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Entropy generation minimisation of shell-and-tube heat exchanger in crude oil preheat train using firefly algorithm

This paper presents the entropy generation analysis and optimisation of typical shell-and-tube heat exchanger in the preheat train of crude oil distillation unit. The implication of entropy minimisation on energy consumption associated with design of heat exchanger was studied. The developed optimis...

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Published: 2018
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LEADER 00000njm a2000000a 4500
001 oai:repository.ui.edu.ng:123456789/9583
042 |a dc 
720 |a Petinrin, M. O.  |e author 
720 |a Bello-Ochende, T.  |e author 
720 |a Dare, A. A.  |e author 
720 |a Oyewola, O. M.  |e author 
260 |c 2018 
520 |a This paper presents the entropy generation analysis and optimisation of typical shell-and-tube heat exchanger in the preheat train of crude oil distillation unit. The implication of entropy minimisation on energy consumption associated with design of heat exchanger was studied. The developed optimisation model was solved by employing the firefly algorithm. A number of constraints were applied with thirteen decision variables. The ε-NTU method and Delaware method were used for the heat exchanger design. Four cases were considered for each of two selected samples and were categorised under two studies. Total entropy generation rates for all the four cases considered were almost the same, and the dominant irreversibility distribution is by heat transfer. However, the sharp decrease in entropy generation due to fluid friction caused a great reduction in pumping power in the range of 51.4–82.1% and 54.8–92.2% for the two studies, respectively. The results of sensitivity study on the decision variables showed sharp reduction in entropy generation rate and increased pumping power as the mass flow rate increases for all the variables. Also, the choices of the tube diameter and tube number had greater impact on the changes in entropy generation rate and pumping power. 
024 8 |a 1359-4311 
024 8 |a ui_art_petinrin_entropy_2018 
024 8 |a Applied Thermal Engineering 145, pp. 264-276 
024 8 |a http://ir.library.ui.edu.ng/handle/123456789/9583 
653 |a Shell-and-tube heat exchanger 
653 |a Preheat train 
653 |a Entropy generation rate 
653 |a Firefly algorithm 
653 |a Pumping power 
245 0 0 |a Entropy generation minimisation of shell-and-tube heat exchanger in crude oil preheat train using firefly algorithm