Numerical simulation of the liquid phase in SnO2 thin film deposition by sol-gel-dip-coating
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作者:
Carvalho, Dayene M.
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State Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, BrazilState Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
Carvalho, Dayene M.
[1
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Maciel, Jorge L. B., Jr.
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State Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, BrazilState Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
Maciel, Jorge L. B., Jr.
[1
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Ravaro, Leandro P.
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State Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, BrazilState Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
Ravaro, Leandro P.
[1
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Garcia, Rogerio E.
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FCT UNESP, Dept Math Stat & Computat DMEC, Presidente Prudente, SP, BrazilState Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
Garcia, Rogerio E.
[2
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Ferreira, Valdemir G.
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Univ Sao Paulo, ICMC, Sao Carlos, SP, BrazilState Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
Ferreira, Valdemir G.
[3
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Scalvi, Luis V. A.
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State Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
UNESP, FC, Dept Phys, Bauru, SP, BrazilState Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
Scalvi, Luis V. A.
[1
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机构:
[1] State Univ Sao Paulo, UNESP, PosGrad Ciencia & Tecnol Mat POSMAT P, Bauru, SP, Brazil
[2] FCT UNESP, Dept Math Stat & Computat DMEC, Presidente Prudente, SP, Brazil
The fluid flow of the liquid phase in the sol-gel-dip-coating process for SnO2 thin film deposition is numerically simulated. This calculation yields useful information on the velocity distribution close to the substrate, where the film is deposited. The fluid modeling is done by assuming Newtonian behavior, since the linear relation between shear stress and velocity gradient is observed. Besides, very low viscosities are used. The fluid governing equations are the Navier-Stokes in the two dimensional form, discretized by the finite difference technique. Results of optical transmittance and X-ray diffraction on films obtained from colloidal suspensions with regular viscosity, confirm the substrate base as the thickest part of the film, as inferred from the numerical simulation. In addition, as the viscosity increases, the fluid acquires more uniform velocity distribution close to the substrate, leading to more homogenous and uniform films.