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首页> 外文期刊>International Journal of Mechanical Sciences >Specialized finite elements for numerical simulation of the flexibly-reconfigurable roll forming process
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Specialized finite elements for numerical simulation of the flexibly-reconfigurable roll forming process

机译:用于柔性可重新配置辊成形过程的数值模拟的专用有限元

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摘要

Flexibly-reconfigurable roll forming (FRRF) process is suggested in recent years as a response to the needs of modern manufacturing industries for small-lot or even single-lot production of doubly-curved sheet metal surfaces with reduced costs. In FRRF, a sheet metal is deformed by the use of two bent rollers with non-constant roll gap where the rolling and roll-bending mechanisms are imposed together. Thanks to FRRF process, the costs due to the manufacturing of dies are reduced; however, the computational cost for process design becomes significant as each design may be used for a few or even a single production. Hence, the net production rate is controlled by computational time that can be several times longer than the forming time. Considering the deformation mechanism in FRRF, this study tries to specialize an analysis method to FRRF that is accurate and efficient. This is accomplished by an in-house MATLAB implementation of an efficient finite element approach and testing various combinations of elements and variational formulations (mixed and irreducible) to find the best combination of them for numerical simulation of FRRF. For this purpose, first a set of preliminary comparisons are made to select: (1) the best integration method for the elements with irreducible formulation, (2) the best stress components to be included in the nodal parameters for the elements with mixed formulation, and (3) the best elemental class (Serendipity or Lagrangian) for the elements with nonlinear interpolation in at least two directions. Then, the best variational formulation is decided for each elemental family by comparing the simulation results in a range of numerical model parameters. Finally, the FE model parameters are optimized for each candidate by a surrogate-based Pareto optimization method, and the best element/formulation couple is selected among all the candidates by the technique for order of preference by similarity to ideal solution (TOPSIS). Moreover, in order to identify the most decisive parameters in the analysis and design of FRRF process, the response of FRRF to variation of several process parameters including thickness, width, rollers' curvature radius, roll gap distribution, and material properties is investigated and the results are compared with those reported by the other studies.
机译:近年来提出了灵活可重新配置的滚动成型(FRRF)工艺作为对现代制造业的需求进行少量甚至单层生产的双弯曲金属表面的需求,降低成本。在FRRF中,通过使用具有非恒定辊间隙的两个弯曲辊变形,其中轧​​制和卷弯机机构施加在一起。由于FRRF过程,由于模具制造而导致的成本降低;然而,随着每个设计可以用于少数甚至单一的生产,过程设计的计算成本变得显着。因此,净生产率由计算时间控制,这些计算时间可以比成形时间长几倍。考虑到FRRF中的变形机制,本研究试图专业为FRRF的分析方法,可准确,高效。这是由内部Matlab实现的高效有限元方法和测试元件和变分制剂(混合和不可缩短)的各种组合来实现,以找到它们的最佳组合,用于FRRF的数值模拟。为此目的,首先进行一组初步比较来选择:(1)具有不可缩放的配方的元件的最佳积分方法,(2)最佳应力分量以混合配方的元素的节点参数中包括在节点参数中, (3)至少两个方向上的非线性插值的元素最佳的元素类(偶然或拉格朗日)。然后,通过比较数值模型参数范围内的模拟结果,为每个元素家族决定最佳变分制剂。最后,通过基于代理的帕累托优化方法针对每个候选进行了优化了FE模型参数,并且通过对理想解决方案(TOPSIS)的相似性的优先顺序,通过技术在所有候选中选择最佳元素/配方耦合。此外,为了识别FRRF工艺的分析和设计中最具决定性的参数,研究了FRRF对包括厚度,宽度,滚子曲率半径,辊隙分布和材料特性的若干工艺参数的变化的响应,以及结果与其他研究报告的结果进行了比较。

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