Assessing the Impact of Fugitive Dust Emissions from Cement Silos at Cluster of Concrete Batching Facilities Using Air Dispersion Modeling
- 1 Environment Agency, Abu Dhabi, UAE
- 2 Department of Evaluation of Natural Resources, Environmental Study Research Institute (ESRI), Sadat City University, Sadat City, Egypt
- 3 Environmental Sciences Department, Faculty of Science, Port-Said University, Port Said, Egypt
- 4 Physics Department, Faculty of Science, Port-Said University, Port Said, Egypt
Abstract
This research assessed the environmental impact of cement silos emission on the existing concrete batching facilities in M35-Mussafah, Abu Dhabi, United Arab Emirates. These assessments were conducted using an air quality dispersion model (AERMOD) to predict the ambient concentration of Portland Cement particulate matter less than 10 microns (PM 10 ) emitted to the atmosphere during loading and unloading activities from 176 silos located in 25 concrete batching facilities. AERMOD was applied to simulate and describe the dispersion of PM 10 released from the cement silos into the air. Simulations were carried out for PM 10 emissions on controlled and uncontrolled cement silos scenarios. Results showed an incremental negative impact on air quality and public health from uncontrolled silos emissions and estimated that the uncontrolled PM 10 emission sources contribute to air pollution by 528958.32 kg/Year. The modeling comparison between the controlled and uncontrolled silos shows that the highest annual average concentration from controlled cement silos is 0.065 μg/m 3 , and the highest daily emission value is 0.6 μg/m 3 ; both values are negligible and will not lead to significant air quality impact in the entire study domain. However, the uncontrolled cement silos’ highest annual average concentration value is 328.08 μg/m 3 . The highest daily emission average value was 1250.09 μg/m 3 ; this might cause a significant air pollution quality impact and health effects on the public and workers. The short-term and long-term average PM 10 pollutant concentrations at these receptors predicted by the air dispersion model are discussed for both scenarios and compared with local and international air quality standards and guidelines.
- Environment Agency-Abu Dhabi (EAD) (2018) Abu Dhabi Air Emissions Inventory. Environment Agency, Abu Dhabi, 31-76. https://www.ead.gov.ae/storage/Post/files/a17bd08466f33ac0d091e9b55adf71b7.pdf
- WHO (2013) Health Effects of Particulate Matter: Policy Implications for Countries in Eastern Europe, Caucasus, and Central Asia. WHO Regional Office for Europe UN, Marmorvej 51 DK-2100, Copenhagen, Denmark, p. 6. https://www.euro.who.int/__data/assets/pdf_file/0006/189051/Health-effects-of-particulate-matter-final-Eng.pdf
- Ibrahim, A., Sharba A. and Hussain, H. (2021) Effect of Storage Period in Hot Weather on the Properties of Portland Cement. Journal of Engineering Science and Technology, 16, 4808-4816.
- Iowa Department of Natural Resources (DNR) (2011) Concrete Batch Plant Modeling Guide. Environmental Protection Section, Air Quality Section. https://www.iowadnr.gov/portals/idnr/uploads/air/insidednr/dispmodel/concrete_batch_plants.pdf
- Ciobanu, C., Istrate, I., Tudor, P. and Voicu, G. (2021) Dust Emission Monitoring in Cement Plant Mills: A Case Study in Romania. International Journal of Environmental Research and Public Health, 18, Article 9096. https://doi.org/10.3390/ijerph18179096
- World Health Organization (1999) Hazard Prevention and Control in the Work Environment: Airborne Dust. https://apps.who.int/iris/handle/10665/66147
- United States Environmental Protection Agency (2002) EPA Air Pollution Control Cost Manual (Sixth Edition, Document No. EPA/452/B-02-001). Office of Air Quality Planning and Standards, Research Triangle Park, North Carolina 27711. Section 6: Particulate Matter Controls - Baghouses and Filters. https://www3.epa.gov/ttncatc1/dir1/c_allchs.pdf
- Short, S. and Petsonk, E. (1996). Non-Fibrous Inorganic Dusts. In: Harber, P., Schenker, M.B. and Balmes, J.R., Eds., Occupational and Environmental Respiratory Disease, Mosby, London.
- Deutsche Forschungsgemeinschaft (DFG) (2015) Portland Cement Dust [MAK Value Documentation, 2012]. In The MAK-Collection for Occupational Health and Safety. Wiley Online Library, 1-35. https://doi.org/10.1002/3527600418.mb6599715stae5315
- Department of the Environment, Water, Heritage and the Arts (2008) Emission Estimation Technique Manual for Cement Manufacturing (Version 2.1.). Australian Government Department of the Environment, Water, Heritage and the Arts.
- Shah, K., An, N., Ma, W., Ara, G., Ali, K., Kamanova, S., Zuo, X., Han, M., Ren, X. and Xing, L. (2020) Chronic Cement Dust Load Induce Novel Damages in Foliage and Buds of Malus domestica. Scientific Reports, 10, Article No. 12186. https://doi.org/10.1038/s41598-020-68902-6