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Year 2007, Volume: 20 Issue: 1, 7 - 14, 24.03.2010

Abstract

References

  • M. Rokni, et al., “Numerical and experimental investigation of turbulent flow in a rectangular duct”. International Journal For Numerical Methods in Fluids, 28: 225-242, (1998).
  • Colin F et al., “The utilization of recuperated and regenerated engine cycles for high-efficiency gas turbines in the 21st century”, Applied Thermal Engineering, 16: 635-653, (1996)
  • Burley J. R. and Carlson, J. R., “Circular –to Rectangular Transition duct for High-aspect ratio non-axisymmetric nozzles”, SAE, ASME, and ASEE, Joint Propulsion Conference 21st, Monterey, CA,:7, (1985).
  • Burley J. R., Bangert, L. S., and Carlson, J. R., “Investigation of circular-to-rectangular transition ducts for high-aspect ratio nonaxisymmetric nozzles”, NASA TP 2534, Mar. (1986).
  • Patrick, W. P. and McCormick, D. C., “Laser velocimeter and total pressure measurements in circular-to-rectangular transition ducts.” United Technologies Research Center Report 87-41, June, (1988).
  • Patrick, W. P. and McCormick, D. C., “Circular-to- rectangular duct flows-A Benchmark experimental study”, Society of Automotive Engineers Tech. Rep, 78-1777, (1988).
  • Miau, J. J., Lin, S. A., Chou, J. H., Wei, C. Y., and Lin , C. K., “An experimental study of flow in a Circular-Rectangular transition duct”, ASME, SEA and ASEE, Joint Propulsion Conference 24th, Boston, MA, 12, (1988)
  • Miau, J. J., Leu, T. S., Chou, J. H., Lin, S. A., and Lin, C. K., “ Flow distortion in a circular-to- Rectangular transition duct”. AIAA, 28 (8): 1447- , (1990).
  • Schlichting , H., 1979. Boundry Layer Theory.
  • McGraw Hill Book Company, New York, 1979.
  • Poiseuille, J and Hagen, G. 1840. “Recherches experimenteles tubes de tris petits diameters”,
  • Comptes Rendus, 11: 961-967, 1041-1048, (1840)
  • Dekam, E. and I., Calvert, J. R., “Geometry of transitional diffusers”, Journal of Wind Engineering and Industrial Aerodynamics, (1): 43-57, (1986)
  • Dekam, E. I. and J. R. Calvert., “Area distribution along general transition geometries”, Journal of Wind Engineering and Industrial Aerodynamics, 18(3) 275-286, (1985)
  • Dekam, E. I. and J. R. Calvert., “Design of transition sections between ducts of equal area”, Journal of Wind Engineering and Industrial Aerodynamics, 24(2): 117-127, (1986).

Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow

Year 2007, Volume: 20 Issue: 1, 7 - 14, 24.03.2010

Abstract

In this study, flow and friction characteristics in the rectangular-to-rectangular transition channels, which have cone angles of ф=40, 50, 60 were investigated experimentally. The ratio of the channel inlet cross-sectional area to that of exit is 1:2. The transition ducts have different geometrical dimensions and cone angles. The duct entry and exit aspect ratios were chosen as 1.42 and 1.4, respectively. Measurements were taken at several stations, x/L, with the Reynolds number ranging from 2x105 to 5x105. Velocity profiles were measured starting from inlet to downstream using hot-wire anemometer. Based on experimental results, different flow characteristics were obtained. Friction coefficient decreased with increasing pipe length and increasing Reynolds number. It was seen that cross flows occurred at low Reynolds numbers.

