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Processing, properties, and ballistic performance of titanium-aluminum titanium metal-intermetallic laminate (MIL) composites.

机译:钛-铝钛金属-金属间层压板(MIL)复合材料的加工,性能和弹道性能。

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摘要

A systematic investigation into the processing of Ti-Al3Ti metal-intermetallic laminate (MIL) composites from elemental titanium and aluminum foils in open air by a novel one step technique, and subsequent characterization, physical, mechanical and ballistic testing was carried out. Al3Ti is the only intermetallic phase to form, and no oxides or other phases are formed. Composites with Ti volume fractions of ∼0, 14, 20, 35, and 57 percent can be processed consistently, with measured density agreeing well with calculated density. The intermetallic reaction occurs in two parts that are linear with respect to Al3Ti growth with time: oxide controlled diffusion of Al, and the order of magnitude faster chemical reaction that occurs after the oxide layer breaks down and transient liquid phases are formed. A reaction model based on the production of Al3Ti spheroids that are ejected from the Ti reaction surface has been developed, and is titled reactive foil sintering. Quasi-static and dynamic compression tests resulted in maximum yield stresses for the 20Ti composite, and end-confined quasi-static and dynamic compression tests, tension tests, and 3-point bend tests resulted in maximum yield stresses and bending loads for the 35Ti composite. Maximum yield stresses occurred in specimens tested with layers parallel to the load. Arrester orientation R-curve testing was completed for the 14Ti composite under large-scale bridging conditions, with initiation toughness values obtained for 20Ti and 35Ti which developed cracks in the intermetallic layer growing perpendicular to the load axis. Divider orientation R-curves were obtained, with the 20Ti and 35Ti curves closely approaching calculated steady-state toughness values. Ballistics testing of bonded Ti, bonded Ti-Al, 5Ti, 14Ti, 35Ti, 57Ti, and Al3Ti at projectile velocities of 500–700 m/s resulted in the 14Ti and 35Ti having the best ballistic performance based on mass efficiency. Ballistics testing of 14Ti, 20Ti, and 35Ti composites at 950 m/s resulted in the 20Ti and 35Ti composites having excellent performance, corresponding to mechanical property trends. There is never debonding of the Ti/Al3Ti interface, and failure modes in quasi-static and dynamic testing are similar, with greater damage in the dynamic testing.
机译:一种新颖的一步法系统研究了从元素钛和铝箔中露天加工Ti-Al 3 Ti金属-金属间复合材料(MIL)复合材料的工艺,然后进行了表征,物理,机械并进行了弹道测试。 Al 3 Ti是唯一形成的金属间相,并且没有形成氧化物或其他相。 Ti体积分数约为0、14、20、35%和57%的复合材料可以一致地进行加工,其测得的密度与计算出的密度非常吻合。金属间反应发生在两个关于Al 3 Ti随时间线性增长的部分:氧化物控制的Al扩散,以及在氧化物层破裂后发生的化学反应快一个数量级。形成瞬时液相。开发了一种基于从Ti反应表面喷射的Al 3 Ti球状体的反应模型,该模型称为反应箔烧结。准静态和动态压缩测试导致20Ti复合材料具有最大屈服应力,而端承准的静态和动态压缩测试,拉伸测试以及三点弯曲测试则导致35Ti复合材料具有最大屈服应力和弯曲载荷。在平行于载荷的测试层中出现最大屈服应力。在大规模桥接条件下,完成了14Ti复合材料的避雷器取向R曲线测试,获得了20Ti和35Ti的初始韧性值,这些韧性在金属间层中形成了垂直于载荷轴的裂纹。获得了分隔线方向的R曲线,其中20Ti和35Ti曲线非常接近计算得出的稳态韧性值。粘结钛,粘结Ti-Al,5Ti,14Ti,35Ti,57Ti和Al 3 Ti在弹丸速度为500-700 m / s时的弹道测试导致14Ti和35Ti具有最佳弹道性能基于质量效率。在950 m / s下对14Ti,20Ti和35Ti复合材料进行弹道测试,得出20Ti和35Ti复合材料具有优异的性能,与机械性能趋势相对应。 Ti / Al 3 Ti界面永不剥离,准静态和动态测试中的失效模式相似,动态测试中的破坏更大。

著录项

  • 作者

    Harach, David John.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Materials Science.; Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 2000
  • 页码 223 p.
  • 总页数 223
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;冶金工业;
  • 关键词

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