Title of article
4E (ENERGY, EXERGY, ECONOMIC and ENVIRONMENTAL) ANALYSIS OF THE NOVEL DESIGN OF WET COOLING TOWER
Author/Authors
Kumar, Dileep Department of Mechanical Engineering - Mehran University of Engineering & Technology - SZAB - Campus, Khairpur Mir’s, Pakistan , Zehra, Tayaba Department of Mechanical Engineering - Mehran University of Engineering & Technology - SZAB - Campus, Khairpur Mir’s, Pakistan , Junejo, Awais Department of Mechanical Engineering - Mehran University of Engineering & Technology - SZAB - Campus, Khairpur Mir’s, Pakistan , Bhanbhro, Sajid Ali Department of Mechanical Engineering - Mehran University of Engineering & Technology - SZAB - Campus, Khairpur Mir’s, Pakistan , Basit, Muhammad Department of Mechanical Engineering - Mehran University of Engineering & Technology - SZAB - Campus, Khairpur Mir’s, Pakistan
Pages
15
From page
253
To page
267
Abstract
This study aims to calculate the performance of the novel design of wet cooling tower (NDWCT) using first law (energy) and second law (exergy) of thermodynamics. Moreover, it determines the economic feasibility (cost savings and payback period) and sustainability of the NDWCT using the life-cycle cost (LCC) and environmental assessment method. An appropriate mathematical model is developed and simulated in Engineering Equation Solver to calculate water savings, performance and payback period of additional investment. The simulation results have a good agreement with the experimental outcomes (error 2.6%). Simulation results revealed that the NDWCT consumes 34.48% less water than the conventional wet cooling tower (WCT). The installation of heat exchanger improves the performance of WCT by 6% because the consumption of water to air ratio increases. Moreover, the exergy destruction in the NDWCT is 1.23 MW lower than the conventional WCT. Additionally, the heat exchanger costs k$30.7 to save an annual fuel cost of k$72 which could be recovered within a payback period of 0.37 years. Lastly, the environmental assessment proves that the NDWCT relinquishes the particulate matter emission by 0.042 g/s.
Keywords
Water Consumption , The Novel Design of Wet Cooling Tower , Energy and Exergy Analysis , Life Cycle Cost Analysis
Journal title
Journal of Thermal Engineering
Serial Year
2020
Record number
2594207
Link To Document