Co-Simulation Interface Model Reduction for Large-Scale Coupled Simulations

IF 2.9 3区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY International Journal for Numerical Methods in Engineering Pub Date : 2024-12-09 DOI:10.1002/nme.7626
Jari Peeters, Martijn Vermaut, Simon Vanpaemel, Frank Naets
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Abstract

The paper presents a novel approach for reducing the co-simulation interface representation between multiple large-scale models. The methodology leverages model order reduction through component mode synthesis in some specific small deformation flexible multibody formulations that yield a constant transformation matrix between Cartesian coordinates and general multibody coordinates, such as the flexible natural coordinates formulation or the generalized component mode synthesis. The constant transformation matrix stemming from these techniques is further modified using modified Gram–Schmidt orthonormalization and the effective independence methodology to create a constant interface model reduction matrix. This matrix effectively connects a minimal set of interface nodes to the entire nodal domain, while simultaneously projecting the forces acting on the entire nodal domain onto the interface nodes. Notably, the proposed methodology scales the size of the required co-simulation interface representation with the considered set of mode shapes rather than the size of the numerical finite element mesh. This co-simulation interface model reduction strategy not only renders large distributed load models compatible with the Functional Mock-Up Interface but also extends its applicability to any structural model beyond the flexible multibody scope, provided that deformations remain relatively small. Numerical validation with a simply supported beam, connected to springs at each node, demonstrates that the interface model reduction error is significantly smaller than the co-simulation error. This suggests that substantial interface model reduction can be achieved without compromising accuracy. Moreover, additional numerical validation performed with a rotor-drum model showcases the versatility and scalability of the proposed approach, particularly in addressing dynamic structural systems.

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大规模耦合仿真的联合仿真界面模型简化
提出了一种减少多个大尺度模型间联合仿真界面表示的新方法。该方法通过在某些特定的小变形柔性多体公式(如柔性自然坐标公式或广义分量模态综合)中产生笛卡尔坐标与一般多体坐标之间的常数变换矩阵来利用模型阶数降低。利用改进的Gram-Schmidt正交规格化和有效的独立性方法,对这些技术产生的常数变换矩阵进行进一步修改,以创建常数界面模型约简矩阵。该矩阵有效地将最小的接口节点集连接到整个节点域,同时将作用在整个节点域上的力投射到接口节点上。值得注意的是,所提出的方法根据所考虑的模态振型集而不是数值有限元网格的大小来缩放所需的联合仿真界面表示的大小。这种联合仿真界面模型缩减策略不仅使大型分布式荷载模型与功能实体界面兼容,而且在变形相对较小的情况下,将其适用性扩展到柔性多体范围以外的任何结构模型。通过在每个节点连接弹簧的简支梁的数值验证,表明界面模型缩减误差明显小于联合模拟误差。这表明可以在不影响精度的情况下实现大量的界面模型减少。此外,通过转子-转鼓模型进行的额外数值验证显示了所提出方法的多功能性和可扩展性,特别是在处理动态结构系统方面。
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来源期刊
CiteScore
5.70
自引率
6.90%
发文量
276
审稿时长
5.3 months
期刊介绍: The International Journal for Numerical Methods in Engineering publishes original papers describing significant, novel developments in numerical methods that are applicable to engineering problems. The Journal is known for welcoming contributions in a wide range of areas in computational engineering, including computational issues in model reduction, uncertainty quantification, verification and validation, inverse analysis and stochastic methods, optimisation, element technology, solution techniques and parallel computing, damage and fracture, mechanics at micro and nano-scales, low-speed fluid dynamics, fluid-structure interaction, electromagnetics, coupled diffusion phenomena, and error estimation and mesh generation. It is emphasized that this is by no means an exhaustive list, and particularly papers on multi-scale, multi-physics or multi-disciplinary problems, and on new, emerging topics are welcome.
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