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Modal interaction in design of improved stiffened trapezoidal profiled sheeting: shape grammar, elastic stability and strength analysis

机译:改进的梯形板的设计中的模态相互作用:形状语法,弹性稳定性和强度分析

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The main goal of the present research is to investigate a procedure to design of improved stiffened trapezoidal profiled sheeting. In recent work, the authors have combined shape grammar and linear elastic analysis in a semi-automatic procedure to achieve improved solutions with a fitness function based on flexural bending moment critical values (top compression and bottom compression). The profile's signature curves presented the interesting characteristic of three minimum with equivalent critical values, which suggests the possibility of strength erosion by modal interaction. Two questions have been proposed: (ⅰ) what the amount of strength erosion is induced by modal interaction in "best shapes" from elastic stability criteria, (ⅱ) how to find solutions where this interaction has less pronounced effects in the neighborhood of the best shapes. Two procedures were performed to answer these questions: (a) the semi-automatic shape grammar procedure keeps the records from the start point to best solution, which leads to identify how geometric parameters induces buckling modes with a certain difference of critical values. Many solutions were tested and compared with results from closed formulae of Direct Strength Method to measure strength erosion and (b) Direct Strength Method has been implemented in the semi-automatic procedure Shape Grammar / Linear Elastic Stability Analysis where Local and Distortional buckling modes are identified by half-wave length criteria, according to experience in similar problems; after this, best solutions were investigated in detail by non-linear elasto-plastic analysis in Finite Element Method. There are some possible conclusions from comparisons: if procedures (a) and (b) achieves the same result ("best" shape), so Direct Strength Method is properly calibrated for these cold-formed sections and the procedure (b) is most appropriate because requires less computational effort; else, it may be necessary to choose between computational or manufacturing costs. Finally, if results from Finite Element Analysis and Direct Strength Method diverge, more research will be necessary.
机译:本研究的主要目的是研究一种设计改进的加硬梯形异型板的程序。在最近的工作中,作者将形状语法和线性弹性分析结合在一个半自动过程中,以基于弯曲弯矩临界值(顶部压缩和底部压缩)的适应度函数获得改进的解决方案。轮廓的特征曲线呈现出三个最小值与等效临界值的有趣特征,这表明模态相互作用可能会腐蚀强度。提出了两个问题:(ⅰ)根据弹性稳定性标准,“最佳形状”中的模态相互作用会引起多少强度腐蚀,(ⅱ)如何找到在最佳形状附近这种相互作用影响不大的解决方案形状。执行了两个过程来回答这些问题:(a)半自动形状语法过程将记录从起点保存到最佳解决方案,从而确定几何参数如何诱发具有一定临界值差异的屈曲模式。测试了许多解决方案并将其与直接强度法的封闭公式的结果进行比较以测量强度腐蚀,并且(b)在半自动过程形状语法/线性弹性稳定性分析中已采用直接强度法,其中确定了局部和变形屈曲模式根据类似问题的经验,以半波长为标准;之后,通过有限元方法的非线性弹塑性分析详细研究了最佳解决方案。比较得出一些可能的结论:如果步骤(a)和(b)达到相同的结果(“最佳”形状),则直接强度法已针对这些冷弯型材进行了正确校准,并且步骤(b)最合适因为需要较少的计算工作;否则,可能有必要在计算成本或制造成本之间进行选择。最后,如果有限元分析和直接强度方法的结果不一致,则有必要进行更多的研究。

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