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2017 | OriginalPaper | Chapter

5. Deposition of Nanoparticles in Stagnation Flames

Author : Dr. Yiyang Zhang

Published in: Dynamics of Nanoparticles in Stagnation Flames

Publisher: Springer Berlin Heidelberg

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Abstract

Possible mechanisms of particle deposition include inertia deposition, inception, diffusion, thermophoresis, and external field for instance gravity and electrical field.

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Literature
go back to reference Chander S, Ray A (2011) Experimental and numerical study on the occurrence of off-stagnation peak in heat flux for laminar methane/air flame impinging on a flat surface. Int J Heat Mass Tran 54:1179–1186CrossRefMATH Chander S, Ray A (2011) Experimental and numerical study on the occurrence of off-stagnation peak in heat flux for laminar methane/air flame impinging on a flat surface. Int J Heat Mass Tran 54:1179–1186CrossRefMATH
go back to reference Friedlander SK (2000) Smoke, Dust and Haze: fundamentals of aerosol dynamics, 2nd edn. Oxford University Press, New York Friedlander SK (2000) Smoke, Dust and Haze: fundamentals of aerosol dynamics, 2nd edn. Oxford University Press, New York
go back to reference Friedlander SK, Wu MK (1994) Linear rate law for the decay of the excess surface area of a coalescing solid particle. Phys Rev B 49:3622CrossRef Friedlander SK, Wu MK (1994) Linear rate law for the decay of the excess surface area of a coalescing solid particle. Phys Rev B 49:3622CrossRef
go back to reference Kulkarni P, Biswas P (2004) A Brownian dynamics simulation to predict morphology of nanoparticle deposits in the presence of interparticle interactions. Aerosol Sci Tech 38:541–554CrossRef Kulkarni P, Biswas P (2004) A Brownian dynamics simulation to predict morphology of nanoparticle deposits in the presence of interparticle interactions. Aerosol Sci Tech 38:541–554CrossRef
go back to reference Lai ACK, Nazaroff WW (2000) Modeling indoor particle deposition from turbulent flow onto smooth surfaces. J Aerosol Sci 31:463–476CrossRef Lai ACK, Nazaroff WW (2000) Modeling indoor particle deposition from turbulent flow onto smooth surfaces. J Aerosol Sci 31:463–476CrossRef
go back to reference Li Z, Wang H (2004) Thermophoretic force and velocity of nanoparticles in the free molecule regime. Phys Rev E 70:021205CrossRef Li Z, Wang H (2004) Thermophoretic force and velocity of nanoparticles in the free molecule regime. Phys Rev E 70:021205CrossRef
go back to reference Li Z, Wang H (2005) Gas-nanoparticle scattering: a molecular view of momentum accommodation function. Phys Rev Lett 95:14502CrossRef Li Z, Wang H (2005) Gas-nanoparticle scattering: a molecular view of momentum accommodation function. Phys Rev Lett 95:14502CrossRef
go back to reference Mädler L, Lall AA, Friedlander SK (2006a) One-step aerosol synthesis of nanoparticle agglomerate films: simulation of film porosity and thickness. Nanotechnology 17:4783–4795CrossRef Mädler L, Lall AA, Friedlander SK (2006a) One-step aerosol synthesis of nanoparticle agglomerate films: simulation of film porosity and thickness. Nanotechnology 17:4783–4795CrossRef
go back to reference Mädler L, Roessler A, Pratsinis SE et al (2006b) Direct formation of highly porous gas-sensing films by in situ thermophoretic deposition of flame-made Pt/SnO2 nanoparticles. Sensors Actuat B: Chem 114:283–295CrossRef Mädler L, Roessler A, Pratsinis SE et al (2006b) Direct formation of highly porous gas-sensing films by in situ thermophoretic deposition of flame-made Pt/SnO2 nanoparticles. Sensors Actuat B: Chem 114:283–295CrossRef
