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Dugne, Thermodynamic assessment of the Fe–U binary system. J. Phase Equilib. 24(2), 122–131 (2003)\nM.H.G. Jacobs, R. Schmid-Fetzer, Phase behavior and thermodynamic properties in the system Fe–Al. CALPHAD 33(1), 170–178 (2009)\nJ. Burke, P.H. Dixon, The α → β phase transformation in pure uranium. J. Nucl. Mater. 7(1), 38–45 (1962)",{"EN":213},"\n                β-U could be metastably retained at room temperature when alloyed with various elements such as gallium. Since iron is a common impurity, we investigated two different kinetic processes which occurs simultaneously; one is the \n                  \n                    \n                  \n                  $$ \\beta \\to \\alpha $$\n                  \n                    \n                  \n                 transformation and the other is the precipitation of the U6Fe phase from the iron dilute U(Ga)–Fe alloy. 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Cox, Development of IN-646, a cast wear-resistant, air hardening steel. Foundry Trade J. 13, 633–638 (1975)\nG.P. Krielaart, C.M. Brakman, S. Van Der Swaag, Analysis of phase transformation in Fe–C alloys using differential scanning calorimetry. J. Mater. Sci. 31, 1501–1508 (1996)\nM. Gojic, L. Kosec, P. Matrovic, The effect of tempering temperature on mechanical properties and microstructure of low alloy Cr and CrMo steel. J. Mater. Sci. 33, 395–403 (1998)\nM. Gojic, M. Suceska, M. Rajic, Thermal analysis of low alloy Cr–Mo steel. J. Therm. Anal. Calorim. 75, 947–956 (2004)\nW.F. Hemminger, H.K. Cammenga, Methoden der Thermishen Analyse (Springer, Berlin, 1989)\nR.F. Speyer, Thermal Analysis of Materials (Marcel Dekker, New York, 1994)\nS. Raju, B. Jeya Ganesh, A. Banerjee, E. Mohandas, Characterisation of thermal stability and phase transformation energetics in tempered 9Cr–1Mo steel using drop and differential scanning calorimetry. Mater. Sci. Eng. A 464, 29–37 (2007). doi:10.1016\u002Fj.msea.2007.01.127\nC. Garcia De Andres, F.G. Caballero, C. Capdevilla, L.F. Alvarez, Application of dilatometric analysis to the study of solid–solid phase transformations in steels. Mater. Charact. 48, 101–111 (2002)\nR.L. Bodnar, T. Ohhashi, R.I. Jaffe, Effects of Mn, Si and purity on the design of 3.5NiCrMoV, 1CrMoV, and 2.25Cr–1M0 bainitic alloy steel. Metall. Trans. A 20A, 1445–1460 (1989)\nH.K.D.H. Bhadeshia, Bainite in Steel (The Institute of Materials, London, 1992)\nJ.M. Robertson, The microstructure of rapidly cooled steel. J. Iron Steel Inst. 119, 391–419 (1929)\nE.S. Davenport, E.C. Bain, Transformation of austenite at subcritical temperatures constant. Trans. Met. Soc. AIME 90, 117–154 (1930)\nW. Steven, A.G. Haynes, The temperature of formation of martensite and bainite in low alloy steels. J. Iron Steel Inst. 183, 349–359 (1956)\nJ.S. Kirkaldy, D. Venugopalan, In: Phase Transformations in Ferrous Industry, A.R Marder, J.I. Goldstein (eds.), TMS-AIME, Warrendale, PA, pp 125 (1984)\nZ. Zhao, C. Liu, Y. Liu, D.O. Northwood, A new empirical formula for the bainite upper temperature limit of steel. J. Mater. Sci. 36, 5045–5056 (2001)\nH.E. Boyer, Atlas of Isothermal transformation and Cooling Transformation Diagrams, American Society for Metals, Metals Park, pp 52 (1977)\nT. Kunitake, Y. Okada, The estimation of bainite transformation temperatures in steels by the empirical formulas. J. Iron Steel Inst. 84, 137–141 (1998)\nK.W. Andrews, Empirical formulae for the calculation of some transformation temperatures. J. Iron Steel Inst. 203, 721–727 (1965)\nH.K.D.H. Bhadeshia, A.R. Waugh, Bainite: an atom probe study of the incomplete reaction phenomenon. Acta Metall. 30, 775–784 (1982)\nL.C. Chang, H.K.D.H. Bhadeshia, Microstructure of lower bainite formed at large undercoolings below the bainite start temperature. Mater. Sci. Technol. 