Experimental study on enhancement and recovery of turbulent heat transfer relating to the functionality of surfactant solution induced by inserted mesh

Yosuke Kawabata, Shumpei Hara, Takahiro Tsukahara, Yasuo Kawaguchi

Research output: Contribution to journalConference articlepeer-review

Abstract

Suppression of the wall-turbulence in the water channel flow, by adding a surfactant, simultaneously induces a heat transfer and a drag reduction. Those reductions are attributed to micellar network structures (MNS) which form in the surfactant solution under suitable conditions in terms of temperature, concentration, and shear rate. We inserted a wire mesh into the channel and experimentally investigated the heat transfer enhancement by the destruction of MNS and the subsequent recovering process. The local heat transfer coefficient downstream of the mesh complexly depended on the combination of surfactant concentration and distance of flow direction due to the self-repair ability of MNS. Furthermore, the wall-normal distribution of the Reynolds shear stress, which was dramatically suppressed in the normal drag-reducing flow, had a characteristic distribution dependent on the surfactant concentration and Reynolds number in the MNS recovery flow. We can explain the complex distribution of the local heat transfer coefficient and Reynolds shear stress, considering the MNS recovery place and process based on the shear rate.

Original languageEnglish
Pages (from-to)3411-3418
Number of pages8
JournalInternational Heat Transfer Conference
Volume2018-August
DOIs
Publication statusPublished - 2018
Event16th International Heat Transfer Conference, IHTC 2018 - Beijing, China
Duration: 10 Aug 201815 Aug 2018

Keywords

  • Drag reduction
  • Heat transfer
  • Reynolds shear stress
  • Surfactant solution
  • Turbulent flow

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