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Development of manufacturing systems for nanocrystalline and ultra-fine grain materials employing indexing equal channel angular pressing.

机译:利用分度等通道角挤压技术开发纳米晶和超细晶粒材料的制造系统。

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摘要

Nanotechnology offers significant opportunities in providing solutions to existing engineering problems as well as breakthroughs in new fields of science and technology. In order to fully realize benefits from such initiatives, nanomanufacturing methods must be developed to integrate enabling constructs into commercial mainstream. Even though significant advances have been made, widespread industrialization in many areas remains limited. Manufacturing methods, therefore, must continually be developed to bridge gaps between nanoscience discovery and commercialization.;A promising technology for integration of top-down nanomanufacturing yet to receive full industrialization is equal channel angular pressing, a process transforming metallic materials into nanostructured or ultra-fine grained materials with significantly improved performance characteristics. To bridge the gap between process potential and actual manufacturing output, a prototype top-down nanomanufacturing system identified as indexing equal channel angular pressing (IX-ECAP) was developed. The unit was designed to capitalize on opportunities of transforming spent or scrap engineering elements into key engineering commodities.;A manufacturing system was constructed to impose severe plastic deformation via simple shear in an equal channel angular pressing die on 1100 and 4043 aluminum welding rods. 1/4 fraction factorial split-plot experiments assessed significance of five predictors on the response, microhardness, for the 4043 alloy. Predictor variables included temperature, number of passes, pressing speed, back pressure, and vibration. Main effects were studied employing a resolution III design. Multiple linear regression was used for model development. Initial studies were performed using continuous processing followed by contingency designs involving discrete variable length work pieces.;IX-ECAP offered a viable solution in severe plastic deformation processing. Discrete variable length work piece pressing proved very successful. With three passes through the system, 4043 processed material experienced an 88.88% increase in microhardness, 203.4% increase in converted yield strength, and a 98.5% reduction in theoretical final grain size to 103 nanometers using the Hall-Petch relation. The process factor, number of passes, was statistically significant at the 95% confidence level; whereas, temperature was significant at the 90% confidence level. Limitations of system components precluded completion of studies involving continuous pressing. Proposed system redesigns, however, will ensure mainstream commercialization of continuous length work piece processing.
机译:纳米技术为解决现有工程问题以及科学和技术新领域的突破提供了重大机遇。为了充分实现此类计划的收益,必须开发纳米制造方法,以将支持性结构整合到商业主流中。尽管已经取得了重大进展,但是在许多地区广泛的工业化仍然受到限制。因此,必须不断开发制造方法,以弥合纳米科学发现与商业化之间的差距。一种有希望的,自上而下的纳米制造集成技术尚未得到完全工业化的技术是等通道角挤压,该工艺将金属材料转变为纳米结构或超纳米结构。具有明显改善的性能特征的细颗粒材料。为了弥合工艺潜力与实际制造产量之间的差距,开发了一种原型为自顶向下的纳米制造系统,该系统被标识为分度等通道角冲压(IX-ECAP)。该单元旨在利用将废旧或报废的工程元素转换为关键工程商品的机会。;构建了一种制造系统,可通过在1100和4043铝焊条上的等通道角压模中,通过简单的剪切作用,对塑料施加严重的塑性变形。 1/4分数阶乘分解图实验评估了5个预测因子对4043合金的响应,显微硬度的重要性。预测变量包括温度,通过次数,压制速度,背压和振动。研究主要效果采用决议III设计。多元线性回归用于模型开发。最初的研究使用连续加工进行,然后进行涉及离散可变长度工件的应变设计。IX-ECAP为严重塑性变形加工提供了可行的解决方案。事实证明,离散可变长度的工件压制非常成功。经过三道次处理后,使用霍尔-帕奇关系式,4043处理的材料的显微硬度提高了88.88%,转换屈服强度提高了203.4%,理论最终晶粒尺寸减小了98.5%,为103纳米。在95%的置信度上,过程因子(通过次数)在统计上是显着的;而在90%的置信度下温度是显着的。系统组件的局限性阻止了涉及连续按压的研究的完成。但是,建议的系统重新设计将确保连续长度工件加工的主流商业化。

著录项

  • 作者

    Hester, Michael Wayne.;

  • 作者单位

    Mississippi State University.;

  • 授予单位 Mississippi State University.;
  • 学科 Engineering Industrial.;Nanotechnology.;Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 307 p.
  • 总页数 307
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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