The local mass transfer and the resulting roughness in a 203 mm diameter back-to-back bend arranged in an S-configuration were measured at a Reynolds number of 300,000. A dissolving wall method using gypsum dissolution to water at 40 °C was used, with a Schmidt number of 660. The topography of the unworn and worn inner surface was quantified using nondestructive X-ray computed tomography (CT) scans. The local mass transfer rate was obtained from the local change in radius over the flow time. Two regions of high mass transfer were present: (i) along the intrados of the first bend near the inlet and (ii) at the exit of the extrados of the first bend that extends to the intrados of the second bend. The latter was the region of highest mass transfer, and the scaling of the maximum Sherwood number with Reynolds number followed that developed for lower Reynolds numbers. The relative roughness distribution in the bend corresponded to the mass transfer distribution, with higher roughness in the higher mass transfer regions. The spacing of the roughness elements in the upstream pipe and in the two regions of high mass transfer was approximately the same; however, the spacing-to-height ratio was very different with values of 20, 10, and 6, respectively.
Skip Nav Destination
Article navigation
Research-Article
Measurement of Local Mass Transfer and the Resulting Roughness in a Large Diameter S-Bend at High Reynolds Number
D. Wang,
D. Wang
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
McMaster University,
Hamilton, ON L8S 4L7, Canada
Search for other works by this author on:
D. Ewing,
D. Ewing
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
McMaster University,
Hamilton, ON L8S 4L7, Canada
Search for other works by this author on:
T. Le,
T. Le
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
McMaster University,
Hamilton, ON L8S 4L7, Canada
Search for other works by this author on:
C. Y. Ching
C. Y. Ching
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
e-mail: chingcy@mcmaster.ca
McMaster University,
Hamilton, ON L8S 4L7, Canada
e-mail: chingcy@mcmaster.ca
Search for other works by this author on:
D. Wang
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
McMaster University,
Hamilton, ON L8S 4L7, Canada
D. Ewing
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
McMaster University,
Hamilton, ON L8S 4L7, Canada
T. Le
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
McMaster University,
Hamilton, ON L8S 4L7, Canada
C. Y. Ching
Department of Mechanical Engineering,
McMaster University,
Hamilton, ON L8S 4L7, Canada
e-mail: chingcy@mcmaster.ca
McMaster University,
Hamilton, ON L8S 4L7, Canada
e-mail: chingcy@mcmaster.ca
1Corresponding author.
Contributed by the Heat Transfer Division of ASME for publication in the JOURNAL OF HEAT TRANSFER. Manuscript received September 10, 2015; final manuscript received February 23, 2016; published online March 30, 2016. Assoc. Editor: Wilson K. S. Chiu.
J. Heat Transfer. Jun 2016, 138(6): 062001 (7 pages)
Published Online: March 30, 2016
Article history
Received:
September 10, 2015
Revised:
February 23, 2016
Citation
Wang, D., Ewing, D., Le, T., and Ching, C. Y. (March 30, 2016). "Measurement of Local Mass Transfer and the Resulting Roughness in a Large Diameter S-Bend at High Reynolds Number." ASME. J. Heat Transfer. June 2016; 138(6): 062001. https://doi.org/10.1115/1.4032985
Download citation file:
Get Email Alerts
Cited By
Maximization of the Heat Transfer Irreversibility
J. Heat Mass Transfer (February 2024)
Significance of Upstream Wall Conditions in Characterizing the Heat Transfer Phenomena of Rarefied Flows
J. Heat Mass Transfer (February 2024)
Numerical Study of Mixed Convection of Buoyant Twin Jet
J. Heat Mass Transfer (March 2024)
Influence of Buoyancy and Inter-Surface Radiation on Confined Jet Impingement Cooling of a Semi-Cylindrical Concave Plate
J. Heat Mass Transfer (March 2024)
Related Articles
Effects of Surface Roughness and Bend Geometry on Mass Transfer in an S-Shaped Back to Back Bend at Reynolds Number of 200,000
J. Heat Transfer (July,2018)
The Effect of Naturally Developing Roughness on the Mass Transfer in Pipes Under Different Reynolds Numbers
J. Heat Transfer (October,2017)
Flow and Mass Transfer in Bends Under Flow-Accelerated Corrosion Wall Thinning Conditions
J. Eng. Gas Turbines Power (January,2011)
Flow Visualization of Axisymmetric Impinging Jet on a Concave Surface
J. Heat Transfer (August,2018)
Related Proceedings Papers
Related Chapters
Other Components and Variations
Axial-Flow Compressors
X-ray Computed Tomography of Cavitating Flow in a Converging-Diverging Nozzle
Proceedings of the 10th International Symposium on Cavitation (CAV2018)
Laminar Fluid Flow and Heat Transfer
Applications of Mathematical Heat Transfer and Fluid Flow Models in Engineering and Medicine