首页> 外文期刊>Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing >Effect of process parameters on porosity distributions in high-pressure die-cast AM50 Mg-alloy
【24h】

Effect of process parameters on porosity distributions in high-pressure die-cast AM50 Mg-alloy

机译:工艺参数对高压压铸AM50镁合金气孔分布的影响

获取原文
获取原文并翻译 | 示例
           

摘要

High-pressure die-casting is the preferred manufacturing process for cast Mg-alloy components used for numerous applications. High-pressure die-cast components usually contain micro-porosity that adversely affects their mechanical properties. In this contribution, the effects of three important process parameters, gate velocity, intensification pressure, and melt temperature on the micro-porosity distributions in high-pressure die-cast AM50 Mg-alloy are quantitatively characterized. The amounts of total porosity, gas porosity, shrinkage porosity, and pore size distributions are experimentally measured using novel digital image analysis techniques that permit quantification of both gas and shrinkage pores in an unbiased manner. The experimental data lead to the following conclusions: (1) Application of intensification pressure significantly reduces the total amount of porosity primarily via reduction in the gas porosity. The intensification pressure significantly reduces the number density and area fraction of the gas pores larger than 100 μm diameter. (2) A decrease in the gate velocity decreases the total amount of porosity predominantly via a decrease in the gas porosity and a small extent of decrease in the shrinkage porosity. The lower gate velocity uniformly decreases the number density and area fraction of gas pores of all sizes (small and large). (3) A decrease in the melt temperature also reduces the total amount of porosity primarily via reduction in the gas porosity. The lower melt temperature reduces the number density and area fraction of the gas pores larger than 30 μm.
机译:高压压铸是用于众多应用的铸造镁合金部件的首选制造工艺。高压压铸部件通常包含微孔,这会对它们的机械性能产生不利影响。在此贡献中,定量表征了三个重要的工艺参数,浇口速度,强化压力和熔体温度对高压压铸AM50 Mg合金中微孔分布的影响。总孔隙率,气体孔隙率,收缩孔隙率和孔径分布的量是使用新颖的数字图像分析技术通过实验测量的,该技术允许以无偏方式量化气体和收缩孔隙。实验数据得出以下结论:(1)施加增压压力主要是通过降低气体孔隙率来显着降低孔隙率总量。增压压力显着降低了直径大于100μm的气孔的数量密度和面积分数。 (2)浇口速度的降低主要通过气体孔隙率的降低和收缩孔隙率的小幅度降低来降低孔隙率的总量。较低的浇口速度会均匀降低所有大小(大小)的气孔的数量密度和面积分数。 (3)降低熔体温度还主要通过降低气体孔隙率来降低孔隙率总量。较低的熔融温度降低了大于30μm的气孔的数量密度和面积分数。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号