LDV Study of Developing Flows Through a Smooth Duct With a 180 deg Straight-Corner Turn

Author:

Liou T.-M.1,Chen C.-C.1

Affiliation:

1. Department of Power Mechanical Engineering, National Tsing Hua University, Hsinchu, Taiwan 30043

Abstract

In view of the lack of velocity field data for flow through turbine blade internal cooling passages, laser-Doppler velocimetry measurements are presented for the flow development in a two-pass smooth rectangular duct of aspect ratio 1.1 with a 180 deg straight-corner turn with and without duct rotation. The test duct had a curvature axis normal to the rotational axis. The Reynolds number based on the bulk mean velocity and hydraulic diameter was 1.4 × 104 and the rotation numbers were 0 and 0.082. Characteristics such as the upstream and downstream extents of the sharp-turn effect on the main flow profile, curvature induced Dean vortices inside the turn, turning geometry-induced separating bubble immediately downstream of the turn, and the resulting double-peak mean velocity profiles in the second pass are used to describe the developing mean flow for the case without rotation. High turbulence levels and significantly more nonuniform flow after the sharp turn in the front part of the second pass explain previously reported work showing higher but nonuniform heat transfer after that turn. Rotating the duct augments and shifts the peaks of the streamwise mean velocity and turbulence intensity profiles toward the trailing and leading walls of the first and second passes, respectively. In addition, the duct rotation skews the separating bubble and reduces its size to about 75 percent of its stationary counterpart.

Publisher

ASME International

Subject

Mechanical Engineering

Reference27 articles.

1. Azzola J. , HumphreyJ. A. C., IacovidesH., and LaunderB. E., 1986, “Developing Turbulent Flow in a U-Bend of Circular Cross-Section: Measurement and Computation,” ASME Journal of Fluids Engineering, Vol. 108, pp. 214–221.

2. Chang S. M. , HumphreyJ. A. C., and ModaviA., 1983, “Turbulent Flow in a Strongly Curved U-Bend and Downstream Tangent of Square Cross-Sections,” Physico Chemical Hydrodynamics, Vol. 4, No. 3, pp. 243–269.

3. Cheah S. C. , IacovidesH., JacksonD. C., JiH., and LaunderB. E., 1996, “LDA Investigation of the Flow Development Through Rotating U-Ducts,” ASME JOURNAL OF TURBOMACHINERY, Vol. 118, pp. 590–596.

4. Cheng, K. C., Nakayama, J., and Akiyama, M., 1977, “Effect of Finite and Infinite Aspect Ratios on Flow Patterns in Curved Rectangular Channels,” Proc. International Symposium on Flow Visualization, Oct., Tokyo, Japan, pp. 640–645.

5. Cheng, K. C., Shi, L., Kurokawa, M., and Chyu, M. K., 1992, “Visualization of Flow Patterns in a 180 Deg Sharp Turn of a Square Duct,” Proc. Fourth International Symposium on Transport Phenomena and Dynamics of Rotating Machinery, Honolulu, HI, Apr.

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