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首页> 外文期刊>Journal of Mechanical Science and Technology >Prediction of plastic deformation under contact condition by quasi-static and dynamic simulations using explicit finite element analysis
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Prediction of plastic deformation under contact condition by quasi-static and dynamic simulations using explicit finite element analysis

机译:基于显式有限元分析的准静态和动态模拟预测接触条件下的塑性变形

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We compared the quasi-static and dynamic simulation responses on elastic-plastic deformation of advanced alloys using Finite element (FE) method with an explicit numerical algorithm. A geometrical model consisting of a cylinder-on-flat surface contact under a normal load and sliding motion was examined. Two aeroengine materials, Ti-6Al-4V and Super CMV (Cr-Mo-V) alloy, were employed in the FE analysis. The FE model was validated by comparative magnitudes of the FE-predicted maximum contact pressure variation along the contact half-width length with the theoretical Hertzian contact solution. Results show that the (compressive) displacement of the initial contact surface steadily increases for the quasi-static load case, but accumulates at an increasing rate to the maximum level for the dynamic loading. However, the relatively higher stiffness and yield strength of the Super CMV alloy resulted in limited deformation and low plastic strain when compared to the Ti-6Al-4V alloy. The accumulated equivalent plastic strain of the material point at the initial contact position was nearly a thousand times higher for the dynamic load case (for example, 6.592 for Ti-6Al-4V, 1.0 kN) when compared to the quasi-static loading (only 0.0072). During the loading step, the von Mises stress increased with a decreasing and increasing rate for the quasi-static and dynamic load case, respectively. A sudden increase in the stress magnitude to the respective peak value was registered due to the additional constraint to overcome the static friction of the mating surfaces during the sliding step.
机译:我们使用有限元(FE)方法和显式数值算法比较了高级合金的弹塑性变形的准静态和动态模拟响应。检验了由法向载荷下的圆柱体与平面接触以及滑动运动组成的几何模型。有限元分析采用了两种航空发动机材料,即Ti-6Al-4V和Super CMV(Cr-Mo-V)合金。 FE模型通过FE预测的最大接触压力沿理论半赫兹接触解沿接触半宽度长度的比较幅度进行了验证。结果表明,在准静态载荷情况下,初始接触表面的(压缩)位移稳定增加,但在动态载荷下以最大的累积速率累积。但是,与Ti-6Al-4V合金相比,Super CMV合金相对较高的刚度和屈服强度导致变形有限,塑性应变低。与准静态负载(仅)相比,动态负载情况(例如,Ti-6Al-4V为6.592,1.0 kN)在初始接触位置处材料点的累积等效塑性应变高将近一千倍。 0.0072)。在加载步骤中,准静态和动态负载情况下的von Mises应力分别以减小和增加的速率增加。由于克服了在滑动步骤期间配合表面的静摩擦的附加约束,导致应力幅度突然增加到各个峰值。

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