Dynamic modelling strategy of a shaft-disk-blade coupling system integrating beam and shell theories

IF 2.7 3区 材料科学 Q2 ENGINEERING, MECHANICAL International Journal of Mechanics and Materials in Design Pub Date : 2023-06-26 DOI:10.1007/s10999-023-09664-7
Jin Zeng, Yang Yang, Hui Ma, Yiren Yang, Chenguang Fan
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Abstract

Despite the remarkable success achieved in modelling the rotor-disk-blade coupling system, the existing research does not adequately consider both the structural flexibility and the rotating effects in the shaft, disk, and blade components. To bridge this gap, a dynamic modelling strategy has been developed for the shaft-disk-blade coupling system using an in-house code that integrates the Timoshenko beam and Mindlin-Reissner shell elements. In addition, two critical issues concerning the couplings of the shaft-disk and disk-blade are successfully addressed by using the penalty method in conjunction with the compatibility equation of deformation. Subsequently, the improved modelling strategies for the shaft-disk coupling system, with and without blade components, are verified by comparing their static/dynamic frequencies and modal shapes with those obtained from experiments and solid models in ANSYS. The results indicate that the beam-shell hybrid model exhibits good accuracy and high efficiency in simulating the dynamic characteristics of the shaft-disk coupling system with and without blades. The modal characteristics of the entire rotor system have a series of flexible vibration modes, including bending/torsion/axial mode for the shaft, pitch diameter/umbrella-type mode for the disk, and bending mode for the blade.

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结合梁壳理论的轴-盘-叶片耦合系统动力学建模策略
尽管在转子-盘-叶耦合系统建模方面取得了巨大成功,但现有研究并未充分考虑轴、盘和叶片组件的结构柔性和旋转效应。为了弥补这一不足,我们使用集成了 Timoshenko 梁和 Mindlin-Reissner 壳元素的内部代码,为轴-盘-叶耦合系统开发了一种动态建模策略。此外,通过将惩罚法与变形相容方程结合使用,成功解决了有关轴-盘和盘-叶片耦合的两个关键问题。随后,通过比较轴-盘耦合系统的静态/动态频率和模态振型,以及从实验和 ANSYS 实体模型中获得的频率和模态振型,验证了带叶片组件和不带叶片组件的轴-盘耦合系统的改进建模策略。结果表明,梁-壳混合模型在模拟带叶片和不带叶片的轴-盘耦合系统的动态特性方面具有良好的精度和较高的效率。整个转子系统的模态特性具有一系列柔性振动模式,包括轴的弯曲/扭转/轴向模式、盘的节距直径/伞型模式和叶片的弯曲模式。
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来源期刊
International Journal of Mechanics and Materials in Design
International Journal of Mechanics and Materials in Design ENGINEERING, MECHANICAL-MATERIALS SCIENCE, MULTIDISCIPLINARY
CiteScore
6.00
自引率
5.40%
发文量
41
审稿时长
>12 weeks
期刊介绍: It is the objective of this journal to provide an effective medium for the dissemination of recent advances and original works in mechanics and materials'' engineering and their impact on the design process in an integrated, highly focused and coherent format. The goal is to enable mechanical, aeronautical, civil, automotive, biomedical, chemical and nuclear engineers, researchers and scientists to keep abreast of recent developments and exchange ideas on a number of topics relating to the use of mechanics and materials in design. Analytical synopsis of contents: The following non-exhaustive list is considered to be within the scope of the International Journal of Mechanics and Materials in Design: Intelligent Design: Nano-engineering and Nano-science in Design; Smart Materials and Adaptive Structures in Design; Mechanism(s) Design; Design against Failure; Design for Manufacturing; Design of Ultralight Structures; Design for a Clean Environment; Impact and Crashworthiness; Microelectronic Packaging Systems. Advanced Materials in Design: Newly Engineered Materials; Smart Materials and Adaptive Structures; Micromechanical Modelling of Composites; Damage Characterisation of Advanced/Traditional Materials; Alternative Use of Traditional Materials in Design; Functionally Graded Materials; Failure Analysis: Fatigue and Fracture; Multiscale Modelling Concepts and Methodology; Interfaces, interfacial properties and characterisation. Design Analysis and Optimisation: Shape and Topology Optimisation; Structural Optimisation; Optimisation Algorithms in Design; Nonlinear Mechanics in Design; Novel Numerical Tools in Design; Geometric Modelling and CAD Tools in Design; FEM, BEM and Hybrid Methods; Integrated Computer Aided Design; Computational Failure Analysis; Coupled Thermo-Electro-Mechanical Designs.
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