Performance Evaluation and Cost Analysis of Standby Systems
Commenced in January 2007
Frequency: Monthly
Edition: International
Paper Count: 32799
Performance Evaluation and Cost Analysis of Standby Systems

Authors: M. A. Hajeeh

Abstract:

Pumping systems are an integral part of water desalination plants, their effective functioning is vital for the operation of a plant. In this research work, the reliability and availability of pressurized pumps in a reverse osmosis desalination plant are studied with the objective of finding configurations that provides optimal performance. Six configurations of a series system with different number of warm and cold standby components were examined. Closed form expressions for the mean time to failure (MTTF) and the long run availability are derived and compared under the assumption that the time between failures and repair times of the primary and standby components are exponentially distributed. Moreover, a cost/ benefit analysis is conducted in order to identify a configuration with the best performance and least cost. It is concluded that configurations with cold standby components are preferable especially when the pumps are of the size.

Keywords: Availability, Cost/ benefit, Mean time to failure, Pumps.

Digital Object Identifier (DOI): doi.org/10.5281/zenodo.1336979

Procedia APA BibTeX Chicago EndNote Harvard JSON MLA RIS XML ISO 690 PDF Downloads 1673

References:


[1] C. Galikowsky, B.D. Sivazlian and P. Chaovalitwongse, "Optimal redundancies for reliability and availability of series systems,” Microelectronics Reliability, Vol. 36, pp.1536-1546, October 1996.
[2] K.H. Wang and W.L. Pearn, "Cost benefits analysis of series systems with standby components,” Mathematical Methods of Operations Research, Vol.58, pp. 247-258, November 2003
[3] K.El-Said and M.S. El-Sherbeny,” Profit analysis of a two unit cold standby system with preventive maintenance and random change of units,” Journal of Mathematics and Statistics, Vol. 1, pp.71-77, January 2005.
[4] R. Gupta, S.K. Mittal, and C.M. Batra, "Stochastic analysis of a compound redundant system involving human failure,” Journal of Mathematics and Statistics,Vol. 2, pp. 407- 413, September 2006.
[5] S. Srinivasan and R. Subramanian, "Reliability analysis of a three warm standby redundant system with repair,” Annals of Operations Research, Vol. 143, pp. 227-235, January 2006
[6] R. Hamilton and I. Bazovsky, "Simplified Markov technique for some stand-by redundant systems,” Quality and Reliability Engineering International, Vol. 2, pp. 233-240 January, 2007
[7] J.B. Ke, W.C. Lee and J.C. Ke, "Reliability-based measure for a system with standbys subjected to switching failures,” Engineering Computations, Vol. 25, pp. 694-706, 2008
[8] G.S.Mokaddis, M.S. El-Sherbeny and E. Al-Esayeh, "Stochastic behavior of redundant complex system with two types of failure,” Journal of Mathematics and Statistics, Vol.5, pp. 112-117, June 2009
[9] M. Hajeeh and M.S. Moustafa, "Availability of deteriorating system under inspection and maintenance strategies,” International Journal of Reliability and Safety, Vol. 3, pp. 384-296, October 2009.