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Droplets and sprays = simple models ...
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Sazhin, S. S.
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Droplets and sprays = simple models of complex processes /
Record Type:
Electronic resources : Monograph/item
Title/Author:
Droplets and sprays/ by Sergei S. Sazhin.
Reminder of title:
simple models of complex processes /
Author:
Sazhin, S. S.
Published:
Cham :Springer International Publishing : : 2022.,
Description:
xxi, 597 p. :ill., digital ;24 cm.
[NT 15003449]:
Spray Formation and Penetration -- Heating of Non-evaporating Droplets -- Heating and Evaporation of Mono-component Droplets -- Heating and Evaporation of Multi-component Droplets -- Processes in Composite Droplets -- Kinetic Modelling of Droplet Heating and Evaporation -- Heating, Evaporation and Autoignition of Sprays -- Concluding Comments.
Contained By:
Springer Nature eBook
Subject:
Hydrodynamics - Mathematical models. -
Online resource:
https://doi.org/10.1007/978-3-030-99746-5
ISBN:
9783030997465
Droplets and sprays = simple models of complex processes /
Sazhin, S. S.
Droplets and sprays
simple models of complex processes /[electronic resource] :by Sergei S. Sazhin. - Cham :Springer International Publishing :2022. - xxi, 597 p. :ill., digital ;24 cm. - Mathematical engineering,2192-4740. - Mathematical engineering..
Spray Formation and Penetration -- Heating of Non-evaporating Droplets -- Heating and Evaporation of Mono-component Droplets -- Heating and Evaporation of Multi-component Droplets -- Processes in Composite Droplets -- Kinetic Modelling of Droplet Heating and Evaporation -- Heating, Evaporation and Autoignition of Sprays -- Concluding Comments.
This book acts as a guide to simple models that describe some of the complex fluid dynamics, heat/mass transfer and combustion processes in droplets and sprays. Attention is focused mainly on the use of classical hydrodynamics, and a combination of kinetic and hydrodynamic models, to analyse the heating and evaporation of mono- and multi-component droplets. The models were developed for cases when small and large numbers of components are present in droplets. Some of these models are used for the prediction of time to puffing/micro-explosion of composite water/fuel droplets - processes that are widely used in combustion devices to stimulate disintegration of relatively large droplets into smaller ones. The predictions of numerical codes based on these models are validated against experimental results where possible. In most of the models, droplets are assumed to be spherical; some preliminary results of the generalisation of these models to the case of non-spherical droplets, approximating them as spheroids, are presented.
ISBN: 9783030997465
Standard No.: 10.1007/978-3-030-99746-5doiSubjects--Topical Terms:
661499
Hydrodynamics
--Mathematical models.
LC Class. No.: QA911 / .S39 2022
Dewey Class. No.: 532.5
Droplets and sprays = simple models of complex processes /
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Spray Formation and Penetration -- Heating of Non-evaporating Droplets -- Heating and Evaporation of Mono-component Droplets -- Heating and Evaporation of Multi-component Droplets -- Processes in Composite Droplets -- Kinetic Modelling of Droplet Heating and Evaporation -- Heating, Evaporation and Autoignition of Sprays -- Concluding Comments.
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This book acts as a guide to simple models that describe some of the complex fluid dynamics, heat/mass transfer and combustion processes in droplets and sprays. Attention is focused mainly on the use of classical hydrodynamics, and a combination of kinetic and hydrodynamic models, to analyse the heating and evaporation of mono- and multi-component droplets. The models were developed for cases when small and large numbers of components are present in droplets. Some of these models are used for the prediction of time to puffing/micro-explosion of composite water/fuel droplets - processes that are widely used in combustion devices to stimulate disintegration of relatively large droplets into smaller ones. The predictions of numerical codes based on these models are validated against experimental results where possible. In most of the models, droplets are assumed to be spherical; some preliminary results of the generalisation of these models to the case of non-spherical droplets, approximating them as spheroids, are presented.
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Engineering (SpringerNature-11647)
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EB QA911 .S39 2022
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