12, 233–236 (1996)\nH.K.D.H. Bhadeshia, E. Keehan, L. Karlsson, H.O. Andrén, Coalesced bainite. Trans. Ind. Inst. Met. 59, 689–694 (2006)\nE. Keehan, L. Karlsson, H.O. Andrèn, H.K.D.H. Bhadeshia, New developments with C–Mn–Ni high strength steel weld metals, part A—microstructure. Weld. J. 85, 200s–210s (2006)\nC. Garcia-Mateo, T. Sourmail, F.G. Caballero, C. Capdevila, C. Garcia de Andreis, New approach for the bainite start temperature calculation in steels. Mater. Sci. Technol. 21, 934–938 (2005)\nF.G. Caballero, J. Chao, J. Cornide, C. García-Mateo, M.J. Santofimia, C. Capdevila, Toughness of advanced high strength bainitic steels. Mater. Sci. Forum 638–642, 118–123 (2010)",{"EN":362},"This study studied the phase transformations occurring at different continuous cooling rates in an air hardening steel used in the rock-crushing industry. Samples of this steel were submitted for calorimetric testing using the differential scanning calorimetry (DSC) technique. In the experimental run, the samples were heated at the rate of 0.33 °C\u002Fs from 50 to 1050 °C and equilibrated at this temperature for 900 s, then cooled at seven different cooling rates between 0.05 and 0.5 °C\u002Fs. For all the cooling rates, the DSC traces of the samples showed a first exothermic peak at about 500 °C and for samples cooled at rates higher than 0.15 °C\u002Fs, a second exothermic peak at about 295 °C was observed. From the microstructural investigations carried out by light microscopy (LM) and scanning electron microscopy (SEM), it was observed that all the samples after DSC treatment were characterized by the presence of bainite. In the samples cooled at rates higher than 0.15 °C\u002Fs, martensite was also detected. Comparing the results of DSC and SEM, it was concluded that the first peak at 500 °C corresponds to the austenite → bainite transformation, while the second peak at 295 °C corresponds to the austenite → martensite transformation. The experimentally determined bainite and martensite start temperatures were compared to the values derived from a number of well-known empirical equations.",{"EN":364},"Microstructural Evolution of a Continuously Cooled Air Hardening Steel",{"VOID":366},"10.1007\u002Fs13632-013-0062-z","http:\u002F\u002Flink.springer.com\u002F10.1007\u002Fs13632-013-0062-z",[369,385,398,415,432,448],{"id":370,"sortIndex":21,"researcher":20,"roles":371,"affiliations":372,"properties":382},"00045d00-d0bb-4377-9595-3410ceb340ca",[226],[373],{"id":20,"sortIndex":21,"affiliation":374,"properties":20},{"id":375,"createTime":376,"updateTime":376,"relativeEntities":377,"slug":378,"properties":379,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"48fdea05-b30f-4304-8ab7-52394a20b316","2023-11-24T22:48:26.389+00:00",[],"DII-University-of-Padua-Padua-Italy",{"title":380},{"VI":381},"DII, University of Padua, Padua, Italy",{"title":383},{"VI":384},"K. 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A. 44, 3783–3796 (2013). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11661-013-1694-y\nJ.Grandfield, L. Sweet, A. Beer, S. Zhu, X. Chen, M. Easton (2014).The effect of trace levels of Ni and V on the microstructure and properties of four common aluminum alloys. In TMS Light Metals, pp. 969–974\nS.-M. Zhu, J.Y. Yao, E. Sweet, M.A. Easton, J.A. Taylor, P. Robinson, N.C. Parson, Influences of nickel and vanadium impurities on microstructure of aluminum alloys. JOM. 65(5), 584–592 (2013). https:\u002F\u002Fdoi.org\u002F10.1007\u002Fs11837-013-0572-9\nJ.F. Grandfield, J.A. Taylor, The impact of rising Ni and V impurity levels in smelter grade aluminium and potential control strategies. Mater. Sci. Forum. 