MITIGATING METHANE EMISSIONS FROM ERBIL WASTE DUMPING SITE: A GIS –BASED APPROACH TO DETECTION AND CONVERSION INTO A GREEN LANDSCAPE

Authors

  • SHUOKR QARANI AZIZ Department of Civil engineering, College of engineering, Salahaddin University- Erbil, Erbil, Kurdistan Region, Iraq
  • DALSHAD AHMED KAREEM Department of Surveying, College of Technology, Erbil Polytechnic University, Erbil, Kurdistan Region, Iraq
  • BALA KAWA M. SLEEM General Directorate of Water and Sewage, Ministry of Municipalities and Tourism, Erbil 44001, Iraq

DOI:

https://doi.org/10.36103/335eqs49

Keywords:

Methane gas, Erbil waste dumping site, Green area, environmental

Abstract

This work uses Geographic Information System (GIS) technology, particularly ArcMap, to address the serious environmental issue of methane (CH4) leaks from the Kane Qrzhala waste dumping site Sub district in Erbil City, at latitudes 36°10'23"- 36°52'25" N and longitudes 43°35'32"- 44°23'43" E. The aim of this research is to identify and analyze methane concentrations in the neighborhood of the dumping site, offering significant data for environmental monitoring and mitigation techniques. "This study employs an integrated approach combining spatial data and satellite imagery. Methane emission levels were extracted from two publicly accessible platforms: earth.jpl.nasa.gov and dataspace.copernicus.eu.”, and ground measurements to map and quantify methane emissions. The findings contribute to the understanding of the spatial distribution of methane emissions, enabling targeted interventions to reduce environmental harm. Furthermore, the research investigates sustainable alternatives to reducing methane emissions by identifying that the garbage dumping site be converted into a green area and, eventually, a forest. The methane plume spanned 26.768 km² with a concentration of 3471 ppm—over twice the safety limit—posing a serious environmental and health risk and demanding urgent action to control emissions. Beyond methane reduction, the benefits of transforming the dumping site into a green space include improved air quality, increased biodiversity, and the construction of a community recreational area. Finally, this study not only extends to our awareness of the release of methane from waste disposal sites, however it also advocates for the conversion of such sites into environmentally beneficial landscapes.

References

1. Zhao, H., Themelis, N., Bourtsalas, A., & McGillis, W. R. (2019). Methane emissions from landfills. Columbia University, 71, 233.

2. Peer, R. L., Thorneloe, S. A., & Epperson, D. L. (1993). A comparison of methods for estimating global methane emissions from landfills. Chemosphere, 26(1-4), 387-400.

3. Mønster, J., Kjeldsen, P., & Scheutz, C. (2019). Methodologies for measuring fugitive methane emissions from landfills–A review. Waste Management, 87, 835-859.

4. Jacob, D.J., Turner, A.J., Maasakkers, J.D., Sheng, J., Sun, K., Liu, X., Chance, K., Aben, I., McKeever, J. and Frankenberg, C., 2016. Satellite observations of atmospheric methane and their value for quantifying methane emissions. Atmospheric Chemistry and Physics, 16(22), pp.14371-14396.

5. Bian, R., Komiya, T., Shimaoka, T., Chai, X., & Sun, Y. (2019). Simulative analysis of vegetation on CH4 emission from landfill cover soils: Combined effects of root-water uptake, root radial oxygen loss, and plant-mediated CH4 transport. Journal of Cleaner Production, 234, 18-26.

6. Fraser-McDonald, A., Boardman, C., Gladding, T., Burnley, S., & Gauci, V. (2022). Methane emissions from forested closed landfill sites: Variations between tree species and landfill management practices. Science of the Total Environment, 838, 156019.

7. Aziz, S. Q., & Mustafa, J. S. (2019). Step-by-step design and calculations for water treatment plant units. Advances in Environmental Biology, 13(8), 1-16.

8. Bingemer, H. G., & Crutzen, P. J. (1987). The production of methane from solid wastes. Journal of Geophysical Research: Atmospheres, 92(D2), 2181-2187.

9. Aziz, S. Q., Ismael, S. O., & Omar, I. A. (2023). New approaches in solid waste recycling and management in Erbil City. Environmental Protection Research, 1-13.

10. Chabuk, A., Al-Ansari, N., Alkaradaghi, K., Al-Rawabdeh, A. M. M., Laue, J., Hussain, H. M., ... & Knutsson, S. (2018). Landfill final cover systems design for arid areas using the help model: a case study in the babylon governorate, Iraq. Sustainability, 10(12), 4568.

11. IEA. (2022). Methane and climate change – Global Methane Tracker 2022 – Analysis. Retrieved from https://www.iea.org/reports/global-methane-tracker-2022/methane-and-climate-change

12. UNEP. (2024). Methane emissions are driving climate change. Here's how to.... Retrieved from https://www.unep.org/news-and-stories/story/methane-emissions-are-driving-climate-change-heres-how-reduce.

13. Climate & Clean Air Coalition. (2024). Methane. Retrieved from https://www.ccacoalition.org/short-lived-climate-pollutants/methane

14. Brunner, D. R. (1971). Closing open dumps (No. 61). US Environmental Protection Agency, Solid Waste Management Office.

15. Grifoni, M., Franchi, E., Fusini, D., Vocciante, M., Barbafieri, M., Pedron, F., ... & Petruzzelli, G. (2022). Soil remediation: Towards a resilient and adaptive approach to deal with the ever-changing environmental challenges. Environments, 9(2), 18.

16. Khan, S., Naushad, M., Lima, E. C., Zhang, S., Shaheen, S. M., & Rinklebe, J. (2021). Global soil pollution by toxic elements: Current status and future perspectives on the risk assessment and remediation strategies–A review. Journal of Hazardous Materials, 417, 126039.

17. Song, U. (2018). Selecting plant species for landfill revegetation: a test of 10 native species on reclaimed soils. Journal of Ecology and Environment, 42, 1-6.

18. Pietrzykowski, M. (2019). Tree species selection and reaction to mine soil reconstructed at reforested post-mine sites: Central and eastern European experiences. Ecological Engineering, 142, 100012.

19. Szadek, P., Pająk, M., Michalec, K., Wąsik, R., Otremba, K., Kozłowski, M., & Pietrzykowski, M. (2023). The Impact of the Method of Reclamation of the Coal Ash Dump from the “Adamów” Power Plant on the Survival, Viability, and Wood Quality of the Introduced Tree Species. Forests, 14(4), 848.

20. Krauss, K. W., Duberstein, J. A., Doyle, T. W., Conner, W. H., Day, R. H., Inabinette, L. W., & Whitbeck, J. L. (2009). Site condition, structure, and growth of baldcypress along tidal/non-tidal salinity gradients. Wetlands, 29, 505-519.

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Published

2026-01-26

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How to Cite

AZIZ, S. Q., KAREEM, D. A., & SLEEM, B. K. M. (2026). MITIGATING METHANE EMISSIONS FROM ERBIL WASTE DUMPING SITE: A GIS –BASED APPROACH TO DETECTION AND CONVERSION INTO A GREEN LANDSCAPE . IRAQI JOURNAL OF AGRICULTURAL SCIENCES, 57(1), 295-306. https://doi.org/10.36103/335eqs49