Boundary Layer Transition on the High Lift T106A Low-Pressure Turbine Blade With an Oscillating Downstream Pressure Field

Author:

Opoka Maciej M.1,Thomas Richard L.1,Hodson Howard P.1

Affiliation:

1. Whittle Laboratory, University of Cambridge, Cambridge, UK

Abstract

This paper presents the results of an experimental study of the interaction between the suction surface boundary layer of a cascade of low-pressure (LP) turbine blades and a fluctuating downstream potential field. A linear cascade equipped with a set of T106 LP turbine blades was subjected to a periodic variation of the downstream pressure field by means of a moving bar system at low-speed conditions. Measurements were taken in the suction surface boundary layer using 2D laser Doppler anemometry, flush-mounted unsteady pressure transducers and surface shear stress sensors. The Reynolds number, based on the chord and exit conditions, was 1.6×105. The measurements revealed that the magnitudes of the suction surface pressure variations induced by the oscillating downstream pressure field, just downstream of the suction peak, were approximately equal to those measured in earlier studies involving upstream wakes. These pressure field oscillations induced a periodic variation of the transition onset location in the boundary layer. Two turbulence levels were investigated. At a low level of inlet freestream turbulence of 0.5%, a separation bubble formed on the rear part of the suction surface. Unsteady measurements of the surface pressure revealed the presence of high-frequency oscillations occurring near the start of the pressure recovery region. The amplitude of these fluctuations was of the order of 7–8% of exit dynamic pressure, and inspection of the velocity field revealed the presence of Kelvin-Helmholtz-type shear layer vortices in the separated free shear layer. The frequency of these shear layer vortices was approximately one order-of-magnitude greater than the frequency of the downstream passing bars. At a higher inlet freestream turbulence level of 4.0%, which is more representative of real engine environments, separation was prevented by an earlier onset of transition. Oscillations were still observed in suction surface shear stress measurements at a frequency matching the period of the downstream bar, indicating a continued influence on the boundary layer from the oscillating pressure field. However, the shear layer vortices seen in the lower turbulence intensity case were not so clearly observed, and the maximum amplitude of suction surface pressure fluctuations was reduced.

Publisher

ASME International

Subject

Mechanical Engineering

Reference11 articles.

1. Unsteady Surface Pressures Due to Wake Induced Transition in a Laminar Separation Bubble on a LP Turbine Cascade;Stieger;ASME J. Turbomach.

2. Lou, W., and Hourmouziadis, J., 2000, “Separation Bubbles Under Steady and Unsteady Main Flow Conditions,” ASME Paper No. 2000-GT-027.

3. Opoka, M. M., and Hodson, H. P., 2005, “An Experimental Investigation on the Unsteady Transition Process on the High Lift T106A Turbine Blade,” Paper No. 1277 ISABE, Munich.

4. Development of Blade Profiles for Low Pressure Turbine Applications;Curtis;ASME J. Turbomach.

5. Antoranz, A., and de la Calzada, P., 2002, “Downstream Cylindrical Rods Design for Whittle Lab Low Velocity Cascade,” ITP Internal Report in UTAT Project No. 13/05/02

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