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首页> 外文期刊>Journal of Materials Science >IGNITION PHENOMENA AND REACTION MECHANISMS OF THE SELF-PROPAGATING HIGH-TEMPERATURE SYNTHESIS REACTION IN THE TI+C SYSTEM
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IGNITION PHENOMENA AND REACTION MECHANISMS OF THE SELF-PROPAGATING HIGH-TEMPERATURE SYNTHESIS REACTION IN THE TI+C SYSTEM

机译:TI + C体系中自蔓延高温合成反应的点火现象及反应机理

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摘要

The ignition phenomena and the reaction mechanism of the self-propagating high-temperature synthesis reaction of titanium and carbon powders were experimentally investigated. When using coarse graphite powders (< 325 mesh) as the carbon source, the ignition temperature ranged from 1650-1720 degrees C and was independent of the C/Ti ratio. The ignition temperature could be significantly lowered by using finer graphite powders (e.g. 1400 degrees C for < 1 gamma m powder). When using carbon black as the carbon source, the ignition temperature ranged from 1050-1475 degrees C and was dependent on the C/Ti ratio. The ignition was confirmed in this study to be controlled by the rate of the surface reaction between titanium and carbon which, in turn, was determined by the contact surface area between them. The fractured surfaces of the products showed two different types of morphology, i.e. groups of grains similar to sintered bodies and agglomerated fine particles. The relative quantities of the two types of morphology depended on the type of carbon used, the C/Ti ratio, the particle size of graphite and the density of the reactant pellet. Possible reaction mechanisms have been proposed on the basis of the experimental observations of the ignition phenomena and the product morphology. [References: 25]
机译:实验研究了钛和碳粉自蔓延高温合成反应的着火现象和反应机理。当使用粗石墨粉(<325目)作为碳源时,着火温度为1650-1720摄氏度,并且与C / Ti比无关。通过使用更细的石墨粉末(例如,对于<1 gamma m的粉末,为1400摄氏度)可以大大降低点火温度。当使用炭黑作为碳源时,着火温度为1050-1475摄氏度,并取决于C / Ti比。在这项研究中,证实了点火是由钛和碳之间的表面反应速率控制的,而钛和碳之间的表面反应速率又取决于它们之间的接触表面积。产品的断裂表面表现出两种不同类型的形态,即类似于烧结体的颗粒群和团聚的细颗粒。两种形态的相对量取决于所用碳的类型,C / Ti比,石墨的粒径和反应物颗粒的密度。根据对点火现象和产物形态的实验观察,提出了可能的反应机理。 [参考:25]

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