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Determination of sampling pipe (riser) diameter for a flotation bubble load measuring device

机译:浮选气泡载荷测量装置的采样管(立管)直径的确定

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This work explores the determination of an optimum riser (pipe) diameter for a newly-developed bubble load measuring device. Stimulus response experiments using NaCl as a tracer were carried out to measure the intensity of axial mixing as a function of riser diameter and frother concentration (bubble size). Three riser diameters (20, 30 and 50 mm) were tested and conductivity probes were used to sense salt concentration at three levels above the bottom of the tube (300,770 and 1380 mm). Results indicate that the intensity of axial mixing increases with increase in riser diameter. It was concluded that the intensity of axial mixing in the 50 mm riser was strong enough to compromise the bubble load quality. A general increase in NaCl concentration with increase in frother concentration at each conductivity probe was seen for all the tested riser diameters. A model based on the tanks-in-series approach was developed. Simulink was used to fit the model to measured data. It was found that 16 tanks in series and an additional parameter that accounts for salt adsorbed on the bubble surfaces adequately fitted the data.
机译:这项工作探索了为新开发的气泡载荷测量设备确定最佳立管(管道)直径的方法。进行了以氯化钠为示踪剂的刺激响应实验,以测量轴向混合强度与立管直径和起泡剂浓度(气泡大小)的关系。测试了三个立管直径(20、30和50毫米),并使用电导率探针在管底部上方三个水平(300,770和1380毫米)处感应盐浓度。结果表明,轴向混合的强度随立管直径的增加而增加。结论是,在50 mm立管中的轴向混合强度足以破坏气泡载荷质量。对于所有测试的立管直径,在每个电导率探针上,NaCl浓度随起泡剂浓度的增加而普遍增加。开发了基于串联坦克方法的模型。 Simulink用于将模型拟合到测量数据。结果发现,串联的16个储罐和一个解释气泡表面吸附盐分的附加参数足以拟合该数据。

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