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Eng. Technol., 4, 203\nOblak, 1974, Coherency strengthening in Ni base alloys hardened by DO22 γ′ precipitates, Metall. Trans. A., 5, 143, 10.1007\u002FBF02642938\nManriquez, 1992, The high temperature stability of IN718 derivative alloys, 507\nStrößner, 2015, Mechanical and microstructural investigation of nickel-based superalloy IN718 manufactured by selective laser melting (SLM), Adv. Eng. Mater., 17, 1099, 10.1002\u002Fadem.201500158\nTrosch, 2016, Microstructure and mechanical properties of selective laser melted Inconel 718 compared to forging and casting, Mater. Lett., 164, 428, 10.1016\u002Fj.matlet.2015.10.136\nPaulonis, 1969, Precipitation in nickel - base alloy 718, ASM (Amer. Soc. Metals), Trans. Quart., 62, 611\nZhang, 2018, Constrained lattice misfit measurement in bulk Inconel 718 using high resolution neutron diffraction, 439\nCozar, 1973, Morphology of γ′ and γ′′ precipitates and thermal stability of inconel 718 type alloys, Metall. 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A, 47, 3235, 10.1007\u002Fs11661-016-3480-0\nHe, 1998, Interfaces in a modified Inconel 718 with compact precipitates, Acta Mater., 46, 215, 10.1016\u002FS1359-6454(97)00221-8\nDetor, 2018, Enabling large superalloy parts using compact coprecipitation of γ′ and γ′′, Metall. Mater. Trans. A, 49, 708, 10.1007\u002Fs11661-017-4356-7\nShi, 2019, Growth behavior of γ′\u002Fγ′′ coprecipitates in Ni-Base superalloys, Acta Mater., 164, 220, 10.1016\u002Fj.actamat.2018.10.028\nKusabiraki, 1994, Morphology of γ″ precipitates in Ni-18Cr-16Fe-5Nb-3Mo alloy, Tetsu-to-Hagane, 80, 348, 10.2355\u002Ftetsutohagane1955.80.4_348\nKusabiraki, 1996, Lattice constants of γ and γ′′ phases and γ′′\u002Fγ lattice mismatches in a Ni-15Cr-8Fe-6Nb alloy, ISIJ Int., 36, 310, 10.2355\u002Fisijinternational.36.310\nKusabiraki, 1999, Effects of cold rolling and annealing on the structure of γ″ precipitates in a Ni-18Cr-16Fe-5Nb-3Mo alloy, Metall. Mater. Trans. 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A, 46, 1125, 10.1007\u002Fs11661-014-2727-x\nCieslak, 1989, The solidification metallurgy of alloy 718 and other Nb-containing superalloys, 59\nChang, 1994, Existence of laves phase in Nb-hardened superalloys, 683\nSchirra, 1991, The effect of laves phase on the mechanical properties of wrought and cast + HIP Inconel 718, 375\nFrank, 2012, 724\nChaturvedi, 1987, Effect of particle size on the creep rate of superalloy Inconel 718, Mater. Sci. Eng., 89, 7, 10.1016\u002F0025-5416(87)90264-3\nHe, 1995, Boundary in γ″ precipitates in inconel 718 nickel-base superalloy, Acta Metall. Mater., 43, 4403, 10.1016\u002F0956-7151(95)00124-E\nCandioto, 2015, Characterization of the superalloy Inconel 718 after double aging heat treatment, 293\nPan, 2011, Segregation and diffusion behavior of niobium in a highly alloyed nickel-base superalloy, Trans. Nonferrous Metals Soc. China, 21, 2402, 10.1016\u002FS1003-6326(11)61027-3\nConnétable, 2012, Diffusion and segregation of niobium in fcc-nickel, J. Phys. Condens. Matter, 24, 1, 10.1088\u002F0953-8984\u002F24\u002F9\u002F095010\nCarlson, 1989, Microstructural characterization of cast 718, 79\nSaunders, 2003, Using JMatPro to model materials properties and behavior, JOM, 55, 60, 10.1007\u002Fs11837-003-0013-2\nSundararaman, 1985, Heterogeneous precipitation of the γ″ phase in Inconel 625, Mater. Sci. Forum, 3, 273, 10.4028\u002Fwww.scientific.net\u002FMSF.3.273\nKirman, 1970, The precipitation of Ni3Nb phases in a Ni−Fe−Cr−Nb alloy, Metall. Mater. Trans. B Process Metall. Mater. Process. 