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Title: Filtered lifting line theory and application to the actuator line model

Journal Article · · Journal of Fluid Mechanics
DOI:https://doi.org/10.1017/jfm.2018.994· OSTI ID:1492502

Lifting line theory describes the cumulative effect of shed vorticity from finite span lifting surfaces. In this work, the theory is reformulated to improve the accuracy of the actuator line model (ALM). This model is a computational tool used to represent lifting surfaces, such as wind-turbine blades in computational fluid dynamics. In ALM, blade segments are represented by means of a Gaussian body force distribution with a prescribed kernel size. Prior analysis has shown that a representation of the blade using an optimal kernel width$$\unicode[STIX]{x1D716}^{opt}$$of approximately one quarter of the chord size results in accurate predictions of the velocity field and loads along the blades. Also, simulations have shown that use of the optimal kernel size yields accurate representation of the tip-vortex size and the associated downwash resulting in accurate predictions of the tip losses. In this work, we address the issue of how to represent the effects of finite span wings and tip vortices when using Gaussian body forces with a kernel size larger than the optimal value. This question is relevant in the context of coarse-scale large-eddy simulations that cannot afford the fine resolutions required to resolve the optimal kernel size. For this purpose, we present a filtered lifting line theory for a Gaussian force distribution. Based on the streamwise component of the vorticity transport equation, we develop an analytical model for the induced velocity resulting from the spanwise changes in lift force for an arbitrary kernel scale. The results are used to derive a subfilter-scale velocity model that is used to correct the velocity along the blade when using kernel sizes larger than$$\unicode[STIX]{x1D716}^{opt}$$. Tests are performed in large-eddy simulation of flow over fixed wings with constant and elliptic chord distributions using various kernel sizes. Results show that by using the proposed subfilter velocity model, kernel-size independent predictions of lift coefficient and total lift forces agree with those obtained with the optimal kernel size.

Research Organization:
National Renewable Energy Laboratory (NREL), Golden, CO (United States)
Sponsoring Organization:
USDOE Office of Energy Efficiency and Renewable Energy (EERE), Wind and Water Technologies Office (EE-4W)
Grant/Contract Number:
AC36-08GO28308
OSTI ID:
1492502
Report Number(s):
NREL/JA-5000-72646
Journal Information:
Journal of Fluid Mechanics, Vol. 863; ISSN 0022-1120
Publisher:
Cambridge University PressCopyright Statement
Country of Publication:
United States
Language:
English

References (17)

Large eddy simulation study of fully developed wind-turbine array boundary layers journal January 2010
Numerical simulations of wake characteristics of a wind turbine in uniform inflow journal January 2010
Large eddy simulations of the flow past wind turbines: actuator line and disk modeling: LES of the flow past wind turbines: actuator line and disk modeling journal April 2014
Large-eddy simulation of atmospheric boundary layer flow through wind turbines and wind farms journal April 2011
Comparison of wind farm large eddy simulations using actuator disk and actuator line models with wind tunnel experiments journal February 2018
An Introduction to Fluid Dynamics book June 2012
Optimal smoothing length scale for actuator line models of wind turbine blades based on Gaussian body force distribution: Wind energy, actuator line model journal January 2017
A concurrent precursor inflow method for Large Eddy Simulations and applications to finite length wind farms journal August 2014
Numerical Modeling of Wind Turbine Wakes journal May 2002
A note on Lifting line Theory journal January 1960
A scale-dependent Lagrangian dynamic model for large eddy simulation of complex turbulent flows journal February 2005
Modeling turbulent flow over fractal trees using renormalized numerical simulation: Alternate formulations and numerical experiments journal December 2012
Coupled Flight Simulator and CFD Calculations of Ship Airwake using Kestrel conference January 2015
Definition of a 5-MW Reference Wind Turbine for Offshore System Development report February 2009
An Introduction to Fluid Dynamics journal April 1959
An Introduction to Fluid Dynamics journal January 1959
An Introduction to Fluid Dynamics. journal October 1969

Cited By (5)

Filtered actuator disks: Theory and application to wind turbine models in large eddy simulation journal July 2019
A new tip correction for actuator line computations journal February 2020
Evaluation of Tip Loss Corrections to AD/NS Simulations of Wind Turbine Aerodynamic Performance journal November 2019
A vortex-based tip/smearing correction for the actuator line journal January 2019
Filtered actuator disks: Theory and application to wind turbine models in large eddy simulation text January 2019

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