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Mechanical properties of high-density TRIP steel honeycomb structures with varying cell profiles under different loading conditions

机译:不同负载条件下具有不同电池型材的高密度跳闸蜂窝结构的力学性能

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As the mechanical properties of honeycomb structures are influenced by several parameters, detailed analysis is necessary before their potential application in transportation industry components. Previous Finite Element Model (FEM)-based numerical analysis demonstrated that variation in cell geometry affects the achievable strength level and, thus, the energy absorption capability. According to this FEM study, the Kagome geometry - an ordered sequence of hexagons and triangles - exhibits properties that are particularly promising when compared to the square-celled structures investigated to date. When the load is applied parallel to the channel axis (the out-of-plane direction), the increment of strength is comparatively low, whereas in the in-plane direction (loading orthogonal to the channel axis), the dissipated specific energy can reach almost double that of the square-celled structure. In this study, the results of static and dynamic compression tests - performed in the out-of-plane and in-plane modes - are presented to examine the influence of strain rate and loading direction on the characteristic deformation stages of squarecelled and Kagome structures. Particular attention is paid to deformation induced martensite formation in the cell wall material, indicating the TRansformation Induced Plasticity (TRIP) effect as a function of applied cell geometry, strain rate and loading direction.
机译:由于蜂窝结构的机械性能受几种参数的影响,因此在运输工业部件的潜在应用之前需要进行详细的分析。基于有限元模型(FEM)的数值分析证明了细胞几何体的变化影响可实现的强度水平,从而影响能量吸收能力。根据该FEM研究,Kagome几何形状 - 六边形和三角形的有序序列 - 与调查迄今为止的方形细胞结构相比,表现出特别有前途的性质。当负载平行于通道轴(平面外方向)时,强度的增量相对较低,而在面内方向上(加载到通道轴),则耗散的特定能量可以达到平方纤维结构的几乎是两倍。在该研究中,提出了在外平面外和面内模式下进行的静态和动态压缩测试的结果,以检查应变率和加载方向对平方和kagome结构的特征变形阶段的影响。特别地注意细胞壁材料中的变形诱导的马氏体形成,表明转化诱导的塑性(跳闸)效应作为应用细胞几何形状,应变率和装载方向的函数。

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