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Modeling electrophoretic deposition on porous non-conducting substrates using statistical design of experiments

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dc.contributor.author Compson, C.
dc.contributor.author Liu, M.L.
dc.contributor.author Besra, L.
dc.contributor.author Earl, D.
dc.date.accessioned 2018-10-01T12:22:23Z
dc.date.available 2018-10-01T12:22:23Z
dc.date.issued 2006
dc.identifier.citation Journal Of The American Ceramic Society, 89(9), 2006: 2787-2795
dc.identifier.issn 0002-7820
dc.identifier.uri http://ore.immt.res.in/handle/2018/1191
dc.description.abstract Statistical design of experiments was used to model electrophoretic deposition of yittria-stabilized zirconia (YSZ) particles on porous, non-conducting NiO-YSZ substrates. A 2(3)-full-factorial matrix with three repetitions of the centerpoint was augmented with six axial runs and two additional centerpoints to form an inscribed central composite design. Fixed ranges of substrate firing temperature (1100 degrees-1300 degrees C), deposition voltage (50-300 V), and deposition time (1-5 min) were used as the independent design variables to model responses of YSZ deposition thickness, area-specific interfacial resistance (ASR), and power density. Regression equations were determined, which were used to optimize deposition parameters based on the desired responses of low interfacial polarization resistance and high-power density. Low substrate firing temperature (1100 degrees C) combined with a low voltage (50 V) and minimal deposition time (1 min) resulted in a 6 mu m-thick YSZ film, a power density of 628 mW/cm(2), and an ASR of 0.21 Omega.cm(2). Increasing the substrate firing temperature, voltage, and time to 1174 degrees C, 215 V, and 3 minutes, respectively, reduced the ASR to 0.19 Omega.cm(2), increased YSZ film thickness to 25 mu m, but had only a negligible effect on power density (600 mW/cm(2)).
dc.language en
dc.publisher Blackwell
dc.relation.isreferencedby SCI
dc.rights Copyright [2006]. All efforts have been made to respect the copyright to the best of our knowledge. Inadvertent omissions, if brought to our notice, stand for correction and withdrawal of document from this repository.
dc.subject Materials Sciences
dc.title Modeling electrophoretic deposition on porous non-conducting substrates using statistical design of experiments
dc.type Journal Article
dc.affiliation.author Georgia Inst Technol, Sch Mat Sci & Engn, Atlanta, GA 30332 USA


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