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The effect of gas flow rate on the evolution of the surface oxide on a molten low carbon Al killed steel

机译:气体流速对熔融低碳铝镇静钢表面氧化物演变的影响

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摘要

The oxide phase formation on a molten Al killed low carbon steel surface under a flowing Ar atmosphere with an oxygen partial pressure of Po 2 = 1–5 × 10−5 atm has been visualized with a Confocal Scanning Laser Microscope (CSLM) equipped with a gold image furnace. In this study, the effect of gas flow rate variation (170–300 cm3/min) on the oxide evolution under isothermal conditions of 1600∘C was investigated. Al2O3, rather than the thermodynamically stable phase FeAl2O4, was found to precipitate under all the experimental conditions studied and the apparent rate of evolution was found to increase with increasing gas flow rate. The oxide evolved as a network that started from the container wall and grew towards the crucible center. At low flow rates the growth was a result of primarily crystal growth resulting in distinctly dendritic crystals. As the flow rate was increased, growth due to the attachment of discrete inclusions to the advancing front was observed which resulted in a final oxide network that constituted of smaller facetted particles. In the latter case, the transport of the individual inclusions to the advancing front could be caused by surface Marangoni flow due to gradients in both temperature and dissolved oxygen concentration.
机译:通过共聚焦扫描可以观察到在流动的Ar气氛下,氧分压为Po 2 = 1-5×10−5 atm的Al杀死的低碳钢表面上的氧化物相形成已经可视化。配备金像炉的激光显微镜(CSLM)。在这项研究中,研究了气体流量变化(170-300 cm3 / min)对1600 conditionsC等温条件下氧化物析出的影响。在所有研究的实验条件下,发现Al2 O3 而不是热力学稳定的相FeAl2 O4 沉淀,并且表观演化速率随增加而增加。气体流速。氧化物是从容器壁开始向着坩埚中心生长的网络。在低流速下,生长主要是晶体生长的结果,导致明显的树枝状晶体。随着流速的增加,观察到由于离散夹杂物附着到前进的前沿而导致的生长,这导致了最终的氧化物网络,该网络由较小的多面颗粒组成。在后一种情况下,由于温度和溶解氧浓度的梯度,表面的Marangoni流动可能导致单个夹杂物向前进的前沿传输。

著录项

  • 来源
    《Journal of Materials Science》 |2005年第10期|2179-2184|共6页
  • 作者

    Y. Wang; S. Sridhar;

  • 作者单位

    Department of Materials Science and Engineering Carnegie Mellon University;

    Department of Materials Science and Engineering Carnegie Mellon University;

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  • 原文格式 PDF
  • 正文语种 eng
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