filling the gap: the structure of near coastal winds jeroen molemaker, francois colas and xavier...

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Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

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Wind forcing Global atmospheric models are too course to resolve any structure near the coast. Coupling with regional atmospheric models may be the future but is there an intermediate option?

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Page 1: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Filling the Gap:The Structure of Near Coastal

WindsJeroen Molemaker, Francois Colas and Xavier Capet

University of California Los Angeles

Page 2: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Forcing our ocean models: wind

Global atmospheric model (reanalysis) Observed winds (scatterometer,

climatology, stations) Regional atmospheric model (early stage

of coupling)

Page 3: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Wind forcing Global atmospheric models are too course to

resolve any structure near the coast.

Coupling with regional atmospheric models may be the future but is there an intermediate option?

Page 4: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

quikscat leaves an 25-50 km gap

Page 5: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Why should we care?

Wind stress curl determines upwelling. Small changes in curl result ‘big’ changes in

upwelling. (Capet, 2004) and, again, this talk.

Page 6: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Near-shore wind drop-off

• Absent in coarse reanalysis wind products• Still questionable in (uncoupled) atmospheric

regional models

Page 7: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Near-shore wind drop-off

• Land-sea changes in surface drag and boundary layer.

• In-situ observations : Very scarce, but give indication of a drop-off

Point Reyes

Summer: /4 within ~ 25km

Winter: /2 within ~ 25km

Dever et al. (2006), Dorman et al. (2006)

Page 8: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

A relation between wind and SST gradients(Chelton using QSCAT)

(Chelton et al. 2001, 2007)

Page 9: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Wind / SST gradient Empirical Relation

Page 10: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Wind / SST Empirical Relation implementation in ROMS

“online”: Correct Wind stress during simulation using actual computed SST’s .

Application: wind feedback on eddies and fronts.

“offline”: Correct QuikCOW wind stress climatology before using in ROMS Objective : impact on quasi-equilibrium climatological solutions.

Try to fill wind ‘gap’ using this relation.

Page 11: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Online wind/sst coupling

Page 12: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Test wind/SST relation at climatologic time scalesCurl() Div ()

Crosswind SST gradient Downwind SST gradient

Page 13: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Test wind/SST relation at climatologic time scales

-- crosswind grad(SST)-- curl (t)

Along-shore

Surprisingly good already!!

Page 14: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

So what is missing?

• Land-sea changes in surface drag and boundary layer.

Summer: /4 within ~ 25km

Winter: /2 within ~ 25km

Dever et al. (2006), Dorman et al. (2006)

Orographic effects

Page 15: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Orography: zeroth order approach Reduce near coastal wind by 50% corr = [1- 0.5exp(-D) ]

D = distance to coast = 1/(20 km)

Page 16: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Coast wind reduction

Page 17: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Wind / SST Empirical Relation in ROMS

2 ROMS configurations – climatological conditions

Peru/Chile (4 km)(VOCALS region)California (5 km)

(Capet et al. 2008) (Colas et al. 2008)

Page 18: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Near-shore SST sensitivity (CCS)

Difference with Pathfinder Climatology

quikCOWquikCOW plus ‘Orography’

Page 19: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Alongshore current difference

Page 20: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Average structure of undercurrent

quikCOW quikCOW plus ‘Orography’

Page 21: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Lagrangian estimate of undercurrent flow

Garfield et al. (2001)

Page 22: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Surface Eddy Kinetic Energy original quikCOW winds corrected winds altimetry (DUACS)

[cm2.s-2]

Page 23: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Along-shore averaged EKE

-- quikCOW-- With

‘Orography-- Altimetry

Page 24: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

original QSCAT winds corrected winds

Near-shore SST sensitivity (PCS)

Difference

Page 25: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

Why did we care: Oceanic heat balance in the PCS - role of eddies

Systematic errors in CGCMs in the South East Pacific: Difficult to reproduce the stratus cloud deck and to simulate the upwelling and its

effects.Role of eddies in the transport of heat (VOCALS project).

(Large and Danabasoglu, 2006)

SST warm bias in CGCM

Potential upscaling effects

from EBUS

Page 26: Filling the Gap: The Structure of Near Coastal Winds Jeroen Molemaker, Francois Colas and Xavier Capet University of California Los Angeles

- Wind/SST empirical coupling in regional model: near-shore wind drop-off, significant changes on upwelling structure and consequent related

eddy activity (heat balance, offshore transport).

- Wind/SST relation and near-shore structure need to be tested using an

coupled atmospheric model

- Possible upscaling effects at regional scale and even larger scale are

important.