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Process control strategies in additive manufacturing

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TitleInfo
Title
Process control strategies in additive manufacturing
Name (type = personal)
NamePart (type = family)
Desai
NamePart (type = given)
Rinkal Kishorkumar
NamePart (type = date)
1996-
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Rinkal Kishorkumar Desai
Role
RoleTerm (authority = RULIB)
author
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Ozel
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Tugrul
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Tugrul Ozel
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Advisory Committee
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chair
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NamePart
Rutgers University
Role
RoleTerm (authority = RULIB)
degree grantor
Name (type = corporate)
NamePart
School of Graduate Studies
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school
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Text
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theses
OriginInfo
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2019
DateOther (qualifier = exact); (type = degree)
2019-05
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2019
Language
LanguageTerm (authority = ISO 639-3:2007); (type = text)
English
Abstract (type = abstract)
Additive manufacturing (or 3D-printing) processes such as fused filament fabrication of polymer constructs and laser based sintering and fusion of metal powder which can produce nearly fully dense parts with complex geometry by following layer-to-layer scanning strategies on feedstock material with pre-specified layer thickness find many applications in industry ranging from prototype fabrication to actual parts and components production.
In this thesis, we study the control schemes that can be developed in improving the extruded polymer consistency in form and temperature, and fused track quality in laser-based melting and fusion by using observable process variables and applying control on controllable variables. Specifically, system identification methods are used to obtain transfer function for Liquefier block in a fused filament fusion systems and simulations are conducted to introduce a suitable control strategy. The control strategy simulations for temperature control of Liquefier block takes in accounts the load to the system (filament feed rate) and a suitable feedback compensator is designed. The Lead-lead feedback compensator has proved to provide faster settling time and negligible steady state error. Also, an XY positioning system is considered for studying the trajectory control using feedback and iterative learning control schemes. The iterative learning control method is found to be very effective in reducing contour error during tracking of trajectories with sharp corners. The results obtained from these studies are expected to provide more information about the additive manufacturing process control which can be used for further validation of modelling studies or for industrial purposes.
Subject (authority = local)
Topic
Additive manufacturing
Subject (authority = RUETD)
Topic
Industrial and Systems Engineering
Subject (authority = LCSH)
Topic
Three-dimensional printing
RelatedItem (type = host)
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Title
Rutgers University Electronic Theses and Dissertations
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ETD_9842
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application/pdf
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text/xml
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1 online resource (x, 63 pages) : illustrations
Note (type = degree)
M.S.
Note (type = bibliography)
Includes bibliographical references
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School of Graduate Studies Electronic Theses and Dissertations
Identifier (type = local)
rucore10001600001
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NjNbRU
Identifier (type = doi)
doi:10.7282/t3-ebkx-9d65
Genre (authority = ExL-Esploro)
ETD graduate
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The author owns the copyright to this work.
RightsHolder (type = personal)
Name
FamilyName
Desai
GivenName
Rinkal
MiddleName
Kishorkumar
Role
Copyright Holder
RightsEvent
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Permission or license
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2019-04-12 14:13:36
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Rinkal Desai
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Copyright holder
Affiliation
Rutgers University. School of Graduate Studies
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Author Agreement License
Detail
I hereby grant to the Rutgers University Libraries and to my school the non-exclusive right to archive, reproduce and distribute my thesis or dissertation, in whole or in part, and/or my abstract, in whole or in part, in and from an electronic format, subject to the release date subsequently stipulated in this submittal form and approved by my school. I represent and stipulate that the thesis or dissertation and its abstract are my original work, that they do not infringe or violate any rights of others, and that I make these grants as the sole owner of the rights to my thesis or dissertation and its abstract. I represent that I have obtained written permissions, when necessary, from the owner(s) of each third party copyrighted matter to be included in my thesis or dissertation and will supply copies of such upon request by my school. I acknowledge that RU ETD and my school will not distribute my thesis or dissertation or its abstract if, in their reasonable judgment, they believe all such rights have not been secured. I acknowledge that I retain ownership rights to the copyright of my work. I also retain the right to use all or part of this thesis or dissertation in future works, such as articles or books.
Copyright
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Copyright protected
Availability
Status
Open
Reason
Permission or license
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2019-04-22T17:08:26
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