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Set-valued anisotropic dry friction laws: formulation, experimental verification and instability phenomenon

机译:设定值各向异性干摩擦法:配方,实验验证和不稳定现象

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摘要

Many technical applications, such as brakes and metal forming processes, are affected by anisotropic frictional behavior, where the magnitude and the direction of the friction force are dependent on the sliding direction. Existing dry friction laws do not sufficiently describe all relevant macroscopic aspects of anisotropic friction, and the influence on the dynamics of mechanical systems is largely unknown. Furthermore, previous experimental work on anisotropic friction is limited and the fact that the friction force is not always acting parallel to the sliding direction is often neglected. In this paper, an anisotropic dry friction law with the capability to describe the nonsmooth behavior of stick and slip and allowing for non-convex but star-shaped sets of admissible friction forces is formulated using tools from convex analysis. The formulation of the friction law as normal cone inclusion enables the direct implementation in numerical time-stepping schemes. The stability of systems with anisotropic friction is studied and an eigenvalue analysis reveals that the anisotropic friction law is in theory capable of causing anisotropic friction-induced instability. In addition, experimental setups for detailed investigations of the frictional behavior are described. The measurements reveal complex shaped force reservoirs and confirm the validity of the presented friction law. Finally, it is shown that the presented friction law leads to a more accurate prediction of the motion of nonsmooth mechanical systems.
机译:许多技术应用,例如制动器和金属形成过程,受到各向异性摩擦行为的影响,其中摩擦力的幅度和方向取决于滑动方向。现有的干摩擦法不充分描述各向异性摩擦的所有相关的宏观方面,并且对机械系统动态的影响很大程度上是未知的。此外,先前关于各向异性摩擦的实验工作是有限的,并且通常忽略了摩擦力并不总是与滑动方向平行作用的事实。在本文中,各向异性的干摩擦法具有描述杆和滑动的非球形行为的能力,并且允许使用来自凸分析的工具的工具配制出非凸形但是星状可允许的摩擦力组。作为正常锥形夹杂物的摩擦律的制定能够直接实施数值时间步进方案。研究了具有各向异性摩擦的系统的稳定性,并且特征值分析表明,各向异性摩擦法在理论上能够引起各向异性摩擦诱导的不稳定性。另外,描述了用于详细研究摩擦行为的实验设置。测量显示复杂形状的力储存器,并确认所提出的摩擦法的有效性。最后,显示出呈现的摩擦法导致更准确地预测非球形机械系统的运动。

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