Weiling Zhao, Guoqiang Li, Guangze Liu, Hongbo Wu, JifengWu, Zhiqiang Zhu, Yidan Wang, Liang Wang
Conventional thickness design of thermal barrier coatings (TBCs) is mainly governed by thermal insulation and fracture-mechanics-based delamination resistance. As for self-healing thermal barrier coatings (SH-TBCs), such thermo-mechanical criteria alone are insufficient, because they do not determine whether a given architecture can provide adequate healing-agent supply to satisfy crack-sealing demand. In this study, a dimensionless healing sufficiency index, H , is introduced into the thickness design of an APS TiC-containing SH-TBC system to quantify the matching between healing-agent supply and crack-filling demand. On this basis, a healing-constrained multi-objective design strategy is established to balance thermal insulation, interfacial delamination resistance and self-healing functionality. The results show that, after considering the risks associated with insufficient healing and constrained crack-body expansion caused by excessive filling, approximately 80 % of the thickness designs previously regarded as feasible under conventional thermo-mechanical criteria are excluded. This indicates that thermo-mechanical criteria alone can substantially overestimate the true feasible design domain of SH-TBCs. A favorable thickness window is identified, corresponding to a TiC–Al 2 O 3 –YSZ (TAZ) layer thickness of 30–40 μm and a YSZ top-coat thickness of 160–200 μm. High-temperature oxidation experiments further show that the optimized thin-TAZ architecture retains effective crack-sealing capability and excellent thermo-mechanical match.