Heat Transfer Enhancement for Single Phase Turbulent Flow in Horizontal Tube Using Corrugation: A Review

Authors

  • Pravinkumar N. Tank  Assistant Professor, Department of Mechanical Engineering, Dharmsinh Desai University, Nadiad, Gujarat, India

Keywords:

Corrugation, Heat Transfer Enhancement, Passive Method

Abstract

Plain tube is most commonly used in heat transfer units for heat exchange. Little modification of roughing the tube with no much additional cost and manufacturing hurdle can improve heat transfer is the need of the present era. Use of corrugation in the tube serves the purpose of heat transfer enhancement with moderate pressure drop penalty. The review of such investigation on passive method of heat transfer enhancement is necessary. In the present study reviews of work of various investigator is done and ready reference summary is prepared. The study will useful for the quick reference of heat transfer enhancement technique with corrugated tube for turbulent single phase flow.

References

  1. Webb, R. L., Eckert, E. R. G., & Goldstein, R. (1971). Heat transfer and friction in tubes with repeated-rib roughness. International journal of heat and mass transfer, 14(4), 601-617.
  2. Withers, J. G. (1980). Tube-side heat transfer and pressure drop for tubes having helical internal ridging with turbulent/transitional flow of single-phase fluid. Part 1. Single-helix ridging. Heat Transfer Engineering, 2(1), 48-58.
  3. Wang, L., Sun, D. W., Liang, P., Zhuang, L., & Tan, Y. (2000). Heat transfer characteristics of carbon steel spirally fluted tube for high pressure preheaters. Energy Conversion and Management, 41(10), 993-1005.
  4. Rainieri, S., & Pagliarini, G. (2002). Convective heat transfer to temperature dependent property fluids in the entry region of corrugated tubes. International Journal of Heat and Mass Transfer, 45(22), 4525-4536.
  5. Vicente, P. G., Garc?a, A., & Viedma, A. (2004). Experimental investigation on heat transfer and frictional characteristics of spirally corrugated tubes in turbulent flow at different Prandtl numbers. International journal of heat and mass transfer, 47(4), 671-681.
  6. San, J. Y., & Huang, W. C. (2006). Heat transfer enhancement of transverse ribs in circular tubes with consideration of entrance effect. International Journal of Heat and Mass Transfer, 49(17-18), 2965-2971.
  7. Bilen, K., Cetin, M., Gul, H., & Balta, T. (2009). The investigation of groove geometry effect on heat transfer for internally grooved tubes. Applied Thermal Engineering, 29(4), 753-761.
  8. Pethkool, S., Eiamsa-Ard, S., Kwankaomeng, S., & Promvonge, P. (2011). Turbulent heat transfer enhancement in a heat exchanger using helically corrugated tube. International Communications in Heat and Mass Transfer, 38(3), 340-347.
  9. García, A., Solano, J. P., Vicente, P. G., & Viedma, A. (2012). The influence of artificial roughness shape on heat transfer enhancement: Corrugated tubes, dimpled tubes and wire coils. Applied Thermal Engineering, 35, 196-201.
  10. Aroonrat, K., Jumpholkul, C., Leelaprachakul, R., Dalkilic, A. S., Mahian, O., & Wongwises, S. (2013). Heat transfer and single-phase flow in internally grooved tubes. International Communications in Heat and Mass Transfer, 42, 62-68.

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Published

2015-12-20

Issue

Section

Research Articles

How to Cite

[1]
Pravinkumar N. Tank "Heat Transfer Enhancement for Single Phase Turbulent Flow in Horizontal Tube Using Corrugation: A Review" International Journal of Scientific Research in Science, Engineering and Technology (IJSRSET), Print ISSN : 2395-1990, Online ISSN : 2394-4099, Volume 1, Issue 6, pp.660-666, November-December-2015.