Open Net Zero logo

Filters

Formats:
Select...
Licenses:
Select...
Organizations:
Select...
Tags:
Select...
Shared:
Sensitivities:
Datasets
L o a d i n g
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
Aquantis 2.5 MW Ocean Current Generation Device - Scaled Tank Test Design and ResultsSource

Aquantis 2.5 MW Ocean Current Generation Device, Tow Tank Dynamic Rig Structural Analysis Results. This is the detailed documentation for scaled device testing in a tow tank, including models, drawings, presentations, cost of energy analysis, and structural analysis. This dataset also includes specific information on drivetrain, roller bearing, blade fabrication, mooring, and rotor characteristics.

0
No licence known
Tags:
2.5 MWAquantisC-planeCECHydrokineticLCOEMHKMarineanalysisaxialaxial flow turbineaxisblade fabricationcost of energycurrentdesigndevicedrawingsdrivetraindynamic rigeconomicsenergygenerationhorizontallab datalab testlaboratory testinglevelized cost of energymodelingmodelsmooringoceanocean currentpowerpresentationsresourceresultsroller bearingrotor characteristicsstructuraltank testtechnologytow tankturbine
Formats:
XLSXPDFPPTXXLSMDOCXZIPDOCLOGMASGENCWRPPT
National Renewable Energy Laboratory (NREL)about 1 year ago
Aquantis 2.5 MW Ocean Current Generation Device Design DetailsSource

Items in this submission provide the detailed design of the Aquantis Ocean Current Turbine and accompanying analysis documents, including preliminary designs, verification of design reports, CAD drawings of the hydrostatic drivetrain, a test plan and an operating conditions simulation report. This dataset also contains analysis trade off studies of fixed vs. variable pitch and 2 vs. 3 blades.

0
No licence known
Tags:
AquantisBOMCADCECHydrokineticMHKMarineanalysis reportaxialaxial flow turbineaxisbill of materialsblade configurationcurrentdesigndesign reviewdetailsdrivetrainenergyfixed pitchhorizontalhydrostatic drivetrainoceanocean currentoperating conditionspowerreportseawater bearingsimulationstructural designtechnologytest planturbinevariable pitch
Formats:
XLSXPPTXSTEPDOCXXLSMPDFPPT
National Renewable Energy Laboratory (NREL)about 1 year ago
Next Generation RivGen Power System: Kvichak River, AK Overwinter Ice StudySource

The University of Alaska Fairbanks (UAF) Alaska Hydrokinetic Energy Research Center was tasked with developing a real-time data telemetry / remote power generation system to monitor frazil ice conditions in the Kvichak River in support of the U.S. Department of Energy funded "Next Generation MHK River Power System Optimized for Performance, Durability and Survivability" project. A real-time telemetry system was requested because of the short time span between the end of the frazil ice season when the instruments would be recovered, limited vessel availability and the project end-date. To meet the project objectives, UAF designed and assembled a remote power/real-time data telemetry system that included an auto start propane generator, a small PV array, a small battery bank and line-of-sight radios as well as two sonar systems to monitor river velocity and water column acoustic backscatter strength. Both sonars included internal batteries for powering the instruments in case of failure of the shore based power system. The sonars, deployed in ~5 m of water on the bed of the Kvichak River, adjacent to the Village of Igiugig, Alaska were tethered to shore via a waterproof armored cable that conveyed power to the subsurface instruments and data from the instruments to the shore based telemetry system. The instruments were programmed to record data internally as well as to transmit data serially over the cables to the shore based system. The system was in-place between November, 2016 and June, 2017. While the real-time data telemetry system was not successful and the remote power generation power system was only partially successful, the system design included sufficient redundant power in the form of internal instrument batteries to enable the collection of nearly three months of overlapping velocity and backscatter data (from November through February) and a record of acoustic backscatter strength spanning the entire ~150 day frazil ice season between November, 2016 and ~April, 2017. This submission includes the overwinter ice study plan, dataset, and final report. The dataset includes modeled water velocity, discharge, and measured water velocity and acoustic backscatter strength in winter 2016-17 from the Kvichak River at the Village of Igiugig, Alaska, USA.

