TY - JOUR
T1 - A novel design methodology for preventing dislocation in the Zig-zag shroud
AU - Du, Chenhong
AU - Wang, Yanrong
AU - Li, Di
AU - Jiang, Yuanyuan
N1 - Publisher Copyright:
© 2025 Walter de Gruyter GmbH. All rights reserved.
PY - 2025/8
Y1 - 2025/8
N2 - Dislocation is defined as the inability of shrouded blades to return to their normal position after deformation caused by an external force. Numerous methods exist for designing shrouds of turbine engines, targeting structural strength, sealing performance, contact interface wear, or damping. However, these designs often fail when dislocation occurs, which is a common issue in engineering. Limited methods focus on preventing shroud dislocation. In this article, we classify the dislocation of zig-zag shrouds into two patterns. A method for calculating the equivalent stiffness of the contact interface is provided to determine the clearance of non-working surfaces. Through a series of static analysis, we introduce a method to adjust the shroud shape and assess its capability in preventing dislocation. All methods are tested on a low-pressure turbine blade.
AB - Dislocation is defined as the inability of shrouded blades to return to their normal position after deformation caused by an external force. Numerous methods exist for designing shrouds of turbine engines, targeting structural strength, sealing performance, contact interface wear, or damping. However, these designs often fail when dislocation occurs, which is a common issue in engineering. Limited methods focus on preventing shroud dislocation. In this article, we classify the dislocation of zig-zag shrouds into two patterns. A method for calculating the equivalent stiffness of the contact interface is provided to determine the clearance of non-working surfaces. Through a series of static analysis, we introduce a method to adjust the shroud shape and assess its capability in preventing dislocation. All methods are tested on a low-pressure turbine blade.
KW - dislocation
KW - equivalent stiffness
KW - finite element method
KW - shrouded blade
KW - structure design
UR - https://www.scopus.com/pages/publications/85217006368
U2 - 10.1515/tjj-2024-0055
DO - 10.1515/tjj-2024-0055
M3 - 文章
AN - SCOPUS:85217006368
SN - 0334-0082
VL - 42
SP - 523
EP - 532
JO - International Journal of Turbo and Jet Engines
JF - International Journal of Turbo and Jet Engines
IS - 3
ER -