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Dr Muhammad Adnan Abid

Postdoctoral Research Assistant

Research theme

  • Climate physics

Sub department

  • Atmospheric, Oceanic and Planetary Physics

Research groups

  • Predictability of weather and climate
adnan.abid@physics.ox.ac.uk
Robert Hooke Building, room S38
  • About
  • Publications

Early summer surface air temperature variability over Pakistan and the role of El Niño–Southern Oscillation teleconnections

International Journal of Climatology Wiley 42:11 (2022) 5768-5784

Authors:

Irfan Ur Rashid, Muhammad Adnan Abid, Mansour Almazroui, Fred Kucharski, Muhammad Hanif, Shaukat Ali, Muhammad Ismail

Dominant controls of cold-season precipitation variability over the high mountains of Asia

npj Climate and Atmospheric Science Springer Nature 5:1 (2022) 65

Authors:

Shahid Mehmood, Moetasim Ashfaq, Sarah Kapnick, Subimal Gosh, Muhammad Adnan Abid, Fred Kucharski, Fulden Batibeniz, Anamitra Saha, Katherine Evans, Huang-Hsiung Hsu

Are We at Risk of Losing the Current Generation of Climate Researchers to Data Science?

AGU Advances American Geophysical Union (AGU) 3:4 (2022)

Authors:

Shipra Jain, Julia Mindlin, Gerbrand Koren, Carla Gulizia, Claudia Steadman, Gaby S Langendijk, Marisol Osman, Muhammad A Abid, Yuhan Rao, Valentina Rabanal

Skill of the Saudi-KAU CGCM in Forecasting ENSO and its Comparison with NMME and C3S Models

Earth Systems and Environment Springer Nature 6:2 (2022) 327-341

Authors:

Mansour Almazroui, Muhammad Azhar Ehsan, Michael K Tippett, Muhammad Ismail, M Nazrul Islam, Suzana J Camargo, Muhammad Adnan Abid, Enda O’Brien, Shahzad Kamil, Andrew W Robertson, Bohar Singh, Mahmoud Hussein, Vale Mohamed Omar, Ahmed Elsayed Yousef

Projected Changes in Climate Extremes Using CMIP6 Simulations Over SREX Regions

Earth Systems and Environment Springer 5:3 (2021) 481-497

Authors:

Mansour Almazroui, Fahad Saeed, Sajjad Saeed, Muhammad Ismail, Muhammad Azhar Ehsan, M Nazrul Islam, Muhammad Adnan Abid, Enda O’Brien, Shahzad Kamil, Irfan Ur Rashid, Imran Nadeem

Abstract:

Abstract This paper presents projected changes in extreme temperature and precipitation events by using Coupled Model Intercomparison Project phase 6 (CMIP6) data for mid-century (2036–2065) and end-century (2070–2099) periods with respect to the reference period (1985–2014). Four indices namely, Annual maximum of maximum temperature (TXx), Extreme heat wave days frequency (HWFI), Annual maximum consecutive 5-day precipitation (RX5day), and Consecutive Dry Days (CDD) were investigated under four socioeconomic scenarios (SSP1-2.6; SSP2-4.5; SSP3-7.0; SSP5-8.5) over the entire globe and its 26 Special Report on Managing the Risks of Extreme Events and Disasters to Advance Climate Change Adaptation (SREX) regions. The projections show an increase in intensity and frequency of hot temperature and precipitation extremes over land. The intensity of the hottest days (as measured by TXx) is projected to increase more in extratropical regions than in the tropics, while the frequency of extremely hot days (as measured by HWFI) is projected to increase more in the tropics. Drought frequency (as measured by CDD) is projected to increase more over Brazil, the Mediterranean, South Africa, and Australia. Meanwhile, the Asian monsoon regions (i.e., South Asia, East Asia, and Southeast Asia) become more prone to extreme flash flooding events later in the twenty-first century as shown by the higher RX5day index projections. The projected changes in extremes reveal large spatial variability within each SREX region. The spatial variability of the studied extreme events increases with increasing greenhouse gas concentration (GHG) and is higher at the end of the twenty-first century. The projected change in the extremes and the pattern of their spatial variability is minimum under the low-emission scenario SSP1-2.6. Our results indicate that an increased concentration of GHG leads to substantial increases in the extremes and their intensities. Hence, limiting CO 2 emissions could substantially limit the risks associated with increases in extreme events in the twenty-first century.

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