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The Role of Polymers in Nano-aluminum@polymer Microspheres Fabricated by Electrospray

机译:聚合物在电喷雾制备纳米铝@聚合物微球中的作用

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Polymers act as binder in fabrication of electrosprayed nano-aluminum(a polymer microspheres, which hold the nano-aluminum particles together and maintain the geometry and mechanical properties. The roles of three kinds of polymers (NC, GAP and F2602) during heatingwere explored through analyzation of the polymers adsorptions, microstructures and thermal behaviors of microspheres. The results show that the microspheres are in uniform morphology and high dispersion. Different surface Al-OH groups of nano-aluminum result in different types of adsorption of polymers and different reaction between polymers and nano-aluminum particles during heating process. The specific area of electrosprayed nano-aluminum@polymer microspheres is basically equivalent to the individual nano-aluminum particles, which results in a similar oxidation reaction mechanism of micron electrosprayed microspheres and nano-aluminum particles. The heat released by decomposition of the polymer will facilitate the saperation of microspheres in varying degrees during the heating process, and the gaseous oxidizer produced by polymer decomposition will react with nano-aluminum. Some nano-aluminum @ polymer microspheres appear higher reaction ratio and severer oxidation process of nano-aluminum in the temperature range of 400-600°C because the residue of polymer decomposition adheres on the nano-aluminum surface and hinders the diffusion of oxygen on the surface of nano-aluminum and thus, allows the control of oxidation rate. The optimal element composition and heat release can be decided by coordinating the proportion and types of polymers to meet various application demands.
机译:聚合物作为粘合剂制造电喷雾的纳米铝(一种聚合物微球,其将纳米铝颗粒保持在一起并保持几何形状和机械性能。通过的热量期间三种聚合物(NC,GAP和F2602)的作用微球的聚合物吸附,微观结构和热行为的分析。结果表明,微球具有均匀的形态和高分散体。纳米铝的不同表面Al-OH基团导致不同类型的聚合物吸附和聚合物之间的不同反应。加热过程中的纳米铝颗粒。电喷雾的纳米铝@聚合物微球的比面积基本上等于各纳米铝颗粒,这导致微龙电喷雾微球和纳米铝颗粒的类似氧化反应机理。该通过分解聚合物释放的热量将有助于SAPERAT在加热过程中,微球的离子在不同程度上,通过聚合物分解产生的气态氧化剂将与纳米铝反应。一些纳米铝@聚合物微球在400-600°C的温度范围内呈较高的反应比和纳米铝的氧化过程更高,因为聚合物分解残留在纳米铝表面上并阻碍氧气的扩散纳米铝表面,从而允许控制氧化率。通过协调聚合物的比例和类型以满足各种应用需求,可以确定最佳元素组合物和热释放。

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