Wavelet Neural Network-1(b), Recurrent Fuzzy Wavelet Neural Network-2(a), Recurrent Fuzzy Wavelet Neural Network-2(b), Recurrent Fuzzy Wavelet Neural Network-3(a) and Recurrent Fuzzy Wavelet Neural Network-2(b) controllers have been derived. Then these controllers are tested using MATLAB/Simulink on full car model. At the end comparison of all the above mentioned controllers with passive suspension and semi-active suspension is done. It is concluded that these active controllers have greatly improved the displacement and acceleration of Heave, Pitch, Roll and Seat of car, as a result comfort of passenger and vehicle is improved.

Autorentext

Majida Nazir is involved in teaching and supervision in a defense organization. Laiq Khan is a professor of Power System Dynamics and Control in the department of electrical engineering, COMSATS IIT Abbottabad, Pakistan. Shahid Qamar is a lecturer in the department of electrical engineering, COMSATS IIT, Abbottabad, Pakistan.

Weitere Informationen

  • Allgemeine Informationen
    • Sprache Englisch
    • Anzahl Seiten 196
    • Herausgeber LAP LAMBERT Academic Publishing
    • Gewicht 310g
    • Untertitel Vehicle's Suspension Control
    • Autor Majida Nazir , Laiq Khan , Shahid Qamar
    • Titel Recurrent Adaptive NeuroFuzzy Paradigms
    • Veröffentlichung 25.12.2013
    • ISBN 3659480002
    • Format Kartonierter Einband
    • EAN 9783659480003
    • Jahr 2013
    • Größe H220mm x B150mm x T12mm
    • GTIN 09783659480003

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