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Lett., 73, 92, 10.1016\u002Fj.matlet.2012.01.014\nRoss, 2019, The role of ultrafine crystalline behavior and trace impurities in copper on intermetallic void formation [J], ACS Appl. Electron. Mater., 1, 88, 10.1021\u002Facsaelm.8b00029\nChen, 2019, The Zn accumulation behavior, phase evolution and void formation in Sn-xZn\u002FCu systems by considering trace Zn: a combined experimental and theoretical study [J], J. Mater. Res. 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Mech. Behav. Biomed. Mater., 59, 226, 10.1016\u002Fj.jmbbm.2015.11.015\nPoate, 2013\nSingh, 2012, Laser surface engineering of magnesium alloys: a review, JOM, 64, 716, 10.1007\u002Fs11837-012-0340-2\nDong, 2010\nYan, 2013, Activation of {10−12} twinning and slip in high ductile Mg–2.0Zn–0.8Gd rolled sheet with non-basal texture during tensile deformation at room temperature, J. Alloys Compd., 566, 98, 10.1016\u002Fj.jallcom.2013.03.008\nWu, 2005, γ→ε martensite transformation and twinning deformation in fcc cobalt during surface mechanical attrition treatment, Scr. Mater., 52, 547, 10.1016\u002Fj.scriptamat.2004.12.004\nKusinski, 2012, Laser modification of the materials surface layer–a review paper, Bull. Pol. Acad. Sci.Tech. Sci., 60, 711\nZhang, 2014, Deep drawability and drawing behaviour of AZ31 alloy sheets with different initial texture, J. Alloys Compd., 615, 302, 10.1016\u002Fj.jallcom.2014.06.199\nPinto, 2003, Microstructural and hardness investigation of an aluminum–copper alloy processed by laser surface melting, Mater. Charact., 50, 249, 10.1016\u002FS1044-5803(03)00091-3\nPacquentin, 2015, Effect of microstructure and chemical composition on localized corrosion resistance of a AISI 304L stainless steel after nanopulsed-laser surface melting, Appl. Surf. Sci., 356, 561, 10.1016\u002Fj.apsusc.2015.08.015\nLiu, 2016, Characterization of AZ31 magnesium alloy by duplex process combining laser surface melting and plasma electrolytic oxidation, Appl. Surf. Sci., 382, 47, 10.1016\u002Fj.apsusc.2016.04.047\nTaltavull, 2014, Corrosion behaviour of laser surface melted magnesium alloy AZ91D, Mater. Des., 57, 40, 10.1016\u002Fj.matdes.2013.12.069\nYoon, 2016, Texture control of 3.04%-Si electrical steel sheets by local laser melting and directional solidification, Mater. 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Thomson, 1887, On the division of space with minimum partitional area, Acta Math, 11, 121, 10.1007\u002FBF02612322\nRivier, 1996, Seifenblasenrhetorik, or the Sound of the Last Trumpet?, Forma, 11, 195\nAlmgren, 1976, Soap bubble clusters, Sci Am, 82, 10.1038\u002Fscientificamerican0776-82\nWeaire, 1994, A counter-example to Kelvin's conjecture on minimal surfaces, Philos Mag Lett, 69, 107, 10.1080\u002F09500839408241577\nWeaire, 1994, A counter-example to Kelvin's conjecture on minimal surfaces, Philos Mag Lett, 70, 345, 10.1080\u002F09500839408240997\nRivier, 1996, Organized packing, Forma, 11, 223\nKusner, 1996, Comparing the Weaire-Phelan equal-volume foam to Kelvin's foam, Forma, 11, 233\nAboav, 1996, Kelvin's ‘division of space’, and its aftermath, Forma, 11, 