Heatwaves and Their Impact on Air Quality in Greater Cairo, Egypt
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Area
2.2. Temperature Data
2.3. Air Quality Data
2.4. Methodology
2.4.1. Heatwave Definition
2.4.2. Data Analysis
- Analysis of the HW intensity, in terms of the number of HW days and the maximum temperature reached during an HW event;
- Analysis of the HW frequency, in terms of the number of HW events.
- Analysis of the time series of daily mean temperature and air pollutant concentration during the months that recorded severe HW events [19].
- Analysis of correlation between the temperature and each of the air pollutants, using a simple linear regression model (linear correlation model) [19].
- Analysis of the Air Quality Health Index (AQHI), which measures the air quality in relation to public health, taking into account the daily averaged concentrations of PM10, NO2, and O3 on a scale of 1 to 10. The largest AQHI corresponds to the highest health risk from air pollution. The AQHI [29] also provides a word classification that describes the degree of health risk related to the index reading (such as Low, Moderate, High, or Very High Health Risk). It is calculated according to Equation (1) [23,30]. Table 1 shows the health risk as class indices, along with the AQHI grid showing associated health messages:
3. Results
3.1. Characteristics of Recent HWs
3.2. Assessment of the Relationship between Temperature and the Pollutant Concentrations during HWs
3.2.1. Selection of the Periods of Study
3.2.2. Time Series Analysis of Temperature and PM10 Concentration during Months with Severe HWs
3.2.3. Correlation Analysis of Temperature and Air Pollution
3.2.4. Implications for AQHI during HWs
4. Discussion
5. Conclusions
- Temperature and PM10 are strongly and positively correlated (R2 = 0.84). On average, PM10 is around 60 µg/m3 when the daily maximum temperature is between 27 and 30 °C, but this concentration doubles when the temperature increases above 40 °C during the HWs.
- Ozone concentration is also positively correlated with temperature, but less strongly (R2 = 0.24) than PM10. On average, its concentration increases by 10% (between 50 and 60 µg/m3) when the temperature increases from 30 to 40 °C.
- Conversely, there is no detectable impact (R2 = 0.001) of temperature on the NO2 concentration.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Health Risk Index Class | AQHI Grid |
---|---|
Low Risk | 1–3 |
Moderate Risk | 4–6 |
High Risk | 7–10 |
Very High Risk | 10+ |
Year | Month | Period | N (%) | Tmax (°C) | PM10 (μg/m3) | NO2 (μg/m3) | O3 (μg/m3) |
---|---|---|---|---|---|---|---|
2007 | June | 24–29th | 6 (31.6) | 39.8 | 134.1 | Nil | Nil |
July | 24–28th | 5 (26.3) | 39.2 | 146.2 | Nil | Nil | |
2010 | June | 17–23rd | 7 (23.3) | 39.9 | 186.0 | 14.7 | 13.1 |
August | 15–20th | 6 (20.0) | 38.3 | 108.7 | 16.2 | 12.5 | |
2012 | August | 7–13th | 7 (41.2) | 37.6 | 49.4 | 22.9 | 39.6 |
2015 | August | 3–11th | 9 (37.5) | 38.3 | 312.1 | 18.8 | 37.0 |
2021 | July | 15–21st | 7 (15.9) | 38.0 | Nil | Nil | Nil |
July–August | 29–8th | 11 (25.0) | 39.9 | Nil | Nil | Nil | |
2023 | July | 22–28th | 7 (25.0) | 38.4 | Nil | Nil | Nil |
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Mostafa, A.N.; Alfaro, S.C.; Robaa, S.M.; Zakey, A.S.; Abdel Wahab, M.M. Heatwaves and Their Impact on Air Quality in Greater Cairo, Egypt. Atmosphere 2024, 15, 637. https://doi.org/10.3390/atmos15060637
Mostafa AN, Alfaro SC, Robaa SM, Zakey AS, Abdel Wahab MM. Heatwaves and Their Impact on Air Quality in Greater Cairo, Egypt. Atmosphere. 2024; 15(6):637. https://doi.org/10.3390/atmos15060637
Chicago/Turabian StyleMostafa, Amira N., Stéphane C. Alfaro, Sayed. M. Robaa, Ashraf S. Zakey, and Mohamed M. Abdel Wahab. 2024. "Heatwaves and Their Impact on Air Quality in Greater Cairo, Egypt" Atmosphere 15, no. 6: 637. https://doi.org/10.3390/atmos15060637
APA StyleMostafa, A. N., Alfaro, S. C., Robaa, S. M., Zakey, A. S., & Abdel Wahab, M. M. (2024). Heatwaves and Their Impact on Air Quality in Greater Cairo, Egypt. Atmosphere, 15(6), 637. https://doi.org/10.3390/atmos15060637