Publication Cover
Numerical Heat Transfer, Part A: Applications
An International Journal of Computation and Methodology
Volume 74, 2018 - Issue 10
1,490
Views
3
CrossRef citations to date
0
Altmetric
Articles

Convergence angle and dimple shape effects on the heat transfer characteristics in a rotating dimple-pin fin wedge duct

, , , , , & show all
Pages 1611-1635 | Received 08 Aug 2018, Accepted 30 Oct 2018, Published online: 04 Feb 2019

References

  • J. C. Han, “Turbine blade cooling studies at Texas A&M University:1980–2004,” J. Thermophys. Heat Transfer, vol. 20, pp. 161–187, 2006.
  • P. M. Ligrani, M. M. Oliveira, and T. Blaskovich, “Comparison of heat transfer augmentation techniques,” AIAA J, vol. 41, no. 3, pp. 337–362, 2003.
  • D. E. Metzger, R. A. Berry, and J. P. Bronson, “Developing heat transfer in rectangular ducts with staggered arrays of short pin fins,” J. Heat Transfer, vol. 104, no. 4, pp. 700–706, 1982.
  • D. E. Metzger, Z. X. Fan, and W. B. Shepard, “Pressure loss and heat transfer through multiple rows of short pin fins”, Heat Transfer 1982, Proc. 7th Int. Heat Transfer Conf., Munich, West Germany, vol.3, pp. 20–34, 1982.
  • M. K. Chyu, C. H. Yen, and S. Siw, “Heat transfer in rotating channel with inclined pin-fins,” ASME J. Turbomach., vol. 133, pp. 021003, 2010.
  • Z. Chen, Q. Li, D. Meier, and H. J. Warnecke, “Convective heat transfer and pressure loss in rectangular ducts with drop-shaped pin fins,” Heat Mass Transfer, vol. 33, no. 3, pp. 219–224, 1997.
  • G. Su, H. C. Chen, and J. C. Han, “Computation of flow and heat transfer in rotating rectangular channels (AR =4:1) with pin-fins by a Reynolds stress turbulence model,” J. Heat Transfer, vol. 129, no. 6, pp. 685–696, 2006.
  • F. Zhou, and I. Catton, “Numerical evaluation of flow and heat transfer in plate-pin fin heat sinks with various pin cross sections,” Numer. Heat Transfer, Part A, vol. 60, no. 2, pp. 107–128, 2011.
  • M. K. Chyu, C. H. Yen, and S. Siw, “Comparison of heat transfer from staggered pin fin arrays with circular, cubic and diamond shaped elements”, ASME Paper No. GT2007-28306, pp. 991–999, 2007.
  • W. Wan, D. Deng, Q. Huang, T. Zeng, and Y. Huang, “Experimental study and optimization of pin fin shapes in flow boiling of micro pin fin heat sinks,” Appl. Therm. Eng, vol. 114, pp. 436–449, 2017.
  • A. Sakanova, and K. J. Tseng, “Comparison of pin-fin and finned shape heat sink for power electronics in future aircraft,” Appl. Therm. Eng, vol. 136, pp. 364–374, 2018.
  • A. V. Schukin, A. P. Kozlov, and R. S. Agachev, “Study and application of hemispheric cavities for surface heat transfer augmentation”, ASME Paper No. 95-GT-59, pp. V004T09A034, 1995.
  • V. N. Afanasyev, Y. P. Chudnovsky, A. I. Leontiev, and P. S. Roganov, “Turbulent flow friction and heat transfer characteristics for spherical cavities on a flat plate,” Exp. Therm. Fluid Sci, vol. 7, no. 1, pp. 1–8, 1993.
  • G. I. Mahmood, M. L. Hill, D. L. Nelson, P. M. Ligrani, H. K. Moon, and B. Glezer, “Local heat transfer and flow structure on and above a dimpled surface in a channel,” J. Turbomach., vol. 123, no. 1, pp. 115–123, 2001.
  • G. I. Mahmood, and P. M. Ligrani, “Heat transfer in a dimpled channel: combined influences of aspect ratio, temperature ratio, Reynolds number, and flow structure,” Int. J. Heat Mass Transfer, vol. 45, no. 10, pp. 2011–2020, 2002.
  • P. M. Ligrani, J. L. Harrison, G. I. Mahmmod, and M. L. Hill, “Flow structure due to dimple depression on a channel surface,” Phys. Fluids, vol. 13, no. 11, pp. 3442–3451, 2001.
  • J. Turnow, N. Kornev, V. Zhdanov, and E. Hassel, “Flow structures and heat transfer on dimples in a staggered arrangement,” Int. J. Heat Fluid Flow, vol. 35, pp. 168–175, 2012.
  • S. Nishida, A. Murata, H. Saito, and K. Iwamoto, “Measurement of heat and fluid flow on surface with teardrop-shaped dimples”, Proceedings of Asian Congress on Gas Turbines, Tokyo, Japan, No. ACGT 2009-TS41, 2009.
  • J. Park, and P. M. Ligrani, “Numerical predictions of heat transfer and fluid flow characteristics for seven different dimpled surfaces in a channel,” Numer. Heat Transfer, Part A, vol. 47, no. 3, pp. 209–232, 2005.
  • S. Acharya, and F. Zhou, “Experimental and computational study of heat/mass transfer and flow structure for four dimple shapes in a square internal passage,” J. Turbomach., vol. 134, no. 6, p. 061028, 2012.
