Comparative analysis of the mechanism of autumn and winter rainfalls in the southwest of Iran

Document Type : Original Article

Authors

1 Department of Physical Geography, Faculty of Earth Sciences, Shahid Beheshti University, Tehran, Iran

2 Department of Physical Geography, Faculty of Geographical Sciences, Kharazmi University, Tehran, Iran

3 I.R. of Meteorological Institute, Tehran, Iran

Abstract

Introduction
Autumn and winter rains play an important role in Iran's agricultural and livestock economy, as well as feeding underground water tables, especially in the western and southwestern regions of Iran. The continuous reduction of underground water reserves in Iran increases the importance of atmospheric precipitation especially during autumn and winter seasons. This importance is affected by the centrality of agriculture in Iran, as well as the supply of drinking water in small and large cities.
This sensitivity is more in the southern half of Iran and especially in the southwest, which has rivers full of water and it, is a region full of large dams.
Data and methods
In this research, the mechanism of rainfall in the two seasons of autumn and winter in southwestern Iran was investigated and compared. Then, the synoptic conditions of the longest and most intense rainfalls that occurred during the selected data period in the research area were identified. In this research, a rainy day was defined as a day when the weather station received at least half a millimeter of rain. Also, the duration of rainfall at each station was defined as the number of consecutive days of rainfall at that station. In first step, daily rainfall data were collected from 8 weather stations in the 30-year period (1987-2016) in southwest Iran. During the second step, separation of rainfalls according their duration using programming in MATLAB environment; it made it possible to select 40 precipitation samples. During the last step, synoptic patterns were designed from daily weather maps, including moisture flux, atmospheric height, and the position of jet-stream cores.
Results
In this research, the analysis of patterns showed the following results: 1) Sources of continuous and widespread rains in the autumn season, warm waters around Iran include the Red Sea, Gulf of Aden, Arabian Sea, Persian Gulf and Oman Sea. 2) The origin of the wet currents of these rains is from the central regions of tropical Africa. 3) During the winter season, these resources are generally limited to the Red Sea and the Gulf of Aden. 4)  Also, the analysis of the position patterns of negative omega cores at the level of 500 hPa indicates the conditions of inflammation and severe thermal gradient in the atmospheric column over the southwestern lands of Iran during the autumn season compared to the winter.
 
 
Conclusion
Based on the designed patterns, the western troughs in the eastern Mediterranean deepen during the winter season compared to other seasons and they provide the following conditions for rainfall in southwest Iran: 1) The path of precipitation systems also reaches the southwest of Iran. 2) Stronger cores are formed from jet-stream in the southwest of Iran. 3) More water areas such as the Mediterranean Sea, the Red Sea, the Gulf of Aden and the Arabian Sea contribute to the provision of rainfall moisture.

