4.8 Article

On the dynamics of a model wind turbine under passive tower oscillations

期刊

APPLIED ENERGY
卷 311, 期 -, 页码 -

出版社

ELSEVIER SCI LTD
DOI: 10.1016/j.apenergy.2022.118608

关键词

Small-amplitude oscillations; Turbine wake; Yawing; Power output fluctuations; Passive motions

资金

  1. Mechanical Science and Engineering Department at the University of Illinois, United States of America

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Laboratory experiments were conducted to study the effects of small-amplitude oscillations on a wind turbine. The study found that these oscillations had an impact on the turbine's motion, wake statistics, and power output. The results showed that rotational motion played a significant role in the turbine's behavior. A formulation for the turbine oscillation spectrum was derived, and it showed good agreement with measurements. Passive oscillations resulted in higher power output for a given yaw.
Laboratory experiments were carried out to quantify the effect of small-amplitude, passive oscillations of a model wind turbine in the structure of the unsteady motions, wake statistics, and mean power output and associated fluctuations at various yawing beta is an element of [0 degrees, 30 degrees] every Delta beta = 5 degrees. Planar particle image velocimetry was used to characterize the flow statistics, and power output was measured at high temporal resolution. Scenarios with a fixed turbine were included to aid insight into the coupled and separated effects of passive oscillations and yawing. Unsteady pitch motions, dominant of the system dynamics, were more predominant at small but non-zero yaw of beta approximate to 5 degrees. The spectral structure of the oscillations showed that the unsteady roll motions contributed substantially under high yawing. Using basic concepts, we derived a formulation for the turbine oscillation spectrum that shows good agreement with measurements; it serves as a base to include other input modulation types. The power output decreased monotonically with in the fixed and oscillating turbines, which was more distinct for beta > 15 degrees. Passive oscillations produced higher power for given yaw. A simple yaw-correction of the structure of the power output also showed reasonable agreement with measurements. Finally, mean velocity in the wake of the fixed and oscillating turbines exhibited minor differences for a given yawing. However, the turbulence levels showed distinct changes of turbine motions in the degree of symmetry and magnitude for given yaw.

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