期刊文献+

Application of response surface methodology to the chemical cleaning process of ultrafiltration membrane 被引量:4

Application of response surface methodology to the chemical cleaning process of ultrafiltration membrane
在线阅读 下载PDF
导出
摘要 A numerical model was established to predict and optimise the chemical cleaning process of Polyvinylidene Fluo- ride (PVDF) Ultrafiltration (UF) membranes with the results from the experiment that applied the Response Sur- face Method (RSM) and Central Composite Design (CCD). The factors considered in the experimental design were sodium hydroxide (NaOH) concentration, sodium bypochlorite concentration (NaCIO), citric acid concentration and cleaning duration, The interactions between the factors were investigated with the numerical model. Humic acid (20 mg· L-1) was used as the model foulant, and chemical enhanced backflush (CEB) was employed to sim- ulate the chemical cleaning process. The concentrations of sodium hydroxide, sodium hypochlorite, citric acid and cleaning duration tested during the experiments were in the range of 0.1%-0.3% 100-300 mg· L-1 1%-3% and 0.5-1.5 h, respectively. Among the variables, the sodium hypochlorite concentration and the cleaning dura- tion showed a positive relationship involving the increased efficiency of the chemical cleaning. The chemical cleaning efficiency was hardly improved with increasing concentrations of sodium hydroxide. However, the data was sharply decreased when at a low level of sodium hydroxide concentration. In total, 54 sets of cleaning schemes with 80% to 100K cleaning efficiency were observed with the R&M model after calibration. A numerical model was established to predict and optimise the chemical cleaning process of Polyvinylidene Fluoride(PVDF)Ultra filtration(UF)membranes with the results from the experiment that applied the Response Surface Method(RSM)and Central Composite Design(CCD).The factors considered in the experimental design were sodium hydroxide(NaOH)concentration,sodium hypochlorite concentration(NaClO),citric acid concentration and cleaning duration.The interactions between the factors were investigated with the numerical model.Humic acid(20 mg·L-1)was used as the model foulant,and chemical enhanced back flush(CEB)was employed to simulate the chemical cleaning process.The concentrations of sodium hydroxide,sodium hypochlorite,citric acid and cleaning duration tested during the experiments were in the range of 0.1%–0.3%,100–300 mg·L-1,1%–3%and 0.5–1.5 h,respectively.Among the variables,the sodium hypochlorite concentration and the cleaning duration showed a positive relationship involving the increased ef ficiency of the chemical cleaning.The chemical cleaning ef ficiency was hardly improved with increasing concentrations of sodium hydroxide.However,the data was sharply decreased when at a low level of sodium hydroxide concentration.In total,54 sets of cleaning schemes with 80%to 100%cleaning ef ficiency were observed with the RSM model after calibration.
出处 《Chinese Journal of Chemical Engineering》 SCIE EI CAS CSCD 2016年第5期651-657,共7页 中国化学工程学报(英文版)
基金 Supported by State Key Laboratory of Urban Water Resource and Environment(2016DX01) the Fundamental Research Funds for the Central University(NSRIF.2014096) Science and Technology Planning Project of Chancheng District(2013A1044)
关键词 ULTRAFILTRATION Response surface methodology Chemical cleaning Water treatment 化学清洗工艺 清洗过程 响应面法 超滤膜 应用 氢氧化钠浓度 中心复合设计 次氯酸钠
  • 相关文献

参考文献24

  • 1H. Huang, N. Lee, T. Young, A. Gary, J. Lozier, J. Jacangelo, Natural organic matter fouling of low-pressure, hollow-fiber membranes: Effects of NOM source and hydrodynamic conditions, Water Res. 41 (17) (2007) 3823-3832.
  • 2R. Fabris, E.K. Lee, C.W.K. Chow, V. Chert, M. Drikas, Pre-treatments to reduce fnuling of low pressure micro-filtration (ME) membranes,J. Membr. Sci. 289 (1-2) (2007) 231-240.
  • 3X. Huang, M. Leal, Q. Li, Degradation of natural organic matter by TiO2 photocatalytic oxidation and its effect on fouling of low-pressure membranes, Water Res. 42 (4-5) (2008) 1142-1150.
  • 4N. Porcelli, S. Judd, Chemical cleaning of potable water membranes: The cost benefit of optimisation, WaterRes. 44 (5) (2010) 1389-1398.
  • 5N. Porcelli, S. Judd, Chemical cleaning of potable water membranes: A review, Sep. Purif. Technol. 71 (2) (2010) 137-143.
  • 6K. Feng, L Hou, B. Tang, P. Wu, A self-protected self-cleaning ultraflltration membrane by using polydopamine as a flee-radical scavenger, J. Membr. Sci. 490 (2015) 120-128.
  • 7Z. Zhang, M.W. Bligh, T.D. Waite, Ascorbic acid-mediated reductive cleaning of iron- fouled membranes from submerged membrane bioreactors, J. Membr. Sci. 477 (2015) 194-202.
  • 8S. Platt, M. Nystrom, Cleaning of membranes fouled by proteins to evaluate the importance of fully developed flow, Desalination 208 (1-3) (2007) 19-33.
  • 9S. Strugholtz, K. Sundaramoorthy, S, Panglisch, A. Lerch, A. Brfigger, R. Gimbel, Evaluation of the performance of different chemicals for cleaning capillary membranes, Desalination 179 (1-3) (2005) 191-202.
  • 10A. AI-Amoudi, R.W. Lovitt, Fouling strategies and the cleaning system of NF mem- branes and factors affecting cleaning efficiency, J. Membr. Sci. 303 (1-2) (2007) 4-28.

同被引文献15

引证文献4

二级引证文献4

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部