630, 129–136 (2009). https:\u002F\u002Fdoi.org\u002F10.4028\u002Fwww.scientific.net\u002Fmsf.630.129\nS. J. Mages, R. F. Cochrane, S. C. Flood, P. V. Evans, in The effect of trace elements on intermetallic phase selection in simulated DC castings, ed. by J Evans. Proceedings Light Metal, TMS annual Meeting 1995, (TMS, Point Clear, CA, USA 1995) 1039–1047\nZ. Zhang, G. Li, X.-G. Chen, Effect of nickel and vanadium on iron bearing intermetallic phases in AA 5657 simulated DC castings. Mater. Sci. Technol. 30(8), 951–961 (2014). https:\u002F\u002Fdoi.org\u002F10.1179\u002F1743284713Y.0000000376\nE. Elsharkawi, D. MacNeil, H. Mrad, X.G. Chen, Investigation of the effect of solidification rate on microstructure of Al-0.13Si-0.3Fe DC-cast alloy using EBSD and DSC techniques. Int. J. Mater. Res. 111(11), 931–937 (2020). https:\u002F\u002Fdoi.org\u002F10.3139\u002F146.111960\nX.G. Chen, Light Metals (TMS, San Antonio, 1998), pp. 1071–1076\nK. Liu, X. Cao, X.-G. Chen, A new iron-rich intermetallic-AlmFe phase in Al-4.6Cu-0.5Fe cast alloy. Metall. Mater. Trans. A. 43, 1097–1101 (2012)\nP. Skjerpe, Intermetallic phases formed during DC-casting of an Al−0.25 Wt Pct Fe−0.13 Wt Pct Si alloy. Metall. Mater. Trans. 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Solli, Characterization of Iron bearing particles in relation to fir-tree structure in Al-Mg alloys, http:\u002F\u002Fhdl.handle.net\u002F11250\u002F2576493\nT. Koutsoukis, M.M. Makhlouf, Rendering wrought aluminium alloys castable by means of minimum composition adjustments. Int. J. Cast Met. Res. 30(4), 231–243 (2017). https:\u002F\u002Fdoi.org\u002F10.1080\u002F13640461.2017.1287645\nN.A. Belov, A.A. Aksenov, D.G. Eskin, Iron in aluminum alloys: impurity and alloying element Ser Advances in metallic alloys, 2 (Taylor & Francis, London, 2002), p. 360\nZ. Bian, S. Dai, Wu. Liang, Z. Chen, M. Wang, D. Chen, H. Wang, Thermal stability of Al–Fe–Ni alloy at high temperatures. J. Mat. Res. Tech. 8(3), 2538–2548 (2019)\nT Mbuya, B. R. Mose, S. P. Ng’ang’a, S. M. Maranga, Improving the mechanical performance of a secondary cast aluminium piston alloy through addition of minor elements. (2010)\nC.-L. Chen, R.C. 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Lamb, Nickel and nickel alloys, properties and selection: nonferrous alloys and special-purpose materials, Vol 2, ASM Handbook, By ASM Handbook Committee, ASM International, 1990, p 428–445, https:\u002F\u002Fdoi.org\u002F10.31399\u002Fasm.hb.v02.a0001072.\nD. Panahi, D.V. Malakhov, M. Gallerneault, P. Marois, Influence of cooling rate and composition on formation of intermetallic phases in solidifying Al–Fe–Si melts. Can. Metall. Q. 50(2), 173–180 (2011). https:\u002F\u002Fdoi.org\u002F10.1179\u002F000844311X12949291728096\nX.C. Tong, H.S. Fang, Microstructure characteristics of a rapidly solidified AL-SI-TI-PB alloy. Mat. Charact. 37(2–3), 95–104 (1996)\nD.C. Van Aken, H.L. Fraser, The Microstructure of Rapidly Solidified Hyper-eutectic Al-Be Alloys. Acta Metall. 33, 963–974 (1985)\nW.J. Boettinger, L.A. Bendersky, R.J. Schaefer et al., On the formation of dispersoids during rapid solidification of an AI-Fe-Ni alloy. Metall. Mater. Trans. A. 19, 1101–1107 (1988). https:\u002F\u002Fdoi.org\u002F10.1007\u002FBF02628394",{"EN":893},"The influence of nickel at concentrations from 100 to 560 ppm on the microstructure of Al-0.15Si-0.3Fe-xNi alloy has been investigated. A Direct Chill (DC) simulator is used in the current study to simulate the actual cooling rate occurring in a commercial DC casting ingot. The main iron-rich phases observed in the microstructure of the base alloy are AlmFe, Al3Fe, α-AlFeSi, and globular AlFeSi particles. However, the addition of Ni in a range between 300–560 ppm results in the formation of newly reported Ni-containing phases such as pollen-shaped AlFeNiSi and Al6FeNi phases. In addition, Ni appeared to have a significant effect in transforming the Al3Fe phase into a Al9FeNi phase. Moreover, the addition of Ni shows a significant effect on promoting AlmFe and Al6Fe phases but lower Al3Fe phases at all cooling rates studied. 