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Real-time monitoring of the moisture content of filter cakes in vacuum filters by a novel soft sensor

机译:新型软传感器实时监测真空过滤器中滤饼水分含量

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摘要

The moisture content of filter cakes is probably the most important characteristic that should be kept at a desired level in industrial cake filtration applications to maintain consistent product quality and minimize energy consumption. Most of the currently applied methods for contactless real-time monitoring of the moisture content are based for example on x-ray or microwave techniques, and therefore, the equipment for the purpose is highly specialized. This paper introduces a novel soft sensor for filter cake moisture estimation that uses machine learning algorithms and data collected with basic process instrumentation. The method is primarily based on the cooling effect observed in the cake and air, caused by evaporation of liquid from the cake during the dewatering period, and it can be supported by other process data. The specific energy consumption of vacuum filtration and the subsequent thermal drying to zero moisture is also analyzed. The results of pilot-scale experiments with calcite slurry and a horizontal belt vacuum filter show that in order to minimize the specific energy consumption of vacuum filtration, it is crucial to find the right combination of slurry concentration, vacuum level, and mass of filter cake per unit area. The proposed method for estimating the filter cake moisture content is especially suitable for real-time monitoring and control, enabling also considerable reduction in the energy consumption of the overall process. When applying the proposed soft sensor method in a pilot-scale process, the mean absolute error of the estimated moisture content of the filter cake is similar to 0.4 percentage points when the temperature of air at the vacuum pump inlet and the vacuum pump air flow rate are included in the input variables.
机译:过滤蛋糕的水分含量可能是最重要的特征,应该保持在工业滤饼过滤应用中的所需水平,以保持一致的产品质量并最大限度地减少能耗。由于含水量的非接触式实时监测的大多数应用方法是基于X射线或微波技术,因此,用于该目的的设备非常专业化。本文介绍了一种用于滤饼水分估计的新型软传感器,该估算使用机器学习算法和基本过程仪器收集的数据。该方法主要基于滤饼和空气中观察到的冷却效果,通过在脱水时段期间从滤饼中蒸发液体引起的,并且可以通过其他过程数据支持。还分析了真空过滤的具体能耗和随后的热干燥至零水分。试验浆料的试验级别实验和水平带真空过滤器的结果表明,为了使真空过滤的特定能量消耗最小化,找到浆料浓度,真空水平和滤饼质量的正确组合至关重要每单位面积。所提出的估算滤饼含水量的方法特别适用于实时监测和控制,使整个过程的能量消耗也能显着降低。当在先导过程中施加所提出的软传感器方法时,当真空泵入口处的空气温度和真空泵空气流速时,滤饼的估计水分含量的平均绝对误差类似于0.4个百分点包含在输入变量中。

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