Strongly Coupled Simulation of Magnetic Rigid Bodies

IF 2.7 4区 计算机科学 Q2 COMPUTER SCIENCE, SOFTWARE ENGINEERING Computer Graphics Forum Pub Date : 2024-10-17 DOI:10.1111/cgf.15185
L. Westhofen, J. A. Fernández-Fernández, S. R. Jeske, J. Bender
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Abstract

We present a strongly coupled method for the robust simulation of linear magnetic rigid bodies. Our approach describes the magnetic effects as part of an incremental potential function. This potential is inserted into the reformulation of the equations of motion for rigid bodies as an optimization problem. For handling collision and friction, we lean on the Incremental Potential Contact (IPC) method. Furthermore, we provide a novel, hybrid explicit / implicit time integration scheme for the magnetic potential based on a distance criterion. This reduces the fill-in of the energy Hessian in cases where the change in magnetic potential energy is small, leading to a simulation speedup without compromising the stability of the system. The resulting system yields a strongly coupled method for the robust simulation of magnetic effects. We showcase the robustness in theory by analyzing the behavior of the magnetic attraction against the contact resolution. Furthermore, we display stability in practice by simulating exceedingly strong and arbitrarily shaped magnets. The results are free of artifacts like bouncing for time step sizes larger than with the equivalent weakly coupled approach. Finally, we showcase the utility of our method in different scenarios with complex joints and numerous magnets.

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磁性刚体的强耦合模拟
我们提出了一种强耦合方法,用于线性磁刚体的鲁棒模拟。我们的方法将磁效应描述为增量势函数的一部分。该势函数作为优化问题被插入刚体运动方程的重构中。为了处理碰撞和摩擦,我们采用了增量势接触(IPC)方法。此外,我们还根据距离准则为磁势提供了一种新颖的显式/隐式混合时间积分方案。在磁势能量变化较小的情况下,这减少了能量赫塞斯的填充,从而在不影响系统稳定性的情况下加快了模拟速度。由此产生的系统为磁效应的稳健模拟提供了一种强耦合方法。我们通过分析磁吸引力对接触分辨率的影响,展示了理论上的稳健性。此外,我们还通过模拟超强和任意形状的磁体,展示了实践中的稳定性。在时间步长大于等效弱耦合方法的情况下,结果不会出现反弹等假象。最后,我们展示了我们的方法在具有复杂关节和众多磁体的不同场景中的实用性。
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来源期刊
Computer Graphics Forum
Computer Graphics Forum 工程技术-计算机:软件工程
CiteScore
5.80
自引率
12.00%
发文量
175
审稿时长
3-6 weeks
期刊介绍: Computer Graphics Forum is the official journal of Eurographics, published in cooperation with Wiley-Blackwell, and is a unique, international source of information for computer graphics professionals interested in graphics developments worldwide. It is now one of the leading journals for researchers, developers and users of computer graphics in both commercial and academic environments. The journal reports on the latest developments in the field throughout the world and covers all aspects of the theory, practice and application of computer graphics.
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