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               <dc:title>X-ray line profile analysis of the ball-milled Fe-30Co alloy</dc:title>
               <dc:creator>Laala-Bouali, H.</dc:creator>
               <dc:creator>Bentayeb, F. Z.</dc:creator>
               <dc:creator>Louidi, S.</dc:creator>
               <dc:creator>Guo, X.</dc:creator>
               <dc:creator>Tria, S.</dc:creator>
               <dc:creator>Suñol Martínez, Joan Josep</dc:creator>
               <dc:creator>Escoda i Acero, Ma. Lluïsa</dc:creator>
               <dc:subject>Microscòpia electrònica d'escombratge</dc:subject>
               <dc:subject>Scanning electron microscopy</dc:subject>
               <dc:subject>Microestructura</dc:subject>
               <dc:subject>Microstructure</dc:subject>
               <dc:subject>Materials nanoestructurats -- Propietats mecàniques</dc:subject>
               <dc:subject>Nanostructured materials -- Mechanical properties</dc:subject>
               <dc:subject>Metalls de transició -- Aliatges</dc:subject>
               <dc:subject>Transition metals -- Alloys</dc:subject>
               <dc:description>This work deals with the microstructural properties of the Fe-30Co alloy prepared by ball milling of elemental iron and cobalt powders. The obtained mixed powder has been characterized by means of scanning electron microscope, X-ray microanalysis, laser diffraction, X-ray diffraction and microhardness measurements. X-ray line profile analysis based on the Rietveld method and adopting two different models has been used for the microstructural study. The refinement of the X-ray patterns shows that after 3 h of high energy milling the Fe(Co) is formed. The obtained Fe(Co) solid solution is characterized by body centered cubic structure with a lattice parameter a = 0.28564 ± 0.00004 nm and an ellipsoidal crystallite and microstrain field. The dissolution of cobalt in iron matrix is accompanied by the compression of the crystalline lattice by 0.37%. The progress of milling process produces an increase of the Debye-Waller factor and the dislocation density leading to the hardening of the powder. The variation of microhardness with milling time shows a change in hardening mechanisms</dc:description>
               <dc:description>Financial support from MICYT MAT2006-13925-C02-02 (FEDER) and DURSI 2005SGR-00201 projects is acknowledged</dc:description>
               <dc:date>2024-06-18T11:49:31Z</dc:date>
               <dc:date>2024-06-18T11:49:31Z</dc:date>
               <dc:date>info:eu-repo/date/embargoEnd/2026-01-01</dc:date>
               <dc:date>info:eu-repo/date/embargoEnd/2026-01-01</dc:date>
               <dc:date>2013-01-01</dc:date>
               <dc:type>info:eu-repo/semantics/article</dc:type>
               <dc:type>info:eu-repo/semantics/publishedVersion</dc:type>
               <dc:identifier>http://hdl.handle.net/10256/12727</dc:identifier>
               <dc:relation>info:eu-repo/semantics/altIdentifier/doi/10.1016/j.apt.2012.04.007</dc:relation>
               <dc:relation>info:eu-repo/semantics/altIdentifier/issn/0921-8831</dc:relation>
               <dc:relation>info:eu-repo/semantics/altIdentifier/eissn/1568-5527</dc:relation>
               <dc:relation>info:eu-repo/grantAgreement/MEC//MAT2006-13925-C02-02/ES/PROPIEDADES MAGNETICAS Y TERMOELASTICAS DE MATERIALES PARA APLICACIONES EN SENSORES MAGNETOINDUCTIVOS Y EN MEMORIAS MAGNETICAS DE FORMA/</dc:relation>
               <dc:relation>AGAUR/2005-2008/2005 SGR-00201</dc:relation>
               <dc:rights>Tots els drets reservats</dc:rights>
               <dc:rights>info:eu-repo/semantics/embargoedAccess</dc:rights>
               <dc:publisher>Elsevier</dc:publisher>
               <dc:source>© Advanced Powder Technology, 2013, vol. 24, núm. 1, p. 168-174</dc:source>
               <dc:source>Articles publicats (D-F)</dc:source>
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