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The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin- Madison
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Page 1: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

The Influence of Topographically Trapped Waves on the Ross Ice

Shelf Air Stream Manda Adams

University of Wisconsin-Madison

Page 2: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Ross Ice Shelf Air Stream (RAS)

Page 3: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Siple Dome

Ross Island

Siple Coast

Transantarctic Mountains

Page 4: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

University of Wisconsin-Madison Nonhydrostatic Modeling System (UW-

NMS)• Quasi-Compressible, enstrophy conserving

model in non-Boussinesq framework• Fully Scaleable• Multiple two-way nested grids• Five categories of precipitating hydrometeors

– Rain, pristine crystals, rimed mature crystals, aggregate crystals, graupel

• Cloud active long and short wave radiation• TKE based turbulence closure• Variable Step Topography

Page 5: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Slope limited to 1 vertical grid increment per horizontal grid increment or else face stability problems.

Page 6: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Must step discretely in one vertical grid interval, which makes subtle topography nearly impossible to represent.

Page 7: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Both steep and subtle topography can be represented

Page 8: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

University of Wisconsin-Madison Nonhydrostatic Modeling System (UW-

NMS)

Page 9: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.
Page 10: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Surges in the RAS

May 20-21, 2003

Page 11: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Surges in the RAS

Page 12: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Was that an isolated event?

May 15-16, 2004 April 23-24, 2004

Page 13: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Surges in the RAS

Page 14: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.
Page 15: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

AWS Locations

Page 16: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Siple Dome

Page 17: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Elizabeth

Page 18: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Brianna

Page 19: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Lettau

Page 20: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Marilyn

Page 21: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Pressure at 5km(10mb increment)

Page 22: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

What does the vertical structure look like?

Page 23: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Potential Vorticity

Page 24: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Why are some events stronger?

Page 25: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Are these events due to topographically trapped waves?

Page 26: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Are these events due to topographically trapped waves?

2/11

gHf

R

R=233km

R=190km

R=165km

HgC

Page 27: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Are these events due to topographically trapped waves?

2/11

gHf

R

HgC

R=170 km

Page 28: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Conclusions

• Surges within the RAS simulated by the UW-NMS are a robust feature associated with the movement of a large scale trough onto the Siple Coast– Surges associated with wind speeds in excess of

30ms-1 temperature drops in excess of 20oC/hr– Cold air surge generated by deepening of the cold air

as it dams up along the Transantarctic Mountains– Consistent with a topographically trapped internal

Kelvin Wave– Numerical Simulations of this feature are consistent

with the limited available observations

Page 29: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Future Work

• Look at the AMPS archive to get an idea of the climatology of surges in the RAS due to topographically trapped waves

Page 30: The Influence of Topographically Trapped Waves on the Ross Ice Shelf Air Stream Manda Adams University of Wisconsin-Madison.

Questions?


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