Efficient model reduction and prediction of superharmonic resonances in frictional and hysteretic systems

IF 8.9 1区 工程技术 Q1 ENGINEERING, MECHANICAL Mechanical Systems and Signal Processing Pub Date : 2025-03-11 DOI:10.1016/j.ymssp.2025.112424
Justin H. Porter, Matthew R.W. Brake
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Abstract

Modern engineering structures exhibit nonlinear vibration behavior as designs are pushed to reduce weight and energy consumption. Of specific interest here, joints in assembled structures introduce friction, hysteresis, and unilateral contact resulting in nonlinear vibration effects. In many cases, it is impractical to remove jointed connections necessitating the understanding of these behaviors. This work focuses on superharmonic and internal resonances in hysteretic and jointed systems. Superharmonic resonances occur when a nonlinear system is forced at an integer fraction of a natural frequency resulting in a large (locally maximal) response at an integer multiple of the forcing frequency. When a second vibration mode simultaneously responds in resonance at the forcing frequency, the combined phenomena is termed an internal resonance. First, variable phase resonance nonlinear modes (VPRNM) is extended to track superharmonic resonances in multiple degree of freedom systems exhibiting hysteresis. Then a novel reduced order model based on VPRNM (VPRNM ROM) is proposed to reconstruct frequency response curves faster than utilizing the harmonic balance method (HBM). The VPRNM ROM is demonstrated for a 3 degree of freedom system with a 3:1 internal resonance and for the jointed Half Brake-Reuß Beam (HBRB), which exhibits a 7:1 internal resonance. For the HBRB, new experimental results are used to validate the modeling approaches, and a previously developed physics-based friction model is further validated, achieving frequency predictions within 3%. For the considered cases, VPRNM ROM construction is up to 4 times faster than HBM, and the evaluation of the VPRNM ROM is up to 780,000 times faster than HBM. Furthermore, the modeling framework provides insights into the mechanisms of superharmonic resonances in jointed structures, showing that both tangential slipping and normal direction clapping of the joint play important roles in exciting the superharmonic resonances in the HBRB.
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摩擦和滞后系统中超谐波共振的高效模型还原和预测
现代工程结构在减轻重量和降低能耗的要求下,呈现出非线性振动特性。这里特别感兴趣的是,装配结构中的关节引入摩擦、滞后和单边接触,导致非线性振动效应。在许多情况下,删除需要理解这些行为的连接是不切实际的。这项工作的重点是超谐波和内部共振的滞回和关节系统。当一个非线性系统以固有频率的整数分数被强迫时,就会产生超谐波共振,从而在强迫频率的整数倍处产生大的(局部最大的)响应。当第二种振动模式同时以强迫频率共振时,这种组合现象称为内部共振。首先,将变相位谐振非线性模式(VPRNM)扩展到跟踪具有滞后的多自由度系统中的超谐波共振。在此基础上,提出了一种基于VPRNM的降阶模型(VPRNM ROM),以比谐波平衡法(HBM)更快的速度重构频率响应曲线。VPRNM ROM演示了具有3:1内部共振的3自由度系统和具有7:1内部共振的连接半制动- reuß梁(HBRB)。对于HBRB,新的实验结果用于验证建模方法,并且进一步验证了先前开发的基于物理的摩擦模型,实现了3%以内的频率预测。在考虑的情况下,VPRNM ROM的构建速度比HBM快4倍,VPRNM ROM的评估速度比HBM快78万倍。此外,该模型框架还揭示了节理结构中超谐波共振的机理,表明节理的切向滑移和法向拍击对HBRB中超谐波共振的激发起重要作用。
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来源期刊
Mechanical Systems and Signal Processing
Mechanical Systems and Signal Processing 工程技术-工程:机械
CiteScore
14.80
自引率
13.10%
发文量
1183
审稿时长
5.4 months
期刊介绍: Journal Name: Mechanical Systems and Signal Processing (MSSP) Interdisciplinary Focus: Mechanical, Aerospace, and Civil Engineering Purpose:Reporting scientific advancements of the highest quality Arising from new techniques in sensing, instrumentation, signal processing, modelling, and control of dynamic systems
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