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首页> 外文期刊>Indian journal of engineering and materials sciences >Effects of process parameters on mechanical and metallurgical properties in high pressure die casting of AZ91 magnesium alloy
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Effects of process parameters on mechanical and metallurgical properties in high pressure die casting of AZ91 magnesium alloy

机译:工艺参数对AZ91镁合金高压压铸件力学和冶金性能的影响

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High pressure die casting (HPDC) of magnesium (Mg) alloys has been the fastest grown up and the most globally developed section in magnesium industry. HPDC of complex shape Mg alloy products have increased considerably in recent years. But low mechanical and metallurgical performance of the casting products could be experienced due to defects in HPDC of Mg alloy parts under heavy working conditions. Process technologies should be modified and process parameters need to be optimized for the use of Mg based alloy products as high performance casting parts. The correct selection of the process parameters means the correct manufacturing of the casting parts. There is a wide range of suggested process parameters for HPDC of different Mg alloys in the literature. This paper specifies optimum process parameters for the required mechanical and metallurgical properties of the die casting parts, experimentally. Experimental tests are performed by using Taguchi experimental procedure to determine the optimum process parameters in cold chamber HPDC of Mg alloy parts. Confirmation and statistical analyzing tests have confirmed the results. The results minimize the available range of process parameters in the literature for high mechanical properties and low porosity content of casting products by conducting the designed experiments in an industrial scale mass production line considering the product quality.
机译:镁(Mg)合金的高压压铸(HPDC)是镁行业中发展最快,也是全球发展最快的部门。近年来,复杂形状的镁合金产品的HPDC大大增加。但是,由于在苛刻的工作条件下镁合金零件的HPDC缺陷,铸造产品的机械和冶金性能可能较低。为了将基于镁的合金产品用作高性能铸件,应修改工艺技术,并需要优化工艺参数。正确选择工艺参数意味着正确制造铸件。文献中针对不同Mg合金的HPDC有广泛的建议工艺参数。本文通过实验为压铸件所需的机械和冶金性能指定了最佳工艺参数。通过Taguchi实验程序进行实验测试,以确定镁合金零件冷室HPDC中的最佳工艺参数。确认和统计分析测试已经确认了结果。通过在考虑产品质量的工业规模大规模生产线中进行设计的实验,结果可以最大程度地减少文献中用于铸造产品的高机械性能和低孔隙率的工艺参数的可用范围。

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