How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University...

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How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles [email protected] 1 s to: Thompson, NCAR/DTC; Ligia Bernardet and Mrinal Biswas, DTC; Ferrier, NCEP; Hui Su and Longtao Wu, JPL; Kristen Corbosiero, U at Albany 14 th WRF Workshop 24 June 2013

Transcript of How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University...

Page 1: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

How radiative processes can influence tropical cyclonesRobert Fovell and Yizhe Peggy BuUniversity of California, Los [email protected]

1Thanks to: Greg Thompson, NCAR/DTC; Ligia Bernardet and Mrinal Biswas, DTC;Brad Ferrier, NCEP; Hui Su and Longtao Wu, JPL; Kristen Corbosiero, U at Albany

14th WRF Workshop 24 June 2013

Page 2: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Theme• Focus is on cloud-radiative forcing (CRF)• CRF…• Is not clear-sky or “background” radiative forcing• Is modulation of clear-sky forcing by hydrometeors

• CRF consists of…• Longwave (LW) cooling at cloud tops, at all times• Shortwave (SW) warming at cloud tops, during day• LW warming within clouds

• CRF depends on microphysics parameterizations (MP)• Interaction with radiation is particle size-dependent, thus species-

dependent• MPs should share size information to the radiation scheme… and

one of them finally does (thanks to Greg Thompson)2

Page 3: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Background & motivation

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Page 4: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Semi-idealized experiment

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• Real-data WRF-ARW @ 3 or 4 km for 72 h• Uniform SST• Single sounding• No initial flow• NO LAND• 7 MPs• One initial condition

very small part of domain shown

Fovell et al. (2009)Fovell et al. (2010)

Page 5: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Semi-idealized experiment

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• MPs yielded different…• …amounts of various

hydrometeors• …diabatic heating

patterns• …symmetric wind

structures• …asymmetry patterns• …motions• …intensities

very small part of domain shown

Fovell et al. (2009)Fovell et al. (2010)

Page 6: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Influence of CRF

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CRF-on CRF-off

Fovell et al. (2010)

Page 7: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Troposphere-averaged vertical velocity

7150 km CRF caused storms to be wider, less asymmetric, weaker

Fovell et al. (2010)with ARW, curved Earth

CRF-on

CRF-off

Page 8: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Semi-idealized HWRF experimentsSingle sounding, uniform SST, no initial flow, no land

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Page 9: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

HWRF experimental design• HWRF rev. 6557 (28 March 2013)• Greg Thompson’s microphysics scheme• RRTMG radiation package

• 2012 operational configuration (3 telescoping domains)• Thompson/RRTMG CRF-on vs. CRF-off• Operational HWRF* is Ferrier + GFDL• Focus on structure

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connected

no land* For 2013 and earlier seasons

Page 10: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

HWRF simulation strategy for semi-idealized experiments

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Vortex-following1 full diurnal cycle

HWRF model physics called every time step

Page 11: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

HWRF results when “clouds are cloudy”Control run: Thompson/RRTMG with CRF-onAveraged over 1 diurnal cycle

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Page 12: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Lower troposphere vertical velocity(sfc-500 mb)

Thompson/RRTMG

400 km

Expected structural asymmetry owing to

beta shear

200 km

100 km

Houze (2010)

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Page 13: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Thompson/RRTMG structure

13Radial (shaded) and tangential velocity (m/s)

Temporally and azimuthally averaged

354 km

18 k

m

Page 14: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Thompson/RRTMG structure

14Condensation (shaded) and net radiative forcing (K/h)

Page 15: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Thompson/RRTMG structure

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C

W

net cooling~ 7 K/day

net warming~ 1 K/day

Condensation (shaded) and net radiative forcing (K/h)

Net radiation = LW + SW and includes background (clear-sky) forcingRadiation contour interval differs for positive and negative values

Page 16: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

LW only

SW only

C

W

W

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Page 17: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Clear-sky radiative forcing(unperturbed by convection)