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Vaithiyanathan, V. Balasubramanian, S. Malarvizhi, V. Petley, S. Verma, Combined effect of Gas Tungsten Arc Welding process variants and post-weld heat treatment on tensile properties and microstructural characteristics of Ti–6Al–4V Alloy joints. Metallogr. Microstruct. Anal. 9, 194–211 (2020)\nL. Wang, H. Ma, Q. Fan, J. Yao, X. Shen, S. Zhang, Y. Zhou, Y. Peng, Y. Gao, D. Wang, Simultaneously enhancing strength and ductility of Ti-6Al-4V alloy with the hierarchical structure via a novel thermal annealing treatment. Mater. Charact. 176, 111112 (2021)\nP.P. Singh, R.K. Gupta, V.A. Kumar, R.C. Gundakaram, S.K. Singh, Tailoring the microstructure and mechanical properties of titanium alloy Ti6Al4V forgings with different combinations of thermo-mechanical processing and heat treatment cycles. Trans. Indian Natl. Acad. Eng. 6, 839–855 (2021)\nC. Leyens, M. Peters, Titanium and Titanium Alloys: Fundamentals and Applications (Wiley, London, 2006)\nJ. Šmilauerová, J. Pospíšil, P. Harcuba, V. Holý, M. Janeček, Single crystal growth of TIMETAL LCB titanium alloy by a floating zone method. J. Cryst. Growth. 405, 92–96 (2014)\nZ. Liang, J. Miao, T. Brown, A.K. Sachdev, J.C. Williams, A.A. Luo, A low-cost and high-strength Ti-Al-Fe-based cast titanium alloy for structural applications. Scrip. Mater. 157, 124–128 (2018)\nH. Kadiri, L. Wang, H.O. Gulsoy, P. Suri, S. Park, Y. Hammi, R. German, Development of a Ti-based alloy: design and experiment. JOM. 61, 60–66 (2009)\nF. Hideki, T. Kazuhiro, Development of high performance Ti-Fe-Al alloy series. Nippon. Steel. Tech. Rep. 74, 113–117 (2002)\nA.O. Abdalla, A. Amrin, S. Muhammad, M.A.A. Hanim, Microstructures and hardness of newly designed Ti-6Al-(1–3)Fe alloys. Appl. Mech. Mater. 864, 142–146 (2017)\nA.O. Abdalla, A. Amrin, S. Muhammad, M.A.A. Hanim, Iron as a promising alloying element for the cost reduction of titanium alloys. A Review. Appl. Mech. Mater. 864, 147–153 (2017)\nAmrin, A. O. Abdalla, M. Toozandehjani, N. Abdul, microstructural transformation by compositional modification of Ti-6Al-4V alloy for aerospace applications. The International Professional Doctoral Symposium (iPDOCs’19), Universiti Teknologi Malaysia, Kuala Lumpur, Malaysia (2019).\nA. Bahador, J. Umeda, R. Yamanoglu, A. Amrin, A. Alhazaa, K. Kondoh, Ultrafine-grain formation and improved mechanical properties of novel extruded Ti-Fe-W alloys with complete solid solution of tungsten. J. Alloy. Compound. 875, 160031 (2021)\nA. Bahador, A. Issariyapat, J. Umeda, R. Yamanoglu, C. Pruncu, A. Amrin, K. Kondoh, Strength-ductility balance of powder metallurgy Ti–2Fe–2W alloy extruded at high-temperature. J. Mater. Res. Technol. 14, 677–691 (2021)\nQ. Chao, P. Cizek, J. Wang, P.D. Hodgson, H. Beladi, Enhanced mechanical response of an ultrafne grained Ti-6Al-4V alloy produced through warm symmetric and asymmetric rolling. Mater. Sci. Eng. A. 650, 404–413 (2016)\nY. Chong, T. Bhattacharjee, J. Yi, S. Zhao, N. Tsuji, Achieving bi-lamellar microstructure with both high tensile strength and large ductility in Ti–6Al–4V alloy by novel thermomechanical processing. Materialia. 