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Three Lectures on Tropical Cyclones Kerry Emanuel Massachusetts Institute of Technology Spring School on Fluid Mechanics of Environmental Hazards
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Lecture 2: Physics
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Steady-State Energetics
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Energy Production
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Distribution of Entropy in Hurricane Inez, 1966 Source: Hawkins and Imbembo, 1976
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Total rate of heat input to hurricane: Surface enthalpy flux Dissipative heating In steady state, Work is used to balance frictional dissipation:
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Plug into Carnot equation: If integrals dominated by values of integrands near radius of maximum winds,
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Theoretical Upper Bound on Hurricane Maximum Wind Speed: Air-sea enthalpy disequilibrium Surface temperature Outflow temperature Ratio of exchange coefficients of enthalpy and momentum
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Annual Maximum Potential Intensity (m/s)
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Observed Tropical Atlantic Potential Intensity Data Sources: NCAR/NCEP re-analysis with pre-1979 bias correction, UKMO/HADSST1 Emanuel, K., J. Climate, 2007
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Thermodynamic disequilibrium necessary to maintain ocean heat balance: Ocean mixed layer Energy Balance (neglecting lateral heat transport): Greenhouse effect Mean surface wind speed Weak explicit dependence on T s Ocean mixed layer entrainment
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Dependence on Sea Surface Temperature (SST):
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Relationship between potential intensity (PI) and intensity of real tropical cyclones
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Why do real storms seldom reach their thermodynamic potential? One Reason: Ocean Interaction
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Strong Mixing of Upper Ocean
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Near-Inertial Oscillations of the Upper Ocean
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Navier-Stokes equations for incompressible fluid, omitting viscosity and linearized about a state of rest:
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Special class of solutions for which p=w=0: Unforced solution:
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Mixing and Entrainment:
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Mixed layer depth and currents
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SST Change
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Comparison with same atmospheric model coupled to 3-D ocean model; idealized runs: Full model (black), string model (red)
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Computational Models of Hurricanes: A simple model Hydrostatic and gradient balance above PBL Moist adiabatic lapse rates on M surfaces above PBL Parameterized convection Parameterized turbulence
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Transformed radial coordinate: Potential Radius:
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Example of Distribution of R surfaces
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Model behavior
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Comparing Fixed to Interactive SST:
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A good simulation of Camille can only be obtained by assuming that it traveled right up the axis of the Loop Current:
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2. Sea Spray
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3. Wind Shear
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Effects of Environmental Wind Shear Dynamical effects Thermodynamic effects Net effect on intensity
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Streamlines (dashed) and θ surfaces (solid)
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Mean Absolute Error of NOAA/NHC Tropical Cyclone Intensity Forecasts
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Tropical Cyclone Motion
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Tropical cyclones move approximately with a suitably defined vertical vector average of the flow in which they are embedded
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Lagrangian chaos:
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“Beta Gyres”
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Operational prediction of tropical cyclone tracks:
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