Thermal shock resistance of thermal barrier coatings for nickel-based superalloy by supersonic plasma spraying

Jia Sun, Qian Gang Fu, Guan Nan Liu, He Jun Li, Yong Chun Shu, Gao Fan

Research output: Contribution to journalArticlepeer-review

41 Scopus citations

Abstract

Abstract Double-layer thermal barrier coatings (TBCs), including a top ZrO2 layer and an inner CoNiCrAlY layer, were deposited on nickel-based superalloy using supersonic atmospheric plasma spraying (SAPS). Thermal shock resistance of the TBCs between 1200°C and room temperature was investigated. After thermal shock test, the adhesive strength of the coatings was evaluated through scratch test. The SAPS-TBCs present good thermal shock resistance, exhibiting only 0.26% mass gain up to 150-time thermal cycling. Before thermal cyclic treatment, SAPS-TBCs exhibited a strong adhesion with the absence of the thermally grown oxide (TGO) between out and inner layer. With the increasing of thermal cycles, the TGO layer was formed and its thickness firstly increased and then dropped down. The critical load fell down by about 32% for topcoat-bondcoat adhesion (up to 50 cycles) and 35% or so for TBCs-substrate adhesion (up to 150 cycles) compared to the counterpart of as-sprayed specimens. The strain introduced by the existence of TGO and mixed oxides resulted in a varied adhesion for TBCs on nickel-based alloy during thermal cycling.

Original languageEnglish
Article number10484
Pages (from-to)9972-9979
Number of pages8
JournalCeramics International
Volume41
Issue number8
DOIs
StatePublished - 1 Sep 2015

Keywords

  • Adhesion
  • C. Thermal shock resistance
  • Supersonic atmospheric plasma spray
  • Thermal barrier coatings
  • Thermally grown oxide

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