Speed-Dependent Eigenmodes for Efficient Simulation of Transverse Rotor Vibration

IF 1.9 Q3 ENGINEERING, MECHANICAL
Vibration Pub Date : 2022-10-31 DOI:10.3390/vibration5040043
J. Kluger, Lynn Crevier, M. Udengaard
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引用次数: 0

Abstract

Accurate, computationally efficient simulations enable engineers to design high-performing, cost-efficient, lightweight machines that can leverage models of predictive controls and digital twin predictive maintenance schedules. This study demonstrates a new speed-dependent eigenmode method for accurately and efficiently simulating shaft transverse vibrations. The method involves first independently computing shaft eigenmodes over a range of operating speeds, then correlating the eigenmodes across the different speeds during compilation, and finally adjusting modal properties gradually in accordance with a lookup method during simulation. The new method offers several distinct advantages over the traditional static eigenmodes and Craig-Bampton methods. The new method maintains accuracy over a large range of shaft rotation speeds whereas the static eigenmodes method does not. The new method typically requires fewer modal degrees of freedom than the Craig-Bampton method. Whereas the Craig-Bampton method is limited to modeling changes at the boundaries, the new method is suitable for modeling changing body properties as well as boundary-based changes. For this paper, a fluid-bearing-supported 10 MW direct-drive wind turbine drive shaft is tested virtually in a simulation model developed in Simscape™ Driveline™. Using the simulation statistics, this study compares the accuracy and computational efficiency of the speed-dependent eigenmode method to the traditional finite lumped element, static eigenmode, and Craig–Bampton methods. This paper shows that the new method simulates the chosen system 5 times faster than the traditional lumped mass method and 2.4 times faster than the Craig-Bampton method.
有效模拟转子横向振动的速度相关特征模
精确、计算效率高的仿真使工程师能够设计出高性能、经济高效、轻巧的机器,这些机器可以利用预测控制模型和数字孪生预测维护计划。本文提出了一种新的与转速相关的特征模态方法,可以准确有效地模拟轴的横向振动。该方法首先独立计算轴在一定转速范围内的特征模态,然后在编译过程中将不同转速下的特征模态关联起来,最后在仿真过程中根据查找方法逐步调整模态属性。与传统的静态特征模态和克雷格-班普顿方法相比,新方法具有几个明显的优点。新方法在较大的轴转速范围内保持精度,而静态特征模态方法则不能。与Craig-Bampton方法相比,新方法通常需要更少的模态自由度。Craig-Bampton方法仅限于对边界处的变化进行建模,而该方法既适合对物体属性变化进行建模,也适合对基于边界的变化进行建模。在本文中,在Simscape™Driveline™开发的仿真模型中对流体轴承支持的10兆瓦直驱风力涡轮机传动轴进行了虚拟测试。通过仿真统计,将速度相关特征模态方法与传统的集总有限元、静态特征模态和Craig-Bampton方法的精度和计算效率进行了比较。结果表明,该方法对所选系统的模拟速度比传统的集中质量法快5倍,比Craig-Bampton方法快2.4倍。
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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CiteScore
3.20
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0.00%
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0
审稿时长
10 weeks
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