 

Keywords: Asymmetric transition duct, Secondary Flow, Flow measurement

References

  • M. Rokni, et al., “Numerical and experimental investigation of turbulent flow in a rectangular duct”. International Journal For Numerical Methods in Fluids, 28: 225-242, (1998).
  • Colin F et al., “The utilization of recuperated and regenerated engine cycles for high-efficiency gas turbines in the 21st century”, Applied Thermal Engineering, 16: 635-653, (1996)
  • Burley J. R. and Carlson, J. R., “Circular –to Rectangular Transition duct for High-aspect ratio non-axisymmetric nozzles”, SAE, ASME, and ASEE, Joint Propulsion Conference 21st, Monterey, CA,:7, (1985).
  • Burley J. R., Bangert, L. S., and Carlson, J. R., “Investigation of circular-to-rectangular transition ducts for high-aspect ratio nonaxisymmetric nozzles”, NASA TP 2534, Mar. (1986).
  • Patrick, W. P. and McCormick, D. C., “Laser velocimeter and total pressure measurements in circular-to-rectangular transition ducts.” United Technologies Research Center Report 87-41, June, (1988).
  • Patrick, W. P. and McCormick, D. C., “Circular-to- rectangular duct flows-A Benchmark experimental study”, Society of Automotive Engineers Tech. Rep, 78-1777, (1988).
  • Miau, J. J., Lin, S. A., Chou, J. H., Wei, C. Y., and Lin , C. K., “An experimental study of flow in a Circular-Rectangular transition duct”, ASME, SEA and ASEE, Joint Propulsion Conference 24th, Boston, MA, 12, (1988)
  • Miau, J. J., Leu, T. S., Chou, J. H., Lin, S. A., and Lin, C. K., “ Flow distortion in a circular-to- Rectangular transition duct”. AIAA, 28 (8): 1447- , (1990).
  • Schlichting , H., 1979. Boundry Layer Theory.
  • McGraw Hill Book Company, New York, 1979.
  • Poiseuille, J and Hagen, G. 1840. “Recherches experimenteles tubes de tris petits diameters”,
  • Comptes Rendus, 11: 961-967, 1041-1048, (1840)
  • Dekam, E. and I., Calvert, J. R., “Geometry of transitional diffusers”, Journal of Wind Engineering and Industrial Aerodynamics, (1): 43-57, (1986)
  • Dekam, E. I. and J. R. Calvert., “Area distribution along general transition geometries”, Journal of Wind Engineering and Industrial Aerodynamics, 18(3) 275-286, (1985)
  • Dekam, E. I. and J. R. Calvert., “Design of transition sections between ducts of equal area”, Journal of Wind Engineering and Industrial Aerodynamics, 24(2): 117-127, (1986).
There are 15 citations in total.

Details

Primary Language English
Journal Section Civil Engineering
Authors

Hasan Gül This is me

Duygu Evin This is me

Publication Date March 24, 2010
Published in Issue Year 2007 Volume: 20 Issue: 1

Cite

APA Gül, H., & Evin, D. (2010). Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow. Gazi University Journal of Science, 20(1), 7-14.
AMA Gül H, Evin D. Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow. Gazi University Journal of Science. March 2010;20(1):7-14.
Chicago Gül, Hasan, and Duygu Evin. “Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow”. Gazi University Journal of Science 20, no. 1 (March 2010): 7-14.
EndNote Gül H, Evin D (March 1, 2010) Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow. Gazi University Journal of Science 20 1 7–14.
IEEE H. Gül and D. Evin, “Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow”, Gazi University Journal of Science, vol. 20, no. 1, pp. 7–14, 2010.
ISNAD Gül, Hasan - Evin, Duygu. “Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow”. Gazi University Journal of Science 20/1 (March 2010), 7-14.
JAMA Gül H, Evin D. Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow. Gazi University Journal of Science. 2010;20:7–14.
MLA Gül, Hasan and Duygu Evin. “Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow”. Gazi University Journal of Science, vol. 20, no. 1, 2010, pp. 7-14.
Vancouver Gül H, Evin D. Experimental Investigation of the Effect of the Cross-Sectional Geometry on the Flow. Gazi University Journal of Science. 2010;20(1):7-14.