Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation

Planar Flow melt spinning is a one step manufacturing process to produce amorphous ribbons by rapid solidification technique. Formation of amorphous structure in the ribbon highly depends on the rate of heat transfer between the melt puddle and the cooling wheel. The present study numerically analyz...

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Main Author: Sowjanya Madireddi
Format: Article
Language:English
Published: Elsevier 2020-10-01
Series:Engineering Science and Technology, an International Journal
Subjects:
XRD
Online Access:http://www.sciencedirect.com/science/article/pii/S221509861932316X
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spelling doaj-54f4b12677de4a5f9c98f490e763f6d72020-11-25T04:00:45ZengElsevierEngineering Science and Technology, an International Journal2215-09862020-10-0123511621170Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formationSowjanya Madireddi0Department of Mechanical Engineering, CVR College of Engineering, Hyderabad 501510, IndiaPlanar Flow melt spinning is a one step manufacturing process to produce amorphous ribbons by rapid solidification technique. Formation of amorphous structure in the ribbon highly depends on the rate of heat transfer between the melt puddle and the cooling wheel. The present study numerically analyzes the heat transfer in the melt puddle at the melt wheel contact and its influence on the amorphous structure in the end product. Space between cooling wheel and nozzle wall is taken as the computational domain initially filled with air. Flow, Energy, momentum equations along with Volume of fluid equation are employed to analyze the heat transfer and ribbon growth in the melt puddle. Geometric re-construction scheme is employed to show the melt and air boundaries in a two fluid flow domain. Numerical analysis shows a temperature gradient across the ribbon thickness. With increase in thickness the gradient is observed to increase. Experimental investigation has shown an increase in crystalline structure in the ribbon with thickness and shows a difference in XRD taken on both sides of the ribbons. The temperature gradient across the thickness of the ribbon is responsible for this phenomenon. As the model could predict this phenomenon, it can be used to predict the type of ribbon obtained at a set of process conditions prior to the experiment, thereby helps to avoid production of undesirable crystalline ribbons.http://www.sciencedirect.com/science/article/pii/S221509861932316XMelt spinningAmorphous ribbonsHeat transferXRDMelt puddle
collection DOAJ
language English
format Article
sources DOAJ
author Sowjanya Madireddi
spellingShingle Sowjanya Madireddi
Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation
Engineering Science and Technology, an International Journal
Melt spinning
Amorphous ribbons
Heat transfer
XRD
Melt puddle
author_facet Sowjanya Madireddi
author_sort Sowjanya Madireddi
title Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation
title_short Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation
title_full Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation
title_fullStr Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation
title_full_unstemmed Effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation
title_sort effect of heat transfer between melt puddle and cooling wheel on amorphous ribbon formation
publisher Elsevier
series Engineering Science and Technology, an International Journal
issn 2215-0986
publishDate 2020-10-01
description Planar Flow melt spinning is a one step manufacturing process to produce amorphous ribbons by rapid solidification technique. Formation of amorphous structure in the ribbon highly depends on the rate of heat transfer between the melt puddle and the cooling wheel. The present study numerically analyzes the heat transfer in the melt puddle at the melt wheel contact and its influence on the amorphous structure in the end product. Space between cooling wheel and nozzle wall is taken as the computational domain initially filled with air. Flow, Energy, momentum equations along with Volume of fluid equation are employed to analyze the heat transfer and ribbon growth in the melt puddle. Geometric re-construction scheme is employed to show the melt and air boundaries in a two fluid flow domain. Numerical analysis shows a temperature gradient across the ribbon thickness. With increase in thickness the gradient is observed to increase. Experimental investigation has shown an increase in crystalline structure in the ribbon with thickness and shows a difference in XRD taken on both sides of the ribbons. The temperature gradient across the thickness of the ribbon is responsible for this phenomenon. As the model could predict this phenomenon, it can be used to predict the type of ribbon obtained at a set of process conditions prior to the experiment, thereby helps to avoid production of undesirable crystalline ribbons.
topic Melt spinning
Amorphous ribbons
Heat transfer
XRD
Melt puddle
url http://www.sciencedirect.com/science/article/pii/S221509861932316X
work_keys_str_mv AT sowjanyamadireddi effectofheattransferbetweenmeltpuddleandcoolingwheelonamorphousribbonformation
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