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Controlando a sinteriza??o e o crescimento de gr?o de nanoceramicas

机译:控制纳米陶瓷的烧结和晶粒长大

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Sintering and grain growth are fundamental processes affecting microstructural evolution of ceramics. The phenomenological models describing these processes as found in textbooks are simplifications of the very dynamic set of system’s parameters, which lead to limited predictability and the need for extensive empirical analyses for process optimization. One such simplification is the underestimation of interfacial energies and their relationships with diffusion paths and growth control. The goal of this paper is to clarify how thermodynamics of interfaces can provide opportunities for a more refined control of ceramic processing. On the first part of this paper we discuss the relevance of grain boundary energies in grain growth, showing that although grain boundary mobility is the preferred parameter choice for designing of grain growth inhibition, recent studies demonstrate dopants can be selected to annihilate the process driving force and enable thermally (meta)stable nanoceramics. In the second part of the paper, we point out shortcomings from the current sintering theory and discuss that both surface and grain boundary energies with their associated rates of interfacial area evolution represent a more comprehensive sintering description. This perspective offers tunable parameters that may set a new foundation for the design of sintering aids for optimal densification.
机译:烧结和晶粒长大是影响陶瓷微观结构演变的基本过程。教科书中描述这些过程的现象模型简化了系统参数的动态集,从而导致可预测性有限,并且需要进行广泛的经验分析以优化过程。一种这样的简化是低估了界面能及其与扩散路径和生长控制的关系。本文的目的是阐明界面的热力学如何为陶瓷工艺的更精细控制提供机会。在本文的第一部分,我们讨论了晶界能与晶粒生长的相关性,表明尽管晶界迁移率是设计晶粒生长抑制的首选参数选择,但最近的研究表明可以选择掺杂剂来消除过程驱动力并实现热(亚)稳定的纳米陶瓷。在本文的第二部分中,我们指出了当前烧结理论的缺点,并讨论了表面和晶界能以及它们相关的界面面积演化速率都代表了更全面的烧结描述。这种观点提供了可调整的参数,这些参数可以为优化致密化的烧结助剂设计奠定新的基础。

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