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Study of Combined Multi-Point Constraint Multi-Scale Modeling Strategy for Ultra-High-Performance Steel Fiber-Reinforced Concrete Structures

机译:超高性能钢纤维混凝土结构组合多点约束多规模建模策略研究

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摘要

Compared with normal strength concrete (NSC), ultra-high-performance steel fiber-reinforced concrete (UHPFRC) shows superior performance. The concrete damage plasticity (CDP) model in ABAQUS can predict the mechanical properties of UHPFRC components well after calibration. However, the simulation of the whole structure is seriously restricted by the computational capability. In this study, a novel multi-scale modeling strategy for UHPFRC structure was proposed, which used a calibrated CDP model. A novel combined multi-point constraint (CMPC) was established by the simultaneous equations of displacement coordination and energy balance in different degrees of freedom of interface nodes. The advantage is to eliminate the problem of the tangential over-constraint of displacement coordination equation at the interface and to avoid stress iteration of the energy balance equation in the plastic stage. The expressions of CMPC equations of typical multi-scale interface connection were derived. The multi-scale models of UHPFRC components under several load cases were established. The results show that the proposed strategy can well predict the strain distribution and damage distribution of UHPFRC while significantly reducing the number of model elements and improving the computational efficiency. This study provides an accurate and efficient finite element modeling strategy for the design and analysis of UHPFRC structures.
机译:与正常强度混凝土(NSC)相比,超高性能钢纤维钢筋混凝土(UHPFRC)显示出优异的性能。 ABAQUS中的混凝土损伤塑性(CDP)模型可以在校准后预测UHPFRC组分的机械性能。然而,整个结构的模拟受到计算能力的严重限制。在本研究中,提出了一种用于UHPFRC结构的新型多尺度建模策略,它使用了校准的CDP模型。通过不同程度的界面节点的不同程度的自由度的位移协调和能量平衡的同时方程建立了一种新的组合多点约束(CMPC)。优点是消除界面处的位移协调方程的切向上限制的问题,并避免塑性阶段中的能量平衡方程的应力迭代。派生了典型的多尺度接口连接的CMPC方程的表达。建立了几种负载案例下的UHPFRC组件的多尺度模型。结果表明,该策略可以很好地预测UHPFRC的应变分布和损伤分布,同时大大减少了模型元素的数量并提高了计算效率。本研究为UHPFRC结构的设计和分析提供了准确和有效的有限元建模策略。

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