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<?xml version='1.0' encoding='UTF-8'?> <record xmlns="http://www.loc.gov/MARC21/slim"> <leader>00000nam##2200000uu#4500</leader> <datafield tag="245" ind1=" " ind2=" "> <subfield code="a">Estimation of Viscosity of Alloys Using Gibbs Free Energy of Mixing and Geometric Model</subfield> </datafield> <controlfield tag="001">263680</controlfield> <datafield tag="653" ind1=" " ind2=" "> <subfield code="a">activation energy of viscous flow, mixing Gibbs free energy, geometric models, Chou' s model, multi component alloys</subfield> </datafield> <datafield tag="520" ind1=" " ind2=" "> <subfield code="a"><p>Abstract&mdash;In the present work, using mixing Gibbs free energies and Chou&rsquo;s general solution model (GSM),<br> by considering the excess activation energies from the binary subsystems, the viscosities of the simple ternary<br> Au&ndash;Ag&ndash;Cu, Al&ndash;Cu&ndash;Si, and Fe&ndash;Ni&ndash;Co and liquid alloys of binary subsystems have been evaluated via well<br> known Chou model and physical models, such as Kaptay, Kozlov&ndash;Romanov&ndash;Petrov (KRP), and Schick<br> et al. at temperatures 1373, 1375, and 1873 K. A comparison between the evaluated results and experimental<br> values of the Au&ndash;Ag&ndash;Cu, Al&ndash;Cu&ndash;Si, and Fe&ndash;Ni&ndash;Co ternary alloys was carried out. In this study, the success<br> of the application of the aforementioned geometric and physical models to the viscosity calculations of<br> the alloys discussed and the viscosite data are presented to the literature. In order to determine the applicability<br> success, the mean square deviation analysis was performed. According to the values in this table, Schick<br> et al. and KRP models which are derived from the physical quantities among the models discussed provide<br> best description of the viscosity for the Al&ndash;Cu&ndash;Si and Au&ndash;Ag&ndash;Cu alloys, respectivel</p></subfield> </datafield> <datafield tag="024" ind1=" " ind2=" "> <subfield code="a">10.1134/S003602442103002X</subfield> <subfield code="2">doi</subfield> </datafield> <datafield tag="909" ind1="C" ind2="O"> <subfield code="o">oai:aperta.ulakbim.gov.tr:263680</subfield> </datafield> <datafield tag="650" ind1="1" ind2="7"> <subfield code="2">opendefinition.org</subfield> <subfield code="a">cc-by</subfield> </datafield> <datafield tag="980" ind1=" " ind2=" "> <subfield code="b">article</subfield> <subfield code="a">publication</subfield> </datafield> <datafield tag="856" ind1="4" ind2=" "> <subfield code="z">md5:48a788bf70da7f925f2cf937ad911ff3</subfield> <subfield code="s">1180139</subfield> <subfield code="u">https://aperta.ulakbim.gov.trrecord/263680/files/A-25 Russian J. Phys. Chem. Dogan-Arslan2021_Article_EstimationOfViscosityOfAlloysU.pdf</subfield> </datafield> <datafield tag="100" ind1=" " ind2=" "> <subfield code="0">(orcid)0000-0003-1509-7725</subfield> <subfield code="u">Kahramanmaraş Sütçü İmam Üniversitesi</subfield> <subfield code="a">Hüseyin ARSLAN</subfield> </datafield> <datafield tag="542" ind1=" " ind2=" "> <subfield code="l">open</subfield> </datafield> <datafield tag="540" ind1=" " ind2=" "> <subfield code="u">http://www.opendefinition.org/licenses/cc-by-sa</subfield> <subfield code="a">Creative Commons Attribution Share-Alike</subfield> </datafield> <datafield tag="041" ind1=" " ind2=" "> <subfield code="a">eng</subfield> </datafield> <datafield tag="260" ind1=" " ind2=" "> <subfield code="c">2019-08-27</subfield> </datafield> <controlfield tag="005">20240220163125.0</controlfield> </record>
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