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LARGE EDDY SIMULATION Chin-Hoh Moeng NCAR

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Page 1: Large Eddy Simulation

LARGE EDDY SIMULATION

Chin-Hoh Moeng

NCAR

Page 2: Large Eddy Simulation

OUTLINE

• WHAT IS LES?

• APPLICATIONS TO PBL

• FUTURE DIRECTION

Page 3: Large Eddy Simulation

WHAT IS LES?

A NUMERICAL TOOL

FOR

TURBULENT FLOWS

Page 4: Large Eddy Simulation

Turbulent Flows

• governing equations, known

• nonlinear term >> dissipation term

• no analytical solution

• highly diffusive

• smallest eddies ~ mm

• largest eddies --- depend on Re- number (U; L; )

Page 5: Large Eddy Simulation

Numerical methods of studying turbulence

• Reynolds-averaged modeling (RAN)

model just ensemble statistics

• Direct numerical simulation (DNS)

resolve for all eddies

• Large eddy simulation (LES)

intermediate approach

Page 6: Large Eddy Simulation

LES

turbulent flow

Resolved large eddies

Subfilter scale, small

(not so important)

(important eddies)

Page 7: Large Eddy Simulation

FIRST NEED TO SEPARATE THE

FLOW FIELD

• Select a filter function G• Define the resolved-scale (large-eddy):

• Find the unresolved-scale (SGS or SFS):

xdxxGxfxf ),()()(~

)(~

)()( xfxfxf

Page 8: Large Eddy Simulation

Examples of filter functions

Top-hat

Gaussian

Page 9: Large Eddy Simulation

Example: An 1-D flow field

)()(~

)( xfxfxf

f

Apply filter

large eddies

Page 10: Large Eddy Simulation

Reynolds averaged model (RAN)

)(')()( xfxfxf

f

Apply ensemble avg

non-turbulent

Page 11: Large Eddy Simulation

LES EQUATIONS

2

2

0

1

j

i

i

i

j

ij

i

x

u

x

p

T

g

x

uu

t

u

dxdydzGuu ii ~

2

2

0

~)~~(~1~~~

~

j

i

j

jiji

i

i

j

ij

i

x

u

x

uuuu

x

p

T

g

x

uu

t

u

~

SFS

Apply filter G

Page 12: Large Eddy Simulation

Different Reynolds number turbulent flows

• Small Re flows: laboratory (tea cup) turbulence; largest eddies ~ O(m); RAN or DNS

• Medium Re flows: engineering flows; largest eddies ~ O(10 m); RAN or DNS or LES

• Large Re flows: geophysical turbulence; largest eddies > km; RAN or LES

Page 13: Large Eddy Simulation

Geophysical turbulence

• PBL (pollution layer)

• boundary layer in the ocean

• turbulence inside forest

• deep convection

• convection in the Sun

• …..

Page 14: Large Eddy Simulation

LES of PBL

km m mm

resolved eddies SFS eddies

dissipationenergy input

fL inertial range, 3/5

Page 15: Large Eddy Simulation

Major difference between engineer and geophysical

flows: near the wall

• Engineering flow: viscous layer

• Geophysical flow: inertial-subrange layer; need to use surface-layer theory

Page 16: Large Eddy Simulation

The premise of LES

• Large eddies, most energy and fluxes, explicitly calculated

• Small eddies, little energy and fluxes, parameterized, SFS model

Page 17: Large Eddy Simulation

The premise of LES

• Large eddies, most energy and fluxes, explicitly calculated

• Small eddies, little energy and fluxes, parameterized, SFS model

LES solution is supposed to be insensitive to SFS model

Page 18: Large Eddy Simulation

Caution

• near walls, eddies small, unresolved• very stable region, eddies

intermittent • cloud physics, chemical reaction…

more uncertainties

Page 19: Large Eddy Simulation

A typical setup of PBL-LES

• 100 x 100 x 100 points• grid sizes < tens of meters • time step < seconds • higher-order schemes, not too diffusive• spin-up time ~ 30 min, no use• simulation time ~ hours• massive parallel computers

Page 20: Large Eddy Simulation

Different PBL Flow Regimes

• numerical setup

• large-scale forcing

• flow characteristics

Page 21: Large Eddy Simulation

Clear-air convective PBL

gU

z

km5~

Q

Convective updrafts

~ 2

km

Page 22: Large Eddy Simulation

Horizontal homogeneous CBL

Page 23: Large Eddy Simulation

Local Time

LIDAR Observation

Page 24: Large Eddy Simulation

Oceanic boundary layer

z

m300~

Add vortex force for Langmuir flows McWilliam et al 1997

Page 25: Large Eddy Simulation

Oceanic boundary layer

z

m300~

Add vortex force for Langmuir flows McWilliams et al 1997

Page 26: Large Eddy Simulation

Canopy turbulence

0U

m200~

z

Add drag force---leaf area index Patton et al 1997

< 1

00 m

Page 27: Large Eddy Simulation

observation LES

Comparison with observation

Page 28: Large Eddy Simulation

Shallow cumulus clouds

gU

z

Q

layercloud

Add phase change---condensation/evaporation

~ 6 km

~3 k

m

~ 12 hr

Page 29: Large Eddy Simulation

COUPLED with SURFACE

• turbulence heterogeneous land

• turbulence ocean surface wave

Page 30: Large Eddy Simulation

Coupled with heterogeneous soil

Surface model

zWet soil

Dry soil

km30

the ground

LES model

Land model

Page 31: Large Eddy Simulation

Coupled with heterogeneous soil

wet soil dry soil(Patton et al 2003)

Page 32: Large Eddy Simulation

Coupled with wavy surface

stably stratified

Page 33: Large Eddy Simulation

U-field

flat surface stationary wave moving wave

Page 34: Large Eddy Simulation

So far, idealized PBLs

• Flat surface

• Periodic in x & y

• Shallow clouds

Page 35: Large Eddy Simulation

Future Direction of LESfor PBL Research

• Realistic surface–complex terrain, land use, waves

• PBL under severe weather

Page 36: Large Eddy Simulation
Page 37: Large Eddy Simulation

500 km

50 km

LES domain

mesoscale model domain

Page 38: Large Eddy Simulation

Computational challenge

Massive parallel machines

Resolve turbulent motion in Taipei basin~ 1000 x 1000 x 100 grid points

Page 39: Large Eddy Simulation

Technical issues

• Inflow boundary condition

• SFS effect near irregular surfaces

• Proper scaling; representations of ensemble mean

Page 40: Large Eddy Simulation

???

How to describe a turbulent inflow?

Page 41: Large Eddy Simulation

What do we do with LES solutions?

Understand turbulence behavior & diffusion property

Develop/calibrate PBL models i.e. Reynolds average models

Page 42: Large Eddy Simulation

CLASSIC EXAMPLES

• Deardorff (1972; JAS)

- mixed layer scaling

• Lamb (1978; atmos env)

- plume dispersion

Page 43: Large Eddy Simulation

FUTURE GOAL

Understand PBL in complex environment and improve its parameterization for regional and climate models

– turbulent fluxes – air quality– cloud– chemical transport/reaction