Rudnytskyj André, Krenn Stefan, Vorlaufer Georg, Gachot Carsten
AC2T research GmbH, Viktor-Kaplan-Straße 2/C, Wiener, 2700 Neustadt, Austria.
TU Wien, Institute of Engineering Design and Product Development, Lehárgasse 6, Objekt 7 (Hoftrakt BD, Campus Getreidemarkt), 1060 Wien, Austria.
Materials (Basel). 2021 Mar 11;14(6):1352. doi: 10.3390/ma14061352.
The contact between solids in metal-forming operations often involves temperature-dependent viscoplasticity of the workpiece. In order to estimate the real contact area in such contexts, both the topography and the deformation behaviour should be taken into account. In this work, a deterministic approach is used to represent asperities in appropriately shaped quadratic surfaces. Such geometries are implemented in indentation finite element simulations, in which the indented material has thermo-viscoplastic properties. By creating a database of simulation data, investigations in terms of contact load and area for the specifically shaped asperities allow for an analysis on the influence of the material properties on the load-area relation of the contact. The temperature and viscoplasticity greatly define how much load is supported by a substrate due to an indenting asperity, but the description of the deformation behaviour at small values of strain and strain rate is also relevant. The pile-up and sink-in regions are very dependent on the thermo-viscoplastic conditions and material model, which consequently affect the real contact area calculation. The interplay between carried load and contact area of a full surface analysis indicates the role that different sized asperities play in the contact under different thermomechanical conditions.
金属成型操作中固体之间的接触通常涉及工件随温度变化的粘塑性。为了估算这种情况下的实际接触面积,需要同时考虑表面形貌和变形行为。在这项工作中,采用确定性方法将微凸体表示为形状合适的二次曲面。这种几何形状应用于压痕有限元模拟中,其中被压入材料具有热粘塑性特性。通过创建模拟数据库,对特定形状微凸体的接触载荷和面积进行研究,可以分析材料特性对接触载荷 - 面积关系的影响。温度和粘塑性极大地决定了由于压入微凸体而由基体承受的载荷大小,但小应变和应变率值下的变形行为描述也很重要。堆积和下陷区域非常依赖于热粘塑性条件和材料模型,从而影响实际接触面积的计算。全表面分析中承载载荷与接触面积之间的相互作用表明了不同尺寸微凸体在不同热机械条件下接触中所起的作用。