Diffusiophoresis of interacting particles in nonelectrolyte

碩士 === 國立臺灣大學 === 化學工程學研究所 === 89 === A boundary-collocation technique, used earlier by Keh and Lin [Langmuir 10, 3010-3017 (1994)] in the study of the diffusiophoresis of N coaxial spherical particles along the line of their centers in nonelectrolyte gradients, is extended to describe th...

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Main Authors: Chen Chia Lin, 陳嘉麟
Other Authors: Keh Huan Juan
Format: Others
Language:zh-TW
Published: 2001
Online Access:http://ndltd.ncl.edu.tw/handle/94382779365180983973
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spelling ndltd-TW-089NTU000630292016-07-04T04:17:53Z http://ndltd.ncl.edu.tw/handle/94382779365180983973 Diffusiophoresis of interacting particles in nonelectrolyte 擴散泳粒子間之交互作用 Chen Chia Lin 陳嘉麟 碩士 國立臺灣大學 化學工程學研究所 89 A boundary-collocation technique, used earlier by Keh and Lin [Langmuir 10, 3010-3017 (1994)] in the study of the diffusiophoresis of N coaxial spherical particles along the line of their centers in nonelectrolyte gradients, is extended to describe the motion of an assemblage of N spheres arranged arbitrarily in a three-dimensional solution. The spheres are allowed to differ in radius and in surface properties; they may move independently, or they may be linked by any infinitesimally thin rods to form a rigid aggregate. The range of the interaction between the solute and the particle surfaces is assumed to be small compared to the radius of each particle and to the gap thickness between any two neighboring particles, but the polarization effect of the diffuse solute in the thin particle-solute interaction layer caused by the strong adsorption of the solute is incorporated. A slip velocity of the fluid and a normal flux of the solute at the outer edge of the diffuse layer are used as the boundary conditions for the fluid domain outside the thin diffuse layers. The transport equations governing the problem are solved at the quasisteady state and the particle interaction effects are computed for various cases. For two-sphere systems, the translational and angular velocities of the particles at all orientations and separation distances agree well with the asymptotic solution obtained by using a method of reflections. The particle interactions in linear chains of three spheres show that the existence of the third sphere can significantly affect the mobilities of the other two spheres. For the cases of a rigid dumbbell composed of two spheres, the numerical solutions for the particle velocities compare favorably with the formulas derived analytically. Finally, our numerical results for the interaction between two spheres are used to find the effect of volume fraction of particles on the mean diffusiophoretic velocity in a bounded suspension. Keh Huan Juan 葛煥彰 2001 學位論文 ; thesis 0 zh-TW
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description 碩士 === 國立臺灣大學 === 化學工程學研究所 === 89 === A boundary-collocation technique, used earlier by Keh and Lin [Langmuir 10, 3010-3017 (1994)] in the study of the diffusiophoresis of N coaxial spherical particles along the line of their centers in nonelectrolyte gradients, is extended to describe the motion of an assemblage of N spheres arranged arbitrarily in a three-dimensional solution. The spheres are allowed to differ in radius and in surface properties; they may move independently, or they may be linked by any infinitesimally thin rods to form a rigid aggregate. The range of the interaction between the solute and the particle surfaces is assumed to be small compared to the radius of each particle and to the gap thickness between any two neighboring particles, but the polarization effect of the diffuse solute in the thin particle-solute interaction layer caused by the strong adsorption of the solute is incorporated. A slip velocity of the fluid and a normal flux of the solute at the outer edge of the diffuse layer are used as the boundary conditions for the fluid domain outside the thin diffuse layers. The transport equations governing the problem are solved at the quasisteady state and the particle interaction effects are computed for various cases. For two-sphere systems, the translational and angular velocities of the particles at all orientations and separation distances agree well with the asymptotic solution obtained by using a method of reflections. The particle interactions in linear chains of three spheres show that the existence of the third sphere can significantly affect the mobilities of the other two spheres. For the cases of a rigid dumbbell composed of two spheres, the numerical solutions for the particle velocities compare favorably with the formulas derived analytically. Finally, our numerical results for the interaction between two spheres are used to find the effect of volume fraction of particles on the mean diffusiophoretic velocity in a bounded suspension.
author2 Keh Huan Juan
author_facet Keh Huan Juan
Chen Chia Lin
陳嘉麟
author Chen Chia Lin
陳嘉麟
spellingShingle Chen Chia Lin
陳嘉麟
Diffusiophoresis of interacting particles in nonelectrolyte
author_sort Chen Chia Lin
title Diffusiophoresis of interacting particles in nonelectrolyte
title_short Diffusiophoresis of interacting particles in nonelectrolyte
title_full Diffusiophoresis of interacting particles in nonelectrolyte
title_fullStr Diffusiophoresis of interacting particles in nonelectrolyte
title_full_unstemmed Diffusiophoresis of interacting particles in nonelectrolyte
title_sort diffusiophoresis of interacting particles in nonelectrolyte
publishDate 2001
url http://ndltd.ncl.edu.tw/handle/94382779365180983973
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