0
No licence known
Tags:
ADCPAKAlaskaCECEAHydrokineticIgiugigKvichak RiverMHKMarineRivGenSWIPacousticacoustic doppler current profileraxialaxisbottom mountedconditionscross flow turbinecurrentdata collectiondopplerdurabilityenergyenvironmentequipmentfiberglass tripodfrazilhorizontalicemonitoringperformanceplanpowerprofilerreal-timeremoteriversea spidershallowstudystudy plansurvivabilitysystemtelemetryturbinewinter
Formats:
PDFZIP
National Renewable Energy Laboratory (NREL)about 1 year ago
Next Generation RivGen Power System: Risk RegisterSource

Risk Register for the RivGen power system, optimized for performance, durability and survivability, in Microsoft Excel format.

0
No licence known
Tags:
CECHydrokineticIgiugigMHKMarineORPCRivGenanalysisassessmentaxialaxisbottom mountedcommercialcross flow turbinecurrenteconomiceconomicsenergyenvironmentalhorizontalmanagementpowerregulatoryreliabilityriskrisk registerrivershallowtechnicaltechnology
Formats:
XLSX
National Renewable Energy Laboratory (NREL)about 1 year ago
RANS Simulation ADM of the NREL Phase VI wind turbine modeled as MHK TurbineSource

Attached are the .cas and .dat files for the Reynolds Averaged Navier-Stokes (RANS) simulation of a single lab-scaled DOE RM1 turbine implemented in ANSYS FLUENT CFD-package. In this case study the flow field around and in the wake of the NREL Phase VI wind turbine, modeled is MHK turbine, is simulated using Actuator Disk Model (ADM) (a.k.a Porous Media) by solving RANS equations coupled with a turbulence closure model. It should be highlighted that in this simulation the actual geometry of the rotor blade is not modeled. The effect of turbine rotating blades are modeled using the Actuator Disk Theory (see the stated section of attached M.Sc. thesis for more details).

0
No licence known
Tags:
ADMActuator Disk ModelCECCFDHAHTHydrokineticMHKMarineNNMRECNavier-StokesPMECPorous MediaRANSRM1ReynoldsSimulationTidalTurbineactuator diskanalysesanalysisaxialaxial flow turbineaxiscomputational fluid dynamicsenergyflowhorizontalmodelmodelingnumericalpowerreference modelrotortechnologywindwind turbine
Formats:
casdatPDF
National Renewable Energy Laboratory (NREL)about 1 year ago
RANS Simulation RRF of Single Full Scale DOE RM1 MHK TurbineSource

Attached are the .cas and .dat files for the Reynolds Averaged Navier-Stokes (RANS) simulation of a single full scale DOE RM1 turbine implemented in ANSYS FLUENT CFD-package. In this case study taking advantage of the symmetry of the DOE RM1 geometry, only half of the geometry is modeled using (Single) Rotating Reference Frame model [RRF]. In this model RANS equations, coupled with k-\omega turbulence closure model, are solved in the rotating reference frame. The actual geometry of the turbine blade is included and the turbulent boundary layer along the blade span is simulated using wall-function approach. The rotation of the blade is modeled by applying periodic boundary condition to sets of plane of symmetry. This case study simulates the performance and flow field in both the near and far wake of the device at the desired operating conditions. The results of these simulations showed good agreement to the only publicly available numerical simulation of the device done in the NREL. Please see the attached paper.

0
No licence known
Tags:
ANSYSCECCFDDOE RM1FLUENTHAHTHorizontal Axis Hydrokinetic TurbineHydrokineticMHKMarineNNMRECNavier-StokesPMECRANSRM1RRFReynoldsSimulationSingle Rotating Refrence modelTidalTurbulenceanalysisaxialaxial flow turbineaxiscomputational fluid dynamicsenergyexperimentalflowhorizontalhorizontal axismodelmodelingnumericalpowerquantitativereference modelrotating reference framerotortechnologyturbinewind
Formats:
PDFcas
National Renewable Energy Laboratory (NREL)about 1 year ago
RANS Simulation RRF of Single Lab-Scaled DOE RM1 MHK TurbineSource

Attached are the .cas and .dat files for the Reynolds Averaged Navier-Stokes (RANS) simulation of a single lab-scaled DOE RM1 turbine implemented in ANSYS FLUENT CFD-package. The lab-scaled DOE RM1 is a re-design geometry, based of the full scale DOE RM1 design, producing same power output as the full scale model, while operating at matched Tip Speed Ratio values at reachable laboratory Reynolds number (see attached paper). In this case study taking advantage of the symmetry of lab-scaled DOE RM1 geometry, only half of the geometry is models using (Single) Rotating Reference Frame model [RRF]. In this model RANS equations, coupled with k-\omega turbulence closure model, are solved in the rotating reference frame. The actual geometry of the turbine blade is included and the turbulent boundary layer along the blade span is simulated using wall-function approach. The rotation of the blade is modeled by applying periodic boundary condition to sets of plane of symmetry. This case study simulates the performance and flow field in the near and far wake of the device at the desired operating conditions. The results of these simulations were validated against in-house experimental data. Please see the attached paper.