go back to reference Marlow WH (1980a) Derivation of aerosol collision rates for singular attractive contact potentials. J Chem Phys 73:6284CrossRef Marlow WH (1980a) Derivation of aerosol collision rates for singular attractive contact potentials. J Chem Phys 73:6284CrossRef
go back to reference Marlow WH (1980b) Lifshitz–van der Waals forces in aerosol particle collisions. I. Introduction: water droplets. J Phys Chem 73:6288CrossRef Marlow WH (1980b) Lifshitz–van der Waals forces in aerosol particle collisions. I. Introduction: water droplets. J Phys Chem 73:6288CrossRef
go back to reference Meakin P (1998) Droplet deposition growth and coalescence. Rep Prog Phys 55(2):157–240CrossRef Meakin P (1998) Droplet deposition growth and coalescence. Rep Prog Phys 55(2):157–240CrossRef
go back to reference Polat S, Huang B, Mujumdar AS et al (1989) Numerical flow and heat transfer under impinging jets: a review. Annu Rev Heat Transfer 2:157–197CrossRefMATH Polat S, Huang B, Mujumdar AS et al (1989) Numerical flow and heat transfer under impinging jets: a review. Annu Rev Heat Transfer 2:157–197CrossRefMATH
go back to reference Thimsen E, Biswas P (2007) Nanostructured photoactive films synthesized by a flame aerosol reactor. AIChE J 53:1727–1735CrossRef Thimsen E, Biswas P (2007) Nanostructured photoactive films synthesized by a flame aerosol reactor. AIChE J 53:1727–1735CrossRef
go back to reference Thimsen E, Rastgar N, Biswas P (2008) Nanostructured TiO2 films with controlled morphology synthesized in a single step process: performance of dye-sensitized solar cells and photo watersplitting. J Phys Chem C 112:4134–4140CrossRef Thimsen E, Rastgar N, Biswas P (2008) Nanostructured TiO2 films with controlled morphology synthesized in a single step process: performance of dye-sensitized solar cells and photo watersplitting. J Phys Chem C 112:4134–4140CrossRef
go back to reference Tolmachoff ED, Abid AD, Phares DJ et al (2009) Synthesis of nano-phase TiO2 crystalline films over premixed stagnation flames. Proc Combust Inst 32:1839–1845CrossRef Tolmachoff ED, Abid AD, Phares DJ et al (2009) Synthesis of nano-phase TiO2 crystalline films over premixed stagnation flames. Proc Combust Inst 32:1839–1845CrossRef
go back to reference Viskanta R (1993) Heat transfer to impinging isothermal gas and flame jets. Exp Therm Fluid Sci 6:111–134CrossRef Viskanta R (1993) Heat transfer to impinging isothermal gas and flame jets. Exp Therm Fluid Sci 6:111–134CrossRef
go back to reference Waldmann L, Schmitt KH (1966) Thermophoresis and diffusiophoresis of aerosols. Aerosol Sci 137–162 Waldmann L, Schmitt KH (1966) Thermophoresis and diffusiophoresis of aerosols. Aerosol Sci 137–162
go back to reference Wang JJ, Li SQ, Yan W et al (2011) Synthesis of TiO2 nanoparticles by premixed stagnation swirl flames. Proc Combust Inst 33:1925–1932CrossRef Wang JJ, Li SQ, Yan W et al (2011) Synthesis of TiO2 nanoparticles by premixed stagnation swirl flames. Proc Combust Inst 33:1925–1932CrossRef
go back to reference Yan W, Li S, Zhang Y et al (2010) Effects of dipole moment and temperature on the interaction dynamics of titania nanoparticles during agglomeration. J Phys Chem C 114:10755–10760CrossRef Yan W, Li S, Zhang Y et al (2010) Effects of dipole moment and temperature on the interaction dynamics of titania nanoparticles during agglomeration. J Phys Chem C 114:10755–10760CrossRef
Metadata
Title
Deposition of Nanoparticles in Stagnation Flames
Author
Dr. Yiyang Zhang
Copyright Year
2017
Publisher
Springer Berlin Heidelberg
DOI
https://doi.org/10.1007/978-3-662-53615-5_5

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