Experimental and Numerical Study on Heat Transfer Characteristics of Metallic Honeycomb Core Structure in Transient Thermal Shock Environments

  • Liming Zheng
  • , Dafang Wu*
  • , Anfeng Zhou
  • , Bing Pan
  • , Yuewu Wang
  • , Jie Wang
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

The metallic honeycomb core structure has important engineering applications in the aerospace and aviation fields due to several advantages, such as being lightweight, its strong resistance to deformation in high-temperature environments, and its excellent energy absorption characteristics. In the present study, a transient heating experimental system for high-speed flight vehicles was developed to study the thermal insulation characteristics of a superalloy honeycomb core structure at different thermal shock rates (5◦C.s-1 to 30 ◦C.s-1). The highest instantaneous temperature tested was 950◦C. The three-dimensional finite element method was used to numerically calculate the thermal insulation characteristics of the metallic honeycomb core structure in a high-speed thermal shock environment. The calculated results agree well with the experimental results; this agreement demonstrates that to an extent, numerical calculations are a better alternative than expensive experiments. The results of this study provide an important reference for the thermal protection design of metallic honeycomb core structures of high-speed flight vehicles.

Original languageEnglish
Pages (from-to)1557-1576
Number of pages20
JournalInternational Journal of Thermophysics
Volume35
Issue number8
DOIs
StatePublished - 16 Oct 2014

Keywords

  • Experiments
  • High temperatures
  • Metallic honeycomb core structure
  • Numerical calculations
  • Thermal shock
  • Transient

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