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Fabrication of amorphous metal matrix composites by severe plastic deformation.

机译:通过严重的塑性变形制备非晶态金属基复合材料。

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摘要

Bulk metallic glasses (BMGs) have displayed impressive mechanical properties, but the use and dimensions of material have been limited due to critical cooling rate requirements and low ductility. The application of severe plastic deformation by equal channel angular extrusion (ECAE) for consolidation of bulk amorphous metals (BAM) and amorphous metal matrix composites (AMMC) is investigated in this dissertation. The objectives of this research are (a) to better understand processing parameters which promote bonding between particles and (b) to determine by what mechanisms the plasticity is enhanced in bulk amorphous metal matrix composites consolidated by ECAE. To accomplish the objectives BAM and AMMCs were produced via ECAE consolidation of Vitreloy 106a (Zr58.5Nb2.8Cu15.6Ni12.8Al 10.3-wt%), ARLloy #1 (Hf71.3Cu16.2Ni7.6Ti 2.2Al2.6-wt%), and both of these amorphous alloys blended with crystalline phases of W, Cu and Ni. Novel instrumented extrusions and a host of post-processing material characterizations were used to evaluate processing conditions and material properties. The results show that ECAE consolidation at temperatures within the supercooled liquid region gives near fully dense (>99%) and well bonded millimeter scale BAM and AMMCs. The mechanical properties of the ECAE processed BMG are comparable to cast material: sigma f = 1640 MPa, &egr;f = 2.3%, E = 80 GPa for consolidated Vitreloy 106a as compared to sigmaf = 1800 MPa, &egr;f = 2.5%, E = 85 GPa for cast Vitreloy 106, and sigmaf = 1660 MPa, &egr; f = 2.0%, E = 97 GPa for ARLloy #1 as compared to sigma f = 2150 MPa, &egr;f 2.5%, E = 102 GPa for Hf52 Cu17.9Ni14.6Ti5A10. The mechanical properties of AMMCs are substandard compared to those obtained from melt-infiltrated composites due to non-ideal particle bonding conditions such as surface oxides and crystalline phase morphology and chemistry. It is demonstrated that the addition of a dispersed crystalline phase to an amorphous matrix by ECAE powder consolidation increases the plasticity of the amorphous matrix by providing locations for generation and/or arrest of adiabatic shear bands. The ability of ECAE to consolidated BAM and AMMCs with improved plasticity opens the possibility of overcoming the size and plasticity limitations of the monolithic bulk metallic glasses.
机译:大块金属玻璃(BMG)表现出令人印象深刻的机械性能,但是由于关键的冷却速率要求和低延展性,材料的使用和尺寸受到限制。本文研究了等通道角挤压(ECAE)在塑性变形中的应用,以固结块状非晶态金属(BAM)和非晶态金属基复合材料(AMMC)。这项研究的目的是(a)更好地理解能促进颗粒之间键合的加工参数,以及(b)确定通过何种机理增强由ECAE固结的非晶态金属基复合材料的可塑性。为了实现目标,通过ECAE合并Vitreloy 106a(Zr58.5Nb2.8Cu15.6Ni12.8Al 10.3-wt%),ARLloy#1(Hf71.3Cu16.2Ni7.6Ti 2.2Al2.6-wt%)来生产BAM和AMMC ,这两种非晶态合金均与W,Cu和Ni的晶相混合。新型的仪器化挤出和大量的后处理材料表征可用于评估处理条件和材料性能。结果表明,在过冷液体区域内,温度下的ECAE固结产生了近乎完全致密的(> 99%)且结合良好的毫米级BAM和AMMC。经ECAE处理的BMG的机械性能可与铸造材料媲美:与sigmaf = 1800 MPa,eeg = 2.5%相比,经固结的Vitreloy 106a的sigma f = 1640 MPa,eegr = 2.3%,E = 80 GPa。对于铸造的Vitreloy 106,E = 85 GPa,sigmaf = 1660 MPa,与σf = 2150 MPa相比,ARLloy#1的f = 2.0%,E = 97 GPa,对于Hf52 Cu17.9Ni14.6Ti5A10,f <2.5%,E = 102 GPa。由于非理想的颗粒粘结条件(例如表面氧化物,晶相形态和化学性质),与从熔渗复合材料获得的机械性能相比,AMMC的机械性能不合格。已证明通过ECAE粉末固结将分散的结晶相添加至无定形基质中,通过提供产生和/或阻止绝热剪切带的位置,增加了无定形基质的可塑性。 ECAE通过增强可塑性来整合BAM和AMMC的能力为克服整体式块状金属玻璃的尺寸和可塑性限制提供了可能性。

著录项

  • 作者

    Mathaudhu, Suveen Nigel.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Engineering Mechanical.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2006
  • 页码 154 p.
  • 总页数 154
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;工程材料学;
  • 关键词

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