8, 100479 (2019)\nASTM E384-17, Standard Test Method for Microindentation Hardness of Materials (ASTM International, West Conshohocken, 2017)\nASTM E8\u002FE8m-13a, Standard Test Methods for Tension Testing of Metallic Materials (ASTM International, West Conshohocken, 2013)\nASTM G102-89, Standard Practice for Calculation of Corrosion Rates and Related Information from Electrochemical Measurements (ASTM International, West Conshohocken, 2010)\nA.O. Abdalla, A. Amrin, S. Muhammad, M.A.A. Hanim, Effect of heat treatment parameters on the microstructure and microhardness of Ti-6Al-4V alloy. AIP. Conf. Proc. 1865, 030001 (2017)\nR. Jing, S.X. Liang, C.Y. Liu, M.Z. Ma, X.Y. Zhang, R.P. Liu, Structure and mechanical properties of Ti–6Al–4V alloy after zirconium addition. Mater. Sci. Eng. A. 552, 295–300 (2012)\nO.M. Ivasishin, R.V. Teliovych, V.G. Ivanchenko, S. Tamirisakandala, D.B. Miracle, Processing, microstructure, texture, and tensile properties of the Ti-6Al-4V-1.55B eutectic alloy. Metallur. Mater. Trans. A. 39, 402–416 (2007)\nR. Ding, Z.X. Guo, A. Wilson, Microstructural evolution of a Ti–6Al–4V alloy during thermomechanical processing. Mater. Sci. Eng. A. 327, 233–245 (2002)\nD. Banerjee, J.C. Williams, Perspectives on titanium science and technology. Acta. Mater. 61, 844–879 (2013)\nM. Motyk, K. Kubiak, J. Sieniawski, and W. Ziaja, Hot plasticity of alpha beta alloys, in: A.K.M. Nurul Amin, Titanium alloys-towards achieving enhanced properties for diversified applications, 87-115. Intech. Open, (2012).\nV.A. Joshi, Titanium alloys: an atlas of structures and fracture features (Taylor & Francis, New York, 2006)\nT. Seshacharyulu, S.C. Medeiros, W.G. Frazier, Y.V.R.K. Prasad, Microstructural mechanisms during hot working of commercial grade Ti-6Al-4V with lamellar starting structure. Mater. Sci. Eng. A. 325, 112–125 (2002)\nC.E. Carlton, P.J. Ferreira, What is behind the inverse Hall-Petch effect in nanocrystalline materials? Acta. Mater. 55, 3749–3756 (2007)\nY.S. Jiménez, M.T. Gil, M.T. Guerra, L. Baltes, J.M. Rosca, Interpretation of open circuit potential of two titanium alloys for a long time immersion in physiological fluid. Bull. Transilvania. Uni. Braşov. 51, 197–204 (2009)\nY. Abdelrhman, M.A.H. Gepreel, S. Kobayashic, S. Okanoc, T. Okamoto, Biocompatibility of new low-cost (α+β)-type Ti-Mo-Fe alloys for long-term implantation. Mater. Sci. Eng. C. 99, 552–562 (2019)\nJ. Yang, H. Yang, H. Yu, Z. Wang, X. Zeng, Corrosion behavior of additive manufactured Ti-6Al-4V alloy in NaCl solution. Metallur. Mater. Trans. A. 48, 3583–3593 (2017)",{"EN":1088},"A compositional modification was initially carried out in Ti-6Al-4V alloy by substitution replacement of vanadium (V) by iron (Fe) as a β-stabilizing alloying element in order to develop Ti6Al(1-3)Fe alloys. Afterwards, Ti6Al(1-3)Fe alloys underwent rolling at 800 °C followed by solution heat treatment at 900 °C. Microstructural characterization reveals that Ti6Al(1-3)Fe alloys contain a lamellar α+β microstructure wherein size of lamellar colonies and the lamellae width gradually decrease by increasing Fe content. Subsequent thermo-mechanical and solution heat treatment lead to an increase in β-phase percentage by increasing Fe content. Ti6Al(1-3)Fe alloys show a superior hardness (HV), ultimate tensile strength (UTS) and elongation (%) owing to extensively refined lamellar α+β microstructure. HV values of Ti6Al(1-3)Fe alloys increase after thermo-mechanical treatment while UTS and elongation (%) values as well as corrosion properties drop due to the larger amount of β-phase in thermo-mechanical treated Ti6Al(1-3)Fe alloys. \n                  \n                    \n                      \n                    \n                  \n                ",{"EN":1090},"Development of Ti6AlFe Alloy and its Microstructural Transformation During Synthesis and Subsequent Thermo-Mechanical Treatment",{"VOID":1092},"10.1007\u002Fs13632-022-00833-2","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13632-022-00833-2",[1095,1110,1125,1137],{"id":1096,"sortIndex":21,"researcher":20,"roles":1097,"affiliations":1098,"properties":1107},"13b3d2d4-3f77-44f7-a704-b27d1505eff2",[226],[1099],{"id":20,"sortIndex":21,"affiliation":1100,"properties":20},{"id":1101,"createTime":1102,"updateTime":1102,"relativeEntities":1103,"slug":20,"properties":1104,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"415ea46b-43b3-4e6d-8317-c28b3bb44934","2024-02-17T19:51:57.511+00:00",[],{"title":1105},{"VI":1106},"College