Optimal deployment schedule of an active twist rotor for performance enhancement and vibration reduction in high-speed flights
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Sung N. Jung | Young H. You | Chang J. Kim | S. Jung | C. J. Kim | Y. You
[1] Hyeonsoo Yeo,et al. Investigation of UH-60A Rotor Performance and Loads at High Advance Ratios , 2013 .
[2] Hyeonsoo Yeo,et al. Assessment of Active Controls for Rotor Performance Enhancement , 2008 .
[3] Soohyung Park,et al. Euler and Navier-Stokes Simulations of Helicopter Rotor Blade in Forward Flight Using an Overlapped Grid Solver , 2009 .
[4] Yung H. Yu,et al. Validation of comprehensive dynamics analysis predictions for a rotor in descending flight , 2011 .
[5] Hyeonsoo Yeo,et al. Investigation of Rotor Performance and Loads of a UH-60A Individual Blade Control System , 2010 .
[6] Matthew L. Wilbur,et al. FURTHER EXAMINATION OF THE VIBRATORY LOADS REDUCTION RESULTS FROM THE NASA/ARMY/MIT ACTIVE TWIST ROTOR TEST , 2002 .
[7] Prashant M. Pawar,et al. Active twist control methodology for vibration reduction of a helicopter with dissimilar rotor system , 2009 .
[8] Matthew L. Wilbur,et al. The Effect of Non-Harmonic Active Twist Actuation on BVI Noise , 2011 .
[9] Inderjit Chopra,et al. Computational Fluid Dynamics—Computational Structural Dynamics Analysis of Active Control of Helicopter Rotor for Performance Improvement , 2010 .
[10] Sung Nam Jung,et al. Advanced particle swarm assisted genetic algorithm for constrained optimization problems , 2014, Computational Optimization and Applications.
[11] I. Chopra,et al. Induced strain actuation of composite beams and rotor blades with embedded piezoceramic elements , 1996 .
[12] Sung Nam Jung,et al. Correlation of Aeroelastic Response and Structural Loads for a Rotor in Descent , 2012 .
[13] W. Johnson,et al. CAMRAD - A COMPREHENSIVE ANALYTICAL MODEL OF ROTORCRAFT AERODYNAMICS AND DYNAMICS , 1994 .
[14] Brandon P. Hagerty,et al. Study on Blade Property Measurement and Its Influence on Air/Structural Loads , 2015 .
[15] J. Gordon Leishman,et al. Principles of Helicopter Aerodynamics , 2000 .
[16] Berend G. van der Wall,et al. The HART II international workshop: an assessment of the state-of-the-art in comprehensive code prediction , 2013 .
[17] Ranjan Ganguli,et al. Helicopter vibration reduction in forward flight with induced-shear based piezoceramic actuation , 2004 .
[18] Y. You,et al. Optimal active twist input scenario for rotor performance improvement and vibration reduction , 2015 .
[19] Inderjit Chopra,et al. Status of Application of Smart Structures Technology to Rotorcraft Systems , 2000 .
[20] D. D. Boyd,et al. Aeromechanical Evaluation of Smart-Twisting Active Rotor , 2014 .
[21] Ranjan Ganguli,et al. Dynamic response of rotating beams with piezoceramic actuation , 2004 .
[22] Sung Nam Jung,et al. Loose Fluid-Structure Coupled Approach for a Rotor in Descent Incorporating Fuselage Effects , 2013 .
[23] Beatrice Roget,et al. Simulation of Active Twist and Active Flap Control on a Model-Scale Helicopter Rotor , 2006 .
[24] Matthew L. Wilbur,et al. A Computational Study of BVI Noise Reduction Using Active Twist Control , 2010 .
[25] Inderjit Chopra,et al. CFD/CSD Prediction of Rotor Vibratory Loads in High-Speed Flight , 2006 .