A Novel Physics-Informed Hybrid Modeling Method for Dynamic Vibration Response Simulation of Rotor–Bearing System

IF 2.2 3区 工程技术 Q2 ENGINEERING, MECHANICAL
Actuators Pub Date : 2023-12-11 DOI:10.3390/act12120460
Mengting Zhu, Cong Peng, Bingyun Yang, Yu Wang
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引用次数: 0

Abstract

For rotor–bearing systems, their dynamic vibration models must be built to simulate the vibration responses that affect the safe and reliable operation of rotating machinery under different operating conditions. Single physics-based modeling methods can be used to produce sufficient but inaccurate vibration samples at the cost of computational complexity. Moreover, single data-driven modeling methods may be more accurate, employing larger numbers of measured samples and reducing computational complexity, but these methods are affected by the insufficient and imbalanced samples in engineering applications. This paper proposes a physics-informed hybrid modeling method for simulating the dynamic responses of rotor–bearing systems to vibration under different rotor speeds and bearing health statuses. Firstly, a three-dimensional model of a rolling bearing and its supporting force are introduced, and a physics-based dynamic vibration model that couples flexible rotors and rigid bearings is constructed using multibody dynamics simulation. Secondly, combining the simulation vibration data obtained using the physics-based model with measured vibration data, algorithms are designed to learn vibration generation and data mapping networks in series connection to form a physics-informed hybrid model, which can quickly and accurately output the vibration responses of a rotor–bearing system. Finally, a case study on the single-span rotor platform is provided. By comparing the signal output by the proposed physics-informed hybrid modeling method with the measured signal in the time and frequency domains, the effectiveness of proposed method under both constant- and variable-speed operating conditions are illustrated.
用于转子轴承系统动态振动响应模拟的新型物理信息混合建模方法
对于转子轴承系统,必须建立其动态振动模型,以模拟在不同运行条件下影响旋转机械安全可靠运行的振动响应。基于物理的单一建模方法可以产生足够但不准确的振动样本,但代价是计算复杂。此外,单一数据驱动建模方法可能更准确,可采用更多的测量样本并降低计算复杂度,但这些方法在工程应用中会受到样本不足和不平衡的影响。本文提出了一种物理信息混合建模方法,用于模拟不同转子速度和轴承健康状态下转子轴承系统对振动的动态响应。首先,介绍了滚动轴承及其支撑力的三维模型,并利用多体动力学仿真构建了基于物理的动态振动模型,将柔性转子和刚性轴承耦合在一起。其次,结合基于物理模型的仿真振动数据和实测振动数据,设计了振动生成和数据映射网络串联学习算法,形成物理信息混合模型,可快速准确地输出转子-轴承系统的振动响应。最后,提供了一个关于单跨转子平台的案例研究。通过将所提出的物理信息混合建模方法输出的信号与时域和频域的测量信号进行比较,说明了所提出的方法在恒速和变速运行条件下的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Actuators
Actuators Mathematics-Control and Optimization
CiteScore
3.90
自引率
15.40%
发文量
315
审稿时长
11 weeks
期刊介绍: Actuators (ISSN 2076-0825; CODEN: ACTUC3) is an international open access journal on the science and technology of actuators and control systems published quarterly online by MDPI.
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