Analysis of the effect of a series of back twist blade configurations for an active pitch-to-stall floating offshore wind turbine

Date

2020-04-08

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Publisher

American Society of Mechanical Engineers

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Type

Article

ISSN

0892-7219

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Citation

Ward D, Collu M, Sumner J. (2020) Analysis of the effect of a series of back twist blade configurations for an active pitch-to-stall floating offshore wind turbine. Journal of Offshore Mechanics and Arctic Engineering, Volume 142, Issue 6, December 2020, Article number 062001

Abstract

For a turbine mounted on a floating platform, extreme induced loads can be increased by up to 1.6 times those experienced by a turbine situated on a fixed base. If these loads cannot be reduced, towers must be strengthened which will result in increased costs and weight. These tower loads would be additionally exasperated for a pitch-to-feather controlled turbine by a phenomenon generally referred to as “negative damping,” if it were not avoided. Preventing negative damping from occurring on a pitch-to-feather controlled floating platform negatively affects rotor speed control and regulated power performance. However, minimizing the blade bending moment response can result in a reduction in the tower fore-aft moment response, which can increase the tower life. A variable-speed, variable pitch-to-stall (VSVP-S) floating semi-submersible wind turbine, which does not suffer from the negative damping and hence provides a more regulated power output, is presented. This incorporates a back twist blade profile such that the blade twist, starting at the root, initially twists toward stall and, at some pre-determined “initiation” point, changes direction to twist back toward feather until the tip. Wind frequency weighting was applied to the tower axial fatigue life trends of different blade profiles and a preferred blade back twist profile was identified. This had a back twist angle of −3 deg and started at 87.5% along the blade length and achieved a 5.1% increase in the tower fatigue life.

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Keywords

floating offshore wind turbine (FOWT), pitch-to-stall, blade back twist, tower axial fatigue life, design of offshore structures, dynamics of structures, floating and moored production systems, ocean energy technology, structural mechanics and foundation

Rights

Attribution 4.0 International

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