Experimental investigation on heat transfer effect of conical strip inserts in a circular tube under laminar flow
Received date: 06 Jan 2015
Accepted date: 23 Apr 2015
Published date: 27 May 2016
Copyright
The aim of this paper is to observe the Nusselt number and friction factor behavior of the circular tube with conical strip inserts as turbulators in a laminar flow condition, using staggered and non-staggered conical strips with three different twist ratios (Y = 2, 3 and 5). The conical strip is inserted in the forward and backward direction individually compared to the flow of water which is the working fluid. The results indicate that the conical strip inserts increases the Nusselt number when compared to the plain surface tube. It is observed that the strip geometry has a major effect on the thermal performance of the circular tube. On examination of different strips for determining the enhancement of Nusselt number, the staggered conical strip with the twist ratio of Y = 3 has given a better result compared to the other two strips. Finally, correlations have been derived using regression analysis for predicting the Nusselt number and friction factor.
Key words: Nusselt number; friction factor; conical strip
M. ARULPRAKASAJOTHI , K. ELANGOVAN , K. HEMA CHANDRA REDDY , S. SURESH . Experimental investigation on heat transfer effect of conical strip inserts in a circular tube under laminar flow[J]. Frontiers in Energy, 2016 , 10(2) : 136 -142 . DOI: 10.1007/s11708-015-0389-z
1 |
Yakut K, Sahin B. Flow-induced vibration analysis of conical rings used for heat transfer enhancement in heat exchangers. Applied Energy, 2004, 78(3): 273–288
|
2 |
Promvonge P, Eiamsa-ard S. Heat transfer augmentation in a circular tube using V-nozzle turbulator inserts and snail entry. Experimental Thermal and Fluid Science, 2007, 32(1): 332–340
|
3 |
Bergles A E. Recent developments in convective heat transfer augmentation. Applied Mechanics Reviews, 1973, 26: 675–682
|
4 |
Bergles A E. Techniques to augment heat transfer. In: Rohsenow W M, Hartnett J P, Ganie E. eds. Handbook of Heat Transfer Application. New York: McGraw-Hill, 1985
|
5 |
Wang L, Sunden B. Performance comparison of some tube inserts. International Communications in Heat and Mass Transfer, 2002, 29(1): 45–56
|
6 |
Liu S, Sakr M. A comprehensive review on passive heat transfer enhancements in pipe exchangers. Renewable & Sustainable Energy Reviews, 2013, 19: 64–81
|
7 |
Promvonge P. Heat transfer behaviors in round tube with conical ring inserts. Energy Conversion and Management, 2008, 49(1): 8–15
|
8 |
Sivashanmugam P, Suresh S. Experimental studies on heat transfer and friction factor characteristics of laminar flow through a circular tube fitted with regularly spaced helical screw-tape inserts. Experimental Thermal and Fluid Science, 2007, 31(4): 301–308
|
9 |
Sivashanmugam P, Suresh S. Experimental studies on heat transfer and friction factor characteristics of laminar flow through a circular tube fitted with helical screw-tape inserts. Applied Thermal Engineering, 2006, 26(16): 1990–1997
|
10 |
Sivashanmugam P, Suresh S. Experimental studies on heat transfer and friction factor characteristics of turbulent flow through a circular tube fitted with regularly spaced helical screw-tape inserts. Applied Thermal Engineering, 2007, 27(8-9): 1311–1319
|
11 |
Noothong W, Eiamsa-ard S, Promvonge P. Effect of twisted-tape inserts on heat transfer in a tube. In: The 2nd Joint International Conference on Sustainable Energy and Environment. Bangkok, Thailand. 2006, 21–23
|
12 |
García A, Solano J P, Vicente P G, Viedma A. Enhancement of laminar and transitional flow heat transferin tubes by means of wire coil inserts. International Journal of Heat and Mass Transfer, 2007, 50(15-16): 3176–3189 doi:10.1016/j.ijheatmasstransfer.2007.01.015.
|
13 |
Akhavan-Behabadi M A, Kumar R, Salimpour M R, Azimi R. Pressure drop and heat transfer augmentation due to coiled wire inserts during laminar flow of oil inside a horizontal tube. International Journal of Thermal Sciences, 2010, 49(2): 373–379
|
14 |
Tu W, Tang Y, Zhou B, Lu L. Experimental studies on heat transfer and friction factor characteristics of turbulent flow through a circular tube with small pipe inserts. International Communications in Heat and Mass Transfer, 2014, 56: 1–7
|
15 |
You Y, Fan A, Liu W, Huang S. Thermo-hydraulic characteristics of laminar flow in an enhanced tube with conical strip inserts. International Journal of Thermal Sciences, 2012, 61: 28–37
|
16 |
Pal S, Saha S K. Laminar fluid flow and heat transfer through a circular tube having spiralribs and twisted tapes. Experimental Thermal and Fluid Science, 2015, 60: 173–181
|
17 |
Gunes S, Ozceyhan V, Buyukalaca O. Heat transfer enhancement in a tube with equilateral triangle cross sectioned coiled wire inserts. Experimental Thermal and Fluid Science, 2010, 34(6): 684–691
|
18 |
Wongcharee K, Eiamsa-ard S. Friction and heat transfer characteristics of laminar swirl flow through the round tubes inserted with alternate clockwise and counter-clockwise twisted-tapes. International Communications in Heat and Mass Transfer, 2011, 38(3): 348–352
|
19 |
Anvari A R, Lotfi R, Rashidi A M, Sattari S. Experimental research on heat transfer of water in tubes with conical ring inserts in transient regime. International Communications in Heat and Mass Transfer, 2011, 38(5): 668–671
|
20 |
Yakut K, Sahin B. Flow-induced vibration analysis of conical rings used for heat transfer enhancement in heat exchangers. Applied Energy, 2004, 78(3): 273–288
|
21 |
Coleman H W, Steele W G. Experimental and uncertainty analysis for engineers. New York: Wiley, 1989
|
22 |
Chandrasekar M, Suresh S, Chandra Bose A. Experimental studies on heat transfer and friction factor characteristics of Al2O3/water nanofluid in a circular pipe under laminar flow with wire coil inserts. Experimental Thermal and Fluid Science, 2010, 34(2): 122–130
|
/
〈 | 〉 |