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首页> 外文期刊>International Journal of Heat and Mass Transfer >Multi-physics modelling of molten pool development and track formation in multi-track, multi-layer and multi-material selective laser melting
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Multi-physics modelling of molten pool development and track formation in multi-track, multi-layer and multi-material selective laser melting

机译:多轨,多层和多材料选择性激光熔化中熔池开发和轨道形成的多物理建模

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摘要

Selective laser melting (SLM) is a promising powder-based additive manufacturing technology due to its capability to fabricate metallic components with complex geometries. While most previous investigations focus on printing with a single material, recent industry-orientated studies indicate the need fot multi-material SLM in several high-value manufacturing sectors including medical devices, aerospace and automotive industries. However, understanding the underlying physics in multi-material SLM remains challenging due to the difficulties of experimental observation. In this paper, an integrated modelling framework for multi-track, multi-layer and multi-material SLM is developed to advance the in-depth understanding of this process. The main novelty is in modelling the molten pool evolvement and track morphology of multiple materials deposited on the same and across different layers. Discrete element method (DEM) is employed to reproduce the powder deposition process of multiple materials in different deposition patterns, with particle size distribution imported from a particle size analyser. Various phenomena including balling effect, keyhole depression, and lack of fusion between layers ate investigated with different laser energy inputs. As a result of the different thermal properties, several process parameters including energy density and hatch spacing are optimised for different powder materials to obtain a continuous track profile and improved scanning efficiency. The interface between two layers of different materials is visualised by simulation; it was found that the phase migration at the interface is related to the convection flow inside the molten pool, which contributes to the mixing of the two materials and elemental diffusion. This study significantly contributes to the challenging area of multi-material additive manufacturing by providing a greater in-depth understanding of the SLM process from multi-material powder deposition to laser interaction with powders across multiple scanning ttacks and different building layers than can be achieved by experimentation alone.
机译:选择性激光熔化(SLM)是一种有前途的粉末类添加剂制造技术,因为其制造具有复杂几何形状的金属部件的能力。虽然以前的最先前的调查专注于用单一材料进行印刷,但最近的行业为导向的研究表明,在包括医疗设备,航空航天和汽车行业的几个高价值制造部门中需要FOT多材料SLM。然而,由于实验观察的困难,了解多材料SLM中的底层物理仍然具有挑战性。在本文中,开发了一种用于多轨,多层和多材料SLM的集成建模框架,以推进对该过程的深入了解。主要的新颖性是在沉积在相同和不同层上沉积的多种材料的熔融池演化和轨道形态进行建模。采用离散元素法(DEM)在不同沉积图案中再现多种材料的粉末沉积过程,从粒度分析仪进口的粒度分布。各种现象,包括弹性效果,钥匙孔凹陷,以及不同的激光能量投入研究层间隙之间的融合。由于热特性不同,多个工艺参数包括能量密度和舱口间距的处理参数,针对不同的粉末材料进行了优化,以获得连续的轨道轮廓并提高扫描效率。通过模拟可视化两层不同材料之间的界面;发现界面处的相位迁移与熔池内的对流流有关,这有助于两种材料的混合和元素扩散。本研究通过提供更深入地了解从多材料粉末沉积到多个扫描TTACKS和不同建筑层的激光相互作用,对多重材料添加剂制造的具有挑战性面积有挑战性地面积。单独实验。

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