Analysis And Numerical Simulation Of Modified Bingham Non Newtonian Fluid Flow In Channels And Pipes PDF Download

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Bingham Fluid Flow in the Entrance Region of a Pipe

Bingham Fluid Flow in the Entrance Region of a Pipe
Author: Basma Mokhtar Hussein Mohamed Baioumy
Publisher:
Total Pages: 47
Release: 2019
Genre: Fluid mechanics
ISBN:

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"The isothermal laminar flow of a Bingham fluid in the entrance region of a circular pipe has been studied previously by many authors using different approaches. As current research stands, the momentum integral approach provides analytical results that do not match the boundary-layer thickness experimental data for Newtonian fluid flow. No experimental data is currently available for the velocity profiles in the entrance region for Bingham fluids. The objective of this investigation is to determine the entrance region length in addition to the velocity and pressure profiles in the entrance region using a modified momentum integral method that improves the previously published boundary-layer model. The present work results reach asymptotically the fully developed values and show good agreement with published experimental data for pressure drop in the entrance region. The results are also in good agreement with the boundary-layer thickness experimental data for Newtonian fluid flow."--Abstract.


Bingham Fluid Simulation in Porous Media with Lattice Boltzmann Method

Bingham Fluid Simulation in Porous Media with Lattice Boltzmann Method
Author: José Luis Velázquez Ortega
Publisher:
Total Pages: 0
Release: 2020
Genre: Electronic books
ISBN:

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Generate a lattice Boltzmann model (LBM), which allows to simulate the behavior of a Bingham fluid through a rectangular channel with the D2Q9 model. For this purpose, a relaxation parameter is proposed based on the rheological parameters of the Bingham model. The validation will be carried out with the solution of the movement equation, and velocity profiles will be obtained for three different Bingham numbers (Bn). Other simulations will be made in a rectangular channel in the presence of arbitrarily and randomly generated porous media. The main objective is to propose a method to predict the behavior of non-Newtonian fluids (Bingham fluid) through porous media, which have many applications in the chemical industry avoiding at the same time the expensive experimentation of these systems, with predicting models.