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Application of experimental design for optimization of physicochemical properties of the inorganic pigment,iron(III) silicate

机译:实验设计在优化无机颜料硅酸铁(III)物化性质中的应用

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Optimization of physicochemical properties (bulk density,D_n,capacity to absorb water,H_w,capacity to absorb paraffin oil,H_o) of highly dispersed precipitated iron(III) silicate was performed,as related to temperature (T),flow rate of sodium metasilicate solution (v) and concentration of metal salts (c).The analysis was performed in three consecutive stages:(1) testing of silicate properties as affected by individual variables of the process,(2) empirical optimization,(3) experimental corroboration of the optimization.At each of the stages,appropriate experimental design was set up,mathematical model was established to describe the studied properties of silicate and statistical analysis of results was performed.The studies permitted to define optimum variables of precipitation of highly dispersed iron(III) silicate from sodium metasilicate solution using salt solution.Increase in precipitation temperature was found to bring about a decrease in bulk density and increases in capacities to absorb water and oil by the formed iron(III) silicate.Increase in the flow rate of sodium metasilicate solution induced a decrease in capacities to absorb water and oil and an increase in iron(III) silicate bulk density.On the other hand,increased concentration of iron(III) sulphate solution resulted in increased bulk density and capacity to absorb water but a decreased capacity to absorb oil by iron(III) silicate.This showed that individual properties of the formed silicate are related in various,sometimes opposite,ways to conditions of silicate precipitation.In the study the potential was demonstrated of applying factorial and compound designs for optimization of processes.The experimental optimization involved in parallel three different physicochemical properties:bulk density,capacity to absorb water and capacity to absorb paraffin oil.The properly planned and conducted experiment was shown to determine optimum conditions for conducting the process in cases when models describing the tested properties exhibit no extremum while variables of conducting the process exert opposite effects on the studied properties.
机译:优化了高度分散的沉淀硅酸铁(III)的理化性质(体密度,D_n,吸水能力,H_w,石蜡油吸收能力,H_o),与温度(T),偏硅酸钠流量有关溶液(v)和金属盐的浓度(c)。分析是在三个连续的阶段中进行的:(1)受工艺过程各个变量影响的硅酸盐性能测试;(2)实验优化;(3)实验证实在每个阶段都建立了适当的实验设计,建立了描述硅酸盐研究性质的数学模型,并对结果进行了统计分析。这些研究可以确定高分散铁沉淀的最佳变量(Ⅲ)。用盐溶液从偏硅酸钠溶液中提取硅酸盐,发现沉淀温度的升高导致堆积密度的降低和容量的增加通过形成的硅酸铁(III)吸收水和油,偏硅酸钠溶液流速的增加导致吸收水和油的能力降低,硅酸铁(III)堆积密度增加。硫酸铁(III)溶液浓度的增加导致硅酸铁(III)的堆积密度和吸水能力增加,但吸油能力下降。这表明所形成的硅酸盐的各个特性在各种方面相互关联,有时相反,本研究证明了应用因子设计和化合物设计进行工艺优化的潜力。实验优化涉及三种不同的理化性质:堆积密度,吸水能力和石蜡油吸收能力。结果表明,正确计划和进行的实验可以确定模型描述时确定最佳工艺条件g测试的特性没有极端,而进行该过程的变量对所研究的特性产生相反的影响。

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