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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >Model-free data-driven methods in mechanics: material data identification and solvers
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Model-free data-driven methods in mechanics: material data identification and solvers

机译:机械模型的无模型数据驱动方法:材料数据识别和求解器

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This paper presents an integrated model-free data-driven approach to solid mechanics, allowing to perform numerical simulations on structures on the basis of measures of displacement fields on representative samples, without postulating a specific constitutive model. A material data identification procedure, allowing to infer strain-stress pairs from displacement fields and boundary conditions, is used to build a material database from a set of mutiaxial tests on a non-conventional sample. This database is in turn used by a data-driven solver, based on an algorithm minimizing the distance between manifolds of compatible and balanced mechanical states and the given database, to predict the response of structures of the same material, with arbitrary geometry and boundary conditions. Examples illustrate this modelling cycle and demonstrate how the data-driven identification method allows importance sampling of the material state space, yielding faster convergence of simulation results with increasing database size, when compared to synthetic material databases with regular sampling patterns.
机译:本文介绍了一个集成的无模型数据驱动方法,用于固体力学,允许基于代表性样本上的位移场的测量来对结构进行数值模拟,而无需假设特定的本构体模型。一种材料数据识别过程,允许从位移场和边界条件下推断应变应力对,用于在非传统样品上从一组互象试验构建材料数据库。该数据库又由数据驱动的求解器使用,基于最小化兼容和平衡的机械状态和给定数据库的歧管之间的距离,以预测相同材料的结构的响应,具有任意几何和边界条件的算法。实施例说明了该建模周期,并演示了数据驱动识别方法如何允许材料状态空间的重要性采样,与具有规则采样模式的合成材料数据库相比,随着数据库尺寸的增加,仿真结果的更快会聚。

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