Submitted:
26 February 2025
Posted:
27 February 2025
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Abstract
The February 6, 2023, earthquake in Kahramanmaraş, Turkey, resulted in extensive debris accumulation, raising concerns regarding air quality and public health. This study assessed dust concentration levels generated during debris removal and emergency response efforts. Respirable and total dust concentrations affecting Post-Disaster air quality over a five-day period were measured using dust monitoring devices applying the MDHS-14/3 gravimetric method. Scanning Electron Microscopy (SEM) and Energy Dispersive X-ray (EDX) analyses were conducted to determine dust particle morphology. The results showed an average respirable dust concentration of 30.84 mg/m³ and a total dust concentration of 33.66 mg/m³. SEM and EDX analyses identified fibrous structures and elements indicative of asbestos minerals, highlighting potential long-term health risks, including asbestosis and lung cancer. This study underscores the urgent need for protective measures to mitigate exposure risks for affected populations and emergency responders. Integrating health risk assessments into disaster management strategies is essential to reducing long-term public health consequences.
Keywords:
1. Introduction
2. Material and Method
2.1. Materials
2.3. Method
2.3.1. Calculation of the Mass of Dust Concentration
2.3.2. Determination of the Morphological Characteristics of Dust Concentrations
3. Findings
3.1. Dust Concentration Values
3.2. SEM and EDX Results
4. Discussion
5. Conclusion
Funding
References
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| Measurement Date | Time | Location | Duration |
|---|---|---|---|
| 17.02.2023 | Morning | Atatürk Street | 2 Hour |
| 17.02.2023 | Afternoon | Atatürk Street | 2 Hour |
| 18.02.2023 | Morning | Fatih Street | 1 Hour |
| 18.02.2023 | Afternoon | Atatürk Street | 1 Hour |
| 19.02.2023 | Morning | Cumhuriyet Street | 1 Hour |
| 19.02.2023 | Afternoon | Cumhuriyet Street | 1 Hour |
| 20.02.2023 | Morning | Atatürk Street | 3 Hour |
| 20.02.2023 | Afternoon | Fatih Street | 3 Hour |
| 21.02.2023 | Afternoon | Cumhuriyet Street | 3 Hour |
| Date | Humidity (%) | Air Temperature (ᵒc) | Wind Speed (m/sn) | Pressure (Hpa) |
|---|---|---|---|---|
| 17.02.2023 | 43 | 11,6 | 0,5 | 1003 |
| 31 | 19,3 | 1 | 1014 | |
| 18.02.2023 | 49,3 | 15,1 | 1 | 1005 |
| 48,6 | 16,2 | 1 | 1015 | |
| 19.02.2023 | 52,4 | 17 | 0,4 | 1010 |
| 49,5 | 21,1 | 1,7 | 1015 | |
| 20.02.2023 | 54,5 | 18,5 | 0,9 | 1011 |
| 46,6 | 22 | 3,6 | 1011 | |
| 47,5 | 24 | 1 | 1010 | |
| 21.02.2023 | 53,5 | 20 | 3 | 1009 |
| Date | Sample No. | Hour | Duration (Hour) | Value (mg/m³) |
|---|---|---|---|---|
| 17.02.2023 | 6 | 11:30 | 2 | 1,239 |
| 7 | 2,619 | |||
| 8 | 15:00 | 16,004 | ||
| 9 | 15:05 | 26,771 | ||
| 18.02.2023 | 11 | 13:20 | 1 | 4,213 |
| 12 | 27,07 | |||
| 13 | 14.37 | 9,951 | ||
| 14 | 14:38 | 37,364 | ||
| 15 | 14:40 | 43,136 | ||
| 19.02.2023 | 17 | 12:12 | 1 | 97,81 |
| 18 | 13:30 | 2,952 | ||
| 19 | 13:35 | 36,022 | ||
| 20 | 13:25 | 84,896 | ||
| 20.02.2023 | 21 | 11:45 | 1 | 38,561 |
| 22 | 11:50 | 3 | 12,645 | |
| 23 | 13:18 | 90,926 | ||
| 24 | 13:20 | 1 | 42,599 | |
| 25 | 14:25 | 65,227 | ||
| 21.02.2023 | 26 | 13:10 | 1 | 77,707 |
| Date | Sample No | HOUR | Duration (Hour) | Value (mg/m³) |
|---|---|---|---|---|
| 17.02.2023 | 1 | 11:30 | 2 | 33,635 |
| 18.02.2023 | 2 | 13.25 | 1 | 43,837 |
| 19.02.2023 | 3 | 12:05 | 1 | 35,896 |
| 20.02.2023 | 4 | 11:50 | 1 | 29,426 |
| 5 | 14:30 | 1 | 25,479 |
| Substance | Total Dust Amount (mg/m3) (TWA) |
Amount of Respirable Dust (mg/m3) (TWA) |
|---|---|---|
| Calcium Carbonate (Marble) | 15 | 5 |
| Calcium Carbonate (Limestone) | 15 | 5 |
| Calcium Hydroxide | 15 | 5 |
| Calcium Silicate | 15 | 5 |
| Calcium Sulfate | 15 | 5 |
| Plaster of Paris | 15 | 5 |
| Portland Cement | 15 | 5 |
| Emery | 15 | 5 |
| PM2.5 | WHO | ILO | OSHA/NIOSH | EU | ||||
| Annual Average | Daily Average | Respirable Dust | Free Silica | Silica Dust |
General Dust Exposure | General Dust Exposure | Crystalline Silica | |
| 10 mg/m3 | 25 mg/m3 | 10 mg/m3 | 0.1 mg/m3 | 0.05 mg/m3 | 15 mg/m3 | 10 mg/m3 | 0.1 mg/m3 | |
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