Clamped Edge Stress Analysis in H-13 Steel

Carlos Alejo, C. T. Torres-San Miguel, J. Paredes-Rojas, Fernando E. Ortiz-Hernández
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Abstract

The dynamic behavior in the clamped edge stress of structures is not yet fully understood clearly; also, clamped structures involve uncertainty. This research presents a numerical and analytical study of clamped edge stress behavior due to the load imposed by the chip-cutting tool on a workpiece. Clamping system, which is made of H-13 steel and machining workpiece made of AISI 8620 steel are analyzed. The maximum clamped edge stress is analyzed through dynamic response, considering the machined part as a cantilever beam, involving the constitutive relations as well as the compatibility equations. The central differential equation of motion leads us to determine the modal stresses that are a primary characteristic of the structure and that are also distributed in it. Once the modal stress has been determined as well as the maximum amplitude at the free end of the specimen to be machined, it is possible to calculate the maximum clamped edge stress that is generated between both the specimen and the clamping system. Finally, a numerical analysis of the clamping jaw is performed for the discretised system and analyzed separately using the finite element method. Clamped edge stresses are assessed through a modal study using a set of numerical simulations to corroborate the modal stress estimated analytically. The results show that the clamped edge stress in the clamping system is a considerable influence in the design parameters of the structure. Therefore, complete knowledge of the dynamic response of the clamping system will lead to better structural design with the possibility of using different materials for the same purpose.
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H-13钢夹紧边应力分析
结构在夹紧边应力作用下的动力行为尚未完全清楚;此外,固定结构包含不确定性。本文对切削刀具在工件上施加载荷时的夹紧边缘应力行为进行了数值分析研究。对H-13钢夹紧系统和AISI 8620钢加工工件进行了分析。将被加工零件视为悬臂梁,通过动态响应分析了最大夹紧边应力,包括本构关系和协调方程。运动的中心微分方程使我们确定模态应力,模态应力是结构的主要特征,也分布在结构中。一旦确定了模态应力以及待加工试件自由端的最大振幅,就可以计算在试件和夹紧系统之间产生的最大夹紧边缘应力。最后,对离散系统进行了夹紧爪的数值分析,并用有限元法进行了单独分析。利用一组数值模拟,通过模态研究来评估夹紧边应力,以证实分析估计的模态应力。结果表明,夹紧系统中的夹边应力对结构的设计参数有较大的影响。因此,完全了解夹紧系统的动态响应将导致更好的结构设计,并有可能为同一目的使用不同的材料。
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