Keywords

Main Subjects


Persian References:
-Ahmadi, M. and Jafari, F., 2018. Full routing and synoptic analysis A sample of studies of heavy rainfall systems in excess of 50 mm in southern Iran. Journal of Spatial Analysis Environmental Hazards, v. 5(3), p. 83-102.
-Kiani,  M.,  Lashkari, H. and Ghaemi, H., 2020. Synoptic analysis of winter (DJF) extreme rainfall in western Iran. Journal of Earth Sciences Researches, v. 11(3), p. 233-244.  URL: https://esrj.sbu.ac.ir/article_97404.html
-Hejazizadeh, Z. and Jafarpoor, Z., 2008. Investigating and identifying synoptic patterns of 500 hPa level generating destructive and extensive floods in the Urmia Lake catchment area. Journal of Geographical Sciences, v. 7(5), p. 125-155. URL: https://jgs.khu.ac.ir/article-1-545-fa.html
-Halabian, A. and Hoseynalipoorjazi, F., 2016. Synoptic analysis of climate hazards in southwest Iran under study: Heavy rains causing floods in December 2011. Journal of Spatial Analysis Environmental Hazards, v. 2(4), p. 31-46. DOI:10.18869/acadpub.jsaeh.2.4.31
-Zolfaghari, H. and Abedzadeh, H., 2004. Synoptic analysis of dust systems in western Iran. Journal of Geography and Development, v. 6, p. 173-188.
-Azizi, Gh., Nayyeri, M. and Rostami, Sh., 2009. Synoptic analysis of heavy rains in the west of the Iran. Journal of Physical Geography, v. 4, p. 1-13.
-Alijani, B., 2013. Synoptic Climatology. Tehran, SAMT Press.
-Farajzadeh, M. and khorani, A., 2007. Analysis of Jetstream Position in Relation to Precipitation Systems in the West of Iran (Ilam and Kermanshah Provinces). Journal of Modares, v. 11, p. 239-256.
-Lashkari, H., 2012. Routing of Sudanese low pressure systems entering Iran. Journal of Modares, v. 2, p. 133-156.
-Lashkari, H., 2013. Mechanism of formation, strengthening and development of low pressure center in Sudan and its role on rainfall in south and southwest of Iran. Journal of Geographical Researches, v. 35, p. 1-18.
-Mohammadi, B. and Masoodian, A., 2019. Synoptic analysis of heavy rainfalls over Iran. Journal of Geography and Development, v. 19, p. 47-70.
-Masoodian, A., 2008. The Climatology of Iran. Isfahan, Pub. University of Isfahan.
-Mofidi, A. and Zarrin, A., 2006. An analysis of the nature and structure of high pressure and low pressure centers. Journal of Earth Sciences, v. 46, p. 53-61.
-Nazaripour, H., 2018. Regions of Iran with Persistence of Precipitation. JGD-Journal of Geography and Development. Journal of Geography and Development, v. 5(3), p. 83-102.
-Nazaripour, H., Masoodian, A. and Karimi, Z., 2012. An investigation of the spatial changes of one-day (24-Hour) precipitation in the supply of Iran precipitation days and amount. JESPHYS, v. 38(4), p. 241-258.
URL: doi: 10.22059/jesphys.2013.30218
 
English References:
-Alijani, B., 2002. Variation of 500 hPa flow Patterns over Iran and Surrounding areas and their relationship with Climate of Iran. Theor Appl, Climatol, v. 71, p. 4-41.
-Domroes, M. and Rantung, E., 1993. A Statistical approach toward a regionalization of daily rainfall in Sri Lanka. Int. J. Climatol., v. 7, p. 741-754.
-Fu, Y.F., Chen, G., Liu, Y., Yang, R., Yuan, R., Li, Q., Liu, Y., Wang, L., Zhong, L. and Sun, X., 2016. Resent Trends of sumer convective and statiform precipitation in Mid- Eastern china. Scientific Reports, v. 6, p. 44-33.
-Farajzadeh, M. and Ahmadi, M., 2017. A synoptic – climatology approach to increase skill of numerical weather predictions over Iran. Natural Environment Change, v. 3, p. 1-9.
-Harnack, D.T., Jensen, J.R. and Cermak, X., 1998. Investigation of upper air conditions occurring with heavy summer main in Utah. International Journal of climatology, v. 18, p. 701-723.
-Houze, R.A., 2012. Orographic effects on precipitating clouds. Reviews of Geographic, v. 50, p. 608-598.
-Jiang, T.Z. and Kundzewicz, B.S., 2008. Change in monthly precipitation and flood hazard in the Yangtze River Basin China. Internantional Journal of Climatology, v. 28, p. 1471-1481.
-Lana, A., Campin, A. and Genoves, A., 2007. Atmospheric patterns for heavy rain event in the Balearic Island. Advance in Geosciences, v. 12, p. 27-32.
-Li, Z.S., Yang, B., He, C. and Hu, X., 2016. Intensified Springtime Deep Convections over the south china sea and the philippine sea dries southern china. Scintific peport, v. 9,  p. 63-47.
-Rodwell, M. and Hoskins, B., 2001. Subtropical anticyclones and summer monsons. J. Climate, v. 14. p. 3192-3211.
-Rudari, R., Entekhabi, D. and Roth, G., 2004. Large-Scale atmospheric patterns associated with meso-scale texture leading to extreme precipitation events in Northwestern Italy. Advances in Water Resource, v. 28, p. 601-614.
-William, H., Neil, I. and Christopher, G., 2004. A Study of twentieth- century extreme rainfall events in the United Kingdom with implications for forecasting. Advances in water Resource, v. 2, p. 601-614.
-Yarnal, B. and Frankes, B., 1994. Using synoptic climatology to define representative discharge event. International Journal of Climatology, v. 17, p. 323-341.