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Analysis of Internal Flow Phenomena in a High Speed Rotating Cylinder Using Double Parabolic Axial Flow Model

POSTER

Abstract

In this study we investigate the internal flow phenomena in a high speed rotating cylinder using double parabolic axial flow model for wall pressure in the range 20 to 100 m-bar. These includes the quantitative estimation of the important process parameters L0, L, m, and (F/L).Here, L0 is the internal circulation rate at total reflux, L is the actual internal circulation rate, m = L/ L0 is the internal circulation parameter, (F/L) is the internal reflux ratio, and F is the external feed flow rate. The radial profile of axial mass flux (ρvz) is specified as a function of radial scale height ξ ( ξ = A2 (1 - ( r2 / Rw2 )), A is the stratification parameter, A = (( Mw Vθ 2) / (2 Rg T))1/2, Mw is the molecular weight, Vθ is the peripheral speed of the cylinder, Rg is the universal gas constant, and T is the uniform gas temperature) by two parabolas. One parabola represents the flow downward in the region near the rotor wall, and the second one representing the upflow adjacent to the downflow. The feed gas introduced into the rotating cylinder is considered to be associated with the upflowing stream ((Pradhan & Kumaran, J. Fluid Mech., vol. 686, 2011, pp. 109-159); (Kumaran & Pradhan, J. Fluid Mech., vol. 753, 2014, pp. 307-359)). An important finding is that as the wall pressure is increased from 20 to 100 m-bar, there is a increase in L0, L, and m. However, there are important differences. L0 initially increases at a faster rate and then saturates at high wall pressure. On the other hand the parameters L and m increases monotonically with the wall pressure. The effect of feed flow rate on the parameters L0, L, and m is also studied and the analysis indicates that as the feed flow rate is increased, the parameters L0, L, and m increases, and the effect is significant at high wall pressure. The analysis also shows that as the average gas temperature is increased, the parameters L0, L, and m increases, and the effect is more pronounced at high wall pressure. However, with the increase of wall pressure, the internal reflux ratio (F/L) decreases, initially at faster rate and then become constant at high wall pressure, which indicates that there is a strong coupling between the process parameters L0, L, m, and (F/L), and the result also reveals that at high wall pressure (hence at high holdup) the separation process takes place under improved equilibrium condition.

Publication: 1. PRADHAN, S. & KUMARAN, V. 2011 The generalized Onsager model for the secondary flow in a high-speed rotating cylinder. J. Fluid Mech. 686, 109.<br><br>2. KUMARAN, V & PRADHAN, S. 2014 The generalized Onsager model for a binary gas mixture. J. Fluid Mech. 753, 307.<br><br>3. Sahadev Pradhan, & Viswanathan Kumaran 2015 Separation Analysis in a High-Speed Rotating Cylinder for a Binary Gas Mixture., 68th Annual Meeting of the APS Division of Fluid Dynamics Volume 60, Number 21 Sunday–Tuesday, November 22–24, 2015; Boston, Massachusetts.<br><br>4. Sahadev Pradhan, 2016 The Generalized Onsager Model and DSMC Simulations of High-Speed Rotating Flow with Swirling Feed., 69th Annual Gaseous Electronics Conference, Volume 61, Number 9, Monday–Friday, October 10–14, 2016; Bochum, Germany.<br><br>5. Sahadev Pradhan, 2016 The generalized Onsager model and DSMC simulations of high-speed rotating flows with product and waste baffles., 69th Annual Gaseous Electronics Conference, Volume 61, Number 9, Monday–Friday, October 10–14, 2016; Bochum, Germany.<br><br>6. Sahadev Pradhan, 2016 DSMC simulations of leading edge flat-plate boundary layer flows at high Mach number., 69th Annual Gaseous Electronics Conference, Volume 61, Number 9, Monday–Friday, October 10–14, 2016; Bochum, Germany.<br><br>7. Sahadev Pradhan, 2016 Thin film deposition using rarefied gas jet., 69th Annual Gaseous Electronics Conference, Volume 61, Number 9, Monday–Friday, October 10–14, 2016; Bochum, Germany.<br><br>8. S. Pradhan, 2016 Analysis of High-Speed Rotating Flow in 2D Polar (r - theta) Coordinate., APS April Meeting 2016 Volume 61, Number 6 Saturday–Tuesday, April 16–19, 2016; Salt Lake City, Utah.<br><br>9. Sahadev Pradhan, 2017 Analysis of high-speed rotating flow inside gas centrifuge casing., 70th Annual Meeting of the APS Division of Fluid Dynamics Volume 62, Number 14 Sunday–Tuesday, November 19–21, 2017; Denver, Colorado.<br><br>10. Sahadev Pradhan, 2017 Binary gas mixture in a high-speed channel., 70th Annual Meeting of the APS Division of Fluid Dynamics Volume 62, Number 14 Sunday–Tuesday, November 19–21, 2017; Denver, Colorado.<br><br>11. Sahadev Pradhan, 2017 Composite reinforced metallic cylinder for high-speed rotation., 70th Annual Meeting of the APS Division of Fluid Dynamics Volume 62, Number 14 Sunday–Tuesday, November 19–21, 2017; Denver, Colorado.<br><br>12. Sahadev Pradhan, 2017 DSMC Simulations of High Mach Number Taylor-Couette Flow., 70th Annual Meeting of the APS Division of Fluid Dynamics Volume 62, Number 14 Sunday–Tuesday, November 19–21, 20

Presenters

  • Dr. Sahadev Pradhan

    Bhabha Atomic Research Centre

Authors

  • Dr. Sahadev Pradhan

    Bhabha Atomic Research Centre