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首页> 外文期刊>Minerals Engineering >Optimization of in-mill ball loading and slurry solids concentration in grinding of UG-2 ores: A statistical experimental design approach
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Optimization of in-mill ball loading and slurry solids concentration in grinding of UG-2 ores: A statistical experimental design approach

机译:UG-2矿石研磨中球磨机装载量和浆液固形物浓度的优化:一种统计实验设计方法

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摘要

The in-mill load volume and slurry solids concentration have significant influence on the ball mill product size and energy expenditure. Hence, better energy efficiency and quality grind can only be achieved with correct tuning of these influential operational factors to the desired optimum point. In view of the deficiencies of the classical "one-factor-at-a-time" methodology, statistical experimental design methodologies were applied in this study to optimize the slurry % solids and ball load volume during a batch ball milling process of UG-2 ore. The response surface methodology and central composite design were used to determine the best possible combination of ball load volume and slurry % solids for maximum size reduction index and minimum specific energy consumption (kWh/t). Second order response surface models were built to describe the relationship between the input factors and the response variables. Analysis of variance (ANOVA) tests and response surface plots were used to set the optimal level for each input factor. With compromise optimized values of 29% ball load volume and 75% slurry solids, the response surface models yielded specific energy consumption of 10.54 kWh/t and size reduction index of 3.93. Confirmatory experiments carried out in these optimized conditions resulted in specific energy consumption of 10.72 kWh/t and size reduction index of 3.91 thus corroborating the validity of the response surface models.
机译:轧机内的装载量和浆液固体浓度对球磨机产品的尺寸和能量消耗有重要影响。因此,只有将这些有影响的操作因素正确调整到所需的最佳点,才能获得更好的能源效率和质量。鉴于经典“一次一因素”方法的不足,本研究采用统计实验设计方法来优化UG-2批式球磨过程中的浆料%固体含量和球负载量矿石。响应面方法和中心复合材料设计用于确定最大的尺寸减小指数和最小的单位能耗(kWh / t),以最大程度地组合球负载量和浆料固含量。建立了二阶响应面模型来描述输入因子和响应变量之间的关系。方差分析(ANOVA)测试和响应面图用于为每个输入因子设置最佳水平。通过折衷的优化值29%的球负载量和75%的浆料固体,响应表面模型产生的单位能耗为10.54 kWh / t,尺寸减小指数为3.93。在这些优化条件下进行的验证性实验导致单位能耗为10.72 kWh / t,尺寸减小指数为3.91,从而证实了响应面模型的有效性。

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