Technical Notes
Oct 19, 2018

Scour Reduction by Air Injection at a Cylindrical Bridge Pier: Experimental Determination of Optimal Configuration

Publication: Journal of Hydraulic Engineering
Volume 145, Issue 1

Abstract

To reduce bridge scour-induced collapse, experiments were performed to determine the optimal ratio of air to water velocity values for the least amount of scour at a cylindrical bridge pier. Clear-water experiments were done in noncohesive soils with air injected by means of a horizontal, semicircular air diffuser on the upstream half of the pier at the level of the original sediment prior to scour initiation. The diffuser location, number, and size of holes were determined previously to be optimal. Of the air-to-water velocity ratios tested, it was found that the least scour occurred at a ratio of 57.1. Scour was reduced 35% over the case with no air injection.

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References

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Go to Journal of Hydraulic Engineering
Journal of Hydraulic Engineering
Volume 145Issue 1January 2019

History

Received: Feb 27, 2018
Accepted: Jul 10, 2018
Published online: Oct 19, 2018
Published in print: Jan 1, 2019
Discussion open until: Mar 19, 2019

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Authors

Affiliations

Ravi T. R. Tipireddy [email protected]
Graduate Research Assistant, Dept. of Civil and Environmental Engineering, Michigan Technological Univ., 1400 Townsend Blvd., Houghton, MI 49931. Email: [email protected]
Brian D. Barkdoll, F.ASCE [email protected]
Professor, Dept. of Civil and Environmental Engineering, Michigan Technological Univ., 1400 Townsend Blvd., Houghton, MI 49931 (corresponding author). Email: [email protected]

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