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冷凍鑄造A356鋁合金微觀組織分析

Microstructure analysis of freeze-cast A356 aluminum alloy

  • 摘要: 基于數字化無模冷凍鑄造精密成形技術實現了冷凍砂型的快速成形,對其澆注A356高溫鋁合金獲得冷凍鑄造平板試件。采用電子探針顯微分析技術對冷凍鑄造和樹脂砂型鑄造鑄件微量元素的分布進行了表征,同時對冷凍鑄造和樹脂砂型鑄造鑄件斷裂形貌進行了分析。結果表明,冷凍鑄造Si元素在鋁基體相中的溶解度較樹脂砂型鑄造顯著提高,冷凍鑄造較樹脂砂型鑄造試件中Mg元素分布均勻,樹脂砂型鑄造試件中出現較多的Mg元素成分偏析區;冷凍鑄造試件斷裂方式為韌性和脆性的混合斷裂模式,樹脂砂型鑄造試件的斷裂形貌為解理臺階破壞形貌和長方狀的撕裂結構形貌,合金偏向于脆性斷裂。

     

    Abstract: In combination with the digital and green development needs of the foundry industry, this article proposes a digital patternless freezing casting method. In this method, mixed water green sand particles are frozen and transformed to a certain strength in a low-temperature environment, which are then directly cut through a sand mold CAD three-dimensional model. Pouring to obtain castings with dimensional accuracy that meets the requirements, this is a new technology, new process, and new method in the field of casting. With the fast development of the rapid and sub-rapid solidification technology of metals, the nonequilibrium solidification theory of liquid–solid transformation during the preparation of metals and alloy materials has been developed by leaps and bounds. Using some special nonequilibrium solidification techniques to prepare metal parts, and to make metal parts with a special structure that traditional casting does not have, can improve the materials’ properties and structures. The nonequilibrium solidification mechanism based on the freezing casting technology is not yet clear. Based on the nonequilibrium solidification process of the freezing casting principle, a higher cooling rate will considerably affect the heat transfer and mass transfer behavior of casting during solidification, which will then considerably affect the alloy micro component distribution and fracture morphology, ultimately affecting the service performance of the alloy material. Based on the digital precision forming technology of patternless frozen casting, this paper realized the rapid forming of the frozen sand mold. Frozen casting flat castings were obtained by pouring the A356 high-temperature aluminum alloy. The distribution of trace elements in frozen and resin sand castings was characterized by electron probe microanalysis, and the fracture morphology of frozen and resin sand castings was analyzed. Results show that the solubility of the Si element in the aluminum matrix phase of freeze casting is significantly higher than that of resin sand casting. In addition, the distribution of the Mg element in freeze casting is more uniform than that in resin sand casting, and there are more segregation areas of the Mg element composition in resin sand casting specimens. The fracture morphology of freeze-cast specimens is a mixed fracture mode of toughness and brittleness. Meanwhile, the fracture morphology of resin sand casting specimens has a cleavage step failure morphology and rectangular tear structure morphology, and the alloy tends to exhibit a brittle fracture.

     

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