...
首页> 外文期刊>Minerals Engineering >Investigation of gas dispersion characteristics in stirred tank and flotation cell using a corrected CFD-PBM quadrature-based moment method approach
【24h】

Investigation of gas dispersion characteristics in stirred tank and flotation cell using a corrected CFD-PBM quadrature-based moment method approach

机译:使用修正的CFD-PBM正交矩方法研究搅拌槽和浮选池中气体的分散特性

获取原文
获取原文并翻译 | 示例
           

摘要

In this study, the population balance model (PBM) is coupled with computational fluid dynamics (CFD) to investigate the steady-state bubble size distribution in two types of process equipment namely, a standard Rushton turbine stirred tank reactor and a generic lab-scale flotation cell. The coupling is realized using Fluent 15.07 software, and the numerical model is validated for the stirred tank reactor. The population balance equation (PBE) is solved using the quadrature method of moments (QMOM) technique along with a correction procedure implemented to check and correct invalid moment sets. The breakage and coalescence of bubbles due to turbulence are considered. The breakage rate and daughter size distribution models proposed by Laakkonen et al. (2007) are considered. For modeling coalescence rate, models proposed by Coulaloglou and Tavlarides (1977) are considered. The interaction between the phases is handled by considering the drag model proposed by Lane et al. (2005) while ignoring the other interphase forces. The correction algorithm has been successfully implemented, and improved predictions of gas volume fraction and Sauter mean diameter (SMD, d(32)) have been observed with a good match between the predictions and experimental measurements. The local SMD predictions are compared against predictions from the past studies and the superiority of the current approach for moderate gassing rates is established. The CFD-PBM approach is then used to study and characterize different flow regimes occurring in a generic mechanical flotation cell at different aeration rates and impeller rotation speeds. Also, power numbers are calculated from torque data and are found to drop considerably with an increase in aeration rate and impeller rotation speed as the flow regime approaches recirculating flow. The predicted SMD for flotation cell indicates that smaller bubbles are concentrated near the high turbulence impeller stream, the lower recirculation region, and close to the tank walls. On the other hand, large bubbles are formed in the upper tank region and are concentrated around the shaft during the flooding, loading, and transition flow regimes. In the future, the corrected QMOM approach will be further extended by implementing kinetic models capable of predicting the flotation rate constant using local bubble size information obtained from CFD-PBM simulations. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在这项研究中,将人口平衡模型(PBM)与计算流体动力学(CFD)结合,以研究两种类型的工艺设备(即标准Rushton涡轮搅拌釜反应器和通用实验室规模)中的稳态气泡尺寸分布浮选池。使用Fluent 15.07软件实现了耦合,并且对搅拌釜反应器的数值模型进行了验证。使用矩量正交方法(QMOM)技术以及为检查和校正无效矩量集而实施的校正程序来求解人口平衡方程(PBE)。考虑了由于湍流引起的气泡的破裂和聚结。 Laakkonen等人提出的破损率和子尺寸分布模型。 (2007)被考虑。为了建模聚结速率,考虑了Coulaloglou和Tavlarides(1977)提出的模型。通过考虑Lane等人提出的阻力模型来处理各相之间的相互作用。 (2005年),而忽略了其他相间作用力。该校正算法已成功实施,并已观察到气体体积分数和Sauter平均直径(SMD,d(32))的改进预测,并且预测值与实验测量值之间具有良好的匹配性。将本地SMD预测与过去研究的预测进行比较,并确定了当前方法的适度放气率的优越性。然后,将CFD-PBM方法用于研究和表征通用机械浮选池中以不同的曝气速率和叶轮转速发生的不同流态。同样,功率值是从扭矩数据中计算得出的,并且随着流量状态接近再循环流量,随着通气速率和叶轮转速的增加,功率值会显着下降。浮选池的预测SMD表明,较小的气泡集中在高湍流叶轮流附近,较低的回流区域以及靠近罐壁的地方。另一方面,大的气泡在上水箱区域形成,并在注水,加载和过渡流态期间集中在井筒周围。将来,通过实施能够使用从CFD-PBM模拟获得的局部气泡尺寸信息来预测浮选速率常数的动力学模型,可以进一步扩展修正的QMOM方法。 (C)2016 Elsevier Ltd.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号