243\nKraynik, 1996, Elastic–plastic behaviour of a Kelvin foam, Forma, 11, 255\nCoxeter, 1958, Close-packing and froth, Ill J Math, 2, 746, 10.1215\u002Fijm\u002F1255448337\nPhelan, 1996, Generalisations of the Kelvin problem and other minimal problems, Forma, 11, 287\nHonda, 1979, Establishment of epidermal cell columns in mammalian skin: computer simulation, J Theor Biol, 81, 745, 10.1016\u002F0022-5193(79)90279-0\nTanemura, 1996, Kelvin polyhedra and analysis of crystallization, Forma, 11, 317\nGabbrielli, 2009, A new counter-example to Kelvin's conjecture on minimal surfaces, Philos Mag Lett, 89, 483, 10.1080\u002F09500830903022651\nSullivan, 2008, A general tetrakaidecahedron model for open-celled foams, Int J Solids Struct, 45, 1754, 10.1016\u002Fj.ijsolstr.2007.10.028\nRoss, 1986, On the morphology of bubble clusters and polyhedral foams, Colloids Surf, 21, 179, 10.1016\u002F0166-6622(86)80090-7\nWilliams, 1968, Space-filling polyhedron: its relation to aggregates of soap bubbles, plant cells, and metal crystallites, Science, 161, 276, 10.1126\u002Fscience.161.3838.276\nSaadatfar, 2008, Ordered cylindrical foam structures with internal bubbles, Philos Mag Lett, 88, 661, 10.1080\u002F09500830802307658\nvan der Net, 2007, Crystalline arrangements of microbubbles in monodisperse foams, Colloids Surf A, 309, 117, 10.1016\u002Fj.colsurfa.2006.11.056\nKriszt, 2003, Characterization of the cell structure of metallic foams, Pract Metallogr, 40, 537, 10.1515\u002Fpm-2003-401102\nMcDonald, 2006, Characterization of the three-dimensional structure of a metallic foam during compressive deformation, J Microsc (Oxford, U. 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Eng.), 375, 415\nDai, 2010, Correcting and extending the boomsma-poulikakos effective thermal conductivity model for three-dimensional, fluid-saturated metal foams, Int Commun Heat Mass Transfer, 37, 575, 10.1016\u002Fj.icheatmasstransfer.2010.01.015\nMahjoob, 2008, A synthesis of fluid and thermal transport models for metal foam heat exchangers, Int J Heat Mass Transfer, 51, 3701, 10.1016\u002Fj.ijheatmasstransfer.2007.12.012\nMontminy, 2004, The 3D structure of real polymer foams, J Colloid Interface Sci, 280, 202, 10.1016\u002Fj.jcis.2004.07.032\nSaadatfar, 2009, Imaging of metallic foams using X-ray micro-CT, Colloids Surf A, 344, 107, 10.1016\u002Fj.colsurfa.2009.01.008\nBodla, 2010, Microtomography-based simulation of transport through open-cell metal foams, Numer Heat Transfer Part A, 58, 527, 10.1080\u002F10407782.2010.511987\nPerrot, 2007, Periodic reconstruction of porous media: application to open-cell aluminum foams, J Appl Phys, 101, 113538, 10.1063\u002F1.2745095\nLin, 2010, Characterization and analysis of porous, brittle solid structures by X-ray micro computed tomography, JOM, 62, 86, 10.1007\u002Fs11837-010-0188-2\nVabre, 2007, Metallic foams characterization with X-ray microtomography using Medipix2 detector, Nucl Instrum Methods Phys Res Sect A, 576, 169, 10.1016\u002Fj.nima.2007.01.146\nMaire, 2003, X-ray tomography applied to the characterization of cellular materials. related finite element modeling problems, Compos Sci Technol, 63, 2431, 10.1016\u002FS0266-3538(03)00276-8\nWinter, 1999, X-ray computed tomography of ultralightweight metals, Res Nondestruct Eval, 11, 199, 10.1080\u002F09349849909409642\nMichaeli, 2009, Structural analysis of polymeric