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Coating transformations in the early stages of hot-dip galvannealing of steel sheet.

机译:钢板热浸镀锌早期的涂层转变。

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摘要

The present, comprehensive study of the reactions occurring early in galvanneal processing under conditions typical of commercial production represents the first detailed investigation of the microstructural evolution of the coating in the early stages of galvannealing and the results shed new light on the course of the coating microstructural development.; During hot dipping, an Fe2Al5 inhibition layer formed on the surface of the steel substrate in the first instants of immersion in Zn baths containing as low as 0.10 wt.% Al. When hot-dipping in a 0.14 wt.% Al, the as-dipped coating microstructure consisted of an Fe2Al 5 layer on the steel surface. That layer was covered by a layer of the Fe-Zn compound Gamma1, which was covered by the zeta phase or unalloyed Zn. Substrate chemistry did not affect coating microstructure development in the bath. Thermodynamic predictions of the precipitation behavior during the bath reactions agrees well with experimental observations. A mechanism for coating microstructure development in the Zn bath which is consistent with all the experimental results is proposed. From this information, the metallurgical variables which govern inhibition layer formation are discerned.; The breakdown of the Fe2Al5 inhibition layer during galvannealing at 500°C occurred without the formation of outbursts. Instead, the grain boundary diffusion of Al into the steel substrate accounted for dissolution of the inhibition layer in the first second of galvannealing. A mechanism for inhibition layer breakdown is presented. P-additions affected only the rate at which the inhibition layer dissolved and did not affect the rate of Fe-Zn compound formation. P in the substrate blocked grain boundary diffusion of Al into the substrate thus slowing inhibition layer dissolution. The slower overall galvannealing behavior often observed on P-bearing substrates is due to a longer period of inhibition layer survival which results in a longer incubation period for the initiation of the formation of Fe-Zn compounds.; The coating solidified after inhibition layer dissolution by the continuous formation of new delta grains from the liquid at the solidification front. The microstructural evolution of the entire coating, including the formation of Gamma and Gammal, during solidification is also presented.
机译:目前,在商业化生产的典型条件下,在镀锌工艺中早期发生的反应的全面研究代表了对镀锌退火早期涂层微观结构演变的首次详细研究,其结果为涂层微观结构的发展提供了新的思路。发展。在热浸过程中,在浸入含低至0.10 wt。%Al的Zn浴的最初瞬间,Fe2Al5抑制层形成在钢基材的表面上。当在0.14 wt。%的Al中进行热浸时,浸镀后的涂层微观结构由钢表面上的Fe2Al 5层组成。该层被一层Fe-Zn化合物Gamma1覆盖,该层被zeta相或未合金化Zn覆盖。底物化学性质不会影响镀液在镀液中的微观结构。浴反应过程中沉淀行为的热力学预测与实验观察非常吻合。提出了与所有实验结果一致的锌浴中涂层微观结构发展的机理。从该信息中,可以看出控制抑制层形成的冶金变量。 Fe2Al5抑制层在500°C的热镀锌过程中发生了破裂,而没有形成突出。取而代之的是,Al进入钢基材的晶界扩散导致了在镀锌退火的第一秒中抑制层的溶解。提出了抑制层破坏的机制。 P-添加仅影响抑制层溶解的速率,而不影响Fe-Zn化合物形成的速率。衬底中的P阻止了Al进入衬底的晶界扩散,从而减慢了抑制层的溶解。通常在含P的基材上观察到较慢的整体镀锌行为,这是由于较长的抑制层存活时间,这导致开始形成Fe-Zn化合物的孵育时间更长。抑制层溶解后,涂层通过在凝固前沿从液体中连续形成新的δ晶粒而凝固。还介绍了整个涂层在凝固过程中的微观结构演变,包括伽马和伽马的形成。

著录项

  • 作者

    McDevitt, Erin Todd.;

  • 作者单位

    Northwestern University.;

  • 授予单位 Northwestern University.;
  • 学科 Engineering Materials Science.; Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 1998
  • 页码 230 p.
  • 总页数 230
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;冶金工业;
  • 关键词

  • 入库时间 2022-08-17 11:48:28

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