首页> 外文期刊>Clays and clay minerals >APPLICATION OF BOX-BEHNKEN DESIGN TO MODELING THE EFFECT OF SMECTITE CONTENT ON SWELLING TO HYDROCYCLONE PROCESSING OF BENTONITES WITH VARIOUS GEOLOGIC PROPERTIES
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APPLICATION OF BOX-BEHNKEN DESIGN TO MODELING THE EFFECT OF SMECTITE CONTENT ON SWELLING TO HYDROCYCLONE PROCESSING OF BENTONITES WITH VARIOUS GEOLOGIC PROPERTIES

机译:Box-Behnken设计在模拟具有多种地质性质的膨润土膨胀过程中蒙脱石含量对膨胀过程的影响

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As advances in technology have led to increased use of bentonites, more high-quality bentonite has been sought. The volume of high-quality bentonites available is shrinking and use of bentonite reserves containing impurities is inevitable. The aim of this study was to apply Box-Behnken experimental design and response surface methodology to model and optimize some operational parameters of a hydrocyclone to produce three groups of bentonite concentrates. The four significant operational parameters of hydrocyclones are feed solid ratio, inlet pressure, vortex diameter, and apex diameter, and these parameters were varied and the results evaluated using the Box-Behnken factorial design. In order to produce bentonite concentrates using a hydrocyclone, mathematical model equations were derived by computer simulation programming applying a least-squares method, using Minitab 15. Second-order response functions were produced for the swelling and to establish the quantity of smectite in the bentonite concentrates. Predicted values were found to be in good agreement with the experimental values (R2 values of between 0.829 and 0.999 for smectite and three different swelling groups for the bentonites). Although in natural states these bentonites are not suitable for industrial use, enhancements were obtained giving up to 81.45% smectite and by increasing swelling by 194% for the three bentonite groups. The swelling properties of the bentonites are improved by increasing the proportion of smectite content. The graphics were designed to relate swelling and smectite content according to the two-dimensional hydrocyclone factors, and each factor was evaluated in itself. The present study revealed that the Box-Behnken and response surface methodology can be applied efficiently to model the hydrocyclone for bentonite; the method is economical and provides the maximum amount of information in a short period of time and with the smallest number of experiments.
机译:随着技术的进步导致膨润土的使用增加,已经寻求了更高质量的膨润土。优质膨润土的数量正在减少,不可避免地要使用含有杂质的膨润土储备。这项研究的目的是应用Box-Behnken实验设计和响应面方法对水力旋流器的某些操作参数进行建模和优化,以生产三组膨润土精矿。水力旋流器的四个重要操作参数是进料固体比,入口压力,涡旋直径和顶点直径,并且改变了这些参数,并使用Box-Behnken析因设计对结果进行了评估。为了使用水力旋流器生产膨润土精矿,使用最小二乘法,通过计算机模拟程序,使用Minitab 15,推导了数学模型方程式。产生了用于膨润的二级响应函数,并确定了膨润土中蒙脱石的数量。专心。发现预测值与实验值非常吻合(蒙脱石的R2值在0.829至0.999之间,膨润土的R2值在三个不同的溶胀基团之间)。尽管这些膨润土在自然状态下不适合工业使用,但增强了蒙脱石的含量,使其达到81.45%的蒙脱石含量,并使三个膨润土的溶胀率提高了194%。膨润土的溶胀性通过增加绿土含量的比例而得到改善。设计图形以根据二维水力旋流器因素将溶胀和蒙皂石含量联系起来,并且每个因素本身都要进行评估。本研究表明,Box-Behnken法和响应面法可以有效地用于对膨润土的水力旋流器进行建模。该方法经济实用,可在短时间内以最少的实验次数提供最大的信息量。

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