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LW

SW

Averaged over annulusof 350 km radius andone diurnal cycle

Page 18: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Clear-sky radiative forcing(after TC development; clouds still transparent)

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LW

SWLW

SW

Averaged over annulusof 350 km radius andone diurnal cycle From a CRF-off simulation

Page 19: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Total radiative forcing(after including CRF)

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LW

SWLW

SW

LW SW

Averaged over annulusof 350 km radius andone diurnal cycle

Page 20: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

CRF-on vs. CRF-off

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SWSW

SW

CRF-on CRF-off

Averaged over 350 km radius

Page 21: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

“A difference is a difference only if it makes a difference.” – Darrell Huff, How to Lie With Statistics

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Page 22: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Lower troposphere vertical velocity(sfc-500 mb)

Thompson/RRTMG

CRF-on CRF-off

400 km

200 km

100 km

icloud = 0 in namelist.input

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Page 23: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

34-kt wind radii

Note 34-kt wind radius > 70% larger with

CRF-on

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Page 24: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Radial velocity (colored) &Tangential velocity (contoured, m/s)

Thompson/RRTMGCRF-on

Thompson/RRTMGCRF-off

354 km

20 m/s tangential wind contour highlighted

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Page 25: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Radial velocity (colored) &Tangential velocity (contoured, m/s)

Thompson/RRTMGCRF-on

Thompson/RRTMGCRF-off

Difference field

CRF-on storm:wider eye, stronger

outflow, broader wind field

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Page 26: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Total condensate (colored) &Net radiative forcing (contoured, K/h)

Thompson/RRTMGCRF-on

Thompson/RRTMGCRF-offhas clear-sky forcing only

C

W

354 km

Net radiation = LW + SW and includes background (clear-sky) forcingRadiation contour interval differs for positive and negative values

W

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Page 27: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Total condensate (colored) &Net radiative forcing (contoured, K/h)

Thompson/RRTMGCRF-on

Thompson/RRTMGCRF-off

Difference field

C

W

CRF-on storm:wider, thicker anvil

W

Eye size difference

C

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Page 28: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Microphysics diabatic forcing (colored) &qe (contoured, m/s)

Thompson/RRTMGCRF-on

Thompson/RRTMGCRF-off

240 km

Microphysics forcing in Domain 3340K qe contour highlighted

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Page 29: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Microphysics diabatic forcing (colored) &qe (contoured, m/s)

Thompson/RRTMGCRF-on

Thompson/RRTMGCRF-off

Difference field

Microphysics forcing in Domain 3340K qe contour highlighted

CRF-on storm:evidence of greater convective activity

beyond eyewall

Extra heating

Eye size difference

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Page 30: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Analysis• TCs with CRF active have:• Wider eyes• Broader tangential wind fields• More radially extensive diabatic heating• Stronger, deeper upper-level outflow (stronger inflow, too)

• Comparable results from WRF-ARW versions of this experiment (not shown)

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Page 31: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

The physics of CRF: how and whyAxisymmetric simulations with George Bryan’s CM1Moist and dry versions

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Page 32: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

CM1 experimental design

• Axisymmetric framework (f-plane 20˚N)• 5 km resolution• Thompson microphysics*• Rotunno-Emanuel moist-neutral sounding• Goddard radiation• Averaging period: 3-4 diurnal cycles• Moist and dry experiments

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*Not identical to HWRF version

Page 33: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Radial velocity (colored) &Tangential velocity (contoured, m/s)

CRF-on

CRF-off

Difference field

Eye size difference

Stronger, deeper outflow

CRF-on storm:wider eye, stronger

outflow, broader wind field

300 km

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Page 34: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Radial velocity (colored) &Tangential velocity (contoured, m/s)

CRF-on

CRF-off

Difference field

Tangential wind atlowest model level

34-kt wind radius considerably larger with

CRF-on

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Page 35: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Total condensate (colored) &Net radiative forcing (contoured, K/h)

CRF-on

CRF-off

Difference field

CRF-on storm:evidence of broader convective activity

C

W

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Page 36: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

