Assessment of the Impacts of Tropical Cyclones Idai to the Western Coastal Area and Hinterlands of the South Western Indian Ocean — Oak Academic Publishing
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Assessment of the Impacts of Tropical Cyclones Idai to the Western Coastal Area and Hinterlands of the South Western Indian Ocean
Tanzania Meteorological Authority (TMA), Kisauni, Zanzibar
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Tanzania Meteorological Authority (TMA), Dar es Salaam, Tanzania
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Tanzania Meteorological Authority (TMA), Dar es Salaam, Tanzania
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Tanzania Meteorological Authority (TMA), Dar es Salaam, Tanzania
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Tanzania Meteorological Authority (TMA), Kisauni, Zanzibar
1 Tanzania Meteorological Authority (TMA), Kisauni, Zanzibar
2 Tanzania Meteorological Authority (TMA), Dar es Salaam, Tanzania
3 Tanzania Meteorological Authority (TMA), Dar es Salaam, Tanzania
4 Tanzania Meteorological Authority (TMA), Dar es Salaam, Tanzania
5 Tanzania Meteorological Authority (TMA), Kisauni, Zanzibar
Tropical Cyclones (TCs) are among the atmospheric events which may trigger/enhance the occurrence of disasters to the society in most world basins including the Southwestern Indian Ocean (SWIO). This study analyzed the dynamics and the impacts of the Tropical Cyclone (TC) Idai (4 th -21 st March, 2019) which devastated most of the SWIO countries. The study used the Reanalysis 1 products of daily zonal (u) and meridional (v) winds, Sea Surface Temperatures (SSTs), amount of Precipitable Water (PRW), and relative humidity (Rh). The dynamics and movements of Idai w ere analyzed using the wind circulation at 850, 700, 500 and 200 mb, where the TC dynamic variables like vertical wind shear, vorticity, and the mean zonal wind were calculated using u and v components. Using the open Grid Analysis and Display System (GrADS) software the data was processed into three - time epochs of pre, during and post; and then analyzed to feature the state of the atmosphere before (pre), during and post TC Idai using all datasets. The amount of precipitable water was used to map the rainfall on pre, during, and post Idai as well as during its landfall. The results revealed that dynamics of TC Idai was intensifying the weather (over Mozambique) and clearing the weather equatorward or southward of 12 ° S, with low vertical wind shear over the landfall areas ( - 3 to 3 m/s) and higher shear values (10 - 40 m/s) northward and southward of the Mozambican channel. Higher moisture content (80 - 90%) and higher PRW (40 - 60 mm/day) mapped during Idai over the lowland areas of Mozambique propagating westward. Higher low - level vorticity values were also mapped over the landfall areas. More results revealed that countries laying equatorward of 12 ° S , e.g. , the northern coastal areas of Kenya (Turkana and Baringo) and Tanzania, Idai disrupted the 2019 March to May (MAM) seasonal rainfall by inducing long dry spell which accelerated the famine over the northeastern Kenya (Turkana). Moreover, results revealed that the land falling of Idai triggered intensive flooding which affected a wide spectrum of socio - economic livelihoods including significant loss of lives, injuries, loss of material wealth, infrastructure; indeed, people were forced to le ave their houses for quite a longtime; water - born e diseases like malaria, cholera among others were experienced. Furthermore, results and reports revealed that a large amount of funds were raised to combat the impacts of Idai. For instance, USAID/OFDA used about $14,146,651 for human aid and treatment of flood - prone diseases like Cholera in Mozambique ($13,296,651), Zimbabwe ($100,000), and Malawi ($280,000), respectively. Also a death toll of about 602 in Mozambique and 344 in Zimbabwe, and more than 2500 cases of injured people were reported . Conclusively the study has shown that TCs including Idai and other are among the deadliest natural phenomenon which great affects the human and his environments, thus extensive studies on TCs frequency, strength, tracks as well as their coast benefit analysis should be conducted to reduce the societal impacts of these TCs.
