A novel roll-bonding methodology for the cross-scale analysis of phase properties and interactions in multiphase structural materials
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Hauke Springer
, Cem Tasan und Dierk Raabe
Abstract
We introduce a new thermo-mechanical approach for producing layered bulk samples built-up from the constituent phases of structural materials for the analysis of multiphase co-deformation phenomena. Following a thermo-mechanically controlled roll-bonding procedure, the intrinsic properties of the microstructural components as well as their mutual mechanical interaction and interfacial phenomena can be systematically investigated in highly controlled model microstructures of reduced complexity. The effectiveness of the approach is demonstrated on two examples where austenite or martensite layers, respectively, are introduced in a bulk ferritic matrix, representing in either case components of high strength steels. Special emphasis is laid on how the plasticity of martensite within ferrite, as a key parameter required for understanding and optimising dual phase steels, can be investigated following the proposed approach.
References
[1] H.K.D.H.Bhadeshia, R.Honeycombe: Steels, Microstructure and Properties, 3rd Ed.Elsevier, Oxford, UK (2006).Suche in Google Scholar
[2] H.Berns, W.Theisen: Eisenwerkstoffe Stahl und Gusseisen, Springer VerlagBerlin, Heidelberg (2006).Suche in Google Scholar
[3] M.F.Ashby: Materials Selection in Mechanical Design, Butterworth-Heinemann, Burlington, MA, USA (2005).Suche in Google Scholar
[4] M.Calcagnotto, D.Ponge, D.Raabe: Mater. Sci. Eng. A527 (2010) 7832–7840. 10.1016/j.msea.2010.01.004Suche in Google Scholar
[5] D.Raabe, D.Ponge, O.Dmitrieva, B.Sander: Scr. Mater.60 (2009) 1141–1144. 10.1016/j.scriptamat.2009.02.062Suche in Google Scholar
[6] C.Herrera, D.Ponge, D.Raabe: Acta Mater.59 (2011) 4653–4664. 10.1016/j.actamat.2011.04.011Suche in Google Scholar
[7] O.Bouaziza, S.Allaina, C.P.Scotta, P.Cugya, D.Barbier: Curr. Opin. Solid State Mater. Sci.15 (2011) 141–168. 10.1016/j.cossms.2011.04.002Suche in Google Scholar
[8] G.Frommeyer, U.Brüx: Steel Res. Int.77 (2006) 627–633.10.1002/srin.200606440Suche in Google Scholar
[9] U.Dilthey, L.Stein: Sci. Technol. Weld. Joining11 (2006) 135. 10.1179/174329306X85967Suche in Google Scholar
[10] J.Speer, D.K.Matlock, B.CDe Cooman, J.G.Schroth: Acta Mater.51 (2003) 2611–2622. 10.1016/S1359-6454(03)00059-4Suche in Google Scholar
[11] J.G.Speer, D.V.Edmonds, F.C.Rizzo, D.K.Matlock: Curr. Opin. Solid State Mater. Sci.8 (2004) 219–237. 10.1016/j.cossms.2004.09.003Suche in Google Scholar
[12] G.Gottstein: Physical Foundations of Materials Science. Springer VerlagBerlin (2004). 10.1007/978-3-662-09291-0Suche in Google Scholar
[13] N.J.Kim, G.Thomas: Met. Trans. A12 (1981) 483. 10.1007/BF02643691Suche in Google Scholar
[14] M.Calcagnotto, D.Ponge, E.Demir, D.Raabe: Mater. Sci. Eng. A527 (2010) 2738–2746. 10.1016/j.msea.2010.01.004Suche in Google Scholar
[15] H.Springer, M.Belde, D.Raabe: Mater. Sci. Eng. A582 (2013) 235–244. 10.1016/j.msea.2013.06.036Suche in Google Scholar
[16] L.Yuan, D.Ponge, J.Wittig, P.Choi, J.A.Jiménez, D.Raabe: Acta Mater.60 (2012) 2790–2804. 10.1016/j.actamat.2011.11.042Suche in Google Scholar
[17] J.R.Greer, J.Y.Kim, M.J.Burke: JOM 6112 (2009) 19–25. 10.1007/s11837-009-0174-8Suche in Google Scholar
[18] O.Kraft, C.A.Volkert: Adv. Eng. Mater.3 (2001) 99–110. 10.1002/1527-2648(200103)3:3<99::AID-ADEM99>3.0.CO;2-2Suche in Google Scholar
[19] C.C.Tasan, J.P.M.Hoefnagels, M.G.D.Geers: Scr. Mater.63 (2010) 835–838. 10.1016/j.scriptamat.2010.02.014Suche in Google Scholar
