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首页> 外文期刊>International Journal of Mechanical Sciences >Mechanical performance of wall structures in 3D printing processes: Theory, design tools and experiments
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Mechanical performance of wall structures in 3D printing processes: Theory, design tools and experiments

机译:3D打印过程中墙体结构的机械性能:理论,设计工具和实验

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In the current contribution for the first time a mechanistic model is presented that can be used for analysing and optimising the mechanical performance of straight wall structures in 3D printing processes. The two failure mechanisms considered are elastic buckling and plastic collapse. The model incorporates the most relevant process parameters, which are the printing velocity, the curing characteristics of the printing material, the geometrical features of the printed object, the heterogeneous strength and stiffness properties, the presence of imperfections, and the non-uniform dead weight loading. The sensitivity to elastic buckling and plastic collapse is first explored for three basic configurations, namely i) a free wall, ii) a simply-supported wall and iii) a fully-clamped wall, which are printed under linear or exponentially-decaying curing processes. As demonstrated for the specific case of a rectangular wall lay-out, the design graphs and failure mechanism maps constructed for these basic configurations provide a convenient practical tool for analysing arbitrary wall structures under a broad range of possible printing process parameters. Here, the simply-supported wall results in a lower bound for the wall buckling length, corresponding to global buckling of the complete wall structure, while the fully-clamped wall gives an upper bound, reflecting local buckling of an individual wall. The range of critical buckling lengths defined by these bounds may be further narrowed by the critical wall length for plastic collapse. For an arbitrary wall configuration the critical buckling length and corresponding buckling mode can be accurately predicted by deriving an expression for the non-uniform rotational stiffness provided by the support structure of a buckling wall. This has been elaborated for the specific case of a wall structure characterised by a rectangular lay-out. It is further shown that under the presence of imperfections the buckling response at growing deflection correctly asymptotes towards the bifurcation buckling length of an ideally straight wall. The buckling responses computed for a free wall and a wall structure with a rectangular lay-out turn out to be in good agreement with experimental results of 3D printed concrete wall structures. Hence, the model can be applied to systematically explore the influence of individual printing process parameters on the mechanical performance of particular wall structures, which should lead to clear directions for the optimisation on printing time and material usage. The model may be further utilised as a validation tool for finite element models of wall structures printed under specific process conditions. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在第一次贡献中,提出了一种机械模型,其可用于分析和优化3D打印过程中直壁结构的机械性能。考虑的两个故障机制是弹性屈曲和塑料塌陷。该模型包括最相关的工艺参数,是印刷速度,印刷材料的固化特性,印刷物体的几何特征,异质强度和刚度特性,存在缺陷,以及不均匀的止返的缺陷加载。首先探索与弹性弯曲和塑料塌陷的敏感性,即三个基本配置,即i)自由墙,ii)一个简单的支撑的墙壁和III)一个完全夹紧的壁,其在线性或指数腐烂的固化过程中印刷。如图所示,对于矩形墙壁的特定情况,为这些基本配置构造的设计图和故障机制图提供了一种方便的实用工具,用于在各种可能的印刷工艺参数下分析任意壁结构。这里,简单地支撑的壁导致壁弯曲长度的下限,对应于完全壁结构的全球屈曲,而全夹紧的壁给出了一个上限,反射单个壁的局部屈曲。由这些边界限定的关键屈曲长度的范围可以通过用于塑性坍塌的临界壁长度进一步缩小。对于任意壁构造,可以通过导出由屈曲壁的支撑结构提供的不均匀旋转刚度的表达式来精确预测关键屈曲长度和相应的屈曲模式。这已经详细阐述了以矩形布局为特征的壁结构的具体情况。进一步表明,在缺陷的存在下,在生长挠曲时屈曲响应朝向理想的直壁的分叉屈曲长度正确渐近。对于自由墙和具有矩形布局的墙壁结构计算的屈曲响应与3D印刷混凝土墙结构的实验结果吻合良好。因此,该模型可以应用于系统地探索各个印刷工艺参数对特定壁结构的机械性能的影响,这应该导致清晰的打印时间和材料使用的优化方向。该模型可以进一步用作在特定工艺条件下印刷的壁结构的有限元模型的验证工具。 (c)2018年elestvier有限公司保留所有权利。

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