Josh, A., Rosimar, R. and Jeremy, B. (2014) The Role of Water Vapor in Tropical Cyclone Development. Journal of Research & Technology. https://physicstoday.scitation.org/do/10.1063/PT.5.4008/
Charrua, A.B., Padmanaban, R., Cabral, P., Bandeira, S. and Romeiras, M.M. (2021) Impacts of the Tropical Cyclone Idai in Mozambique: A Multi-Temporal Landsat Satellite Imagery Analysis. Remote Sensing, 13, Article No. 201. https://doi.org/10.3390/rs13020201
Kolstad, E.W. (2020) Prediction and Precursors of Idai and 38 Other Tropical Cyclones and Storms in the Mozambique Channel. Quarterly Journal of the Royal Meteorological Society, 1-13. https://doi.org/10.1002/essoar.10501336.2
La du Plessis (2002) A Review of Effective Flood Forecasting, Warning and Response System for Application in South Africa. Water SA, 28, 129-138. https://doi.org/10.4314/wsa.v28i2.4878
Reason, C.J.C. and Keibel, A. (2004) Tropical Cyclone Eline and Its Unusual Penetration and Impacts over the Southern African Mainland. Weather and Forecasting, 19, 789-805. https://doi.org/10.1175/1520-0434(2004)019%3C0789:TCEAIU%3E2.0.CO;2
Reason, C.J.C. (2007) Tropical Cyclone Dera, the Unusual 2000/01 Tropical Cyclone Season in the South West Indian Ocean and Associated Rainfall Anomalies over Southern Africa. Meteorology and Atmospheric Physics, 97, 181-188. https://doi.org/10.1007/s00703-006-0251-2
Klinman, M.G. and Reason, C.J.C. (2008) On the Peculiar Storm Track of TC Favio during the 2006-2007 Southwest Indian Ocean Tropical Cyclone Season and Relationships to ENSO. Meteorology and Atmospheric Physics, 100, 233-242. https://doi.org/10.1007/s00703-008-0306-7
Malherbe, J., Engelbrecht, F.A., Landman, W.A. and Engelbrecht, C.J. (2012) Tropical Systems from the Southwest Indian Ocean Making Landfall over the Limpopo River Basin, Southern Africa: A Historical Perspective. International Journal of Climatology, 32, 1018-1032. https://doi.org/10.1002/joc.2320
Kai, K.H. (2018) Impacts of Southwestern Indian Ocean Tropical Cyclones and Storms on the Rainfall Pattern and Vegetation Productivity over Tanzania. Thesis Submitted to the Institute of Marine Sciences of the University of Dar Es Salaam, Dar Es Salaam, 297.
Kai, K.H., Ngwali, M.K. and Faki, M.M. (2021) Assessment of the Impacts of Tropical Cyclone Fantala to Tanzania Coastal Line: Case Study of Zanzibar. Atmospheric and Climate Sciences, 11, 245-266. https://doi.org/10.4236/acs.2021.112015
KeywordsTropical CyclonesZonal and Meridional WindsPrecipitable WaterVertical Wind ShearLow-Level VorticityWater-Borne DiseasesDeaths and Injuries
Ash, K.D. and Matyas, C.J. (2010) The Influence of ENSO and Subtropical Indian Ocean Dipole on Tropical Cyclone Trajectories in the Southwestern Indian Ocean. International Journal of Climatology, 32, 41-56. https://doi.org/10.1002/joc.2249
Mavume, A.F., Rydberg, L., Mathieu, R. and Lutjeharms, J.R.E. (2006) Climatology and Landfall of Tropical Cyclones in the South West Indian Ocean. Western Indian Ocean Journal Marine Sciences, 8, 15-36. https://doi.org/10.4314/wiojms.v8i1.56672
United Nations (2019) Malawi: Floods—Situation Report No. 6 (as of 28th June 2019). Zimbabwe Situation Report, 4 Dec 2020 and ECHO Factsheet—Southern Africa and Indian Ocean. https://reliefweb.int/report/malawi/malawi-floods-situation-report-no-6-28th-june-2019
Chibueze, N.O. and Babatunde, J.A. (2019) Simulating the Influence of Sea-Surface-Temperature (SST) on Tropical Cyclones over South-West Indian Ocean, Using the UEMS-WRF Regional Climate Model. A Preprint.
