Experimental researches were conducted on flood carrying capacity of compound open channels with wide and narrow floodplains as well as hydrodynamic behavior of overbank flow across vegetated floodplains. Results show...Experimental researches were conducted on flood carrying capacity of compound open channels with wide and narrow floodplains as well as hydrodynamic behavior of overbank flow across vegetated floodplains. Results show that hydrodynamic behavior of compound channels with narrow floodplains is different from that of the wide floodplains. In such compound channels with narrow vegetated floodplains as in the Pearl River delta nework, it has been found that vegetated domains become really impenetra ble when the length of vegetated domain is larger than Lm, the length of f low in floodplain coming into the main channel, and that the influence of vegeta ted floodplains upon flood stages of a channel is not very significant.展开更多
The behavior of a water molecule entering carbon nanotubes (CNTs) is stud- ied. The Lennaxd-Jones potential function together with the continuum approximation is used to obtain the van der Waals interaction between ...The behavior of a water molecule entering carbon nanotubes (CNTs) is stud- ied. The Lennaxd-Jones potential function together with the continuum approximation is used to obtain the van der Waals interaction between a single-walled CNT (SWCNT) and a single water molecule. Three orientations are chosen for the water molecule as the center of mass is on the axis of nanotube. Extensive studies on the variations of force, energy, and velocity distributions axe performed by vaxying the nanotube radius and the orientations of the water molecule. The force and energy distributions are validated by those obtained from molecular dynamics (MD) simulations. The acceptance radius of the nanotube for sucking the water molecule inside is derived, in which the limit of the radius is specified so that the nanotube is favorable to absorb the water molecule. The velocities of a single water molecule entering CNTs axe calculated and the maximum entrance and the interior velocity for different orientations axe assigned and compared.展开更多
研究水分子进入碳纳米管(CNT)时的物理特性.采用连续模型连同Lennard-Jones势函数,得到单壁面碳纳米管(SWCNT)与单个水分子之间的van der Waals力.水分子选择3种方位进入纳米管,其中水分子质心位于纳米管轴线上.对不同的纳米管半径和水...研究水分子进入碳纳米管(CNT)时的物理特性.采用连续模型连同Lennard-Jones势函数,得到单壁面碳纳米管(SWCNT)与单个水分子之间的van der Waals力.水分子选择3种方位进入纳米管,其中水分子质心位于纳米管轴线上.对不同的纳米管半径和水分子进入方位,广泛地研究了相互作用力、能量和速度的分布.用分子动力学(MD)模拟得到的结果,来验证上述得到的相互作用力和能量分布.导出水分子进入纳米管时的可吸入半径,并详细地给出了有利于水分子进入纳米管半径的界限.计算单个水分子进入纳米管的速度,为不同进入方位的水分子,给出最大的入口速度和最大的管内速度.展开更多
文摘Experimental researches were conducted on flood carrying capacity of compound open channels with wide and narrow floodplains as well as hydrodynamic behavior of overbank flow across vegetated floodplains. Results show that hydrodynamic behavior of compound channels with narrow floodplains is different from that of the wide floodplains. In such compound channels with narrow vegetated floodplains as in the Pearl River delta nework, it has been found that vegetated domains become really impenetra ble when the length of vegetated domain is larger than Lm, the length of f low in floodplain coming into the main channel, and that the influence of vegeta ted floodplains upon flood stages of a channel is not very significant.
文摘The behavior of a water molecule entering carbon nanotubes (CNTs) is stud- ied. The Lennaxd-Jones potential function together with the continuum approximation is used to obtain the van der Waals interaction between a single-walled CNT (SWCNT) and a single water molecule. Three orientations are chosen for the water molecule as the center of mass is on the axis of nanotube. Extensive studies on the variations of force, energy, and velocity distributions axe performed by vaxying the nanotube radius and the orientations of the water molecule. The force and energy distributions are validated by those obtained from molecular dynamics (MD) simulations. The acceptance radius of the nanotube for sucking the water molecule inside is derived, in which the limit of the radius is specified so that the nanotube is favorable to absorb the water molecule. The velocities of a single water molecule entering CNTs axe calculated and the maximum entrance and the interior velocity for different orientations axe assigned and compared.
文摘研究水分子进入碳纳米管(CNT)时的物理特性.采用连续模型连同Lennard-Jones势函数,得到单壁面碳纳米管(SWCNT)与单个水分子之间的van der Waals力.水分子选择3种方位进入纳米管,其中水分子质心位于纳米管轴线上.对不同的纳米管半径和水分子进入方位,广泛地研究了相互作用力、能量和速度的分布.用分子动力学(MD)模拟得到的结果,来验证上述得到的相互作用力和能量分布.导出水分子进入纳米管时的可吸入半径,并详细地给出了有利于水分子进入纳米管半径的界限.计算单个水分子进入纳米管的速度,为不同进入方位的水分子,给出最大的入口速度和最大的管内速度.