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Heat treatment and mechanical properties of aluminum-silicon modified alloys.

机译:铝硅改性合金的热处理和力学性能。

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摘要

The commercial applications of cast Al-Si alloys depend to an important extent on controlling the morphology of the eutectic silicon through thermal modification in the solid state and/or chemical modification of the melt before the production of the casting. The effects of modification and/or heat treatment on the microstructure and the mechanical properties of 356 alloy have been investigated on both permanent mold and sand cast samples. Strontium (0.02%) and sodium (0.01%) were used to produce well modified microstructures. The importance of the amount of modifier used was also examined in producing castings with 0.002% Sr and 0.08% Sr. Production parameters such as solution heat treatment time and artificial aging time were examined.;Microstructural assessment was done by quantitative metallography using image analysis coupled to SEM while mechanical testing comprised tensile testing, hardness and microhardness measurements as well as impact tests.;The greatest improvement in mechanical properties obtained with modification was observed for the lower rates of solidification, i.e sand casting. The effect of modification on the heat treatment response of 356 alloy was investigated. The differences between unmodified and modified microstructures were more important in sand cast samples than in permanent mold cast samples. After one hour of solution heat treatment at 540;It was also found that porosity caused by modification can negate many of the microstructural benefits by decreasing tensile strength and percent elongation. It was demonstrated that modification also has an influence on the aluminum matrix. The hardness of modified alloy was found to be less after the T6 temper than in unmodified alloy. This was reflected in a lower yield strength of modified 356 alloy.;Quantitative microstructure-mechanical property relationships were established for the permanent mold samples. The best silicon-structure characteristics to predict the tensile properties were found to be the particle count per unit area and the particle area.;It was also determined that hardness can be a simple and inexpensive means whereby ultimate tensile strength and yield strength of 356 alloy in the T4 condition or T6 condition can be estimated.
机译:铸造Al-Si合金的商业应用在很大程度上取决于通过在铸件生产之前通过固态的热改性和/或熔体的化学改性来控制共晶硅的形态。改性和/或热处理对356合金的显微组织和力学性能的影响已在永久铸型和砂铸样品上进行了研究。锶(0.02%)和钠(0.01%)用于产生修饰良好的微观结构。在生产0.002%Sr和0.08%Sr的铸件中,还检查了改性剂用量的重要性;检查了固溶热处理时间和人工时效时间等生产参数;通过定量金相学,结合图像分析对显微组织进行了评估扫描电镜(SEM),而机械测试包括拉伸测试,硬度和显微硬度测量以及冲击测试。;在较低的凝固速率(例如砂型铸造)下,观察到改性后机械性能的最大改善。研究了变质对356合金热处理反应的影响。与永久铸模样品相比,砂铸样品中未改性和改性显微组织之间的差异更为重要。在540℃下进行一小时的固溶热处理后;还发现,改性引起的孔隙率可以通过降低拉伸强度和伸长率来抵消许多微观结构上的好处。已证明改性也对铝基质有影响。发现在T6回火之后,改性合金的硬度小于未改性合金的硬度。改性356合金的屈服强度较低反映了这一点。建立了永久性模具样品的微观组织与力学性能的定量关系。发现预测拉伸性能的最佳硅结构特征是单位面积和颗粒面积的颗粒数。;还确定了硬度可以是一种简单而廉价的方法,从而可以提高356合金的极限拉伸强度和屈服强度可以估计在T4条件或T6条件下。

著录项

  • 作者

    Paray, Florence.;

  • 作者单位

    McGill University (Canada).;

  • 授予单位 McGill University (Canada).;
  • 学科 Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 1993
  • 页码 550 p.
  • 总页数 550
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 冶金工业;
  • 关键词

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