利用稀土 La 對(duì)液態(tài) A356 鋁合金進(jìn)行了細(xì)化處理, 并在電磁攪拌技術(shù)下制備了半固態(tài) A356-La 鋁合金漿料, 研究了稀土La 和電磁攪拌對(duì)半固態(tài) A356 鋁合金初生相形貌的影響, 并用分形維數(shù)對(duì)其初生相形貌進(jìn)行了表征.
電磁場(chǎng)作用下半固態(tài)A356-La鋁合金初生相形貌及分形維數(shù)的研究RESEARCH ON THE MORPHOLOGY AND FRACTAL?DIMENSION OF PRIMARY PHASE IN SEMISOLID A356-La?ALUMINUM ALLOY BY ELECTROMAGNETIC STIRRING利用稀土 La 對(duì)液態(tài) A356 鋁合金進(jìn)行了細(xì)化處理, 并在電磁攪拌技術(shù)下制備了半固態(tài) A356-La 鋁合金漿料, 研究了稀土La 和電磁攪拌對(duì)半固態(tài) A356 鋁合金初生相形貌的影響, 并用分形維數(shù)對(duì)其初生相形貌進(jìn)行了表征. 結(jié)果表明, 添加適量的稀土 La 可有效改善半固態(tài) A356 鋁合金初生相的形貌, 無(wú)論是否經(jīng)過(guò)電磁攪拌, 隨著稀土添加量的增加, A356 鋁合金的初生相形貌均呈先變好后惡化的演變規(guī)律, 當(dāng)稀土La 的添加量為 0.4% (質(zhì)量分?jǐn)?shù))時(shí), 其初生 α 相的形貌和尺寸均達(dá)到最佳, 其平均等徑圓直徑為 88.85 μm,?平均形狀因子為 0.78; 當(dāng)稀土 La 的添加量相同時(shí), 經(jīng)過(guò)電磁攪拌作用的 A356-La 鋁合金初生 α 相的平均等積圓直徑均比未經(jīng)過(guò)電磁攪拌的更小, 其形狀因子則相反, 均比未經(jīng)過(guò)電磁攪拌的更大, 說(shuō)明經(jīng)過(guò)電磁攪拌的半固態(tài) A356 鋁合金初生 α 相比未攪拌過(guò)的更細(xì)小、圓整, 即經(jīng)過(guò)電磁攪拌的初生 α 相形貌更佳, 如當(dāng)La含量均為0.4%時(shí), 其平均等徑圓直徑由88.85 μm 降至84.14 μm, 平均形狀因子由0.78升至0.81. 此外, 實(shí)際的合金凝固組織具有分形特征, 應(yīng)用分形幾何的原理來(lái)描述和分析半固態(tài)鋁合金中初生相的形貌變化規(guī)律甚至初生相形成機(jī)理是完全可能的. 且不同工藝參數(shù)下所獲得的半固態(tài)鋁合金初生相形貌具有不同的分形維數(shù), 隨著半固態(tài)初生相由樹(shù)枝狀向顆粒狀或球狀變化, 其分形維數(shù)逐漸變小.?
In order to obtain the fine, round and uniform distribution primary α phase in semisolid A356?alloy, the different amount of La was added into the alloy melt, and the melt was poured at 650 ℃ and slightly?electromagnetically stirred under the condition of 30 Hz and 15 s, then, it was isothermally held at 590 ℃ for 10?min. The microstructure of the samples was observed by OM and SEM. The influences of La and electromagnetic?stirring on morphology of primary α phase in semisolid A356 alloy were studied, and the symbolization of the?characteristics of morphology of primary α phase by the fractal dimension was discussed in the paper. The results?showed that the morphology of primary α phase in semisolid A356 alloy was effectively improved by the suitable?addition of La, no matter whether the semisolid slurry of A356-La alloy was prepared by electromagnetic stirring?or not, the morphology of primary α phase showed better at first and then worse as the amounts of La increases,?and the morphology and grain size of primary α phase reach the optimal state when the content of La was 0.40%?(mass fraction). At the same time, the average equal-area circle diameter of the morphology of primary phase in?semisolid A356-La alloy by electromagnetic stirring was finer than that without stirring, on the other hand, the?shape factor was bigger than that without stirring. It implies that the primary α phase in semisolid A356-La alloy?by electromagnetic stirring was smaller and more rounded than that without stirring, that is, the morphology of?primary α phase in semisolid A356-La alloy by electromagnetic stirring was better than that without stirring. In?addition, the real microstructure has fractal characteristics, and it was feasible to describe and analyze the change?regularity and even the formation mechanism of the morphology of primary α phase in semisolid aluminum alloy?by the principle of fractal geometry. The morphology of primary α phase in semisolid A356 alloy by the different?process parameters had different fractal dimension. The fractal dimension of the semisolid primary α phase?gradually became smaller with its morphology changed from dendritic-like to particle-like or globular-like.
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