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http://dx.doi.org/10.12989/mwt.2017.8.2.137

Economical selection of optimum pressurized hollow fiber membrane modules in water purification system using RbLCC  

Lee, Chul-sung (Department of Civil and Environmental Engineering, Dankook University)
Nam, Young-wook (Department of Civil and Environmental Engineering, Dankook University)
Kim, Doo-il (Department of Civil and Environmental Engineering, Dankook University)
Publication Information
Membrane and Water Treatment / v.8, no.2, 2017 , pp. 137-147 More about this Journal
Abstract
A water treatment utility in South Korea operates a large system of pressurized hollow fiber membrane (PHFM) modules. The optimal selection of membrane module for the full scale plant was critical issue and carried out using Risk-based Life Cycle Cost (RbLCC) analysis based on the historical data of operation and maintenance. The RbLCC analysis was used in the process of decision-making for replacing aged modules. The initial purchasing cost and the value at risk during operation were considered together. The failure of modules occurs stochastically depending on the physical deterioration with usage over time. The life span of module was used as a factor for the failure of Poisson's probability model, which was used to obtain the probability of failure during the operation. The RbLCC was calculated by combining the initial cost and the value at risk without its warranty term. Additionally, the properties of membrane were considered to select the optimum product. Results showed that the module's life span in the system was ten years (120 month) with safety factor. The optimum product was selected from six candidates membrane for a full scale water treatment facility. This method could be used to make the optimum and rational decision for the operation of membrane water purification facility.
Keywords
asset management; pressurized hollow fiber membrane; risk-based life cycle cost (RbLCC); pin-repairing data; poisson's probability model;
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Times Cited By KSCI : 1  (Citation Analysis)
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1 Alegre, H. and do Ceu Almeida, M. (2007), "Strategic asset management of water supply and wastewater infrastructures", Water Intell. Online, Lisbon, 41, 23-26
2 Amirfakhrian, M. and Mafikandi, H. (2016). "Approximation of parametric curves by moving least squares method", Appl. Math. Comput., 283, 290-298.
3 Ang, A.H.S. and Tang, W.H. (2007), Probability Concepts in Engineering: Emphasis on Applications to Civil and Environmental Engineering, 2nd Edition, Wiley, New York, USA
4 Gimenez, C., Sierra, V. and Rodon, J. (2012), "Sustainable operations: Their impact on the triple bottom line", Int. J. Product. Econo., 140(1), 149-159.   DOI
5 Grigg, N.S. (2012), Water, Wastewater, and Storm Water Infrastructure Management, CRC Press, Boca Raton, Florida, USA
6 Lee, C.S. (2016), "Development of asset management plan using UF membrane", Master of Science Dissertation, Dankook University, Yongin City, Gyunggido, South Korea
7 Han, D.H. and Min, G.H. (2012), A Practical Introduction to Project Risk Management, Iretech Press, Seoul, Korea
8 Jo, H.N., Im, J.G., Choi, Y.M. and Park, G.H. (2009), Life-Cycle Cost Analysis for Infrastructure Systems, Goomi Book, Seoul, Korea
9 Kim, J.H. (2007), Probability Theory for Actuarial Mathematics, Kyo Woo Sa, Seoul, Korea
10 Mallevialle, J., Odendaal, P.E. and Wiesner, M.R. (1996). Water Treatment Membrane Processes, American Water Works Association, McGraw Hill, New York, USA
11 Park, S., Park, S.I. and Lee, S.H. (2016), "Strategy on sustainable infrastructure asset management: Focus on Korea's future policy directivity", Renew. Sustain. Energy Rev., 62, 710-722.   DOI
12 Rojas-Serrano, F., A lvarez-Arroyo, R., Perez, J., Plaza, F., Garralon, G. and Gomez, M.A. (2015), "Ultrafiltration membranes for drinking-water production from low-quality surface water: A case study in Spain", Membr. Water Treat., 6(1), 77-94   DOI
13 Strazza, C., Del Borghi, A., Costamagna, P., Gallo, M., Brignole, E. and Girdinio, P. (2015), "Life cycle assessment and life cycle costing of a SOFC system for distributed power generation", Energy Convers. Manage., 100, 64-77.   DOI