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Force-Based Frame Element Implementation for Real-Time Hybrid Simulation Using Explicit Direct Integration Algorithms

机译:使用显式直接积分算法的基于力的实时混合仿真框架元素实现

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摘要

Existing state determination procedures for force-based finite elements use either an iterative scheme at the element level or a noniterative scheme at the element level that relies on an iterative solution algorithm for the global equilibrium equations. The former cannot ensure convergence in real-time computations, whereas the latter requires an implicit direct integration algorithm; therefore, these procedures are not applicable to real-time hybrid simulation (RTHS) utilizing an explicit direct integration algorithm. A new procedure is developed based on a fixed number of iterations and an unconditionally stable explicit model-based integration algorithm. If the maximum number of iterations is reached, element resisting forces are corrected to re-establish compatibility, and unbalanced section forces are carried over to and corrected in the next time step. This procedure is used in the numerical simulation and RTHS of an earthquake-excited two-story reinforced concrete building. Results show that an accurate solution can be obtained even without performing any iteration. The influence of the model-based parameters of the integration algorithm on the stability and accuracy of the RTHS is also studied.
机译:基于力的有限元的现有状态确定过程使用在元素级别的迭代方案或在元素级别的非迭代方案,该方案依赖于全局平衡方程的迭代求解算法。前者不能确保实时计算的收敛性,而后者则需要隐式直接积分算法。因此,这些过程不适用于使用显式直接积分算法的实时混合仿真(RTHS)。基于固定数量的迭代和无条件稳定的基于显式模型的集成算法,开发了一种新的过程。如果达到最大迭代次数,则校正元件抵抗力以重新建立兼容性,并且将不平衡的截面力传递给下一步骤并进行校正。该程序用于地震激发的两层钢筋混凝土建筑的数值模拟和RTHS。结果表明,即使不执行任何迭代,也可以获得准确的解决方案。还研究了集成算法的基于模型的参数对RTHS稳定性和准确性的影响。

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