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Development of a laboratory-scale flotation column with inlet bubble size measurement

机译:具有入口泡尺寸测量的实验室级浮选柱的开发

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This paper presents the development of a small-scale (1 in.) laboratory flotation column with online measurement of bubble size. In contrast to the systems that use sampling-for-image techniques and have the viewing chamber located at the top of the flotation device, the system employed here measures the bubble size via image analysis using a bubble size analyzer located at the bottom of the column using a well-referenced sloped viewing chamber. The main advantage of this configuration is that it allowed the measurement and monitoring of the bubble size during flotation experiments (three-phase system). This was possible because the sizes of the bubbles were determined before they entered the column; moreover, the "cloudy effect" caused by fine particles in the bubble viewing chamber was minimized owing to the use of an expansion chamber (named the bubble injection chamber). The image capture, processing, and analysis were automated, which rendered it possible to determine the bubble size distribution and mean bubble size (D-32) of consecutive images every 5 s using a simple image analysis procedure. Two-phase experiments conducted to evaluate the system showed that the mean bubble size (D-32) and gas holdup were within the ranges found in the literature. As expected, the holdup was dependent on the bubble size, which was strongly dependent on the frother concentration. Finally, some exploratory experiments were conducted to test the apparatus in a three-phase system. Recovery-particle size curves for different bubble sizes showed that mass recovery increases as the mean bubble size decreases, and the coarser the particles, the greater is the effect of the bubble size on the recovery.
机译:本文介绍了在线测量泡沫尺寸的小规模(1英寸)实验室浮选栏。与使用采样装置技术的系统形成对比并且具有位于浮选装置的顶部的观察室,本发明使用的系统通过使用位于柱底部的气泡尺寸分析仪通过图像分析来测量气泡尺寸使用良好的倾斜观景室。这种配置的主要优点是它允许测量和监测浮选实验期间的气泡尺寸(三相系统)。这是可能的,因为在进入柱之前确定气泡的尺寸;此外,由于使用膨胀室(命名为气泡注入室),最小化由气泡观察室中的细颗粒引起的“多云效应”。自动化图像捕获,处理和分析,这使得可以使用简单的图像分析程序确定每5秒的连续图像的气泡尺寸分布和平均气泡尺寸(D-32)。进行评估系统的两相实验表明,平均气泡尺寸(D-32)和气体持有在文献中发现的范围内。正如预期的那样,持有依赖于泡沫尺寸,这强烈依赖于浓度的浓度。最后,进行了一些探索实验以测试三相系统中的装置。不同气泡尺寸的回收粒度曲线表明,随着平均气泡尺寸的降低,颗粒较大,较大的粒子尺寸越大,泡沫尺寸对恢复的影响越大。

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