foams, 51\nIndustrial Computed Tomography Systems\nXradia Solutions Overview\nGhosh, 2009, How good is open-cell metal foam as heat transfer surface?, J Heat Transfer, 131, 1, 10.1115\u002F1.3160537\nGhosh, 2010, Deterioration in heat transfer due to axial conduction of heat in open cell metal foam, 1254, 254\nBhattacharya, 2002, Thermophysical properties of high porosity metal foams, Int J Heat Mass Transfer, 45, 1017, 10.1016\u002FS0017-9310(01)00220-4\nJang, 2008, On the microstructure of open-celled foams and its effect on elastic properties, Int J Solids Struct, 45, 1485",{"EN":1062},"Geometric classification of open-cell metal foams using X-ray micro-computed tomography",{"VOID":1064},"10.1016\u002Fj.matchar.2012.10.001","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS1044580312002641",[1067,1082],{"id":1068,"sortIndex":19,"researcher":18,"roles":1069,"affiliations":1070,"properties":1079},"b8493d1e-09d6-4b77-a82f-c3ce17679dfb",[142],[1071],{"id":18,"sortIndex":19,"affiliation":1072,"properties":18},{"id":1073,"createTime":1074,"updateTime":1074,"relativeEntities":1075,"slug":18,"properties":1076,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},"c4cf104b-4920-4353-a363-3c6331c330fd","2024-01-10T17:22:52.411+00:00",[],{"title":1077},{"VI":1078},"University of Illinois at Urbana Champaign, 1206 W Green St, Urbana, IL, 61801, USA",{"title":1080},{"VI":1081},"Jessica Bock",{"id":1083,"sortIndex":183,"researcher":18,"roles":1084,"affiliations":1085,"properties":1091},"2090d76e-3769-474b-ad67-12445c65e9c1",[142],[1086],{"id":18,"sortIndex":19,"affiliation":1087,"properties":18},{"id":1073,"createTime":1074,"updateTime":1074,"relativeEntities":1088,"slug":18,"properties":1089,"entityType":63,"verifyStatus":17,"verifyTime":18,"verifyNote":18,"syncStatus":17,"languages":18,"translateLanguages":18,"viewCount":19},[],{"title":1090},{"VI":1078},{"title":1092},{"VI":1093},"Anthony M. 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1998, The erosion and abrasion characteristics of alumina coatings plasma-sprayed under different spraying conditions, Tribol Int, 31, 271, 10.1016\u002FS0301-679X(98)00033-4\nCelik, 1997, Effects of some parameters on corrosion behaviour of plasma-sprayed coatings, Surf Coat Technol, 97, 355, 10.1016\u002FS0257-8972(97)00208-9\nGao, 2002, High hardness alumina coatings prepared by low power plasma spraying, Surf Coat Technol, 154, 189, 10.1016\u002FS0257-8972(01)01711-X\nMcpherson, 1981, The relationship between the mechanism of formation, microstructure and properties of plasma-sprayed coatings, Thin Solid Film, 83, 297, 10.1016\u002F0040-6090(81)90633-7\nFriis, 2001, Influence of particle in-flight characteristics on the microstructure of atmospheric plasma sprayed yttria stabilized ZrO2, Surf Coat Technol, 141, 115, 10.1016\u002FS0257-8972(01)01239-7\nMatejicke, 2001, Intrinsic residual stress in single splats produced by thermal spray process, Acta Mater, 49, 1993, 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Electronics Packaging. Glen Ellyn (IL), USA, 1986; p. 631.\nAbd El-Salam, 1985, Egypt J Phys, 16, 337\nAbd El-Salam, 1984, Egypt J Solids, 6, 101\nSaad, 1984, Surf Technol, 22, 73, 10.1016\u002F0376-4583(84)90030-X\nNada, 2002, Radiat Eff Defects Solids, 157, 521, 10.1080\u002F10420150214605\nMc Cormak, 1997, J. Electron. Mater. 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