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地下水-土系统中PAHs复合污染吸附/解吸机理研究进展 被引量:1
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作者 王磊 刘俊建 +1 位作者 周爱国 石建省 《安全与环境工程》 CAS 2016年第5期55-60,共6页
地下水-土系统中多环芳烃类(Polycyclic Aromatic Hydrocarbons,PAHs)污染是目前研究的热点问题之一,研究焦点正逐步由单一污染向复合污染转变,而在地下水-土系统中PAHs复合污染的吸附/解吸机理是其调查与修复研究的关键问题。结合目前... 地下水-土系统中多环芳烃类(Polycyclic Aromatic Hydrocarbons,PAHs)污染是目前研究的热点问题之一,研究焦点正逐步由单一污染向复合污染转变,而在地下水-土系统中PAHs复合污染的吸附/解吸机理是其调查与修复研究的关键问题。结合目前国内外研究进展,对重金属、非金属类物质与PAHs复合污染时竞争性吸附/解吸机理、热力学特征和影响因素等方面的研究进行评述,认为今后的研究方向是PAHs与复合污染物间交互作用的定量分析,分子水平竞争性吸附/解吸机理研究,生物吸附、化学吸附与PAHs生物毒性影响关系研究等方面,随着上述工作的逐渐深入,必将推进地下水-土系统中复合污染的研究进程。 展开更多
关键词 地下水-土系统 PAHS 复合污染 吸附/解吸机理 影响因素
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Specific Adsorption of Trivalent La, Ce and Y by Soils and Ferro-manganese Oxides and Its Mechanism
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作者 RANYONG LIUZHENG 《Pedosphere》 SCIE CAS CSCD 1992年第1期13-22,共10页
In this paper, the adsorption-desorption variations of trivalent La, Ce, Y and mixed rare earths are discussed. The curves of pH-rare earth element adsorption were very well fitted to the equation: InD =a+b pH. The se... In this paper, the adsorption-desorption variations of trivalent La, Ce, Y and mixed rare earths are discussed. The curves of pH-rare earth element adsorption were very well fitted to the equation: InD =a+b pH. The selectivity of RE (rare earth element) ions by the samples decreased in the following order: Ce> RE> La> Y, but the sequences were: La> Ce> Y on kaolinite and Y> La on amorphous iron oxide. Since the trivalent RE ions existed in the form of RE(OH)2+ in the solutions from pH < 5.45 to 7.0, the ratio of H+ displaced to RE3+ adsorbed in micromole was proposed to be about 2. The specific adsorption mechanism for RE was proposed to be that the RE ions complexed with oxide surface and the ion-surface complex of Ce3+ promoted oxidization on Mn hydroxide. 展开更多
关键词 Ce oxidization rare earth elements SELECTIVITY specific adsorption surface complexation
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Molecular mechanism of adsorption/desorption hysteresis:dynamics of shale gas in nanopores 被引量:7
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作者 Jie Chen FengChao Wang +1 位作者 He Liu HengAn Wu 《Science China(Physics,Mechanics & Astronomy)》 SCIE EI CAS CSCD 2017年第1期24-31,共8页
Understanding the adsorption and desorption behavior of methane has received considerable attention since it is one of the crucial aspects of the exploitation of shale gas.Unexpectedly,obvious hysteresis is observed f... Understanding the adsorption and desorption behavior of methane has received considerable attention since it is one of the crucial aspects of the exploitation of shale gas.Unexpectedly,obvious hysteresis is observed from the ideally reversible physical sorption of methane in some experiments.However,the underlying mechanism still remains an open problem.In this study,Monte Carlo(MC) and molecular dynamics(MD) simulations are carried out to explore the molecular mechanisms of adsorption/desorption hysteresis.First,a detailed analysis about the capillary condensation of methane in micropores is presented.The influence of pore width,surface strength,and temperature on the hysteresis loop is further investigated.It is found that a disappearance of hysteresis occurs above a temperature threshold.Combined with the phase diagram of methane,we explicitly point out that capillary condensation is inapplicable for the hysteresis of shale gas under normal temperature conditions.Second,a new mechanism,variation of pore throat size,is proposed and studied.For methane to pass through the throat,a certain energy is required due to the repulsive interaction.The required energy increases with shrinkage of the throat,such that the originally adsorbed methane cannot escape through the narrowed throat.These trapped methane molecules account for the hysteresis.Furthermore,the hysteresis loop is found to increase with the increasing pressure and decreasing temperature.We suggest that the variation of pore throat size can explain the adsorption/desorption hysteresis of shale gas.Our conclusions and findings are of great significance for guiding the efficient exploitation of shale gas. 展开更多
关键词 shale gas adsorption/desorption hysteresis numerical simulation capillary condensation pore throat
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