基于生物的连接和混合平面桁架:用于模型更新的并行遗传算法方法

IF 4.4 2区 工程技术 Q1 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Da Shi , Giuseppe Carlo Marano , Cristoforo Demartino
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引用次数: 0

摘要

由于接头处的非线性响应和高应力集中,螺栓连接的钢与层压生物基材料的连接在性能上面临巨大挑战。本文介绍了一种创新的三维塑性-断裂连续有限元 (FE) 模型,该模型通过将希尔屈服准则与断裂模拟的元素去除方法相结合,大大推进了此类桁架连接的模拟。这种新颖的方法可同时捕捉塑性和断裂行为,而现有模型并未充分满足这一能力。我们详细介绍了这些模型的理论框架,包括构成方程的推导以及在 ABAQUS 中实施所需的算法。此外,我们还提供了桁架连接的低保真建模,通过 Python 脚本对连接器元素、连接模型和参数建模进行了全面分析。通过对循环载荷下混合平面桁架的连接和识别,证明了该模型的有效性,从而验证了该方法的实际适用性。为了优化计算效率,我们开发了并行遗传算法(PGA),该算法与 ABAQUS 和 Python 无缝集成,便于参数校准。这种集成不仅提高了模型的准确性,还降低了计算负荷,使其适用于复杂的工程应用。我们的研究结果表明,建模的准确性和效率都有了显著提高,为分析生物基建筑材料的桁架连接建立了一套稳健的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Bio-based connections and hybrid planar truss: A parallel genetic algorithm approach for model updating

Bolted steel to laminated bio-based material connections experience significant performance challenges due to the nonlinear response and high stress concentrations at their joints. This paper introduces an innovative 3D plasticity-fracture continuum Finite Element (FE) model that significantly advances the simulation of such truss joints by integrating Hill's yielding criteria with an element removal methodology for fracture simulation. This novel approach captures both plastic and fracture behaviors simultaneously, a capability not sufficiently addressed in existing models. We detail the theoretical framework for these models, including the derivation of constitutive equations and the algorithms necessary for their implementation in ABAQUS. Additionally, it is provided a low-fidelity modeling of truss joints, offering a comprehensive analysis of connector elements, joint models, and parametric modeling via Python scripting. The model's efficacy is demonstrated through identification of connection and of hybrid planar trusses under cyclic loading, which validates the practical applicability of the method. To optimize computational efficiency, we developed a Parallel Genetic Algorithm (PGA) that integrates seamlessly with ABAQUS and Python to facilitate parameter calibration. This integration not only enhances the model's accuracy but also reduces computational load, making it feasible for complex engineering applications. Our findings illustrate a significant improvement in modeling accuracy and efficiency, establishing a robust methodology for analyzing truss joints in bio-based construction materials.

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来源期刊
Computers & Structures
Computers & Structures 工程技术-工程:土木
CiteScore
8.80
自引率
6.40%
发文量
122
审稿时长
33 days
期刊介绍: Computers & Structures publishes advances in the development and use of computational methods for the solution of problems in engineering and the sciences. The range of appropriate contributions is wide, and includes papers on establishing appropriate mathematical models and their numerical solution in all areas of mechanics. The journal also includes articles that present a substantial review of a field in the topics of the journal.
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