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Design optimization of cruciform specimens for biaxial fatigue loading

机译:十字形试样双轴疲劳载荷的设计优化

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摘要

In order to correctly assess the biaxial fatigue material properties one must experimentally test different load conditions and stress levels. With the rise of new in-plane biaxial fatigue testing machines, using smaller and more efficient electrical motors, instead of the conventional hydraulic machines, it is necessary to reduce the specimen size and to ensure that the specimen geometry is appropriated for the load capacity installed. At the present time there are no standard specimen’s geometries and the indications on literature how to design an efficient test specimen are insufficient. The main goal of this paper is to present the methodology on how to obtain an optimal cruciform specimen geometry, with thickness reduction in the gauge area, appropriated for fatigue crack initiation, as a function of the base material sheet thickness used to build the specimen. The geometry is optimized for maximum stress using several parameters, ensuring that in the gauge area the stress is uniform and maximum with two limit phase shift loading conditions. Therefore the fatigue damage will always initiate on the center of the specimen, avoiding failure outside this region. Using the Renard Series of preferred numbers for the base material sheet thickness as a reference, the reaming geometry parameters are optimized using a derivative-free methodology, called direct multi search (DMS) method. The final optimal geometry as a function of the base material sheet thickness is proposed, as a guide line for cruciform specimens design, and as a possible contribution for a future standard on in-plane biaxial fatigue tests. © 2014, Gruppo Italiano Frattura. All rights reserved.
机译:为了正确评估双轴疲劳材料的性能,必须通过实验测试不同的载荷条件和应力水平。随着新型平面双轴疲劳试验机(使用更小,更高效的电动机)代替传统的液压机的兴起,有必要减小样品尺寸并确保样品几何形状适合所安装的负载能力。目前,尚无标准试样的几何形状,有关如何设计有效试样的文献资料还不够。本文的主要目标是提出一种方法,该方法如何获得最佳的十字形试样几何形状,同时减小表观厚度,以适合于疲劳裂纹萌生,这取决于用于构建试样的基础板材厚度。使用几个参数对几何形状进行了优化,以实现最大应力,从而确保在规范区域内应力是均匀的,并且在两个极限相移载荷条件下应力最大。因此,疲劳损伤将始终在试样的中心开始,避免在该区域之外发生破坏。以基材片材厚度的首选数字Renard系列作为参考,使用称为直接多重搜索(DMS)方法的无导数方法优化了扩孔几何参数。提出了最终的最佳几何形状,它是基材片厚度的函数,作为十字形试样设计的指导方针,并为将来的平面双轴疲劳试验标准提供了可能。 ©2014,Gruppo Italiano Frattura。版权所有。

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