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Overall cooling performance of a densely packed multirow-hole-array plate for afterburner heat shields under coupled conduction–convection–radiation heat transfer

  • Northwestern Polytechnical University Xian
  • Science and Technology on Altitude Simulation Laboratory
  • Taihang Laboratory

Research output: Contribution to journalArticlepeer-review

Abstract

With increasing thermal loading, thermal radiation in components subject to coupled conduction–convection–radiation heat transfer has evolved from a negligible secondary factor to a key physical mechanism that must be explicitly considered. As a typical component involving coupled heat transfer in advanced aero-engines, the flat afterburner heat shield is commonly protected by film cooling based on densely packed multirow hole arrays. To quantify how blowing ratio, mainstream-to-coolant temperature ratio, and mainstream Reynolds number modulate overall cooling effectiveness after the introduction of radiation, a controlled-radiation experimental platform was developed in which radiative heat flux was imposed by a quartz-lamp array. The results show that the established understanding that increasing blowing ratio improves cooling performance remains valid under radiative conditions; moreover, radiation markedly amplifies the relative net gain associated with the same blowing-ratio increment, with a maximum increase of 56.4%. In the absence of radiation, both mainstream-to-coolant temperature ratio and mainstream Reynolds number exert negligible influence on overall cooling effectiveness. Once radiation is introduced, however, both become important modulation parameters. Increasing the mainstream-to-coolant temperature ratio reduces the radiative temperature difference and the net radiative heat flux absorbed by the hot component, producing a maximum increase in overall cooling effectiveness of 35.6% under strong radiative loading. Increasing mainstream Reynolds number likewise improves overall cooling effectiveness, and its effect becomes more pronounced as radiative intensity increases, reaching 59.3%. These results show that thermal radiation not only changes the absolute level of overall cooling effectiveness, but also reshapes the relative importance of key flow and thermal parameters.

Original languageEnglish
Article number121891
JournalEnergy Conversion and Management
Volume368
DOIs
StatePublished - 15 Nov 2026

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 7 - Affordable and Clean Energy
    SDG 7 Affordable and Clean Energy

Keywords

  • Blowing ratio
  • Mainstream Reynolds number
  • Mainstream-to-coolant temperature ratio
  • Overall cooling effectiveness
  • Thermal radiation

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