UN OCHA (United Nations Office for the Coordination of Humanitarian Affairs) (2019) MOZAMBIQUE: Cyclone Idai & Floods Situation Report No. 7. https://vosocc.unocha.org/GetFile.aspx?file=89307_OCHA_Siuation_Report_No.7_08_Apr.pdf
USAID (United States Agency for International Development) (2019) Southern Africa–Tropical Cyclone Idai. FACT SHEET #7, FISCAL YEAR (FY) 2019; OFDA Bulletins Appear on the USAID Website. http://www.usaid.gov/what-we-do/working-crises-and-conflict/responding-times-crisis/where-we-work
Kalnay, E, Kanamitsu, M., Kistler, R., Collins, W., Deaven, D., Gandin, L., Iredell, M., Saha, S., White, G., Woolen, J., Zhu, Y., Chelliah, M., Higgins, W., Janowiak, J., Mo, K.C., Ebisuzaki, W., Ropelewski, R., Wang, J., Leetmaa, A., Reynolds, R., Jenne, R. and Joseph, D. (1996) The NCEP/NCAR 40-Year Reanalysis Project. Bulletin of American Meteorological Society, 77, 437-471. https://doi.org/10.1175/1520-0477(1996)077%3C0437:TNYRP%3E2.0.CO;2
Kistler, R., Kalnay, E. and Collins, W. (2001) The NCEP-NCAR 50 Years Reanalysis: Monthly Means CD-ROM and Documentation. Bulletin of the American Meteorological Society, 82, 247-267. https://doi.org/10.1175/1520-0477(2001)082%3C0247:TNNYRM%3E2.3.CO;2
Merril, R.T. (1987) An Experiment in the Statistical Prediction of Tropical Cyclone Intensity Change. 17th Conference on Hurricanes and Tropical Meteorology, 302-307.
Merril, R.T. (1988) Environmental Influences on Hurricane Intensification. Journal of Atmospheric Sciences, 45, 1678-1687. https://doi.org/10.1175/1520-0469(1988)045%3C1678:EIOHI%3E2.0.CO;2
Chand, S.S. and Walsh, K.J.E. (2009) Tropical Cyclone Activity in the Fiji Region: Spatial Patterns and Relationship to Large-Scale Circulation. Journal of Climate, 22, 3877-3893. https://doi.org/10.1175/2009JCLI2880.1
Chand, S.S., Walsh, K.J.E. and Chan, J.C.L. (2010) A Bayesian Regression Approach to Seasonal Prediction of Tropical Cyclones Affecting the Fiji Region. Journal of Climate, 23, 3425-3445. https://doi.org/10.1175/2010JCLI3521.1
Wissmeier, U. and Smith, R.K. (2011) Tropical Cyclone Convection: The Effects of Ambient Vertical Vorticity. Quarterly Journal of the Royal Meteorological Society, 137, 845-857. https://doi.org/10.1002/qj.819
Kupferman, R. (2001) A Central-Difference Scheme for a Pure Stream Function Formulation of Incompressible Viscous Flow. SIAM Journal on Scientific Computing, 23, 1-18. https://doi.org/10.1137/S1064827500373395
Vincent, E.M., Emanuel, K.A., Lengaigne, M., Vialard, J. and Madec, G. (2014) Influence of Upper Ocean Stratification Interannual Variability on Tropical Cyclones. Journal of Advances in Modeling Earth Systems, 6, 680-699. https://doi.org/10.1002/2014MS000327
Xie, S.-P., Annamalai, H., Schott, F.A. and McCreary, J.P. (2002) Structure and Mechanisms of South Indian Ocean Climate Variability. Journal of Climate, 15, 864-878. https://doi.org/10.1175/1520-0442(2002)015%3C0864:SAMOSI%3E2.0.CO;2
Behera, S.K. and Yamagata, T. (2001) Subtropical SST Dipole Events in the Southern Indian Ocean. Geophysical Research Letters, 28, 327-330. https://doi.org/10.1029/2000GL011451
Reason, C.J.C. (2002) Sensitivity of the Southern African Circulation to Dipole Sea-Surface Temperature Patterns in the South Indian Ocean. International Journal of Climatology, 22, 377-393. https://doi.org/10.1002/joc.744
Suzuki, R., Behera, S.K., Iizuka, S. and Yamagata, T. (2004) Indian Ocean Subtropical Dipole Simulated Using a Coupled General Circulation Model. Journal of Geophysical, 109, Article ID: C09001. https://doi.org/10.1029/2003JC001974
