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Climate Modeling General Circulation Models

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Presentation on theme: "Climate Modeling General Circulation Models"— Presentation transcript:

1 Climate Modeling General Circulation Models
Bruno Tremblay McGill University

2 Model Components Atmosphere

3 Model Components Atmosphere Ocean

4 Model Components Atmosphere Ocean Vegetation

5 Model Components Atmosphere Ocean Vegetation Sea ice

6 Model Components Atmosphere Ocean Vegetation Sea ice Surface Hydrology
Ice sheets? Aerosols?

7 Model Grid Resolution Convergence of Meridian

8 Then What?

9 Conservation Laws Mass Energy Momentum x + y = 3 x – y = 1 x = ? y = ?
30,000 CPU unit to run these models, GCM are developed in Boulder, GFDL, Canada, France, etc x + y = 3 x – y = 1 x = ? y = ?

10 Diagnostic Variables Atmosphere: velocity, temperature, humidity, pressure Ocean: velocity, temperature, salinity Ice: velocity, thickness, concentration Vegetation: Hydrology:

11 Initial Conditions

12 Ocean Model Cube Sphere

13 Atmosphere Model

14 Ice Model

15 How do we run the models?

16 Climate Forcing Specified or Calculated? Solar activity: included
Volcanoes: specified Aerosol from chimney: specified Ozone hole: calculated; but CFC concentration are specified Land use change: specified Contrails from airplane: not included.

17 Emission Scenarios

18 Emission Scenarios A1 – homogeneous world:
Rapid economic growth Global population peaks in mid-century and declines thereafter Rapid introduction of new and more efficient technologies. A2 – heterogeneous world – preservation of local identities: Poor and rich still exist. continuously increasing population. B1 – same as A1: Reductions in material intensity Introduction of clean and resource-efficient technologies. B2 – same as A2: local solutions to economic, social and environmental sustainability

19 Global Mean Surface Temperature GFDL

20 Dependence on Initial Conditions

21 Forced vs Natural Variability
Do several simulations Take the ensemble Mean


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