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Combustion synthesis and quasi-isostatic densification of powder cermets

机译:粉末金属陶瓷的燃烧合成与准等压致密化

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Self-propagating High-temperature synthesis (also known as SHS or combustion synthesis) presents a bright potential for the synthesis of compounds with high degree of purity. However, for many reactions, the product is highly porous, and it must either be pulverized for subsequent densification, or densified while it is still hot and ductile. Densification has successfully been applied to a number of ceramic and metal-ceramic systems by (a) a high-speed forging technique, and (b) by a quasi-static pressing technique using a granular pressure-transmitting medium (PTM). The reactive mixture and PTM are placed in a piston and cylinder setup and the system is pressurized by uniaxial compression at a pre-established time after reaction completion. The state-of-stress is close to isostatic and the process is therefore termed as quasi-isostatic pressing (QIP). Modeling of the densification was carried out using the Skorohod constitutive equation; comparison of the results with experimental distortion obtained in indentation experiments enables obtaining equation parameters. The distortion undergone by the combustion synthesis products during QIP densification was modeled using the appropriately verified constitutive equation and assuming a linear elastic response for the granular PTM.
机译:自蔓延高温合成(也称为SHS或燃烧合成)为合成高纯度化合物提供了广阔的前景。然而,对于许多反应而言,产物是高度多孔的,必须将其粉碎以进行后续的致密化,或者在仍热且易延展的同时进行致密化。通过(a)高速锻造技术和(b)通过使用粒状压力传递介质(PTM)的准静态压制技术,致密化已成功应用于许多陶瓷和金属陶瓷系统。将反应混合物和PTM放在活塞和气缸中,并在反应完成后的预定时间通过单轴压缩对系统加压。应力状态接近于等静压,因此该过程称为准等静压(QIP)。使用Skorohod本构方程进行致密化建模。将结果与压痕实验中获得的实验畸变进行比较,即可获得方程式参数。使用适当验证的本构方程并假设颗粒PTM的线性弹性响应,对QIP致密化过程中燃烧合成产物所经历的变形进行建模。

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