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Title: Sensitivity analysis of the effect of wind and wake characteristics on wind turbine loads in a small wind farm

Journal Article · · Wind Energy Science (Online)

Abstract. Wind turbines are designed using a set of simulations to determine the fatigue and ultimate loads, which are typically focused solely on unwaked wind turbine operation. These structural loads can be significantly influenced by the wind inflow conditions. Turbines experience altered inflow conditions when placed in the wake of upstream turbines, which can additionally influence the fatigue and ultimate loads. It is important to understand the impact of uncertainty on the resulting loads of both unwaked and waked turbines. The goal of this work is to assess which wind-inflow-related and wake-related parameters have the greatest influence on fatigue and ultimate loads during normal operation for turbines in a three-turbine wind farm. Twenty-eight wind inflow and wake parameters are screened using an elementary effects sensitivity analysis approach to identify the parameters that lead to the largest variation in the fatigue and ultimate loads of each turbine. This study uses the National Renewable Energy Laboratory (NREL) 5 MW baseline wind turbine, simulated with OpenFAST and synthetically generated inflow based on the International Electrotechnical Commission (IEC) Kaimal turbulence spectrum with the IEC exponential coherence model using the NREL tool TurbSim. The focus is on sensitivity to individual parameters, though interactions between parameters are considered, and how sensitivity differs between waked and unwaked turbines. The results of this work show that for both waked and unwaked turbines, ambient turbulence in the primary wind direction and shear are the most sensitive parameters for turbine fatigue and ultimate loads. Secondary parameters of importance for all turbines are identified as yaw misalignment, streamwise integral length, and the exponent and streamwise components of the IEC coherence model. The tertiary parameters of importance differ between waked and unwaked turbines. Tertiary effects account for up to 9.0 % of the significant events for waked turbine ultimate loads and include veer, non-streamwise components of the IEC coherence model, Reynolds stresses, wind direction, air density, and several wake calibration parameters. For fatigue loads, tertiary effects account for up to 5.4 % of the significant events and include vertical turbulence standard deviation, lateral and vertical wind integral lengths, non-streamwise components of the IEC coherence model, Reynolds stresses, wind direction, and all wake calibration parameters. This information shows the increased importance of non-streamwise wind components and wake parameters in the fatigue and ultimate load sensitivity of downstream turbines.

Research Organization:
National Renewable Energy Laboratory (NREL), Golden, CO (United States)
Sponsoring Organization:
USDOE Office of Energy Efficiency and Renewable Energy (EERE), Renewable Power Office. Wind Energy Technologies Office
Grant/Contract Number:
AC36-08GO28308
OSTI ID:
1907902
Alternate ID(s):
OSTI ID: 1958152
Report Number(s):
NREL/JA-5000-85378
Journal Information:
Wind Energy Science (Online), Journal Name: Wind Energy Science (Online) Vol. 8 Journal Issue: 1; ISSN 2366-7451
Publisher:
Copernicus GmbHCopyright Statement
Country of Publication:
Germany
Language:
English

References (20)

Model of wind shear conditional on turbulence and its impact on wind turbine loads: Model of wind shear conditional on turbulence journal August 2014
Turbulence Modeling for Gust Loading journal July 1987
Optimization Under Uncertainty for Wake Steering Strategies journal May 2017
Statistical Analysis of Wind Turbine Inflow and Structural Response Data from the LIST Program journal November 2003
Evaluation of the wind direction uncertainty and its impact on wake modeling at the Horns Rev offshore wind farm: Wind direction uncertainty and its impact on wake modeling journal May 2013
Optimization-Based Calibration of FAST.Farm Parameters against Large-Eddy Simulations conference January 2018
Definition of a 5-MW Reference Wind Turbine for Offshore System Development report February 2009
Probabilistic 3-D turbulence modeling for gust buffeting of structures journal January 2001
A comprehensive evaluation of various sensitivity analysis methods: A case study with a hydrological model journal January 2014
A Comparison of Standard Coherence Models for Inflow Turbulence With Estimates from Field Measurements journal November 2004
On the Study of Uncertainty in Inflow Turbulence Model Parameters in Wind Turbine Applications conference June 2012
Sensitivity analysis of the effect of wind characteristics and turbine properties on wind turbine loads journal January 2019
Global estimations of wind energy potential considering seasonal air density changes journal November 2019
Effects of Inflow Spatiotemporal Discretization on Wake Meandering and Turbine Structural Response using FAST.Farm journal July 2019
Speed and Direction Shear in the Stable Nocturnal Boundary Layer journal January 2009
Influence of the variation of meteorological and operational parameters on estimation of the power output of a wind farm with active power control journal October 2020
Sensitivity Analysis of Wind Plant Performance to Key Turbine Design Parameters: A Systems Engineering Approach conference January 2014
Sensitivity analysis of offshore wind farm operation and maintenance cost and availability journal January 2016
Sensitivity analysis of criteria to optimize wind farm localizing: A case study journal May 2019
Sensitivity study of a wind farm maintenance decision - A performance and revenue analysis journal March 2019