The Performance of Turning Diffusers at Various Inlet Conditions

Author:

Nordin Normayati1,Abdul Karim Zainal Ambri1ORCID,Othman Safiah2,Raghavan Vijay R.3

Affiliation:

1. Universiti Teknologi PETRONAS

2. Universiti Tun Hussein Onn Malaysia

3. OYL R&D Center Sdn Bhd

Abstract

A turning diffuser is often introduced in the flow line to recover the energy losses by converting the kinetic energy to pressure energy. There are two types of turning diffusers, i.e. a 2-D and 3-D diffuser that are commonly defined by their expansion direction. This study aims to investigate the performance of a 2-D and a 3-D turning diffuser with 90o angle of turn and an area ratio, AR=2.16 by means of varying operating conditions. The geometry configurations applied for a 2-D turning diffuser are outlet-inlet configurations, W2/W12-D=2.160, X2/X12-D =1.000 and an inner wall length to an inlet throat width ratio, Lin/W12-D=4.370, whereas for a 3-D turning diffuser, they are W2/W13-D=1.440, X2/X13-D =1.500 and Lin/W13-D=3.970. The operating conditions represented by inflow Reynolds numbers, Rein are varied from 5.786E+04 to 1.775E+05. Particle image velocimetry (PIV) is used to examine the flow quality, and a digital manometer provides the average static pressure at the inlet and outlet of the turning diffuser. A compromise between the maximum permissible pressure recovery and flow uniformity is determined based upon the need. Whenever the flow uniformity being the need it is promising to apply a 3-D turning diffuser for Rein=1.027E+05 - 1.775E+05 and a 2-D turning diffuser for Rein=5.786E+04-6.382E+04. On the other hand, it is viable to opt for a 3-D turning diffuser for Rein=5.786E+04-6.382E+04 and a 2-D turning diffuser for Rein=1.027E+05-1.775E+05 in the case of the outlet pressure recovery being the need. The secondary flow separation takes place prior at 1/2Lin/W1 for a 2-D turning diffuser, whereas approximately at 3/4Lin/W1 for a 3-D turning diffuser.

Publisher

Trans Tech Publications, Ltd.

Reference18 articles.

1. N. Nordin, S. Othman, V.R. Raghavan, M.F.M. Batcha, S.M. Idris, Experimental investigation of pressure losses and flow characteristics in bend-diffusers by means of installing turning baffles, presented at the 2nd International Conference of Mechanical Engineering, Putrajaya, Kuala Lumpur, June 6 –7, (2011).

2. N. Nordin, V.R. Raghavan, S. Othman and Z.A.A. Karim, Compatibility of 3-D turning diffusers by means of varying area ratios and outlet-inlet configurations, ARPN Journal of Engineering and Applied Sciences, Vol. 7, No. 6, pp.708-713, (2012).

3. R.W. Fox and S.J. Kline, Flow regime data and design methods for curved subsonic diffusers, J. Basic Eng. ASME, vol. 84, pp.303-312, (1962).

4. T.P. Chong, P.F. Joseph and P.O.A.L. Davies, A parametric study of passive flow control for a short, high area ratio 90 deg curved diffuser, J. Fluids Eng., vol. 130, (2008).

5. C.J. Sagi and J.P. Johnson, The design and performance of two-dimensional, curved diffusers, J. Basic Eng. ASME, vol. 89, pp.715-731, (1967).

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