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International Journal of Academic Research in Business and Social Sciences

Open Access Journal

ISSN: 2222-6990

Feasibility Study on the Imperatives for the Simulation of Ammonia Release Management

Abdani Abdul Gafor, Nor Mariah Adam, Mohd Ibrani Shahrimin Adam Assim, Azizul Hakim Lahuri, Omar Faruqi Marzuki

http://dx.doi.org/10.6007/IJARBSS/v11-i17/11402

Open access

Ammonia is being exported through Bintulu Port via pipeline and loaded to the vessel (ship) using marine loading arm. Ammonia is toxic in nature and transferred at -33 oC. Marine loading arms are special equipment for loading and unloading liquid cargo from the wharf and the vessel with swivel joints, and supplemented by supporting structure, and other accessories. Loading arms have safety features such as that we can set up quick release mechanism, in which the loading arm will decouple from the manifold when there is an emergency, or the movement of vessel is out of range. Studies such as by United Kingdom (UK) Health and Safety Executive (HSE) on loading arm had provided the probabilities of failures, and the possible size of hole such as guillotine break or 0.1 cross sectional area of pipe. This information, with ammonia operational parameters such as internal and external pressure and ammonia liquid flow rate we can thus predict the amount of ammonia release. Combining with meteorological data information, local landscape conditions and utilizing ALOHA software, we are able to simulate ammonia dispersion and thus predicting the impact of toxicity of ammonia release on the population within the area. This paper is a feasibility study that use modelling approaches to manage ammonia leakage.

Abbaslou, H., & Karimi, A. (2019). Modeling of Ammonia Emission in the Petrochemical Industry. Jundishapur Journal of Health Sciences, 11(3).
https://doi.org/10.5812/jjhs.94101
Anup, K. D. (n.d.) Introduction to Marine Loading Arm. Retrieved 21 September 2021. https://whatispiping.com/marine-loading-arm/
Che Hassan, C., Puvaneswaran, B., Abdul Raman, A., Mahmood, N., Hung, F., Sulaiman, N., Puvaneswaran, A., & Balasubramaniam, L. (2009). A case study of consequences analysis of ammonia transportation by rail from Gurun to Port Klang in Malaysia using Safti computer model. Journal of Safety Health &Environmemt Research, 6, 1–19.
Det Norske Veritas. (2002). Marine risk assessment, Health and Safety Execuitve Offshore Technology Report 2001/063. Retrieved from
https://www.hse.gov.uk/research/otopdf/2001/oto01063.pdf.
National Research Council. (2008). Acute Exposure Guideline Levels for Selected Airborne Chemicals. Washington, DC: The National Academies Press.
https://doi.org/10.17226/12018
Haastrup, P., & Brockhoff, L. (1990). Severity of accidents with hazardous materials. A comparison between transportation and fixed installations. Journal of Loss Prevention in the Process Industries, 3(4), 395–405. https://doi.org/10.1016/0950-4230(90)80010-8
Health and Safety Executive. (2017). Failure Rate and Event Data for use within Risk Assessments (06/11/17). 102.
Kaczmarek, R., Radzikowska, E., & Baraniak, J. (2014). The facts about ammonia. Synlett, 25(13), 1851–1854. https://doi.org/10.1055/s-0034-1378353
Lee, H. E., Sohn, J. R., Byeon, S. H., Yoon, S. J., & Moon, K. W. (2018). Alternative risk assessment for dangerous chemicals in South Korea regulation: Comparing three modeling programs. International Journal of Environmental Research and Public Health, 15(8), 1–12. https://doi.org/10.3390/ijerph15081600
Murphy, D. B. (2007). Ammonia: Toxicological Overview. Public Health England, November, 1–15.
Rajeev, K., Soman, S., Renjith, V. R., & George, P. (2019). Human vulnerability mapping of chemical accidents in major industrial units in Kerala, India for better disaster mitigation. International Journal of Disaster Risk Reduction, 39.
https://doi.org/10.1016/j.ijdrr.2019.101247
Tarkington, B., Harris, A. J., Barton, P. S., Chandler, B., & Goad, P. T. (2009). Effectiveness of common shelter-in-place techniques in reducing ammonia exposure following accidental release. Journal of Occupational and Environmental Hygiene, 6(4), 248–255. https://doi.org/10.1080/15459620902746857
Vílchez, J. A., Sevilla, S., Montiel, H., & Casal, J. (1995). Historical analysis of accidents in chemical plants and in the transportation of hazardous materials. Journal of Loss Prevention in the Process Industries, 8(2), 87–96. https://doi.org/10.1016/0950-4230(95)00006-M

In-Text Citation: (Gafor et al., 2021)
To Cite this Article: Gafor, A. A., Adam, N. M., Assim, M. I. S. A., Lahuri, A. H., & Marzuki, O. F. (2021). Feasibility Study on the Imperatives for the Simulation of Ammonia Release Management. International Journal of Academic Research in Business and Social Sciences, 11(17), 207–216.