Ice injected into the tropopause by deep convection – Part 2: Over the Maritime Continent

Author:

Dion Iris-Amata,Dallet Cyrille,Ricaud PhilippeORCID,Carminati FabienORCID,Dauhut ThibautORCID,Haynes Peter

Abstract

Abstract. The amount of ice injected into the tropical tropopause layer has a strong radiative impact on climate. A companion paper (Part 1) used the amplitude of the diurnal cycle of ice water content (IWC) as an estimate of ice injection by deep convection, showed that the Maritime Continent (MariCont) region provides the largest injection to the upper troposphere (UT; 146 hPa) and to the tropopause level (TL; 100 hPa). This study focuses on the MariCont region and extends that approach to assess the processes, the areas and the diurnal amount and duration of ice injected over islands and over seas during the austral convective season. The model presented in the companion paper is again used to estimate the amount of ice injected (ΔIWC) by combining ice water content (IWC) measured twice a day by the Microwave Limb Sounder (MLS; Version 4.2) from 2004 to 2017 and precipitation (Prec) measurements from the Tropical Rainfall Measurement Mission (TRMM; Version 007) binned at high temporal resolution (1 h). The horizontal distribution of ΔIWC estimated from Prec (ΔIWCPrec) is presented at 2∘×2∘ horizontal resolution over the MariCont. ΔIWC is also evaluated by using the number of lightning events (Flash) from the TRMM-LIS instrument (Lightning Imaging Sensor, from 2004 to 2015 at 1 h and 0.25∘ × 0.25∘ resolution). ΔIWCPrec and ΔIWC estimated from Flash (ΔIWCFlash) are compared to ΔIWC estimated from the ERA5 reanalyses (ΔIWCERA5) with the vertical resolution degraded to that of MLS observations (ΔIWCERA5). Our study shows that the diurnal cycles of Prec and Flash are consistent with each other in phase over land but different over offshore and coastal areas of the MariCont. The observational ΔIWC range between ΔIWCPrec and ΔIWCFlash, interpreted as the uncertainty of our model in estimating the amount of ice injected, is smaller over land (where ΔIWCPrec and ΔIWCFlash agree to within 22 %) than over ocean (where differences are up to 71 %) in the UT and TL. The impact of the MLS vertical resolution on the estimation of ΔIWC is greater in the TL (difference between ΔIWCERA5 and 〈ΔIWCERA5〉 of 32 % to 139 %, depending on the study zone) than in the UT (difference of 9 % to 33 %). Considering all the methods, in the UT, estimates of ΔIWC span 4.2 to 10.0 mg m−3 over land and 0.4 to 4.4 mg m−3 over sea, and in the TL estimates of ΔIWC span 0.5 to 3.9 mg m−3 over land and 0.1 to 0.7 mg m−3 over sea. Finally, based on IWC from MLS and ERA5, Prec and Flash, this study highlights that (1) at both levels, ΔIWC estimated over land can be more than twice that estimated over sea and (2) small islands with high topography present the largest ΔIWC (e.g., island of Java).

Publisher

Copernicus GmbH

Subject

Atmospheric Science

Reference40 articles.

1. Awaka, J.: Algorithm 2A23 – Rain type classification, in: Proceedings of the symposium on the Precipitation Observation from Non-Sun Synchronous Orbit, Nagoya, Japan, 215–220, 1998.

2. Blakeslee, R. J.: Lightning Imaging Sensor (LIS) on TRMM Science Data 2004–2015, Dataset available online from the NASA Global Hydrology Resource Center DAAC, Huntsville, Alabama, USA, https://doi.org/10.5067/LIS/LIS/DATA201, 1998.

3. Christian, H. J.: Algorithm theoretical basis document (ATBD) for the Lightning Imaging Sensor (LIS), available at: https://eospso.gsfc.nasa.gov/sites/default/files/atbd/atbd-lis-01.pdf (last access: 20 November 2020), 2000.

4. Dauhut, T. ,Chaboureau, J.-P. , Escobar, J., and Mascart, P.: Giga-LES of Hector the Convector and its two tallest updrafts up to the stratosphere, J. Atmos. Sci., 73, 5041–5060, 2016. a

5. Dauhut, T., Chaboureau, J.-P., Mascart, P., and Lane, T.: The overshoots that hydrate the stratosphere in the tropics, EGU General Assembly, 4–13 April, 2018 in Vienna, Austria, EGU2018-9149, 2018. a

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