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Development and kinetic analysis of cobalt gradient formation in WC-Co composites.

机译:WC-Co复合材料中钴梯度形成的发展和动力学分析。

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摘要

Functionally graded cemented tungsten carbide (FG WC-Co) is one of the main research directions in the field of WC-Co over decades. Although it has long been recognized that FG WC-Co could outperform conventional homogeneous WC-Co owing to its potentially superior combinations of mechanical properties, until recently there has been a lack of effective and economical methods to make such materials. The lack of the technology has prevented the manufacturing and industrial applications of FG WC-Co from becoming a reality.;This dissertation is a comprehensive study of an innovative atmosphere heat treatment process for producing FG WC-Co with a surface cobalt compositional gradient. The process exploited a triple phase field in W-C-Co phase diagram among three phases (solid WC, solid Co, and liquid Co) and the dependence of the migration of liquid Co on temperature and carbon content. WC-Co with a graded surface cobalt composition can be achieved by controlling the diffusion of carbon transported from atmosphere during sintering or during postsintering heat treatment. The feasibility of the process was validated by the successful preparations of FG WC-Co via both carburization and decarburization process following conventional liquid phase sintering.;A study of the carburization process was undertaken to further understand and quantitatively modeled this process. The effects of key processing parameters (including heat treating temperature, atmosphere, and time) and key materials variables (involving Co content, WC grain size, and addition of grain growth inhibitors) on the formation of Co gradients were examined. Moreover, a carbon-diffusion controlled kinetic model was developed for simulating the formation of the gradient during the process. The parameters involved in this model were determined by thermodynamic calculations and regression-fit of simulation results with experimental data.;In summary, this research first demonstrated the principle of the approach. Second, a model was developed to predict the gradients produced by the carbon-controlled atmosphere heat treatment process, which is useful for manufacturing WC-Co with designed gradients. FG WC-Co materials produced using this method are expected to exhibit superior performance in many applications and to have a profound impact on the manufacturing industries that use tungsten carbide tools.
机译:功能梯度硬质合金(FG WC-Co)是数十年来WC-Co领域的主要研究方向之一。尽管人们早已认识到FG WC-Co由于其机械性能的潜在优越组合而可以胜过传统的均质WC-Co,但是直到最近,仍缺乏有效且经济的方法来制造此类材料。该技术的缺乏阻碍了FG WC-Co的制造和工业应用的实现。本论文是对一种创新的大气热处理工艺的综合研究,该工艺用于生产具有表面钴成分梯度的FG WC-Co。该工艺在W-C-Co相图中利用了三相(固态WC,固态Co和液态Co)之间的三相场,以及液态Co的迁移对温度和碳含量的依赖性。可以通过控制烧结或烧结后热处理过程中从大气中迁移出的碳的扩散来实现具有梯度钴表面成分的WC-Co。常规液相烧结后,通过渗碳和脱碳工艺成功制备了FG WC-Co,验证了该工艺的可行性。对渗碳工艺进行了研究,以进一步理解和定量模拟该工艺。研究了关键工艺参数(包括热处理温度,气氛和时间)和关键材料变量(涉及Co含量,WC晶粒尺寸和晶粒长大抑制剂的添加)对Co梯度形成的影响。此外,建立了碳扩散控制的动力学模型,以模拟过程中梯度的形成。通过热力学计算和模拟结果与实验数据的回归拟合确定模型所涉及的参数。总之,本研究首先证明了该方法的原理。其次,开发了一个模型来预测碳控制气氛热处理工艺产生的梯度,该模型可用于制造具有设计梯度的WC-Co。使用这种方法生产的FG WC-Co材料有望在许多应用中表现出卓越的性能,并对使用碳化钨工具的制造业产生深远的影响。

著录项

  • 作者

    Guo, Jun.;

  • 作者单位

    The University of Utah.;

  • 授予单位 The University of Utah.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2011
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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