CRF-fixed

CRF forcing activelyencourages storm

expansion

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Page 37: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Warming appears to be more significant

factor

CRF-fixed

CRF > 0

CRF < 0

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Page 38: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Radial velocity difference (colored) &CRF-clear sky radiative forcing difference

(contoured, K/h)

Dry model radial wind response (colored)to applied radiative forcing

(contoured, K/h)

400 km

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CRF-enhanced outflow carries hydrometeors outward,

positive feedback

Page 39: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Warming appears to be more significant

factor (again)

CRF > 0

CRF < 0

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Page 40: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Dry model vertical velocity response (colored) to applied radiative forcingdifference (contoured, K/h)

CRF > 0

CRF < 0

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0.0075 m/s~ 650 m per day

Page 41: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Dry model vertical velocity response (colored) to applied radiative forcing(contoured, K/h)

CRF > 0

CRF < 0 Warming appears to be more significant

factor (again)

Weak but broad and persistent lifting leads to more convective

activity

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Page 42: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Cloud-radiative forcing (in-cloud) encourages stronger outflow and

deep, broad ascent

…leading to more radially extensive convective activity…

…resulting in a broader wind field

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Page 43: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

A CM1 microphysics diabatic heating difference field (CRF-on – CRF-off)

43Eye widthdifference

Extra heating owing to CRF

400 km

Page 44: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Dry model response

Diabatic forcing from moist modelCRF-on

400 km

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Page 45: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

widens, broadens

400 km

Dry model response

Diabatic forcing from moist modelCRF-on

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Page 46: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

400 km

Dry model response

Diabatic forcing from moist modelCRF-on

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Page 47: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

CRF-related cooling and warming in HWRF

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Page 48: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

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Page 49: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Warming appears to be more significant

factor (again)

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Page 50: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

(almost no CRF)

Operational HWRF deep clouds are not

cloudy

Operational physics called every time step

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Page 51: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

“[A]ll models are wrong; the practical question is how wrong do they have to be to not be useful.”

– George E. P. Box

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Page 52: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Schematic model - I

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Page 53: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Schematic model - II

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Page 54: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Schematic model - III

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Page 55: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Schematic model - IV

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Page 56: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Summary• Cloud-radiative forcing can have a significant impact on storm

structure• Directly by encouraging stronger outflow, broad ascent• Indirectly by fostering enhanced convective activity• Quickly -- much faster than one might guess

• Operational HWRF physics produces little to no CRF response• Is direct validation of in-cloud LW forcing even possible?• Thanks Jimy and Wei for the invitation• Supported by the NOAA Hurricane Forecast Improvement

Program (HFIP)

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Page 57: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

[end]

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Page 58: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

C

W W

C

CRF > 0

CRF < 0

CRF-on

CRF-off

Total condensate (colored) &Net radiative forcing (contoured, K/h)

Thompson/RRTMG58

Page 59: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Lower troposphere vertical velocity(sfc-500 mb)

Ferrier-based

CRF-on CRF-off

RRTMG (CRF-on) GFDL (no CRF)[as in operational]

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Page 60: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Thompson/RRTMGCRF-on

Ferrier/RRTMGCRF-on

Thompson/RRTMGCRF-off

Ferrier/GFDLNo CRF

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Page 61: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Total condensate (colored) &Net radiative forcing (contoured, K/h)

CRF-on

CRF-off

Thompson Ferrier

354 km

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Page 62: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Radial velocity (colored) &Tangential velocity (contoured, m/s)

CRF-on

CRF-off

Thompson Ferrier

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Page 63: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Microphysics diabatic forcing (colored) &qe (contoured, m/s)

CRF-on

CRF-off

Thompson Ferrier

240 km

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Page 64: How radiative processes can influence tropical cyclones Robert Fovell and Yizhe Peggy Bu University of California, Los Angeles rfovell@ucla.edu 1 Thanks.

Radiative forcing (K/day)averaged 0 ≤ R ≤ 354 kmin domain 2

One full diurnal cycleLW

SW

T = ThompsonF = Ferrier

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