  • G. Xie, J. Liu, P. M. Ligrani, and W. Zhang, “Numerical predictions of heat transfer and flow structure in a square cross-section channel with various non-spherical indentation dimples,” Numer. Heat Transfer, Part A, vol. 64, no. 3, pp. 187–215, 2013.
  • Y. Rao, Y. Feng, B. Li, and B. Weigand, “Experimental and numerical study of heat transfer and flow friction in channels with dimples of different shapes,” J. Heat Transfer, vol. 137, no. 3, p. 031901, 2015.
  • H. N. Jang, J. S. Park, and J. S. Kwak, “Experimental study on heat transfer characteristics in a ribbed channel with dimples, semi-spherical protrusions, or oval protrusions,” Appl. Therm. Eng., vol. 131, pp. 734–742, 2018.
  • L. Luo, F. Wen, L. Wang, B. Sundén, and S. Wang, “On the solar receiver thermal enhancement by using the dimple combined with Delta winglet vortex generator,” Appl. Therm. Eng., vol. 111, pp. 586–598, 2017.
  • F. Zhang, X. Wang, and J. Li, “Flow and heat transfer characteristics in rectangular channels using combination of convex-dimples with grooves,” Appl. Therm. Eng., vol. 113, pp. 926–936, 2017.
  • Y. Rao, C. Wang, and S. Zang, “Comparisons of flow friction and heat transfer performance in rectangular channels with pin fin-dimple, pin fin and dimple arrays”, ASME Paper No. GT2010-22442, pp. 185–195, 2010.
  • L. Luo, C. Wang, L. Wang, B. Sundén, and S. Wang, “Heat transfer and friction factor performance in a pin fin wedge duct with different dimple arrangements,” Numer. Heat Transfer, Part A, vol. 69, no. 2, pp. 209–226, 2016.
  • L. Luo, C. Wang, L. Wang, B. Sundén, and S. Wang, “Heat transfer and friction factor in a dimple-pin fin wedge duct with various dimple depth and converging angle,” Int. J. Numer. Methods Heat Fluid Flow, vol. 26, no. 6, pp. 1954–1974, 2016.
  • W. Zhou, Y. Rao, and H. Hu, “An experimental investigation on the characteristics of turbulent boundary layer flows over a dimpled surface,” J. Fluids Eng., vol. 138, no. 2, p. 021204, 2015.
  • M. A. Elyyan, and D. K. Tafti, “Effect of Coriolis forces in a rotating channel with dimples and protrusions,” Int. J. Heat Fluid Flow, vol. 31, no. 1, pp. 1–18, 2010.
  • J. S. Park, K. M. Kim, D. H. Lee, H. H. Cho, and M. K. Chyu, “Heat transfer on rotating channel with various heights of pin-fin”, ASME Paper No. GT2008-50783, pp. 727–734, 2008.
  • J. S. Park, K. M. Kim, D. H. Lee, H. H. Cho, and M. K. Chyu, “Heat transfer in rotating channel with inclined pin-fins,” J. Turbomach., vol. 133, no. 2, p. 021003, 2011.
  • S. W. Chang, T. Liou, T. L. Yang, and G. F. Hong, “Heat transfer in radially rotating pin-fin channel at high rotation numbers,” J. Turbomach., vol. 132, no. 2, p. 021019, 2010.
  • F. T. Willett, and A. E. Bergles, “Heat transfer in rotating narrow rectangular pin-fin ducts,” Exp. Therm. Fluid Sci., vol. 25, no. 7, pp. 573–582, 2002.
  • S. Kim, E. Y. Choi, and J. S. Kwak, “Effect of channel orientation on the heat transfer coefficient in the smooth and dimpled rotating rectangular channels,” ASME J. Heat Transfer, vol. 34, p. 064504, 2011.
  • FLUENT, Help Document, Release 15, ANSYS, Inc., Canonsburg, PA, 2013.
  • L. Luo, C. Wang, L. Wang, B. Sunden, and S. Wang, “A numerical investigation of dimple effects on internal heat transfer enhancement of a double wall cooling structure with jet impingement,” Int. J. Numer. Methods Heat Fluid Flow, vol. 26, no. 7, pp. 2175–2197, 2016.
  • L. Luo, C. Wang, L. Wang, B. Sunden, and S. Wang, “Computational investigation of dimple effect on heat transfer and friction factor in a Lamilloy cooling structure,” J. Enhanced Heat Transfer, vol. 22, no. 2, pp. 147–175, 2015.
  • ANSYS ICEM CFD, Reference Guide, Release 15, ANSYS, Inc., Canonsburg, PA, 2013.
  • S. Wang, W. Du, L. Luo, D. Qiu, X. Zhang, and S. Li, “Flow structure and heat transfer characteristic of a dimpled wedge channel with a bleed hole in dimple at different orientations and location,” Int. J. Heat Mass Transfer, vol. 117, pp. 1216–1230, 2018.
  • Y. Rao, C. Wan, and Y. Xu, “An experimental study of pressure loss and heat transfer in the pin fin-dimple channels with various dimple Dept, “h,” “s,” Int. J. Heat Mass Transfer, vol. 55, no. 23–24, pp. 6723–6733, 2012.