Xiong Yongjiao, Wu Baoqiang, Huang Xiangfeng, Li Chenlu, Lu Bin, Liu Jia, Lu Lijun, Li Shiyang, Peng Kaiming
College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Shanghai Institute of Pollution Control and Ecological Security, Tongji University, Shanghai 200092, China.
College of Environmental Science and Engineering, State Key Laboratory of Pollution Control and Resource Reuse, Ministry of Education Key Laboratory of Yangtze River Water Environment, Shanghai Institute of Pollution Control and Ecological Security, Tongji University, Shanghai 200092, China.
J Environ Sci (China). 2021 Jul;105:173-183. doi: 10.1016/j.jes.2020.12.036. Epub 2021 Jan 18.
Magnetic particles were coupled with a flocculant to enhance the demulsification and separation of waste cutting emulsions. The optimal magnetic particle size and critical magnetic field conditions were investigated to achieve large-scale engineering application of magnetic demulsification separation for waste cutting emulsion treatment. The micro-scale magnetic particles were found to show comparable effects to nano-scale magnetic particles on enhancing the demulsification and separation of cutting emulsions, which are beneficial for broadening the selectivity of low-cost magnetic particles. The critical magnetic separation region was determined to be an area 40 mm from the magnetic field source. Compared to the flocculant demulsification, the magnetic demulsification separation exhibited a significant advantage in accelerating flocs-water separation by decreasing the separation time of flocs from 180-240 min to less than 15 min, compressing the flocs by reducing the floc volume ratio from 60%-90% to lower than 20%, and showing excellent adaptability to the variable properties of waste cutting emulsions. Coupled with the design of the magnetic disk separator, continuous demulsification separation of the waste cutting emulsion was achieved at 1.0 t/hr for at least 10 hr to obtain clear effluent with 81% chemical oxygen demand removal and 89% turbidity reduction. This study demonstrates the feasibility of applying magnetic demulsification separation to large-scale continuous treatment of waste emulsion. Moreover, it addresses the flocs-water separation problems that occur in practical flocculant demulsification engineering applications.
将磁性颗粒与絮凝剂相结合,以增强废切削液乳液的破乳和分离效果。研究了最佳磁性颗粒尺寸和临界磁场条件,以实现磁性破乳分离在废切削液处理中的大规模工程应用。研究发现,微米级磁性颗粒在增强切削液乳液破乳和分离方面与纳米级磁性颗粒具有相当的效果,这有利于拓宽低成本磁性颗粒的选择范围。确定临界磁分离区域为距离磁场源40毫米的区域。与絮凝剂破乳相比,磁性破乳分离在加速絮体与水的分离方面具有显著优势,可将絮体的分离时间从180 - 240分钟缩短至不到15分钟,通过将絮体体积比从60% - 90%压缩至低于20%来压缩絮体,并对废切削液乳液的可变性质表现出优异的适应性。结合磁盘分离器的设计,实现了废切削液乳液以1.0吨/小时的流量进行连续破乳分离,至少持续10小时,得到的出水清澈,化学需氧量去除率达81%,浊度降低89%。本研究证明了磁性破乳分离应用于废乳液大规模连续处理的可行性。此外,它解决了实际絮凝剂破乳工程应用中出现的絮体与水分离问题。