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Experimental study on pipeline drag reduction characteristics based on polymer solution Injection

  • Northwestern Polytechnical University Xian
  • China State Shipbuilding Corporation
  • Xi’an Tianhe Defense Technology Co.Ltd
  • Xi’an Tianhe Maritime Technologies Co.Ltd

Research output: Contribution to journalArticlepeer-review

Abstract

Adding a trace amount of polymer into turbulent flow can significantly reduce wall friction. This drag reduction technique has been widely applied in fields such as fire-fighting, pipeline transportation, and biomedicine. Polyethylene oxide (PEO) is an efficient drag-reducing polymer, whose performance is affected by multiple parameters. In this study, a gravity-driven circulating pipe-flow system is employed to experimentally investigate the drag reduction characteristics of PEO solution injection in turbulent pipe flow. The effects of Reynolds number, injection angle (seven angles), injection rate and relative molecular mass (total of 7 kinds) on the drag reduction rate (RD) are systematically examined. A normalized polymer flux KP,which is suitable for pipe flow, is proposed to collapse the experimental data. Results show that RD initially increases roughly linearly with KP and then approaches a saturation level. This trend is analogous to the previously reported K-scaling law for polymer injection in turbulent boundary layers. Moreover, the dependence of RD on molecular weight exhibits an S-shaped trend. By fitting the data with a sigmoidal function, the optimal molecular weight range for maximum drag reduction can be predicted. These findings provide useful guidance for the optimization and prediction of polymer injection parameters in drag-reduced turbulent pipe flows.

Translated title of the contribution基于高分子溶液注入的管道减阻特性实验研究
Original languageEnglish
Pages (from-to)29-38
Number of pages10
JournalShiyan Liuti Lixue/Journal of Experiments in Fluid Mechanics
Volume40
Issue number3
DOIs
StatePublished - 30 Jun 2026

Keywords

  • drag reduction
  • injection
  • polymer
  • relative molecular mass
  • turbulence

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