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Numerical investigation of mist/air impingement cooling on ribbed blade leading-edge surface

  • Xi'an Jiaotong University
  • Hebei University of Technology
  • University of Nevada, Las Vegas

Research output: Contribution to journalArticlepeer-review

12 Scopus citations

Abstract

The working gas turbine blades are exposed to the environment of high temperature, especially in the leading-edge region. The mist/air two-phase impingement cooling has been adopted to enhance the heat transfer on blade surfaces and investigate the leading-edge cooling effectiveness. An Euler-Lagrange particle tracking method is used to simulate the two-phase impingement cooling on the blade leading-edge. The mesh dependency test has been carried out and the numerical method is validated based on the available experimental data of mist/air cooling with jet impingement on a concave surface. The cooling effectiveness on three target surfaces is investigated, including the smooth and the ribbed surface with convex/concave columnar ribs. The results show that the cooling effectiveness of the mist/air two-phase flow is better than that of the single-phase flow. When the ribbed surfaces are used, the heat transfer enhancement is significant, the surface cooling effectiveness becomes higher and the convex ribbed surface presents a better performance. With the enhancement of the surface heat transfer, the pressure drop in the impingement zone increases, but the incremental factor of the flow friction is smaller than that of the heat transfer enhancement.

Original languageEnglish
Pages (from-to)1062-1071
Number of pages10
JournalJournal of Environmental Management
Volume203
DOIs
StatePublished - 1 Dec 2017

Keywords

  • Blade leading-edge
  • Impingement cooling
  • Mist
  • Ribbed surface
  • Two-phase flow

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