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Solidification Behavior and Microstructural Evolution of Near-Eutectic Zn-Al Alloys under Intensive Shear

机译:强剪切作用下近共晶Zn-Al合金的凝固行为和组织演变

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The effect of intensive shear on the solidification behavior and microstructural evolution of binary Zn-Al alloys is presented at hypoeutectic, eutectic, and hypereutectic compositions. It is found that the intensive shear, applied on the eutectic melt prior to solidification at a temperature above but close the eutectic temperature, can significantly reduce the size of eutectic cells, but the solidified microstructure still remains the lamellar morphology. For applying intensive shear on the melt during solidification, the nucleation occurs at temperatures very close to the equilibrium condition and requires very small undercooling for both the primary solidification and the eutectic solidification. The intensive shear can significantly alter the microstructural morphology. In contrast to the dendritic morphology formed in the conventional solidification, the primary Al-rich phase in hypoeutectic Zn-Al alloy and the primary Zn-rich phase in hypereutectic Zn-Al alloy under intensive shear exhibit fine and spherical particles, respectively. The lamellae morphology of Zn-rich phase and Al-rich phase formed in the conventional eutectic solidification exhibit fine and spherical particles. The increase of intensity of shear promotes the independence of solid Zn-rich particles and Al-rich particles during the eutectic solidification, resulting in the uniform and separate distribution of two solid particles in the matrix. It is speculated that the high intensity of shear can result in the independent nucleation of individual eutectic phase throughout the whole melt, and the separate growth of solid phases in the subsequent solidification.
机译:在次共晶,共晶和过共晶组成下均表现出强剪切作用对二元Zn-Al合金的凝固行为和微观组织演变的影响。发现在高于但接近共晶温度的温度下在凝固之前施加在共晶熔体上的强烈剪切可以显着减小共晶胞的尺寸,但是凝固的微观结构仍然保持层状形态。为了在凝固过程中对熔体施加强烈的剪切,成核在非常接近平衡条件的温度下发生,并且对于初次凝固和共晶凝固都需要非常小的过冷。强烈剪切可以显着改变微观结构形态。与常规凝固过程中形成的树枝状形态相反,在强剪切作用下,亚共晶Zn-Al合金中的富铝初生相和过共晶Zn-Al合金中的富锌初生相分别呈现出细颗粒和球形颗粒。在常规的共晶凝固过程中形成的富锌相和富铝相的薄片形态显示出细小的球形颗粒。剪切强度的增加促进了共晶凝固过程中固态富锌颗粒和富铝颗粒的独立性,从而导致两个固态颗粒在基体中的均匀分布。据推测,高剪切强度可导致整个熔体中各个共晶相的独立成核,以及随后固化中固相的独立生长。

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