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Optimization of Bi2O3, TiO2, and Sb2O3Doped ZnO-Based Low-Voltage Varistor Ceramic to Maximize Nonlinear Electrical Properties

机译:基于Bi2O3,TiO2和SB2O3Doped ZnO基低压变压器陶瓷的优化,最大化非线性电性能

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In ZnO-based low voltage varistor, the two essential features of microstructure determining its nonlinear response are the formation Bi-enriched active grain boundaries as well as a controlled ZnO grain size by secondary spinel-type phases. Besides, the microstructure and phase composition are strongly affected by the dopant concentration during sintering process. In this study, the optimal dopant levels of Bi2O3, TiO2, and Sb2O3to achieve maximized nonlinear electrical property (alpha) were quantified by the response surface methodology (RSM). RSM was also used to understand the significance and interaction of the factors affecting the response. Variables were determined as the molar ratio of Bi2O3, TiO2, and Sb2O3. The alpha was chosen as response in the study. The 5-level-3-factor central composite design, with 20 runs, was used to conduct the experiments by ball milling method. A quadratic model was established as a functional relationship between three independent variables and alpha. According to the results, the optimum values of Bi2O3, TiO2, and Sb2O3were obtained 0.52, 0.50, and 0.30, respectively. Under optimal conditions the predicted alpha (9.47) was calculated using optimal coded values from the model and the theoretical value is in good agreement with the value (9.43) obtained by confirmation experiment.
机译:在基于ZnO的低压变阻器中,微结构确定其非线性响应的两个基本特征是形成双尖晶石型阶段的Bi富集的活性晶界以及受控ZnO晶粒尺寸。此外,微观结构和相组合物受烧结过程中掺杂剂浓度的强烈影响。在该研究中,通过响应表面方法(RSM)量化了Bi2O3,TiO 2和Sb2O3达到最大化的非线性电性(α)的最佳掺杂剂水平。 RSM还用于了解影响响应的因素的意义和相互作用。变量被确定为Bi2O3,TiO 2和Sb2O3的摩尔比。选择alpha作为研究中的响应。使用20次运行的5级3系子中央复合设计,用于通过球磨方法进行实验。建立了三次模型作为三个独立变量与alpha之间的功能关系。根据结果​​,分别获得0.52,0.50和0.30的Bi2O3,TiO 2和Sb2O3的最佳值。在最佳条件下,使用来自模型的最佳编码值计算预测的alpha(9.47),理论值与通过确认实验获得的值(9.43)吻合良好。

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