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Experimental Investigation and optimization of Process Parameters for Shear Strength of Compound Cast Bimetallic Joints

机译:化合物铸造双关节剪切强度工艺参数的实验研究及优化

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Joining of A356 alloy and magnesium was carried out by vacuum assisted sand mold compound casting process. Microstructure at the joint interface was studied by using optical microscope, scanning electron microscope, energy dispersive X-ray spectroscopy and X-ray diffractometer. Characterization indicated that a relatively uniform joint interface was obtained. The joint interface was composed of three distinct layers containing Mg~(2)Al~(3)on aluminum side, Mg~(17)Al~(12)?+?δ eutectic structure on magnesium side and Mg~(17)Al~(12)as middle layer. As a result of interaction between silicon, present in A356 with magnesium, Mg~(2)Si compound was formed. Push out test was conducted on electronics universal testing machine to measure the shear strength across the joint interface. The important process parameters (grit size of sand paper, insert temperature, pouring temperature and vacuum pressure) were optimized to maximize the shear strength. Optimization was carried out by using response surface methodology, desirability analysis and genetic algorithm (GA) techniques. It was observed that the shear strength increased by 14.21, 8.60 and 4.80% with genetic algorithm, desirability analysis and regression model respectively. GA reported the optimal value of shear strength.
机译:A356合金和镁的加入通过真空辅助砂模复浇铸方法进行。通过使用光学显微镜,扫描电子显微镜,能量分散X射线光谱和X射线衍射仪研究了联合界面的微观结构。表征表明获得了相对均匀的关节界面。联合界面由铝侧含有Mg〜(2)Al〜(3)的三个不同层组成,Mg〜(17)Al〜(12)αα+Δδ共晶结构和Mg〜(17)Al 〜(12)作为中间层。作为硅之间的相互作用的结果,存在于用镁的A356中,形成Mg〜(2)Si化合物。推出测试是在电子通用试验机上进行的,以测量接口过的剪切强度。优化重要的工艺参数(砂纸,插入温度,浇注温度和真空压力的砂纸,插入温度,浇注温度和真空压力),以最大化剪切强度。通过使用响应面方法,期望分析和遗传算法(GA)技术来进行优化。观察到,剪切强度分别增加了14.21,80.60%和4.80%,分别具有遗传算法,期望性分析和回归模型。 GA报告了剪切强度的最佳价值。

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