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Reduction of Iron-Oxide-Carbon Composites: Part III. Shrinkage of Composite Pellets during Reduction

机译:氧化铁-碳复合材料的还原:第三部分。还原过程中复合颗粒的收缩

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摘要

This article involves the evaluation of the volume change of iron-oxide-carbon composite pellets and its implications on reduction kinetics under conditions prevalent in a rotary hearth furnace (RHF) that were simulated in the laboratory. The pellets, in general, were found to shrink considerably during the reduction due to the loss of carbon and oxygen from the system, sintering of the iron-oxide, and formation of a molten slag phase at localized regions inside the pellets due to the presence of binder and coal/wood-charcoal ash at the reduction temperatures. One of the shortcomings of the RHF ironmaking process has been the inability to use multiple layers of composite pellets because of the impediment in heat transport to the lower layers of a multilayer bed. However, pellet shrinkage was found to have a strong effect on the reduction kinetics by virtue of enhancing the external heat transport to the lower layers. The volume change of the different kinds of composite pellets was studied as a function of reduction temperature and time. The estimation of the change in the amount of external heat transport with varying pellet sizes for a particular layer of a multilayer bed was obtained by conducting heat-transfer tests using inert low-carbon steel spheres. It was found that if the pellets of the top layer of the bed shrink by 30 pct, the external heat transfer to the second layer increases by nearly 6 times.
机译:本文涉及对氧化铁-碳复合材料球团的体积变化的评估及其对在实验室模拟的转底炉(RHF)中普遍存在的条件下还原动力学的影响。通常,由于还原过程中的碳和氧损失,铁氧化物的烧结以及由于存在而在颗粒内部局部区域形成熔融炉渣相,因此发现颗粒在还原过程中会明显收缩。还原温度下的粘合剂和煤/木炭灰分。 RHF炼铁工艺的缺点之一是由于无法将热量输送到多层床的下层,因此无法使用多层复合颗粒。然而,发现颗粒收缩通过增强向下层的外部热传递而对还原动力学具有强烈影响。研究了不同类型复合颗粒的体积变化与还原温度和还原时间的关系。通过使用惰性低碳钢球进行传热测试,可以估算多层床特定层的外部热传输量随颗粒尺寸的变化而变化。已发现,如果床顶层的颗粒收缩30%,则向第二层的外部热传递将增加近6倍。

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  • 来源
    《Metallurgical and Materials Transactions B》 |2008年第6期|809-817|共9页
  • 作者

    S. Halder; R.J. Fruehan;

  • 作者单位

    Department of Materials Science and Engineering Carnegie Mellon University Pittsburgh PA 15213 USA;

    Department of Materials Science and Engineering Carnegie Mellon University Pittsburgh PA 15213 USA;

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  • 原文格式 PDF
  • 正文语种 eng
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