Droplet Deformation Prediction with the Droplet Deformation and Breakup Model (Ddb)

Droplet Deformation Prediction with the Droplet Deformation and Breakup Model (Ddb)
Title Droplet Deformation Prediction with the Droplet Deformation and Breakup Model (Ddb) PDF eBook
Author National Aeronautics and Space Adm Nasa
Publisher Independently Published
Pages 26
Release 2019-01-13
Genre Science
ISBN 9781793959362

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The Droplet Deformation and Breakup Model was used to predict deformation of droplets approaching the leading edge stagnation line of an airfoil. The quasi-steady model was solved for each position along the droplet path. A program was developed to solve the non-linear, second order, ordinary differential equation that governs the model. A fourth order Runge-Kutta method was used to solve the equation. Experimental slip velocities from droplet breakup studies were used as input to the model which required slip velocity along the particle path. The center of mass displacement predictions were compared to the experimental measurements from the droplet breakup studies for droplets with radii in the range of 200 to 700 mm approaching the airfoil at 50 and 90 m/sec. The model predictions were good for the displacement of the center of mass for small and medium sized droplets. For larger droplets the model predictions did not agree with the experimental results. Vargas, Mario Glenn Research Center WBS 648987.02.02.03.10

Droplet deformation prediction with the Droplet Deformation and Breakup Model (DDB)

Droplet deformation prediction with the Droplet Deformation and Breakup Model (DDB)
Title Droplet deformation prediction with the Droplet Deformation and Breakup Model (DDB) PDF eBook
Author Mario Vargas
Publisher
Pages 17
Release 2012
Genre
ISBN

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Droplet Deformation Prediction with the Droplet Deformation and Breakup Model

Droplet Deformation Prediction with the Droplet Deformation and Breakup Model
Title Droplet Deformation Prediction with the Droplet Deformation and Breakup Model PDF eBook
Author Mario Vargas
Publisher BiblioGov
Pages 28
Release 2013-07
Genre
ISBN 9781289156541

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The Droplet Deformation and Breakup Model was used to predict deformation of droplets approaching the leading edge stagnation line of an airfoil. The quasi-steady model was solved for each position along the droplet path. A program was developed to solve the non-linear, second order, ordinary differential equation that governs the model. A fourth order Runge-Kutta method was used to solve the equation. Experimental slip velocities from droplet breakup studies were used as input to the model which required slip velocity along the particle path. The center of mass displacement predictions were compared to the experimental measurements from the droplet breakup studies for droplets with radii in the range of 200 to 700 mm approaching the airfoil at 50 and 90 m/sec. The model predictions were good for the displacement of the center of mass for small and medium sized droplets. For larger droplets the model predictions did not agree with the experimental results.

Droplet Deformation Prediction with the Droplet Deormation and Break Up Model

Droplet Deformation Prediction with the Droplet Deormation and Break Up Model
Title Droplet Deformation Prediction with the Droplet Deormation and Break Up Model PDF eBook
Author Mario Vargas
Publisher BiblioGov
Pages 32
Release 2013-06
Genre
ISBN 9781289120276

Download Droplet Deformation Prediction with the Droplet Deormation and Break Up Model Book in PDF, Epub and Kindle

The Droplet Deformation and Breakup Model was used to predict deformation of droplets approaching the leading edge stagnation line of an airfoil. The quasi-steady model was solved for each position along the droplet path. A program was developed to solve the non-linear, second order, ordinary differential equation that governs the model. A fourth order Runge-Kutta method was used to solve the equation. Experimental slip velocities from droplet breakup studies were used as input to the model which required slip velocity along the particle path. The center of mass displacement predictions were compared to the experimental measurements from the droplet breakup studies for droplets with radii in the range of 200 to 700 mm approaching the airfoil at 50 and 90 m/sec. The model predictions were good for the displacement of the center of mass for small and medium sized droplets. For larger droplets the model predictions did not agree with the experimental results.

Droplet Deformation and Breakup

Droplet Deformation and Breakup
Title Droplet Deformation and Breakup PDF eBook
Author Samuel Hall
Publisher
Pages 160
Release 2008
Genre Aerodynamics
ISBN

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Droplet Deformation and Breakup

Droplet Deformation and Breakup
Title Droplet Deformation and Breakup PDF eBook
Author Samir Khan
Publisher
Pages
Release 2001
Genre
ISBN

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A study of droplet deformation

A study of droplet deformation
Title A study of droplet deformation PDF eBook
Author Hannah Fry
Publisher Lulu.com
Pages 207
Release 2012-09-14
Genre Science
ISBN 1291074317

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In both engineering and medical applications it is often useful to use the knowledge of the conditions under which adhering liquid droplets appear, deform and interact with surrounding fluids, in order to either remove or create them. Examples include the de-wetting of aircraft surfaces and the process of injecting glue into the bloodstream in the treatment of aneurysms. In this study, we look at various methods of modelling a particular class of droplets - those attached to a wall in the presence of an external shear flow.