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Adsorption of ammonia nitrogen on lignite and its influence on coal water slurry preparation

机译:褐煤对氨氮的吸附及其对水煤浆制备的影响

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Using lignite as an adsorbent and subsequently as a material for coal water slurry (CWS) preparation represents an alternative method for coal chemical wastewater treatment. However, the components in these wastewaters could affect the CWS performance, especially ammonia nitrogen (NH4+-N). The influencing mechanism of NH4+-N was studied through adsorption method. Associated with adsorption reaction model, Fourier transform infrared spectrum and zeta potential detection, it was found that the adsorption reaction of NH4+-N, driven by ion-exchange interactions with H+ of -OH and -COOH on the lignite surface, displayed a typical monolayer mode and was much faster than that of NSF which displayed a double-layer mode and was adsorbed preferentially at hydrophobic sites. In binary adsorption, the adsorption amount of NSF was increased remarkably by adding NH4+-N. This was attributed to the modified lignite surface and hydrophilic group by NH4+-N that decreased the surface electronegativity as well as the electrostatic repulsion among -SO3- in NSF molecules. The enhanced adsorption of NSF resulted in capturing more water molecules in hydration film surrounding the particles in CWS. The hydration film was then thickened and stabilized, thus leading to a decrease in free water for CWS flowing. As a result, the apparent viscosity was increased, and CWS tended to be dilatant. In addition, the thickened and stabilized hydration film also increased the yield stress of CWS prepared with NH4+-N, resulting in improved stability.
机译:使用褐煤作为吸附剂,然后用作制备煤水浆(CWS)的材料代表了一种用于煤化工废水处理的替代方法。但是,这些废水中的成分可能会影响CWS的性能,尤其是氨氮(NH4 + -N)。通过吸附法研究了NH4 + -N的影响机理。结合吸附反应模型,傅立叶变换红外光谱和ζ电势检测,发现褐煤表面NH4 + -N的吸附反应受离子交换与-OH和-COOH的H +的相互作用,表现出典型的单层结构。 NSF表现出双层模式,并优先吸附在疏水位点,比NSF快得多。在二元吸附中,通过添加NH4 + -N,NSF的吸附量显着增加。这归因于NH4 + -N修饰的褐煤表面和亲水基团,降低了NSF分子的表面电负性以及-SO3-之间的静电排斥力。 NSF的增强吸附导致在水煤浆颗粒周围的水化膜中捕获更多的水分子。然后使水合膜增厚并稳定,从而导致CWS流动的自由水减少。结果,表观粘度增加,并且CWS倾向于膨胀。此外,增厚且稳定的水化膜还增加了用NH4 + -N制备的CWS的屈服应力,从而提高了稳定性。

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