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Dendritic solidification under natural and forced convection in binary alloys: 2D versus 3D simulation

机译:二元合金在自然和强制对流下的树枝状凝固:2D与3D模拟

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A model of both equiaxed and columnar dendritic growth was developed that incorporates thermal, solutal and fluid flow effects in either two or three dimensions. The model solves the momentum, mass and energy transport equations, including phase change. An imposed anisotropy algorithm, combined with a modified projection method solution of the Navier-Stokes equations, allows a relative coarse mesh and hence excellent computational efficiency. The model was used to study the effect of dimensionality (2D versus 3D) on dendritic growth with and without convection. The influence of forced convection on unconstrained equiaxed growth was studied first. In 3D, the upstream boundary layer is much thinner with a lower concentration than in 2D. This increases tip undercooling, accelerating upstream tip growth and promoting secondary branching. The influence of natural convection on constrained, columnar dendritic, growth was then studied. The 2D flow is blocked by the primary dendrite arms (which are effectively plates), while the 3D flow can wrap around the primaries. This change in flow strongly alters solute distribution and consequently the developing dendritic microstructure. 3D simulations are required to correctly predict unconstrained solidification microstructures.
机译:建立了等轴和柱状树突生长的模型,该模型在二维或三维中结合了热,稀释和流体流动效应。该模型解决了动量,质量和能量传输方程,包括相变。施加的各向异性算法与Navier-Stokes方程的改进的投影方法解决方案相结合,可以实现相对粗略的网格划分,因此具有出色的计算效率。该模型用于研究尺寸(2D对3D)对有无对流的树突生长的影响。首先研究了强制对流对无约束等轴生长的影响。在3D中,上游边界层比2D中薄得多,且浓度较低。这会增加尖端的过冷度,加速上游尖端的生长并促进二级分支。然后研究了自然对流对受约束的柱状树突生长的影响。 2D流动被主要的树枝状树枝(实际上是板状)阻塞,而3D流动则可以包裹主要的树枝。流量的这种变化极大地改变了溶质的分布,从而改变了树突状微结构的发展。需要3D模拟才能正确预测不受约束的凝固组织。

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