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Spatiotemporal video‐domain high‐fidelity simulation and realistic visualization of full‐field dynamic responses of structures by a combination of high‐spatial‐resolution modal model and video motion manipulations

机译:时空视频域高保真模拟和结构的全域动态响应的现实可视化,结合了高空间分辨率模态模型和视频运动处理

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摘要

Structures with complex geometries, material properties, and boundary conditions exhibit spatially local dynamic behaviors. A high-spatial-resolution model of the structure is thus required for high-fidelity analysis, assessment, and prediction of the dynamic phenomena of the structure. The traditional approach is to build a highly refined finite element computer model for simulating and analyzing the structural dynamic phenomena based on detailed knowledge and explicit modeling of the structural physics such as geometries, materials properties, and boundary conditions. These physics information of the structure may not be available or accurately modeled in many cases, however. In addition, the simulation on the high-spatial-resolution structural model, with a massive number of degrees of freedom and system parameters, is computationally demanding. This study, on a proof-of-principle basis, proposes a novel alternative approach for spatiotemporal video-domain high-fidelity simulation and realistic visualization of full-field structural dynamics by an innovative combination of the fundamentals of structural dynamic modeling and the advanced video motion manipulation techniques. Specifically, a low-modal-dimensional yet high-spatial (pixel)-resolution (as many spatial points as the pixel number on the structure in the video frame) modal model is established in the spatiotemporal video domain with full-field modal parameters first estimated from line-of-sight video measurements of the operating structure. Then in order to simulate new dynamic response of the structure subject to a new force, the force is projected onto each modal domain, and the modal response is computed by solving each individual single-degree-of-freedom system in the modal domain. The simulated modal responses are then synthesized by the full-field mode shapes using modal superposition to obtain the simulated full-field structural dynamic response. Finally, the simulated structural dynamic response is embedded into the original video, replacing the original motion of the video, thus generating a new photo-realistic, physically accurate video that enables a realistic, high-fidelity visualization/animation of the simulated full-field vibration of the structure. Laboratory experiments are conducted to validate the proposed method, and the error sources and limitations in practical implementations are also discussed. Compared with high-fidelity finite element computer model simulations of structural dynamics, the video-based simulation method removes the need to explicitly model the structure's physics. In addition, the photo-realistic, physically accurate simulated video provides a realistic visualization/animation of the full-field structural dynamic response, which was not traditionally available. These features of the proposed method should enable a new alternative to the traditional computer-aided finite element model simulation for high-fidelity simulating and realistically visualizing full-field structural dynamics in a relatively efficient and user-friendly manner.
机译:具有复杂几何形状,材料特性和边界条件的结构表现出空间局部的动态行为。因此,对于结构的动态现象的高保真度分析,评估和预测,需要结构的高空间分辨率模型。传统方法是基于详细的知识和结构物理的显式建模(例如,几何形状,材料特性和边界条件),构建用于模拟和分析结构动力学现象的高度精炼的有限元计算机模型。但是,在许多情况下,这些结构的物理信息可能无法获得或无法准确建模。另外,对具有大量自由度和系统参数的高空间分辨率结构模型的仿真在计算方面要求很高。这项研究以原则为基础,通过结构动力学建模和高级视频基本原理的创新组合,提出了一种时空视频域高保真度模拟和全域结构动力学逼真的可视化的新颖替代方法。运动操纵技术。具体而言,在时空视频域中首先使用全场模态参数建立低模态维数但高空间(像素)分辨率(与视频帧中结构上的像素数一样多的空间点)模态模型根据操作结构的视线视频测量进行估算。然后,为了模拟结构在新的力作用下的新动力响应,将力投影到每个模态域上,并通过在模态域中求解每个单独的单自由度系统来计算模态响应。然后,使用模态叠加将模拟的模态响应通过全场模态合成,以获得模拟的全场结构动力响应。最后,将模拟的结构动态响应嵌入到原始视频中,代替视频的原始运动,从而生成新的逼真,物理精确的视频,从而能够对模拟全场进行逼真的,高保真度的可视化/动画处理结构的振动。进行了实验室实验以验证所提出的方法,并讨论了误差来源和实际实施中的局限性。与结构动力学的高保真有限元计算机模型仿真相比,基于视频的仿真方法消除了对结构物理建模的需求。另外,逼真的,物理上精确的模拟视频提供了全场结构动态响应的逼真的可视化/动画效果,这在传统上是不可用的。所提出方法的这些特征将为传统的计算机辅助有限元模型仿真提供一种新的替代方法,以相对有效和用户友好的方式高保真地模拟和真实地可视化全场结构动力学。

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