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Processing, Dynamic Deformation and Fragmentation of Heterogeneous Materials (Aluminum-Tungsten Composites and Aluminum-Nickel Laminates).

机译:非均质材料(铝钨复合材料和铝镍层压板)的加工,动态变形和破碎。

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摘要

Two types of heterogeneous reactive materials, Aluminum-Tungsten composites and Aluminum-Nickel laminates were investigated. The current interest in these materials is their ability to combine the high strength and energy output under critical condition of the mechanical deformation which may include their fragmentation. Mesoscale properties of reactive materials are very important for the generation of local hot spots to ignite reactions and generate critical size of debris suitable for fast oxidation kinetics. Samples with different mesostructures (e.g., coarse vs. fine W particles, bonded vs. non-bonded Al particles, W particles vs. W wires and concentric vs. corrugated Al-Ni laminates) were prepared by Cold Isostatic Pressing, Hot Isostatic Pressing and Swaging. Several dynamic tests were utilized including Split Hopkinson Pressure Bar, Drop Weight Test, Explosively Driven Fragmentation Test, and Thick-Walled Cylinder Method. A high speed camera was used to record images of the in situ behavior of materials under dynamic loading. Pre- and post-experiment analyses and characterization were done using Optical Microscopy, Scanning Electron Microscopy, X-ray Powder Diffraction, and Laser Diffraction. The numerical simulations were conducted to monitor the in situ dynamic behavior of materials and elucidate the mesoscale mechanisms of the plastic strain accommodation under high-strain, high-strain-rate conditions in investigated heterogeneous m aterials.;Several interesting results should be specifically mentioned. They include observation that the fracture and dynamic properties of the Al-W composites are sensitive to porosity of samples, particles sizes of rigid inclusions (W particles or wires), and bonding strength between Al particles in the matrix. Soft Al particles were heavily deformed between the rigid W particles/wires during dynamic tests. Three plastic strain accommodation mechanisms are observed in Al-Ni laminates. They depend on the initial mesostructure and act to block the development of periodic patterns of multiple shear bands that have been observed previously in homogeneous solids and granular materials.
机译:研究了两种类型的异质反应性材料,铝钨复合材料和铝镍复合材料。这些材料当前的兴趣是它们在机械变形的临界条件下(包括其破碎)结合高强度和能量输出的能力。反应性材料的中尺度性质对于产生局部热点以点燃反应并产生适合快速氧化动力学的碎屑临界尺寸非常重要。通过冷等静压法,热等静压法和热等静压法制备具有不同介观结构的样品(例如,粗大颗粒与细小W颗粒,键合与非键合的Al颗粒,W颗粒与W线以及同心与波纹状Al-Ni层压板)。锻造。利用了几个动态测试,包括霍普金森分压棒,液滴重量测试,爆炸驱动破碎测试和厚壁圆筒法。使用高速相机记录动态载荷下材料的原位行为图像。实验前和实验后的分析和表征使用光学显微镜,扫描电子显微镜,X射线粉末衍射和激光衍射进行。进行了数值模拟以监测材料的原位动态行为,并阐明了在研究的非均质材料中高应变,高应变速率条件下塑性应变适应的介观机理。应特别提及几个有趣的结果。他们包括观察到,Al-W复合材料的断裂和动态特性对样品的孔隙率,刚性夹杂物(W颗粒或金属丝)的粒径以及基质中Al颗粒之间的结合强度敏感。在动态测试期间,软质Al颗粒在刚性W颗粒/金属丝之间严重变形。在Al-Ni层压板中观察到三种塑性应变调节机制。它们取决于初始的介观结构,并起着阻止在以前在均质固体和颗粒状材料中观察到的多个剪切带周期性模式的作用。

著录项

  • 作者

    Chiu, Po-Hsun.;

  • 作者单位

    University of California, San Diego.;

  • 授予单位 University of California, San Diego.;
  • 学科 Engineering Materials Science.;Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 171 p.
  • 总页数 171
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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