Ferraro, R.R., Weng, F.Z., Grody, N.C. and Basist, A. (1996) An Eight-Year (1987-1994) Time Series of Rainfall, Clouds, Water Vapor, Snow Cover, and Sea Ice Derived from SSM/I Measurements. Bulletin of American Meteorological Society, 77, 891-905. https://doi.org/10.1175/1520-0477(1996)077%3C0891:AEYTSO%3E2.0.CO;2
Chu, P.-S. (2002) Large-Scale Circulation Features Associated with Decadal Variations of Tropical Cyclone Activity over the Central North Pacific. Journal of Climate, 15, 2678-2689. https://doi.org/10.1175/1520-0442(2002)015%3C2678:LSCFAW%3E2.0.CO;2
Inoue, M., Handoh, I.C. and Bigg, G.R. (2002) Bimodal Distribution of Tropical Cyclogenesis in the Caribbean: Characteristics and Environmental Factors. Journal of Climate, 15, 2897-2905. https://doi.org/10.1175/1520-0442(2002)015%3C2897:BDOTCI%3E2.0.CO;2
Stephens, G.L. (1990) On the Relationship between Water Vapor over the Oceans and Sea Surface Temperature. Journal of Climatology, 3, 634-645. https://doi.org/10.1175/1520-0442(1990)003%3C0634:OTRBWV%3E2.0.CO;2
USAID (United States Agency for International Development) (2019) Southern Africa—Tropical Cyclones Fact Sheet #13, Fiscal Year (FY) 2019, May 31, 2019.
Tuleya, R.E. and Kurihara, Y. (1981) A Numerical Study on the Effects of Environmental Flow on Tropical Storm Genesis. Monthly Weather Review, 109, 2487-2506. https://doi.org/10.1175/1520-0493(1981)109%3C2487:ANSOTE%3E2.0.CO;2
Frank, W.M. and Ritchie, E.A. (2001) Effects of Vertical Winds Shear on the Intensity and Structure of Numerically Simulated Hurricanes. Monthly Weather Review, 129, 2249-2269. https://doi.org/10.1175/1520-0493(2001)129%3C2249:EOVWSO%3E2.0.CO;2
Frank, W.M. and Ritchie, E.A. (1999) Effects of Environmental Flow upon Tropical Cyclone Structure. Monthly Weather Review, 127, 2044-2061. https://doi.org/10.1175/1520-0493(1999)127%3C2044:EOEFUT%3E2.0.CO;2
DeMaria, M. (1996) The Effects of Vertical Shear on Tropical Cyclone Intensity Change. Journal of Atmospheric Sciences, 53, 2076-2087. https://doi.org/10.1175/1520-0469(1996)053%3C2076:TEOVSO%3E2.0.CO;2
Tory, K.J., Dare, R.A., Davidson, N.E., McBride, J.L. and Chand, S.S. (2013) The Importance of Low-Deformation Vorticity in Tropical Cyclone Formation. Atmospheric Chemistry and Physics, 13, 2115-2132. https://doi.org/10.5194/acp-13-2115-2013
Nolan, D.S., Rappin, E.D. and Emanuel, K.A. (2007) Tropical Cyclogenesis Sensitivity to Environmental Parameters in Radiative-Convective Equilibrium. Quarterly Journal of the Royal Meteorological Society, 133, 2085-2107. https://doi.org/10.1002/qj.170
Zehr, R.M. (1992) Tropical Cyclogenesis in the Western North Pacific. NOAA Technical Report NESDIS6, National Oceanic and Atmospheric Administration, Washington DC, 181 p.
Kilroy, G. and Smith, R.K. (2015) Tropical Cyclone Convection: The Effects of a Vortex Boundary-Layer Wind Profile on Deep Convection. Quatery Journal of Royal Meteorological Society, 141, 714-726. https://doi.org/10.1002/qj.2383
The Post-Disaster Needs Assessment (PDNA) (2019) Mozambique Cyclone Idai: Post Deserter Deeds Assessment. https://www.ilo.org/wcmsp5/groups/public/---ed_emp/documents/publication/wcms_704473.pdf
WMO (World Meteorological Organization) (2019) Reducing Vulnerability to Extreme Hydro-Meteorological Hazards in Mozambique after Cyclone IDAI. WMO Mission Report following Tropical Cyclone IDAI. https://www.afro.who.int/sites/default/files/2019-05/WHOSitRep1Mozambique06-07-2019.pdf