Abstract:
The Performance Assessment of Wave and Tidal Array Systems (PerAWaT) project, launched in October 2009 with £8m of ETI investment. The project delivered validated, commercial software tools capable of significantly reducing the levels of uncertainty associated with predicting the energy yield of major wave and tidal stream energy arrays. It also produced information that will help reduce commercial risk of future large scale wave and tidal array developments.
This report details simulations of a three-bladed axial flow ducted tidal turbine. Additionally, the report describes fundamental work carried out to enable these blade-resolved simulations, including duct design and rotor modelling.
The bi-directional duct is designed with the aid of a computational flow solver. The design process involves the simulation of a range of candidate geometries where camber and thickness are varied methodically, with the rotor modelled as an actuator disk. Device performance is assessedbased on power, thrust and efficiency characteristics under fully turbulent flow conditions. Performance comparisons are made based on overall device dimensions rather than rotor area. The final duct combines desirable features of several candidate designs. The ability of the bi-directional turbines tested to increase both the mass-flow through and the pressure-drop across the rotor is limited. An unducted reference case, of the same outer dimensions,yields a power coefficient 75% greater than that of the best bi-directional ducted design tested.
The selected duct is then modelled incorporating the University of Manchester’s 1/70th scale rotor, operating in the 1m deep EDF flume. We conduct two levels of numerical modelling; fully blade-resolved simulationsand a novel Blade Element Momentum (BEM) theory Computational Fluid Dynamics (CFD) embedded model. We find favourable agreement between the two models. Further we note that the Manchester rotor was designed for unducted operation, and use the BEM embedded model to design a bespoke rotor for operation in the ducted environment.
The three-dimensional, blade-resolved computational modelof the ducted turbines hows excellent agreement with the embedded BEM predictions. One pertinent feature of ducted turbine flows is that the helical tip-vortex structure, readily identifiable in unducted rotor wakes, is not discernible.This is attributed to a bounding effect of the inner duct wall. For ducted turbines, bound circulation is largely maintained to the blade tip, thus limiting the production of a tip vortex. A cylindrical vortex sheet is generated emanating from the downstream edge ofthe duct to account for the momentum loss in the rotor wake.
Publication Year:
2011
Publisher:
ETI
Author(s):
Fleming, C., McIntosh, S.C. and Willden, R.H.J.
Energy Category
Language:
English
File Type:
application/pdf
File Size:
6592909 B
Rights:
Energy Technologies Institute Open Licence for Materials
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Further information:
N/A
Region:
United Kingdom
Related Dataset(s):
No related datasets
Related Project(s):
Performance Assessment of Wave and Tidal Array Systems (PerAWaT)
Related Publications(s):
ETI Insights Report - Wave Energy
PerAWaT - Array Scale Experiment Specification (WG4 WP2 D1)
PerAWaT - Array Scale Experimental Test Report (WG4 WP2 D5)
PerAWaT - Calibration Report for Scale Model Experiments (WG4 WP2 D4)
PerAWaT - Choice of Numerical Model (WG3 WP6 D1)
PerAWaT - Comparison with EDF (WG3 WP6 D6)
PerAWaT - DIA Methodology Report
PerAWaT - Design and Characterisation of Array Emulators (WG4 WP4 D2)
PerAWaT - Design and Specification of Ducted Disc Experiments (WG4 WP3 D1)
PerAWaT - Design and Testing Specification (WG4 WP4 D1)
PerAWaT - Design of Equipment for Scale Model Experiments (WG4 WP2 D2)
PerAWaT - Development of Free Surface Wave Model for an Axial Flow Tidal Turbine
PerAWaT - Development of a Computational Fluid Dynamics Mesoscale Tidal Channel Model
PerAWaT - Experiment Data, Quality Controlled and Delivered (WG4 WP3 D2)
PerAWaT - Final Summary Report
PerAWaT - GH Blockage Modelling Report (WG3 WP4 D1)
PerAWaT - GH Device Scale Modelling Report
PerAWaT - GH Far Wake Modelling Report (WG3 WP4 D5)
PerAWaT - GH Inter-Array Scale Modelling Report (WG3 WP4 D6)
PerAWaT - GH Near Wake Modelling Report (WG3 WP4 D2)
PerAWaT - Identification of Test Requirements and Physical Model Design (WG4 WP1 D1)
PerAWaT - Implementation Report: Frequency-Domain Model (WG1 WP1 D2)
PerAWaT - Implementation Report: Time-Domain Model (WG1 WP1 D3)
PerAWaT - Implementation of Wave Energy Converters in Spectral Wave Models (WG1 WP2 D2)
PerAWaT - Methodology Report (WG1 WP1 D1B)
PerAWaT - Methodology and site case analysis for the SpecWEC modelling tool
PerAWaT - Non-Linear Model Description Report (WG1 WP1 D7)
PerAWaT - Performance and Wake Structure of a Full-Scale Horizontal Axis Axial Flow Turbine
PerAWaT - Performance and Wake Structure of a Model Horizontal Axis Axial Flow Turbine
PerAWaT - Rationalised Flow Field Modelling Report (WG3 WP4 D4)
PerAWaT - Regional Scale Plug-In Protocol (WG3 WP4 D10)
PerAWaT - Report on Model Setup for Horizontal Axis Axial Flow Turbines (WG3 WP1 D1)
PerAWaT - Report on Non-Linear Analysis of Single and Arrays of Free Floating Devices (WG1 WP1 D9)
PerAWaT - Report on the Inclusion of FDC Tidal Arrays into DG-ADCIRC Model (WG3 WP6 D5)
PerAWaT - Representation of Wave Energy Converters in Spectral Wave Models (WG1 WP2 D1)
PerAWaT - Scientific Report for the SpecWEC Modelling Tool - Part 1
PerAWaT - SpecWec Beta Version Release
PerAWaT - Tidal Array Scale Numerical Modelling Interactions within a Farm (Steady Flow) WG3 WP2 D5a
PerAWaT - Tidalfarmer Interim Model Validation Report (WG3 WP4 D18)
PerAWaT - Tidalfarmer Model Validation And Uncertainties (WG3 WP4 D19)
PerAWaT - User Report for the SpecWEC Modelling Tool - Part 2
PerAWaT - Validation and Verification of the SpecWEC Numerical Modeling Tool
PerAWaT - Verification of Code (WG3 WP6 D2)
PerAWaT - Weakly-Nonlinear Hydrodynamics of Freely Floating WECS (WG1 WP1 D8)