0
No licence known
Tags:
ANSYSBEMCECCFDDOE RM1FEAHAHTHydrokineticMHKMarineNNMRECNavier-StokesPMECRANSRM1RRFReynoldsSimulationSingle Rotating Refrence modelValidationaxialaxial flow turbineaxisblade element modelcomputational fluid dynamicsenergyhorizontalhorizontal axismodelmodelingpowerreference modelrotating reference framerotorscale-modeltechnologytidalturbinewind turbine
Formats:
HTMLcasdat
National Renewable Energy Laboratory (NREL)about 1 year ago
RANS Simulation VBM of Single Full Scale DOE RM1 MHK TurbineSource

Attached are the .cas and .dat files along with the required User Defined Functions (UDFs) and look-up table of lift and drag coefficients for Reynolds Averaged Navier-Stokes (RANS) simulation of a single full scale DOE RM1 turbine implemented in ANSYS FLUENT CFD-package. In this case study the flow field around and in the wake of the full scale DOE RM1 turbine is simulated using Blade Element Model (a.k.a Virtual Blade Model [VBM]) by solving RANS equations coupled with k-\omega turbulence closure model. It should be highlighted that in this simulation the actual geometry of the rotor blade is not modeled. The effect of turbine rotating blades are modeled using the Blade Element Theory. This simulation provides an accurate estimate for the performance of device and structure of it's turbulent far wake. Due to the simplifications implemented for modeling the rotating blades in this model, VBM is limited to capture details of the flow field in near wake region of the device.

0
No licence known
Tags:
ANSYSBEMBlade Element ModelCECCFDDOE RM1HAHTHydrokineticMHKMarineNNMRECNavier-StokesPMECRANSRM1ReynoldsSImulationTidalTurbulenceVBMVirtual Blade Modelaxialaxial flow turbineaxiscomputational fluid dynamicsenergyfluenthorizontalmodelpowerreference modelrotortechnologyturbinevirtual bladewind
Formats:
dathcscmcasPDF
National Renewable Energy Laboratory (NREL)about 1 year ago
RANS Simulation VBM of Single Lab Scaled DOE RM1 MHK TurbineSource

Attached are the .cas and .dat files for the Reynolds Averaged Navier-Stokes (RANS) simulation of a single lab-scaled DOE RM1 turbine implemented in ANSYS FLUENT CFD-package. The lab-scaled DOE RM1 is a re-design geometry, based of the full scale DOE RM1 design, producing same power output as the full scale model, while operating at matched Tip Speed Ratio values at reachable laboratory Reynolds number (see attached paper). In this case study the flow field around and in the wake of the lab-scaled DOE RM1 turbine is simulated using Blade Element Model (a.k.a Virtual Blade Model [VBM]) by solving RANS equations coupled with k-\omega turbulence closure model. It should be highlighted that in this simulation the actual geometry of the rotor blade is not modeled. The effect of turbine rotating blades are modeled using the Blade Element Theory. This simulation provides an accurate estimate for the performance of device and structure of it's turbulent far wake. Due to the simplifications implemented for modeling the rotating blades in this model, VBM is limited to capture details of the flow field in near wake region of the device. The required User Defined Functions (UDFs) and look-up table of lift and drag coefficients are included along with the .cas and .dat files.

0
No licence known
Tags:
BEMBlade element modelCECCFDExperimentExperimentalHAHTHorizontal Axis Hydrokinetic TurbineHydrokineticMHKMarineNNMRECNavier-StokesPMECRANSRM1RRFReynoldsSimulationTidalUDFVBMValidationaxialaxial flow turbineaxiscomputational fluid dynamicsenergyhorizontalmodelmodelingpowerreference modelrotating reference framerotortechnologyturbineuser defined functionvirtual bladevirtual blade model
Formats:
pdf?sequence=1&isAllowed=ydatcscmhcas
National Renewable Energy Laboratory (NREL)about 1 year ago