ExaWind: Open‐source CFD for hybrid‐RANS/LES geometry‐resolved wind turbine simulations in atmospheric flows

Author:

Sharma Ashesh1,Brazell Michael J.1,Vijayakumar Ganesh1,Ananthan Shreyas2,Cheung Lawrence3,deVelder Nathaniel3,Henry de Frahan Marc T.1,Matula Neil3,Mullowney Paul4,Rood Jon1,Sakievich Philip3,Almgren Ann5,Crozier Paul S.3,Sprague Michael1

Affiliation:

1. National Renewable Energy Laboratory Golden Colorado USA

2. Ascent OS Concord California USA

3. Sandia National Laboratories Albuquerque New Mexico USA

4. Advanced Micro Devices, Inc. Fort Collins Colorado USA

5. Lawrence Berkeley National Laboratory Berkeley California USA

Abstract

AbstractPredictive high‐fidelity modeling of wind turbines with computational fluid dynamics, wherein turbine geometry is resolved in an atmospheric boundary layer, is important to understanding complex flow accounting for design strategies and operational phenomena such as blade erosion, pitch‐control, stall/vortex‐induced vibrations, and aftermarket add‐ons. The biggest challenge with high‐fidelity modeling is the realization of numerical algorithms that can capture the relevant physics in detail through effective use of high‐performance computing. For modern supercomputers, that means relying on GPUs for acceleration. In this paper, we present ExaWind, a GPU‐enabled open‐source incompressible‐flow hybrid‐computational fluid dynamics framework, comprising the near‐body unstructured grid solver Nalu‐Wind, and the off‐body block‐structured‐grid solver AMR‐Wind, which are coupled using the Topology Independent Overset Grid Assembler. Turbine simulations employ either a pure Reynolds‐averaged Navier–Stokes turbulence model or hybrid turbulence modeling wherein Reynolds‐averaged Navier–Stokes is used for near‐body flow and large eddy simulation is used for off‐body flow. Being two‐way coupled through overset grids, the two solvers enable simulation of flows across a huge range of length scales, for example, 10 orders of magnitude going from O(μm) boundary layers along the blades to O(10 km) across a wind farm. In this paper, we describe the numerical algorithms for geometry‐resolved turbine simulations in atmospheric boundary layers using ExaWind. We present verification studies using canonical flow problems. Validation studies are presented using megawatt‐scale turbines established in literature. Additionally presented are demonstration simulations of a small wind farm under atmospheric inflow with different stability states.

Funder

Office of Energy Efficiency and Renewable Energy

Publisher

Wiley

Subject

Renewable Energy, Sustainability and the Environment

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