Zhang Yuling, Duan Haiyang, Chen Erjun, Li Ming, Liu Songtao
Department of Environmental Science and Engineering, North China Electric Power University, 071003Baoding, Hebei, P. R. China.
MOE Key Laboratory of Resources and Environmental Systems Optimization, College of Environmental Science and Engineering, North China Electric Power University, 102206Beijing, P. R. China.
Langmuir. 2023 Jan 31;39(4):1629-1639. doi: 10.1021/acs.langmuir.2c03075. Epub 2023 Jan 17.
Air nanobubbles (A-NBs) in a circulating cooling water system have not been investigated, although their role is significant. In this paper, the influences of the contents of main salts and other parameters on the physicochemical characteristics and scale inhibition performance of A-NBs in circulating cooling water were investigated and the scale inhibition mechanism of A-NBs in a simulated circulating cooling water system was explored. A-NBs realized a higher scale inhibition rate of 90%, which was higher than that of 1-hydroxyethane-1,1-diphosphonic acid (40%), and A-NBs stably existed for more than 5 days in the complex water environment. Four interface functions were proposed to interpret the scale inhibition effect of A-NBs in circulating cooling water as follows. First, the negatively charged surface of A-NBs adsorbed cations (Ca) reduced the concentration of scaling ions. Second, the negatively charged surface of A-NBs could also adsorb microcrystals, and their crystal-like seed action was conducive to the formation of large-size crystals, broke the rules of crystal growth, and reduced the adhesion of scales to the pipe wall. Third, A-NBs could also form a bubble layer after they were adsorbed on the inner surface of pipes, thereby preventing the deposition of scales on the surface. Fourth, A-NB burst caused local turbulence, increased the shear force onto the pipe surface, and reduced the scales adhering to the pipe surface. The interface effect of A-NBs in metal pipes is important in many industrial applications. This study laid the basis for the development of a new green A-NB scale-inhibiting technology.
尽管循环冷却水系统中的空气纳米气泡(A-NBs)作用显著,但尚未得到研究。本文研究了主要盐类含量和其他参数对循环冷却水中A-NBs的物理化学特性及阻垢性能的影响,并探讨了A-NBs在模拟循环冷却水系统中的阻垢机理。A-NBs实现了90%的较高阻垢率,高于1-羟基乙烷-1,1-二膦酸的阻垢率(40%),且A-NBs在复杂水环境中稳定存在超过5天。提出了四个界面作用来解释A-NBs在循环冷却水中的阻垢效果,具体如下。第一,A-NBs带负电的表面吸附阳离子(Ca),降低了结垢离子的浓度。第二,A-NBs带负电的表面还可吸附微晶,其晶种作用有利于形成大尺寸晶体,打破晶体生长规律,并减少水垢对管壁的附着。第三,A-NBs吸附在管道内表面后还可形成气泡层,从而防止水垢在表面沉积。第四,A-NB破裂引起局部湍流,增加了对管道表面的剪切力,减少了附着在管道表面的水垢。A-NBs在金属管道中的界面效应在许多工业应用中都很重要。本研究为开发新型绿色A-NB阻垢技术奠定了基础。