Research on rapid stabilization of aero-engine casings subjected to shock loads using nonlinear energy sink

Author:

Liu Shen123ORCID,Ma Yingqun12ORCID,Zhao Wei123,Hao Long123,Bai Sujuan12,Zhao Qingjun1234ORCID

Affiliation:

1. Institutes of Engineering Thermophysics, Chinese Academy of Sciences, Beijing, China

2. National Key Laboratory of Science and Technology on Advanced Light-duty Gas Turbine, Beijing, China

3. School of Aeronautics and Astronautics, University of Chinese Academy of Sciences, Beijing, China

4. Beijing Key Laboratory of Distributed Combined Cooling Heating and Power System, Beijing, China

Abstract

In this study, we study the application of nonlinear energy sinks (NES) for targeted vibration energy transfer and absorption in aero-engine casings subjected to shock loads. A simplified single-degree-of-freedom model with an attached NES is characterized to understand the influence of control parameters such as damping and nonlinear stiffness on the NES. Using the complexification-averaging (CX-A) technique, we analyze the main dynamic characteristics of the vibration system, revealing nonlinear normal modes (NNM) and the energy localization phenomenon that enables targeted energy transfer. Then we establish a thin-walled casing model with an NES and calculate its vibration energy transfer under shock load. The results of this study are as follows: (1) NNMs are related to initial energy, with energy localization leading to targeted vibration energy transfer and dissipation; (2) NES operates optimally within a specific energy domain, exceeding this domain reduces its effectiveness, which is primarily influenced by the NES’s nonlinear stiffness; (3) Optimizing the NES’s nonlinear stiffness on the thin-walled casing achieves targeted shock energy transfer and dissipation, significantly reducing the casing’s vibration amplitude (from 0.008 m to 0.003 m, a 62.5% reduction) and stabilization time (from 0.007s to 0.002s, a 71% reduction). The study’s results are instructive for achieving rapid stabilization of aero-engine casings under shock excitation, providing insights into the mechanism of NES and the impact of damping and nonlinear stiffness on its performance. This research guides the optimized design of NES for thin-walled casings to effectively dissipate shock-induced vibrations.

Funder

the State Key Program of National Natural Science Foundation of China

National Science and Technology Major Project

Publisher

SAGE Publications

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