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Strategy for Controlling the Level in a Dissolved Air Flotation Chamber

Strategy for Controlling the Level in a Dissolved Air Flotation Chamber
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摘要 The aim of the present study was to implant an efficient strategy for controlling the level of the effluent-oily foam interface in a DAF (dissolved air flotation) chamber of a pilot-scale prototype. DAF has been successfully used in the treatment of oily water, which is one of the main environmental problems in different industrial facilities. Along with important operational parameters, such as microbubble size and flow rate, the control strategy for the automation of a DAF chamber may be an important tool for increasing efficiency. Controlling the level was the strategy chosen to enhance the separation efficiency in a pilot-scale DAF prototype, with monitoring performed using a computational program in LabVIEW (laboratory virtual instrument engineering workbench). The findings demonstrate that it is possible to maintain the level of the fluid at a reference value established by the operator using the software program through the application of classic proportional integral derivative controllers. Using this control tool, the efficiency of water-oil separation in the pilot flotation chamber prototype was increased to nearly 98%.
出处 《Journal of Chemistry and Chemical Engineering》 2015年第5期344-352,共9页 化学与化工(英文版)
关键词 Dissolved air flotation level control LABVIEW proportional integral derivative liquid-liquid separation. 溶气浮选 制水 比例积分微分控制器 LabVIEW 控制策略 含油废水 分离效率 应用程序
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参考文献19

  • 1Oliveira, C., and Rubio, J. 2012. “A Short Overview of the Formation of Aerated Floes and Their Applications in Solid/Liquid Separation by Flotation.” Minerals Eng. 39: 124-32. 被引量:1
  • 2Haarhoff, J., and James K. E. 2013. “Adapting Dissolved Air Flotation for the Clarification of Seawater.” Desalination 311: 90-4. 被引量:1
  • 3Zhu, H. Y., and Ming, Z. 2014. “Air Flotation Method in the Treatment of Oily Wastewater Application of Its Progress.” Adv. Mat. Res. 971: 2044-7. 被引量:1
  • 4Rocha e Silva, F. C. P., da Rocha e Silva, N. C. P., de Moura, A. E., Galdino, R. A., Luna, J. M., Rufmo, R. D., and Sarubbo, L. A. 2015. “Effect of Biosurfactant Addition in a Pilot Scale Dissolved Air Flotation System.” Sep. Sci. Technol. 50: 618-25. 被引量:1
  • 5Zhao, L., Peng, T., Han, H., Cao, W., Lou, Y., and Xie, X. 2014. “Fault Condition Recognition Based on Multi-scale Co-occurrence Matrix for Copper Flotation Process.” In Proceedings of the 19th World Congress, 7091-7. 被引量:1
  • 6Behin, J., and Bahrami, S. 2012. “Modeling an Industrial Dissolved Air Flotation Tank Used for Separating Oil from Wastewater.” Chem. Eng. Processing: Process Intensification 59: 1-8. 被引量:1
  • 7NikaCevii, N. M., Huesman, A. E., Van den Hof, P. M., and Stankiewicz, A. I. 2012. “Opportunities andChallenges for Process Control in Process Intensification.” Chem. Eng. Processing: Process Intensification 52: 1-15. 被引量:1
  • 8Yang, Y., Zhu, Q., Maasoumy, M., and Sangiovanni-Vincentelli, A. 2012. “Development of Building Automation and Control Systems.” IEEE Design & Test of Computers 29: 45-55. 被引量:1
  • 9Romagnoli, J. A., and Palazoglu, A. 2012. Introduction to Process Control. New York: CRC Press, Taylor & Francis Group. 被引量:1
  • 10Segovia, V. R., Hagglund, T., and Astrom, K. J. 2014. “Measurement Noise Filtering for PID Controllers.” J. Process Control 24: 299-313. 被引量:1

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