0000000000624908

AUTHOR

Saullo G.p. Castro

showing 4 related works from this author

A probabilistic rainfall model to estimate the leading-edge lifetime of wind turbine blade coating system

2021

Rain-induced leading-edge erosion of wind turbine blades is associated with high repair and maintenance costs. For efficient operation and maintenance, erosion models are required that provide estimates of blade coating lifetime at a real scale. In this study, a statistical rainfall model is established that describes probabilistic distributions of rain parameters that are critical for site-specific leading-edge erosion assessment. A new droplet size distribution (DSD) is determined based on two years’ onshore rainfall data of an inland site in the Netherlands and the obtained DSD is compared with those from the literature. Joint probability distribution functions of rain intensities and dr…

Probabilistic analysisScale (ratio)Turbine bladeMeteorologyRenewable Energy Sustainability and the EnvironmentProbabilistic logicLeading-edge erosionTurbineAnalytical methodWind speedWind turbine bladelaw.inventionVDP::Teknologi: 500Joint probability distributionlawErosionEnvironmental scienceProbabilistic analysis of algorithmsLong term analysis
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Leading edge erosion of wind turbine blades: Effects of blade surface curvature on rain droplet impingement kinematics

2020

Abstract The issue of leading edge erosion (LEE) of wind turbine blades (WTBs) is a complex problem that reduces the aerodynamic efficiency of blades, and affects the overall cost of energy. Several research efforts are being made at the moment to counter erosion of WTBs such as-testing of advanced coating materials together with development of high-fidelity computational models. However, the majority of these studies assume the coated surfaces as flat, while the surface curvature and the shape of the aerofoil at the blade’s leading-edge exposed to such rain fields is neglected. The present study questions the assumption of a flat surface, in the context of LEE of WTBs, and provides guideli…

AirfoilHistoryLeading edgeVDP::Matematikk og Naturvitenskap: 400::Fysikk: 430Turbine bladeContext (language use)AerodynamicsMechanicsCurvatureTurbineWind speedComputer Science ApplicationsEducationlaw.inventionlawGeologyJournal of Physics: Conference Series
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A probabilistic long‐term framework for site‐specific erosion analysis of wind turbine blades: A case study of 31 Dutch sites

2021

Abstract Rain‐induced leading‐edge erosion (LEE) of wind turbine blades (WTBs) is associated with high repair and maintenance costs. The effects of LEE can be triggered in less than 1 to 2 years for some wind turbine sites, whereas it may take several years for others. In addition, the growth of erosion may also differ for different blades and turbines operating at the same site. Hence, LEE is a site‐ and turbine‐specific problem. In this paper, we propose a probabilistic long‐term framework for assessing site‐specific lifetime of a WTB coating system. Case studies are presented for 1.5 and 10 MW wind turbines, where geographic bubble charts for the leading‐edge lifetime and number of repai…

operation and maintenanceTurbine bladeTJ807-830coatingsTurbineleading-edge erosionRenewable energy sourceslaw.inventionlawwind energyedge erosionOrographic liftWind powerRenewable Energy Sustainability and the Environmentbusiness.industryleading‐edge erosionProbabilistic logicwind turbine bladesTerm (time)VDP::Teknologi: 500OA-Fund TU DelftService lifeErosionEnvironmental sciencebusinessMarine engineeringWind Energy
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Numerical investigation of rain droplet impact on offshore wind turbine blades under different rainfall conditions: A parametric study

2020

The leading edge of a fiber composite wind turbine blade (WTB) is prone to erosion damages due to repeated rain droplet impact during its service life. Such damages are critical to the blade's aerodynamic as well as structural performance, ultimately resulting in substantial repair costs. An effective design of a coating material for WTB is necessary and its analysis must include variables associated with erosive rain droplets such as (1) droplet diameter, (2) impact velocity, and (3) droplet impact angle. The present paper develops and validates a coupled fluid structure interaction (FSI) computational model for simulating rain droplet impact on WTBs, where the structure domain is modelled…

Leading edgeOffshore wind turbine bladeTurbine blade02 engineering and technologyAerodynamicsMechanics021001 nanoscience & nanotechnologySmooth particle hydrodynamics (SPH)Finite element methodlaw.inventionSmoothed-particle hydrodynamicsOffshore wind powerVDP::Teknologi: 500020303 mechanical engineering & transports0203 mechanical engineeringCoating materiallawFluid–structure interactionCeramics and CompositesErosionOperation and maintenanceEnvironmental science0210 nano-technologyCivil and Structural EngineeringLeading edge erosion
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