首页> 外文期刊>Monatshefte fur Chemie >Modelling of surface exchange reactions and diffusion in composites and polycrystalline materials
【24h】

Modelling of surface exchange reactions and diffusion in composites and polycrystalline materials

机译:复合材料和多晶材料中表面交换反应和扩散的建模

获取原文
获取原文并翻译 | 示例
           

摘要

Surface exchange reactions and chemical diffusion in composites, consisting of a dilute distribution of inclusions in a matrix, and polycrystalline materials have been modelled by application of both a square grain and a spherical grain model. The diffusion equations have been solved numerically by employing a finite element approach in the case of the square grain model and the Laplace transform method involving numerical Laplace inversion with respect to the spherical grain model. The boundary conditions refer to oxygen exchange reactions between a gas phase and a mixed ionically-electronically conducting ceramic sample within the linear response regime, i.e. small variations of the oxygen partial pressure. Diffusion profiles as well as the time dependence of the total amount of exchanged oxygen (relaxation curves) have been calculated. A necessary requirement for effective medium diffusion is proposed, and appropriate relations for the effective chemical surface exchange coefficient and the effective chemical diffusion coefficient are derived. On the contrary, when the time constant for diffusion from the matrix into the inclusions of a composite exceeds considerably the relaxation time for effective medium diffusion, relaxation curves with two separate time constants are observed. Analogously, in the case of polycrystalline materials the overall transport process is determined by slow (rate-limiting) bulk diffusion from the grain boundaries into the grains. Adequate formulae for the relaxation times are given based on analytical approximations of the solution functions to the diffusion equations. In addition, the spherical grain model is applied to interpret the re-oxidation kinetics of the positive temperature coefficient of resistivity (PTC) ceramics based on conductivity relaxation experiments.
机译:复合材料中的表面交换反应和化学扩散(包括基质中夹杂物的稀薄分布)和多晶材料已经通过应用方形晶粒和球形晶粒模型进行了建模。对于方粒模型,采用有限元方法对扩散方程进行数值求解,相对于球形粒模型,采用涉及数值拉普拉斯反演的拉普拉斯变换方法进行了数值求解。边界条件是指线性响应范围内气相与离子电导混合陶瓷样品之间的氧交换反应,即氧分压的小变化。已经计算出扩散曲线以及交换的氧气总量的时间依赖性(松弛曲线)。提出了有效介质扩散的必要条件,并得出了有效化学表面交换系数和有效化学扩散系数的适当关系。相反,当从基质扩散到复合材料夹杂物中的时间常数大大超过有效介质扩散的弛豫时间时,观察到具有两个单独时间常数的弛豫曲线。类似地,在多晶材料的情况下,整个传输过程由从晶界到晶粒的缓慢(限速)本体扩散决定。基于对扩散方程的解函数的解析近似,给出了足够的弛豫时间公式。此外,基于电导率松弛实验,采用球形颗粒模型来解释正电阻率温度系数(PTC)陶瓷的再氧化动力学。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号