TY - JOUR
T1 - Theoretical analysis method of fluid-thermal-structural coupling and its influence mechanism analysis for double wall turbine blade
AU - Li, Honglin
AU - Zhang, Zhenyuan
AU - Li, Lei
AU - Yuan, Tianyu
AU - Zhang, Weitao
AU - Kang, Yajie
AU - Ren, Shuoshuo
N1 - Publisher Copyright:
© 2026 Elsevier Ltd. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026/10
Y1 - 2026/10
N2 - Double wall cooling is regarded as one of the most promising technologies to raise turbine inlet temperature required by the next-generation aeroengines. However, intense fluid-thermal-structural coupling induced by numerous dense micro cooling features severely hinders its practical application. In this study, a basic theoretical analysis model is established to clarify the coupling mechanism, verified and discussed in detail with engineering practice. Numerical simulation is then performed on typical turbine blades with single and double wall structures, and the coupling characteristics of flow, heat transfer, and strength are analyzed and discussed. Theoretical analysis indicates that the double wall structure achieves high cooling effectiveness but generates large temperature difference between the inner and outer walls, mainly ranging from 100 K to 300 K. Under large temperature difference, incompatible thermal expansion of inner and outer walls causes mutual constraint and produces high thermal stress, with outer wall undergoing compressive stress while inner wall undergoes tensile stress. Numerical results confirm these characteristics that there is an average temperature difference of 159 K between inner and outer wall, increasing their thermal stress by 86% and 21% respectively compared with single wall blade. Combined with the tensile centrifugal stress, the mechanism of double wall structure, caused by the fluid-thermal-structural coupling, can be summarized: the outer wall mainly bears high temperature while the inner wall mainly bears mechanical load. This study provides a better understanding of the rationale of double wall structure to improve the design and optimization of double wall turbine blade.
AB - Double wall cooling is regarded as one of the most promising technologies to raise turbine inlet temperature required by the next-generation aeroengines. However, intense fluid-thermal-structural coupling induced by numerous dense micro cooling features severely hinders its practical application. In this study, a basic theoretical analysis model is established to clarify the coupling mechanism, verified and discussed in detail with engineering practice. Numerical simulation is then performed on typical turbine blades with single and double wall structures, and the coupling characteristics of flow, heat transfer, and strength are analyzed and discussed. Theoretical analysis indicates that the double wall structure achieves high cooling effectiveness but generates large temperature difference between the inner and outer walls, mainly ranging from 100 K to 300 K. Under large temperature difference, incompatible thermal expansion of inner and outer walls causes mutual constraint and produces high thermal stress, with outer wall undergoing compressive stress while inner wall undergoes tensile stress. Numerical results confirm these characteristics that there is an average temperature difference of 159 K between inner and outer wall, increasing their thermal stress by 86% and 21% respectively compared with single wall blade. Combined with the tensile centrifugal stress, the mechanism of double wall structure, caused by the fluid-thermal-structural coupling, can be summarized: the outer wall mainly bears high temperature while the inner wall mainly bears mechanical load. This study provides a better understanding of the rationale of double wall structure to improve the design and optimization of double wall turbine blade.
KW - Double wall turbine blade
KW - Fluid-thermal-structural coupling
KW - Thermomechanical stress
UR - https://www.scopus.com/pages/publications/105047273834
U2 - 10.1016/j.icheatmasstransfer.2026.112273
DO - 10.1016/j.icheatmasstransfer.2026.112273
M3 - 文章
AN - SCOPUS:105047273834
SN - 0735-1933
VL - 179
JO - International Communications in Heat and Mass Transfer
JF - International Communications in Heat and Mass Transfer
M1 - 112273
ER -