Sharif Journal of Civil Engineering

Sharif Journal of Civil Engineering

Investigation of Brine Dispersion of Desalination Plants in the Vicinity of Kish Island Port Using Field Measurements and Numerical Modeling

Document Type : Article

Authors
1 Kish International Campus, University of Tehran, Tehran, Iran.
2 School of Civil Engineering, College of Engineering, University of Tehran, Tehran, Iran.
10.24200/j30.2025.66751.3425
Abstract
Desalination of seawater is one of the most effective methods, and in some cases, the only possible method for producing drinking water. The combined effect of desalination plants and port structures on the coastal environment can sometimes have specific environmental consequences. The dispersion from the desalination plants, especially the changes in salinity and temperature, has significant effects on coral reefs. In this paper, the effect of the commercial port of Kish Island with regard to the desalination plants was investigated using field measurements and numerical modeling. In 3 stages of field measurement, water quality parameters were measured from 24 different points near the northern coast of Kish Island. The speed and direction of the current were also measured to verify the accuracy of the numerical modeling. The current and dispersion of thermal and salinity pollution were modeled using the MIKE21 two-dimensional model. The computational domain was about 30 square kilometers in size and was discretized into four zones using four different element sizes. Comparison of the numerical modeling results with field measurements indicated acceptable accuracy. The results of the modeling of the salinity diffusion pattern indicate a significant spread in the zone surrounding the outfall of desalination plants and the Kish Island commercial port. Around the outfall, the average temperature and electrical conductivity (EC) increased by 16% and 14%, respectively. This is due to the effect of the west breakwater on current reduction, which resulted in increasing brine concentration. The ultimate point where the ambient temperature has increased by 3 degrees is 170 meters from the outfall. Therefore, considering the impact of temperature changes on coral reefs is critically important. Given the absence of measured data on water quality parameters, current, and velocity direction across various tides at this location, the findings of this study contribute to a better understanding of the environmental status of the area.
Keywords
Subjects

 
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