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External coupling software based on macro- and micro-time scales for explicit/implicit multi-time-step co-computations in structural dynamics

机译:基于宏观和微观时间尺度的外部耦合软件,用于结构动力学中的显式/隐式多步共计算

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摘要

External coupling software based on the coupling algorithm proposed by Prakash and Hjelmstad (PH method) is compared to the previous external coupling software based on the GC (Gravouil and Combsecure) method. The salient features of multi-time-step partitioning methods are presented: they involve non-overlapping partitions and follow a dual Schur approach by enforcing the velocity continuity at the interface with Lagrange multipliers. The main difference between the two methods lies in the time scale at which the interface problem is solved: the micro-time scale for the GC algorithm and macro-time scale for the PH algorithm. During the multi-time-step co-computations involving two finite element codes (explicit and implicit FE codes), the tasks carried out by the coupling software PH-CPL, based on a variant of the PH algorithm, are illustrated and compared to the coupling software GC-CPL based on the GC algorithm. The advantage of the new coupling PH-CPL software is highlighted in terms of parallel capabilities. In addition, the PH-CPL coupling software alleviates the dissipative drawback of the GC method at the interface between the subdomains. Academic cases are investigated to check the energy features and the accuracy order for the GC and PH algorithms. Finally, explicit/implicit multi-time-step co-computations with GC-CPL and PH-CPL software are conducted for two engineering applications under the assumption of linear elastic materials: a reinforced concrete frame structure under blast loading striking its front face and a flat composite stiffened panel subjected to localised loads applied to its central frame.
机译:将基于Prakash和Hjelmstad(PH方法)提出的耦合算法的外部耦合软件与先前基于GC(Gravouil和Combsecure)方法的外部耦合软件进行了比较。提出了多时间步分区方法的显着特征:它们涉及非重叠分区,并通过在Lagrange乘子的接口处强制速度连续性来遵循双重Schur方法。两种方法之间的主要区别在于解决接口问题的时间尺度:GC算法的微尺度和PH算法的宏观尺度。在涉及两个有限元代码(显式和隐式FE代码)的多时间步共计算期间,说明了耦合软件PH-CPL基于PH算法的变体执行的任务,并将其与基于GC算法的耦合软件GC-CPL。新的耦合PH-CPL软件的优势在并行功能方面得到了突出体现。此外,PH-CPL耦合软件可缓解子域之间接口处GC方法的耗散缺点。研究了一些学术案例,以检查能量特征以及GC和PH算法的准确性顺序。最后,在线性弹性材料的假设下,针对两个工程应用,使用GC-CPL和PH-CPL软件进行了显式/隐式多步计算,这是在爆炸载荷作用下其正面受到冲击的钢筋混凝土框架结构,以及平面复合材料加劲板承受施加到其中央框架的局部载荷。

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