of Mechanical Engineering Technology, Benghazi, Libya",{"title":1108},{"VI":1109},"Ayad Omran Abdalla",{"id":1111,"sortIndex":417,"researcher":20,"roles":1112,"affiliations":1113,"properties":1122},"e9918537-5046-41f6-b5fc-284a097cec62",[226],[1114],{"id":20,"sortIndex":21,"affiliation":1115,"properties":20},{"id":1116,"createTime":1117,"updateTime":1117,"relativeEntities":1118,"slug":20,"properties":1119,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"f73d61b5-b5ea-48a3-9022-5bab1eab64c9","2024-02-17T19:51:57.521+00:00",[],{"title":1120},{"VI":1121},"Razak Faculty of Technology and Informatics, Universiti Teknologi Malaysia Kuala Lumpur, Kuala Lumpur, Malaysia",{"title":1123},{"VI":1124},"Khairur Rijal Jamaludin",{"id":1126,"sortIndex":224,"researcher":20,"roles":1127,"affiliations":1128,"properties":1134},"2a16dbf3-9ce7-413e-a74a-6d7f643cc29b",[226],[1129],{"id":20,"sortIndex":21,"affiliation":1130,"properties":20},{"id":1116,"createTime":1117,"updateTime":1117,"relativeEntities":1131,"slug":20,"properties":1132,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":1133},{"VI":1121},{"title":1135},{"VI":1136},"Astuty Amrin",{"id":1138,"sortIndex":434,"researcher":20,"roles":1139,"affiliations":1140,"properties":1149},"623bf220-3140-45b5-9442-e45bc076d4ea",[226],[1141],{"id":20,"sortIndex":21,"affiliation":1142,"properties":20},{"id":1143,"createTime":1144,"updateTime":1144,"relativeEntities":1145,"slug":20,"properties":1146,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"9d6cf4e3-ffaf-4864-9879-ca3a031aa559","2024-02-14T14:12:22.433+00:00",[],{"title":1147},{"VI":1148},"New Technologies Research Center, Amirkabir University of Technology (Tehran Polytechnic), Tehran, Iran",{"title":1150},{"VI":1151},"Meysam Toozandehjani",{"url":1093,"publisher":1153,"properties":1181},{"id":6,"createTime":7,"updateTime":8,"relativeEntities":1154,"slug":10,"properties":1155,"entityType":18,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"subjectFields":1159,"manageAffiliations":1160,"indexDatabases":1161,"url":20,"thumbnailPath":20,"statistic":1176,"gsStatistic":20,"type":20,"analyzePriority":20},[],{"issn":1156,"eissn":1157,"title":1158},{"VOID":13},{"VOID":15},{"EN":17},[],[],[1162,1169],{"id":76,"indexDatabase":1163,"url":91,"indexYears":20,"academicFieldIds":1168,"indexDatabaseRanking":20},{"id":78,"createTime":79,"updateTime":80,"relativeEntities":1164,"label":1165,"description":1166,"key":87,"publicationTags":1167,"standard":20},[],{"EN":83,"VI":83},{"VI":85,"EN":86},[89,90],[93],{"id":57,"indexDatabase":1170,"url":70,"indexYears":71,"academicFieldIds":1175,"indexDatabaseRanking":74},{"id":59,"createTime":60,"updateTime":61,"relativeEntities":1171,"label":1172,"description":1173,"key":67,"publicationTags":1174,"standard":20},[],{"EN":64,"VI":64},{"EN":64,"VI":66},[69],[73],{"impactFactor":21,"impactFactorByYear":1177,"i10Index":106,"i10IndexLast5Year":42,"totalPublication":107,"totalPublicationByYear":1178,"totalCitation":122,"totalCitationByYear":1179,"totalCitationPerPublication":132,"totalCitationPerPublicationByYear":1180,"hindexLast5Year":145,"hindex":145},{"2013":96,"2014":97,"2015":98,"2016":99,"2017":100,"2018":101,"2019":102,"2020":103,"2021":104,"2022":105,"2023":98},{"2012":109,"2013":110,"2014":111,"2015":112,"2016":113,"2017":114,"2018":115,"2019":116,"2020":117,"2021":118,"2022":119,"2023":120,"2024":121},{"2012":110,"2013":124,"2014":113,"2015":125,"2016":126,"2017":127,"2018":128,"2019":129,"2020":118,"2021":111,"2022":130,"2023":131},{"2012":134,"2013":135,"2014":136,"2015":137,"2016":138,"2017":139,"2018":140,"2019":141,"2020":142,"2021":143,"