材料科学
复合数
压痕硬度
纳米复合材料
复合材料
退火(玻璃)
制作
相对密度
粒度
自蔓延高温合成
爆炸物
杨氏模量
纳米
微观结构
冶金
有机化学
化学
病理
替代医学
医学
作者
Sofiya Aydinyan,Hasmik Kirakosyan,Marieta K. Zakaryan,L. S. Abovyan,S. L. Kharatyan,А. Peikrishvili,Г. И. Мамниашвили,Bagrat Godibadze,Elguja Chagelishvili,D.R. Lesuer,Marco A. Gutiérrez
摘要
Manufacturing W-Cu composite nanopowders was performed via joint reduction of CuO and WO3 oxides with various ratios (W:Cu = 2:1, 1:1, 1:3, 1:13.5) using combined Mg–C reducer. Combustion synthesis was used to synthesize homogeneous composite powders of W-Cu and hot explosive consolidation (HEC) technique was utilized to fabricate dense compacts from ultrafine structured W-Cu powders. Compact samples obtained from nanometer sized SHS powders demonstrated weak relation between the susceptibility and the applied magnetic field in comparison with the W and Cu containing micrometer grain size of metals. The density, microstructural uniformity and mechanical properties of SHS&HEC prepared samples were also evaluated. Internal friction (Q-1) and Young modulus (E) of fabricated composites studied for all samples indicated that the temperature 1000 °С is optimal for full annealing of microscopic defects of structure and internal stresses. Improved characteristics for Young modulus and internal friction were obtained for the W:Cu = 1:13.5 composite. According to microhardness measurement results, W-Cu nanopowders obtained by SHS method and compacted by HEC technology were characterized by enhanced (up to 85%) microhardness.
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