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Effect of Shrinkage on Primary Dendrite Arm Spacing during Binary Al-Si Alloy Solidification

机译:收缩对二元铝硅合金凝固过程中主枝晶臂间距的影响

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Upward and downward directional solidification of hypoeutectic Al-Si alloys were numerically simulated inside a cylindrical container. Undercooling of the liquidus temperature prior to the solidification event was introduced in the numerical model. The finite-volume method was used to solve the energy, concentration, momentum, and continuity equations. Temperature and liquid concentrations inside the mushy zone were coupled with local equilibrium assumptions. An energy equation was applied to determine the liquid fraction inside the mushy zone while considering the temperature undercooling at the solidifying dendrite/liquid interface. Momentum and continuity equations were coupled by the SIMPLE algorithm. Flow velocity distribution at various times, G, R, λ 1, and solidification time at mushy zone/liquid interface during solidification were predicted. The effect of shrinkage during solidification on these solidification parameters was quantified. Transient temperature distribution, solidification time for the mushy zone/liquid interface, and λ 1 were validated by laboratory experiments. It was found that better agreement could be achieved when the fluid flow due to solidification shrinkage was considered. Considering shrinkage in upward solidification was found to only have a marginal effect on solidification parameters, such as G, R, and λ 1; whereas, in the downward solidification, fluid flow due to shrinkage had a significant effect on these solidification parameters. Considering shrinkage during downward solidification resulted in a smaller R, stronger fluid flow, and increased solidification time at the mushy zone/liquid interface. Further, the flow pattern was significantly altered when solidification shrinkage was considered in the simulation. The effect of shrinkage on G and λ 1 strongly depended on the instantaneous location of the mushy zone/liquid interface in the computational domain. The numerical results could be validated by experimental data only when both the undercooling of the liquidus temperature prior to solidification and fluid flow in the liquid caused by the effect of shrinkage during solidification were included in the model.
机译:亚共晶Al-Si合金的向上和向下定向凝固在圆柱容器内进行了数值模拟。在数值模型中引入了凝固事件之前液相线温度的过冷。有限体积法用于求解能量,浓度,动量和连续性方程。糊状区域内的温度和液体浓度与局部平衡假设相结合。考虑到凝固枝晶/液体界面处的温度过冷,应用能量方程式确定糊状区域内部的液体分数。动量和连续性方程通过SIMPLE算法耦合。预测了凝固过程中G,R,λ 1 在不同时间的流速分布以及在糊状区/液界面的凝固时间。量化了固化过程中收缩对这些固化参数的影响。通过实验室实验验证了瞬态温度分布,糊状区/液体界面的凝固时间和λ 1 。发现当考虑由于凝固收缩引起的流体流动时,可以实现更好的一致性。考虑到向上凝固时的收缩仅对凝固参数(如G,R和λ 1 )具有边际影响;然而,在向下凝固中,由于收缩引起的流体流动对这些凝固参数具有显着影响。考虑到向下凝固过程中的收缩会导致R较小,流体流动更强,并且在糊状区域/液体界面处的凝固时间增加。此外,当在模拟中考虑凝固收缩时,流型会发生显着变化。收缩对G和λ 1 的影响在很大程度上取决于糊状区/液体界面在计算域中的瞬时位置。只有将凝固前的液相线温度过冷和凝固过程中的收缩效应所引起的液体中的流体流动都包括在内,才能通过实验数据验证数值结果。

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