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Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection
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Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Dec 16, 2015

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Vance Morss
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Page 1: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Atmospheric Destabilization Processes

• Upper Level Mixed Layer• Synoptic Lifting• Dynamic Destabilization• Differential Advection

Page 2: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Static Stability and Instability

• Static Stability: push an air parcel upward (downward) and it will fall (rise) back to its original position transforming the work exerted to accelerate the parcel into the kinetic energy of the parcel’s return movement.

• Static Neutrality: push an air parcel upward (downward) and it will continue its motion without further acceleration.

• Static Instability: push an air parcel upward (downward) and it will continue to accelerate its motion upward (downward)

Page 3: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Dry Adiabats

• Dry Adiabats (lines of constant theta on a thermodynamic diagram):

/1000 pR c

mbT

P

Page 4: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Moist Adiabats

• Moist Adiabats (lines of constant pseudo-equivalent potential temperature on thermodynamic diagram)

0.2854(1 0.28 )1000 3376

exp (1_ 0.81 ) 2.54vr

ep v vsat

mbT r r

P T

284055

3.5ln ln 4.805satT T e

0.622v

er

p e

Page 5: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Dry Adiabatic Lapse Rate

m

T

z

Page 6: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Moist Adiabatic Lapse Rate

Page 7: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Static Stability

absolutely unstable

conditionally unstable

absolutely stable

d e

d e m

m e

Page 8: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Destabilization• Increase Lapse Rate at middle levels

– Mix air vertically– Warm below

• Advection• diabatic

– Cool above• Advection• diabatic

• Increase low level moisture and temperature– Daytime heating– Warm moist advection, Sawyer-Elliasen surge

• Maintain inversion (cap) separating low level moisture and heat from increased upper level lapse rate

Page 9: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Layer Lifting

Page 10: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Differential Advection

• Layer aloft moving at a different velocity than one below

• Cold air advection Aloft• Warm or moist air advection below

Page 11: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Example of Differential Advection

Page 12: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Elevated Mixed Layer

• Deep dry mixing of a dry daytime boundary layer produces high lapse rate through deep layer– Deep dry adiabatic layer (steep lapse rate)– Very dry layer, nearly constant vapor mixing ratio– Best layers formed in regions of very dry air (too make

dry lapse rate) found in:• Deserts • High plateau or lee side of a mountain range

Page 13: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Elevated Mixed Layer

• Deep, warm, dry well mixed layer advected over the top of a relatively cool (potential temperature-wise) layer forming a capping inversion

• Boundary layer below inversion moistened and warmed creating conditional instability:– Daily heating and evapo-transpiration– Advection from a moist region

Page 14: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

EML Moving From Rockies

Page 15: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Dynamic Destabilization

• Quasi-geostrophic sinking motion in the right exit region of the jet forces subsidence and a capping subsidence inversion

• Sawyer-Elliasen Circulation advects warm air under dry destabilized layer completing the formation of “loaded gun” sounding

• Progression into the right entrance region initates rising motion that “pulls trigger”

Page 16: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.
Page 17: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Load the Gun

Page 18: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Pull the Trigger!

Page 19: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

High Elevation Sounding

Page 20: Atmospheric Destabilization Processes Upper Level Mixed Layer Synoptic Lifting Dynamic Destabilization Differential Advection.

Loaded Gun Sounding