2022":101,"2023":144},{"volume":1182,"pages":1183},{"VOID":987},{"VOID":1184},"569-579","2022-07-28",{"id":1187,"createTime":1188,"updateTime":1189,"relativeEntities":1190,"slug":1191,"properties":1192,"entityType":161,"verifyStatus":218,"verifyTime":1189,"verifyNote":219,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21,"primaryUrl":1201,"fullTextUrl":20,"authors":1202,"publicationType":165,"publisherRelationship":1230,"citationCount":20,"citationInfo":20,"publishDate":1263,"publishYear":602,"citationAnalyzeStatus":19,"lastCitationAnalyze":20,"indexDatabases":20,"openAccess":20,"references":20,"isForceReanalyzing":202},"be2cc7b5-af3a-416d-97e4-82ba090d7df0","2024-01-21T17:17:02.668+00:00","2025-01-08T23:49:45.179+00:00",[],"Evaluation-of-Microstructural-Characteristics-in-Alumina-Produced-by-Selective-Laser-Stereolithography-and-Detonation-Gun-Spraying",{"references":1193,"abstract":1195,"title":1197,"doi":1199},{"VOID":1194},"G. Willmann, Ceramic femoral heads for total hip arthroplasty. Adv. Eng. Mater. 2(3), 114–122 (2000)\nR. Morrell, Handbook of Properties of Technical and Engineering Ceramics (H.M.S.O Publication, London, 1985)\nP. Auerkari, Mechanical and Physical Properties of Engineering Alumina Ceramics (VTT Technical Research Center of Finland, Espoo, 1996)\nR.F. Bunshah, Handbook of Deposition Technologies for Films and Coatings Science Technology and Application, 2nd edn. (Noyes Publication, Norwich, 1994), pp. 591–642\nR.W. Smith, Chapter 2: Equipment and Theory, Thermal Spray Technology (B. Will ASM International, Cleveland, 1992)\nS. Sampath et al., Role of thermal spray processing method on the microstructure, residual stress and properties of coatings: an integrated study for Ni–5 wt% Al bond coats. Mater. Sci. Eng. A 364(1–2), 216–231 (2004)\nM. Geetha et al., Detonation gun sprayed Al2O3–13TiO2 coatings for biomedical applications. Surf. Eng. 30(4), 229–236 (2014)\nV. Ulianitsky, et al., Deposition of dense ceramic coatings by detonation spraying. in ITSC-2014 Proceedings (2014) pp. 349–352\nM.P. Planche et al., Different spray process for different Al2O3 coating properties. Appl. Phys. A 99(3), 665–671 (2010)\nR. Venkataraman et al., A study on phase stability observed in as sprayed alumina—13 wt% Titania coatings grown by detonation gun and plasma spraying on low alloy steel substrate. Surf. Coat. Technol. 201(6), 3087–3095 (2006)\nTerminology, Standard Terminology for Additive Manufacturing Technologies. (ASTM International, 2012) F2792−12a\nJ. Moon et al., Ink-Jet printing of binders for ceramic components. J. Am. Ceram. Soc. 85(4), 755–762 (2002)\nS.-J.L. Kang, Sintering: Densification, Grain Growth and Microstructure (Elsevier Butterworth-Heinemann, Oxford, 2005)\nK.G. Cooper, Rapid Prototyping Technology: Selection and Application (Mechanical Engineering) (CRC Press, New York, 2001)\nC. Chaput, T. Chartier, Fabrication of ceramics by stereolithography. in RTejournal-Forum für Rapid Technologie 4, urn:nbn:de:0009-2-11635 (2007)\nF.-L. Toma et al., Comparative study of the electrical properties and characteristics of thermally sprayed Alumina and spinel coatings. J. Therm. Spray Technol. 20(1–2), 195–204 (2011)\nA.S. Wu et al., An experimental investigation into additive manufacturing-induced residual stresses in 316L Stainless Steel. Metall. Mater. Trans. A 45(13), 6260–6270 (2014)\nS. Maleksaeedi et al., Property enhancement of 3D-printed Alumina ceramics using vacuum infiltration. J. Mater. Process. Technol. 214(7), 1301–1306 (2014)\nF. Azarmi et al., Microstructural evolution during fabrication of alumina via laser stereolithography technique. Ceram. Int. 45(1), 271–278 (2019)\nM.W. Barsoum, Fundamentals of Ceramics (Series in Materials Science and Engineering) (Routledge, Abingdon, 2002)\nP. Zamani, Z. Valefi, Microstructure, phase composition and mechanical properties of plasma sprayed Al2O3, Cr2O3 and Al2O3–Cr2O3 composite coatings. Surf. Coat. Technol. 