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A simple rotor velocity feedback control is designed to maximize the power output of the VAWT and implemented in simulations for wind transients.
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The CFD simulations do not provide information about wind intermittency, transients, etc.
This provides a means to transport electrostatically charged fine mist of liquid droplets to intended target with variable spray coverage angle of target, applicable in high wind and transient conditions with enhanced performance without degradation of charge-to-mass ratio.
Gust front winds are transient in nature and have a flow profile which differs significantly from a typical boundary layer flow field.
Particularly transient wind loads could lead to dynamic amplification of the structural response.
With increasing wind power penetration, transient responses of doubly-fed-induction-generator (DFIG) based wind turbines gain attentive focus.
The first iteration of numerical diffusion in simulations was controlled by wind stress, and transient (every 10 min) wind data were used.
Realizations of multivariate stationary and transient wind loads for the building models are digitally simulated in the numerical computations.
The performance of the controller can be analyzed in the same way of analysis done for transient wind speed profile of 7 m/s.
The objective is to design robust controllers that maximize the energy extracted from the wind while reducing transient loads on the drive train.
In particular, this work addresses the control of flexible structures against transient wind loads of known, bounded magnitude.
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