Impact of environmental moisture on intensification of Hurricane Earl (2010) Longtao Wu, Hui Su, and Robert Fovell HS3 Science Meeting 2014 1 May 2014.

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Presentation transcript:

Impact of environmental moisture on intensification of Hurricane Earl (2010) Longtao Wu, Hui Su, and Robert Fovell HS3 Science Meeting May

2 300 km HWRF

Goal and outline Environmental moisture appears to have a complex impact on tropical cyclone (TC) intensity and size – Helps, hurts, or has no effect, depending on the case, storm-relative location of the moisture, and other factors Dunkerton and collaborators have introduced the “wave pouch” concept… which might help explain some ostensibly contradictory results Investigate impact of environmental moisture perturbations, on a case that exhibited: – Rapid intensification – A weakly closed or partially open wave pouch 3

Experimental design WRF v km outer domain 3 km domain moving nest YSU, Thompson, RRTMG, Kain-Fritsch (9 km only) ERA-Interim – 8/29 at 00Z 48 h simulations 5 members for each run (temperature, moisture perturbations) 4 Outer domain

WRF performance 5

6 700 mb RH & wind 12 hour forecast ERA-Interim WRF Control

700 mb RH & storm- relative streamlines (Hovmoller method). “Pouch” (cf. Dunkerton et al. 2009) not completely closed at any time… or openable via environmental disturbance. 7 T+0 T+12 T+24 T+48

Moisture impacts on hurricane 8 SLP Wind speed (kt) 700 mb RH

Moisture impacts on hurricane 9 SLP Wind speed (kt) 700 mb RH

Moisture impacts on hurricane 10 SLP Wind speed (kt) 700 mb RH 20 kt 18 mb

Control vs. Moist Rear Vortex-following composites during h 11

T + 12 h 12 Control Moist Rear Convective activity south of storm deforms wave pouch… providing path for moist air into inner core???

13 Control run Moist Rear Mass-weighted vertical velocity (surface-7 km) mb shear 360 km

14 Control run Moist Rear Mass-weighted vertical velocity (surface-7 km) 360 x 360 km mb shear

15 Control run Moist Rear Mass-weighted vertical velocity (surface-7 km) and surface rainwater mixing ratio (0.6 g/kg contours) 360 x 360 km

16 Control run Moist Rear Vertically integrated microphysics diabatic heating (surface-7 km) 360 x 360 km

17 Symmetric components of Microphysics diabatic heating Tangential wind Control Moist Rear Moist Rear – Control difference 300 km

Evolution of Moist Rear (MR) simulation 18

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) 450 km MinSLP difference: 0.0 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +0.8 mb (MR weaker)

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +1.2 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) and Control wind field

km Divergence difference field (surface-4.25 km) Wind difference field (surface-4.25 km)

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +0.8 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +1.6 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +2.2 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +2.5 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +2.0 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: +0.5 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: -2.5 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: -6.0 mb

km Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) MinSLP difference: -8.5 mb

33 Vapor difference field (surface-7 km) Moist Rear wind field (surface-4.25 km) 900 km MinSLP difference: mb Final MinSLP difference: mb

34 0 mb Water vapor difference SLP difference 360 km CTRL MR MinSLP difference: +3.0 mb (Control is deeper) +2 mb 120 km

35 0 mb Water vapor difference SLP difference 360 km CTRL MR MinSLP difference: +0.5 mb

36 0 mb Water vapor difference SLP difference 360 km CTRL MR MinSLP difference: -4.0 mb -4 mb

37 -6 mb Water vapor difference SLP difference 360 km CTRL MR MinSLP difference: -6.0 mb

mb Water vapor difference SLP difference 360 km CTRL MR MinSLP difference: mb

mb Water vapor difference SLP difference 360 km CTRL MR MinSLP difference: mb

mb Microphysics diabatic heating difference 360 km

Moist Front vs. Moist Rear 41

T + 12 h 42 Control Moist Front Convective activity ahead of storm deforms wave pouch… ultimately permitting dry air to enter inner core….

km Moist Front Moist Rear Vapor difference field (surface-7 km) SLP difference field +7.5 mb+3.0 mb

44 Moist Front Moist Rear Vapor difference field (surface-7 km) SLP difference field mb+0.5 mb

45 Moist Front Moist Rear Vapor difference field (surface-7 km) SLP difference field mb-4.0 mb

46 Moist Front Moist Rear Vapor difference field (surface-7 km) SLP difference field +9.0 mb-6.0 mb

47 Moist Front Moist Rear Vapor difference field (surface-7 km) SLP difference field mb-12.0 mb

Control vs. Moist Front 2 Smaller amplitude moisture perturbation 48

T + 12 h 49 Control Moist Front2 Smaller amplitude moisture perturbation in the dry front environment… does not deform pouch

50 Vapor difference fields

Summary ERA-Interim and WRF simulations suggest Earl was surrounded by a closed, or nearly closed, wave pouch Convective activity outside the pouch can open it Augmented moisture to south resulted in a significantly stronger storm Augmented moisture to west (ahead) helped usher dry air into inner core 51