Analyzing dynamic stall on tubercle mounted VAWT blades: A simplistic experimental approach using an oscillating rig

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Date

2024

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Elsevier Ltd

Abstract

Leading-edge tubercles, inspired by the flippers of humpback whales, are widely adopted passive flow control devices to enhance the aerodynamic performance of various lifting surfaces. This experimental study investigates the implementation of sinusoidal and triangular tubercles on H-type Vertical Axis Wind Turbine blades to analyze their effects on dynamic stall characteristics. Experimental tests were conducted using a specially designed oscillating rig to replicate blade motion at different reduced frequencies. The results reveal that tubercle blades exhibit a lower stall angle and maximum normal force compared to the baseline configuration. Moreover, the dynamic stall characteristics of tubercle blades are notably smoother, leading to reduced hysteresis losses. A variation in the tubercle amplitude-wavelength ratio further decreases hysteresis, albeit at the cost of reduced normal force generation. At the highest tested reduced frequency of 0.065, tubercles reduce hysteresis by up to 38%. Despite the reduction in normal force, tubercles effectively mitigate the effects of dynamic stall vortices, resulting in smoother stall behavior. The observed reduction in hysteresis can contribute to enhancing the turbine's lifespan and increasing power production efficiency. This experimental approach provides a cost-effective alternative to more expensive methods for studying dynamic stall characteristics. © 2024 The Authors

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Keywords

Aerodynamic stalling, Oscillating flow, Tubular turbines, Turbine components, Vertical axis wind turbine, Wind turbine blades, % reductions, Dynamic stalls, Experimental approaches, Flow control devices, Humpback whales, Leading-edge tubercle, Normal forces, Passive flow control, Reduced frequency, VAWT, Turbomachine blades, amplitude, experimental study, flow control, hysteresis, vortex, wavelength, wind turbine

Citation

Sustainable Energy Technologies and Assessments, 2024, 71, , pp. -

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