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首页> 外文期刊>Computational Mechanics: Solids, Fluids, Fracture Transport Phenomena and Variational Methods >Variational multiscale approach to enforce perfect bond in multiple-point constraint applications when forming composite beams
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Variational multiscale approach to enforce perfect bond in multiple-point constraint applications when forming composite beams

机译:形成复合梁时在多点约束应用中强制采用完美结合的变分多尺度方法

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摘要

Composite laminates that consist of two or more layers find widespread applications in a variety of engineering structures. In the computational modelling of composite laminates, the layers can be stacked together and connected conveniently at the nodes by usingmultiple-point constraints (MPCs). However, this type of modelling leads to weakening of the kinematic constraint conditions imposed by the bond between the juxtaposed layers and as a consequence, MPCs application at the nodes produces behaviour that is softer than the perfectly bonded composite beam behaviour. The work herein shows that when kinematic conditions for composite action are weakly imposed in the variational form, they can be enforced in the point-wise sense by proper selection of the interpolation field or otherwise reinforced by using variational multiscale approach without modifying the kinematic model. The originality of the approach presented herein is in the interpretation of the MPCs application as the solution in a superfluously extended space because of the weakening in the kinematic constraints. It is shown that the perfect bond between the composite beam layers can be recovered by excluding the identified fine-scale effect from the solution of the multiple point constraint application. The convergence characteristic of the finite element formulation is also improved by using the variational multi-scale approach. It is also shown that the fine-scale effects can be represented by using extra fictitious elements and springs, which offers a direct correction technique in modelling of composite beams that is especially useful when access to the numerical procedure is limited.
机译:由两层或多层组成的复合层压板在各种工程结构中都有广泛的应用。在复合层压板的计算建模中,可以使用多点约束(MPC)将各层堆叠在一起并在节点处方便地连接。但是,这种类型的建模导致并列层之间的粘合所施加的运动约束条件变弱,因此,MPC在节点处的应用所产生的行为比完全粘合的复合梁行为要软。本文的工作表明,当以变分形式弱地施加用于复合动作的运动学条件时,可以通过适当选择内插字段在点意义上强制它们,或者通过使用变分多尺度方法对其进行增强而无需修改运动学模型。本文提出的方法的独创性在于,由于运动学约束的减弱,MPC应用被解释为多余扩展空间中的解决方案。结果表明,通过从多点约束应用的解决方案中排除已确定的细尺度效应,可以恢复复合梁层之间的完美结合。通过使用变分多尺度方法,还可以改善有限元公式的收敛特性。还表明,可以通过使用额外的虚拟元素和弹簧来表示精细效果,这在复合梁的建模中提供了直接的校正技术,在限制访问数值程序时特别有用。

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