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Aquantis 2.5 MW Ocean Current Generation Device - MHK Hydrofoils Design, Wind Tunnel Optimization and CFD Analysis ReportSource

Dataset contains MHK Hydrofoils Design and Optimization and CFD Analysis Report for the Aquantis 2.5 MW Ocean Current Generation Device, as well as MHK Hydrofoils Wind Tunnel Test Plan and Checkout Test Report.

0
No licence known
Tags:
2.5 MWAquantisCECCFDHydrofoilsHydrokineticLaminar runMHKMarineanalysisaxialaxial flow turbineaxiscomputational fluid dynamicscurrentcurrent generation devicedesignenergygeometryhorizontalhydrofoilnumerical modelingoceanocean currentoptimizationperformance datapowertechnologytest plantest reportturbinewind tunnelwind tunnel tests
Formats:
PDFDOCXXLSX
National Renewable Energy Laboratory (NREL)about 1 year ago
Design of High-Deflection Foils MHK Applications - FEA modelsSource

The Ocean Renewable Power Company's (ORPC's) goal is to design, develop, and test hydrofoils with large deflections. The effects of the deflections on cross-flow turbine performance would be evaluated in order to inform design considerations for full-scale water turbines and other marine hydrokinetic devices. Finite element models - NASTRAN files Model scale turbines tested in UNH tow tank Model loads from CFD models

0
No licence known
Tags:
FEAHydrokineticMHKMarineairfoilceccross flow turbinecurrent energy converterdesignenergyfinite element analysisfoilhydrofoilmodelpowersimulationstraintest
Formats:
nas
National Renewable Energy Laboratory (NREL)about 1 year ago
Design of high deflection foils for MHK applications - CFD filesSource

The Ocean Renewable Power Company's (ORPC's) goal is to design, develop, and test hydrofoils with large deflections. The effects of the deflections on cross-flow turbine performance would be evaluated in order to inform design considerations for full-scale water turbines and other marine hydrokinetic devices. OpenFOAM V1912 files for straight foil model scale turbines in the University of New Hampshire tow tank. Strut Locations = (0.13, 0.225, 0.450, 0.675, 0.900) [m] Tip speed ratio = 2.40

0
No licence known
Tags:
CFDHydrokineticMHKMarineOpenFOAMairfoilceccross flow turbinecurrent energy converterdesignenergyfoilhydrofoilmodelpowersimulationstraight turbinetidal turbineturbine
Formats:
ZIP
National Renewable Energy Laboratory (NREL)about 1 year ago
Design of high-deflection foils MHK applications - CFD models - Helical turbinesSource

The Ocean Renewable Power Company's (ORPC's) goal is to design, develop, and test hydrofoils with large deflections. The effects of the deflections on cross-flow turbine performance would be evaluated in order to inform design considerations for full-scale water turbines and other marine hydrokinetic devices. CFD models of helical model scale turbines tested at UNH OpenFOAM v1912 Tip Speed Ratio (TSR) = 3.00 Different strut configurations

0
No licence known
Tags:
CFDHydrokineticMHKMarineairfoilceccross flow turbinecurrent energy converterdesignenergyfoilhelical turbinehydrofoilmodelpowersimulationturbine
Formats:
ZIP
National Renewable Energy Laboratory (NREL)about 1 year ago
Design of high-deflection foils MHK applications - FEA models - Helical turbinesSource

The Ocean Renewable Power Company's (ORPC's) goal is to design, develop, and test hydrofoils with large deflections. The effects of the deflections on cross-flow turbine performance would be evaluated in order to inform design considerations for full-scale water turbines and other marine hydrokinetic devices. FEA models - NASTRAN Helical foil turbines tested at UNH tow tank Glass and carbon composite material properties Loads derived from CFD models

0
No licence known
Tags:
FEAHydrokineticMHKMarineairfoilceccross flow turbinecurrent energy converterdesignenergyfoilhelical turbinehydrofoilmaterialmaterial studymodelpowersimulationturbine
Formats:
nas
National Renewable Energy Laboratory (NREL)about 1 year ago
Model and experimental validation of ocean kite dynamics and controlsSource

This submission includes two peer-reviewed papers from researchers at North Carolina State University presenting the modeling and lab-scale experimentation of the dynamics and control of a tethered tidal ocean kite. Below are the abstracts of each file included in the submission. Alvarez ECC: Flight and Tether Dynamics This paper models the dynamics of a marine tethered energy harvesting system focusing on exploring the sensitivity of the kite dynamics to tether parameters. These systems repetitively reels a kite out at high tension, then reels it in at low tension, in order to harvest energy. The kite?s high lift-to-drag ratio makes it possible to maximize net energy output through periodic cross-current flight. Significant modeling efforts exist in the literature supporting such energy maximization. The goal of this paper is to address the need for a simple model capturing the interplay between the system?s kite and tether dynamics. The authors pursue this goal by coupling a partial differential equation (PDE) model of tether dynamics with a point mass model of translational kite motion. Siddiqui JDSMC: Lab-scale closed-loop model and validation This paper presents a study wherein we experimentally characterize the dynamics and control system of a lab-scale ocean kite, and then refine, validate, and extrapolate this model for use in a full-scale system. Ocean kite systems, which harvest tidal and ocean current resources through high-efficiency cross-current motion, enable energy extraction with an order of magnitude less material (and cost) than stationary systems with the same rated power output. However, an ocean kite represents a nascent technology that is characterized by relatively complex dynamics and requires sophisticated control algorithms. In order to characterize the dynamics and control of ocean kite systems rapidly, at a relatively low cost, the authors have developed a lab-scale, closed-loop prototyping environment for characterizing tethered systems, whereby 3D printed systems are tethered and flown in a water channel environment.

0
No licence known
Tags:
CECHydrokineticMHKMarineclosed-loopcontrolcontrollerdragdynamicsenergyexperimental characterizationflighthydrofoillab testlab-scaleliftlift-to-drag ratiomodelmodelingoceanocean kitepoint mass modelpowertethertetheredtidaltidal kitevalidation
Formats:
PDF
National Renewable Energy Laboratory (NREL)about 1 year ago
Performance Data from a 1-Meter Cross-flow Turbine with High Deflection HydrofoilsSource

Performance data of a 1-meter diameter cross-flow tidal turbine consisting of three NACA 0018 blades with two support struts with high deflection hydrofoils. Data was collected at the University of New Hampshire Jere A. Chase Ocean Engineering Lab within the tow tank. Three turbine parameters were varied: the blade materials, blade shape, and support strut position. A detailed description of the testing set-up and data files contained within the compressed HDF.zip file is in the 'ReadMe.txt' file.

0
No licence known
Tags:
CECCFTHydrokineticMHKMarineNACA 0018VATTcross flow turbinedeflectionenergyexperimentalfoilhigh-deflectionhydrofoilpowertidaltidal turbinetow tankvertical axis tidal turbine
Formats:
ZIPTXT
National Renewable Energy Laboratory (NREL)about 1 year ago