316, 138–145 (2017)\nS.T. Aruna et al., Effect of critical plasma spray parameters on the microstructure, microhardness and wear and corrosion resistance of plasma sprayed alumina coatings. Surf. Coat. Technol. 208, 92–100 (2012)\nP.S. Santos et al., Standard transition aluminas. Electron microscopy studies. Mater. Res. 3(4), 104–114 (2000)\nK. Yang et al., Stress-induced phase transformation and amorphous-to-nanocrystalline transition in plasma-sprayed Al2O3 coating with relative low temperature heat treatment. Surf. Coat. Technol. 253, 277–283 (2014)\nJ. Rong et al., Tribological performance of plasma sprayed Al2O3–Y2O3 composite coatings. Surf. Coat. Technol. 302, 487–494 (2016)\nB.G. Hyde et al., Crystal structures of principal ceramic materials. Mater. Sci. Technol. (2006). https:\u002F\u002Fdoi.org\u002F10.1002\u002F9783527603978.mst0117\nM.S. Ghamsari et al., Facile route for preparation of highly crystalline γ-Al2O3 nanopowder. Mater. Lett. 72, 32–35 (2012)\nA. Aryasomayajula et al., Transmission Electron Microscopy and X-ray Diffraction analysis of alumina coating by alternate-current inverted magnetron-sputtering technique. Thin Solid Films 516, 397–401 (2007)",{"EN":1196},"The important microstructural characteristics of Al2O3 produced via detonation gun spraying (DGS) deposition and laser stereolithography (3D printing) were investigated in this study. Microstructural observation indicated that microstructure of 3D-printed samples mostly consisted of alumina and voids, while coating samples contained extra features such as splat boundaries, pores, and cracks. The DGS deposited alumina was characterized by higher density with 3.0 ± 0.6% porosity compared to the additive manufacturing processed samples with 8.1 ± 0.8% porosity. Existence of some residual carbon was detected in 3D-printed alumina sample via energy-dispersive x-ray spectroscopy. The feedstock powder used for both processes was pure α-Al2O3. While the x-ray diffraction results showed no phase change in 3D-printed samples, DGS deposited alumina coating contained a mixture of α-Al2O3 and γ-Al2O3 phases. The phase distribution discovered by x-ray diffraction was confirmed by diffraction patterns obtained from transmission electron microscopy.",{"EN":1198},"Evaluation of Microstructural Characteristics in Alumina Produced by Selective Laser Stereolithography and Detonation Gun Spraying",{"VOID":1200},"10.1007\u002Fs13632-020-00658-x","https:\u002F\u002Flink.springer.com\u002Farticle\u002F10.1007\u002Fs13632-020-00658-x",[1203,1218],{"id":1204,"sortIndex":21,"researcher":20,"roles":1205,"affiliations":1206,"properties":1215},"924fbbd1-6824-4c84-801d-136b25fe2d2b",[226],[1207],{"id":20,"sortIndex":21,"affiliation":1208,"properties":20},{"id":1209,"createTime":1210,"updateTime":1210,"relativeEntities":1211,"slug":20,"properties":1212,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},"23e6dd14-a306-4ed9-becd-2750880bcb2f","2024-01-21T17:17:02.685+00:00",[],{"title":1213},{"VI":1214},"Department of Mechanical Engineering, Dept. 2490, North Dakota State University, Fargo, USA",{"title":1216},{"VI":1217},"Fardad Azarmi",{"id":1219,"sortIndex":224,"researcher":20,"roles":1220,"affiliations":1221,"properties":1227},"631c359e-10ab-47f7-9580-ab19fc81cadb",[226],[1222],{"id":20,"sortIndex":21,"affiliation":1223,"properties":20},{"id":1209,"createTime":1210,"updateTime":1210,"relativeEntities":1224,"slug":20,"properties":1225,"entityType":41,"verifyStatus":19,"verifyTime":20,"verifyNote":20,"syncStatus":19,"languages":20,"translateLanguages":20,"viewCount":21},[],{"title":1226},{"VI":1214},{"title":1228},{"VI":1229},"X. W. 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