TY - JOUR
T1 - Synergistic regulation for crack resistant and strain tolerant regions for a matching design in double-layered thermal barrier coatings with long life span
AU - Zhu, Lin
AU - Wang, Tian Yu
AU - Umar, Shafi Muhammad
AU - Yu, Run Ze
AU - Wang, Hao Tian
AU - Li, Guang Rong
AU - Chen, Lin
AU - Yang, Guan Jun
AU - Muhammad, Yasir
N1 - Publisher Copyright:
© 2026 Elsevier Ltd and Techna Group S.r.l. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026
Y1 - 2026
N2 - Double-layered thermal barrier coatings (DL-TBCs), which combine a top layer (with low thermal conductivity and high-temperature stability) and a bottom layer (with high fracture toughness), offer superior thermal insulation potential compared to single-layer coatings. This advantage stems from the functional synergy between the two layers. However, the introduction of a new heterogeneous interface often leads to interfacial stress concentration, which becomes a critical bottleneck limiting the coating's service life. To resolve the conflicting structural requirements—where the ceramic layer near the bond coat must be dense to resist cracking, while the interface between the two ceramic layers requires porosity to relieve stress. This study proposes a design approach based on multiscale strain partitioning and gradient porosity regulation. The design uses high-entropy rare-earth zirconate (HEFO) as the top layer (for low thermal conductivity and high-temperature stability) and yttria-stabilized zirconia (YSZ) as the bottom layer (for stress buffering). Through integrated optimization of materials, structure, and processing, a functionally graded pore structure was achieved across different regions. The region near the bond coat was densified, with a porosity of approximately 7.3%. In contrast, the double ceramic layers exhibited a gradual increase in porosity along the thickness direction: from 7.3% to 17.3%. Meanwhile, the proportion of unmelted regions increased from 5.8% to 34.2%, forming a continuously transitional microstructure. The lifespan of the DL-TBCs under this design is approximately 1.7 times longer than that of the conventional DL-TBCs. Further investigation into the structural evolution during high-temperature service revealed that the graded pore structure can effectively mitigate interfacial thermal expansion mismatch, reduce stress concentration at the interface, and enhance the bonding strength of heterogeneous interfaces, thereby delaying the process of interfacial cracking. The “structure–stress–life” relationship established in this study offers a new paradigm for designing DL-TBCs.
AB - Double-layered thermal barrier coatings (DL-TBCs), which combine a top layer (with low thermal conductivity and high-temperature stability) and a bottom layer (with high fracture toughness), offer superior thermal insulation potential compared to single-layer coatings. This advantage stems from the functional synergy between the two layers. However, the introduction of a new heterogeneous interface often leads to interfacial stress concentration, which becomes a critical bottleneck limiting the coating's service life. To resolve the conflicting structural requirements—where the ceramic layer near the bond coat must be dense to resist cracking, while the interface between the two ceramic layers requires porosity to relieve stress. This study proposes a design approach based on multiscale strain partitioning and gradient porosity regulation. The design uses high-entropy rare-earth zirconate (HEFO) as the top layer (for low thermal conductivity and high-temperature stability) and yttria-stabilized zirconia (YSZ) as the bottom layer (for stress buffering). Through integrated optimization of materials, structure, and processing, a functionally graded pore structure was achieved across different regions. The region near the bond coat was densified, with a porosity of approximately 7.3%. In contrast, the double ceramic layers exhibited a gradual increase in porosity along the thickness direction: from 7.3% to 17.3%. Meanwhile, the proportion of unmelted regions increased from 5.8% to 34.2%, forming a continuously transitional microstructure. The lifespan of the DL-TBCs under this design is approximately 1.7 times longer than that of the conventional DL-TBCs. Further investigation into the structural evolution during high-temperature service revealed that the graded pore structure can effectively mitigate interfacial thermal expansion mismatch, reduce stress concentration at the interface, and enhance the bonding strength of heterogeneous interfaces, thereby delaying the process of interfacial cracking. The “structure–stress–life” relationship established in this study offers a new paradigm for designing DL-TBCs.
KW - Double-layered thermal barrier coatings
KW - Interfacial stress
KW - Multi-scale strain partitioning and gradient pore regulation
KW - Structure-stress-life correlation
UR - https://www.scopus.com/pages/publications/105036659144
U2 - 10.1016/j.ceramint.2026.04.274
DO - 10.1016/j.ceramint.2026.04.274
M3 - 文章
AN - SCOPUS:105036659144
SN - 0272-8842
JO - Ceramics International
JF - Ceramics International
ER -