An extension to the interface finite element with eMbedded Profile for Joint Roughness (MPJR interface finite element) is herein proposed for solving the frictional contact problem between a rigid indenter of any complex shape and an elastic body under generic oblique load histories. The actual shape of the indenter is accounted for as a correction of the gap function. A regularised version of the Coulomb friction law is employed for modeling the tangential contact response, while a penalty approach is introduced in the normal contact direction. The development of the finite element (FE) formulation stemming from its variational formalism is thoroughly derived and the model is validated in relation to challenging scenarios for standard (alternative) finite element procedures and analytical methods, such as the contact with multi-scale rough profiles. The present framework enables the comprehensive investigation of the system response due to the occurrence of tangential tractions, which are at the origin of important phenomena such as wear and fretting fatigue, together with the analysis of the effects of coupling between normal and tangential contact tractions. This scenario is herein investigated in relation to challenging physical problems involving arbitrary loading histories.
翻译:此处提议扩大界面的有限部分,加上eMeded Gification for Joint Brothers(MPJR界面有限部分),以解决任何复杂形状的僵硬缩进器与一般斜面负荷历史下的弹性体之间的摩擦接触问题; 缩进器的实际形状被算作对差距功能的纠正; 使用Coulomb摩擦法的正规版本来模拟对正向接触反应的模型,同时在正常接触方向采用惩罚办法; 彻底推导出因变异形式形成的有限元素(FE)的配方,该模型在标准(替代)有限元素程序和分析方法的富有挑战性情景方面得到验证,例如与多尺度粗面图的接触。 本框架使得能够全面调查系统因出现正向的动力而产生的反应,如磨损和疲劳等重要现象的起源,同时分析正常和对正向接触区域之间的结合的影响。 本设想是针对涉及任意装载历史的物理问题进行调查的。