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Effect of Thermal and Chemical Treatment on the Microstructural, Mechanical and Machining Performance of W319 Al-Si-Cu Cast Alloy Engine Blocks and Directionally Solidified Machinability Test Blocks

机译:热处理和化学处理对W319 Al-Si-Cu铸造合金发动机缸体和定向凝固可加工性试验块的微结构,机械和加工性能的影响

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摘要

The research presented in this work is focused on making a link between casting microstructural, mechanical and machining properties for 319 Al-Si sand cast components. In order to achieve this, a unique Machinability Test Block (MTB) is designed to simulate the Nemak V6 Al-Si engine block solidification behavior. This MTB is then utilized to cast structures with in-situ nano-alumina particle master alloy additions that are Mg based, as well as independent in-situ Mg additions, and Sr additions to the MTB. The Universal Metallurgical Simulator and Analyzer (UMSA) Technology Platform is utilized for characterization of each cast structure at different Secondary Dendrite Arm Spacing (SDAS) levels. The rapid quench method and Jominy testing is used to assess the capability of the nano-alumina master alloy to modify the microstructure at different SDAS levels. Mechanical property assessment of the MTB is done at different SDAS levels on cast structures with master alloy additions described above. Weibull and Quality Index statistical analysis tools are then utilized to assess the mechanical properties. The MTB is also used to study single pass high speed face milling and bi-metallic cutting operations where the Al-Si hypoeutectic structure is combined with hypereutectoid Al-Si liners and cast iron cylinder liners. These studies are utilized to aid the implementation of Al-Si liners into the Nemak V6 engine block and bi-metallic cutting of the head decks. Machining behavior is also quantified for the investigated microstructures, and the Silicon Modification Level (SiML) is utilized for microstructural analysis as it relates to the machining behavior.
机译:这项工作中提出的研究着重于在319 Al-Si砂铸件的铸造组织,机械性能和机械加工性能之间建立联系。为了实现这一目标,设计了独特的可机加工性测试块(MTB)以模拟Nemak V6 Al-Si发动机缸体的凝固行为。然后,利用该MTB铸造具有基于Mg的原位纳米氧化铝颗粒中间合金添加物,以及向MTB添加独立的原位Mg添加物和Sr添加物的结构。通用冶金模拟器和分析仪(UMSA)技术平台可用于在不同的二级枝晶臂间距(SDAS)级别表征每个铸件结构。快速淬火方法和Jominy测试用于评估纳米氧化铝中间合金在不同SDAS水平下改变微观结构的能力。 MTB的机械性能评估是在铸件结构的不同SDAS水平下完成的,添加了上述母合金。然后使用Weibull和质量指数统计分析工具来评估机械性能。 MTB还用于研究单道次高速端面铣削和双金属切削操作,其中Al-Si亚共晶结构与超共析Al-Si衬里和铸铁圆柱衬里相结合。这些研究被用于协助将Al-Si衬套安装到Nemak V6发动机缸体中以及对顶板进行双金属切割。还针对所研究的微结构量化了加工行为,并且将硅改性水平(SiML)用于微结构分析,因为它与加工行为有关。

著录项

  • 作者

    Szablewski, Daniel.;

  • 作者单位

    University of Windsor (Canada).;

  • 授予单位 University of Windsor (Canada).;
  • 学科 Materials science.;Mechanical engineering.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 296 p.
  • 总页数 296
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:45:35

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