[20] D.R.Lesuer, C.K.Syn, O.D.Sherby, J.Wadsworth, J.J.Lewandowski, W.H.HuntJr.: Int. Mater. Rev.41 (1996) 5, 169. 10.1179/imr.1996.41.5.169Suche in Google Scholar
[21] D.Embury, O.Bouaziz: Annu. Rev. Mater. Res.40 (2010) 213. 10.1146/annurev-matsci-070909-104438Suche in Google Scholar
[22] N.A.Mara, D.Bhattacharyya, P.Dickerson, R.G.Hoagland, A.Misra: Appl. Phys. Lett.92 (2008) 231901. 10.1063/1.2938921Suche in Google Scholar
[23] J.Emmerlich, D.Music, M.Braun, P.Fayek, F.Munnik, J.M.Schneider: J. Phys. D: Appl. Phys.42 (2009) 6. 10.1088/0022-3727/42/18/185406Suche in Google Scholar
[24] S.Chatterjee, T.K.Pal: Wear255 (2003) 417–425. 10.1016/S0043-1648(03)00101-7Suche in Google Scholar
[25] M.F.Buchely, J.C.Gutierrez, L.M.Léon, A.Toro: Wear259 (2005) 52. 10.1016/j.wear.2005.03.002Suche in Google Scholar
[26] D.S.Gnanamuthu: Opt. Eng.19 (1980) 783. 10.1117/12.7972604Suche in Google Scholar
[27] X.Zhang, N.Hansen, Y.Gao, X.Huang: Acta Mater.60 (2012) 5933–5943. 10.1016/j.actamat.2011.09.008Suche in Google Scholar
[28] I.J.Beyerlein, N.A.Mara, J.Wang, J.S.Carpenter, S.J.Zheng, W.Z.Han, R.F.Zhang, K.Kang, T.Nizolek, T.M.Pollock: JOM64 (2012) 10. 10.1007/s11837-012-0431-0Suche in Google Scholar
[29] S.Zheng, I.Beyerlein, J.S.Carpenter, K.Kang, J.Wang, W.Han, N.A.Mara: Nature Com.4 (2013) 1969.10.1038/ncomms2969Suche in Google Scholar
[30] S.Roy, B.R.Nataraj, S.Suwas, S.Kumar, K.Chattopadhyay: Mater. Des.36 (2012) 529. 10.1016/j.matdes.2011.11.015Suche in Google Scholar
[31] N.Tsuji, Y.Saito, Y.Minamino: Scr. Mater.47 (2002) 893. 10.1016/S1359-6462(02)00088-XSuche in Google Scholar
[32] L.Li, K.Nagai, F.Yin: Sci. Technol. Adv. Mater.9 (2008) 11. 10.1088/1468-6996/9/2/023001Suche in Google Scholar PubMed PubMed Central
[33] S.Nambu, M.Michiuchi, J.Inoue, T.Koseki: Comp. Sci. Technol.69 (2009) 1936. 10.1016/j.compscitech.2009.04.013Suche in Google Scholar
[34] M.J.Rathod, M.Kutsuna: Weld. Res.16 (2004) 26.Suche in Google Scholar
[35] F.H.Milanez, M.B.H.Mantelli: Int. J. Heat Mass Transfer46 (2003) 4573. 10.1016/S0017-9310(03)00294-1Suche in Google Scholar
[36] J.Inoue, S.Nambu, Y.Ishimoto, T.Koseki: Scr. Mater.59 (2008) 1055. 10.1016/j.scriptamat.2008.07.020Suche in Google Scholar
[37] S.Nambu, M.Michiuchi, Y.Ishimoto, K.Asakura, J.Inoue, T.Koseki: Scr. Mater.60 (2009) 221. 10.1016/j.scriptamat.2008.10.007Suche in Google Scholar
[38] T.A.Wynna, D. BhattacharyyaeMisra, N.A.Mara: Mater. Sci. Eng. A564 (2013) 213. 10.1016/j.msea.2012.11.114Suche in Google Scholar
[39] M.Eizadjou, H. DaneshManesh, K.Janghorban: Mater. Des.29 (2008) 909. 10.1016/j.matdes.2007.03.020Suche in Google Scholar
[40] L.S.Darken: Trans. AIME, TP2443, Metals Technology (1948) 430.Suche in Google Scholar
[41] R.Bernst, G.Inden, A.Schneider: Calphad.32 (2008) 207. 10.1016/j.calphad.2008.02.002Suche in Google Scholar
[42] Y.Hayakawa, J.A.Szpunars: Acta Mater.45 (1997) 11, 4713. 10.1016/S1359-6454(96)00251-0Suche in Google Scholar
[43] Z.Xia, Y.Kang, Q.Wang: J. Magn. Mater.320 (2008) 3229. 10.1016/j.jmmm.2007.06.010Suche in Google Scholar
[44] H.Springer, D.Raabe: Acta Mater.60 (2012) 4950. 10.1016/j.actamat.2012.05.017Suche in Google Scholar
[45] R.Jamaati, M.R.Toroghinejad: Mater. Des.31 (2010) 4816. 10.1016/j.matdes.2010.04.022Suche in Google Scholar
[46] O.M.Abdelhadi, L.Ladani, J.Razmi: Mech. Mater.43 (2011) 885. 10.1016/j.mechmat.2011.09.006Suche in Google Scholar
[47] A.Tasdemirci, I.W.Hall: Mater. Des.30 (2009) 1533. 10.1016/j.matdes.2008.07.054Suche in Google Scholar
[48] J.Yanagimoto, T.Oya, S.Kawanishi, N.Tiesler, T.Koseki: CIRP Annals – Manufact. Technol.59 (2010) 287. 10.1016/j.cirp.2010.03.109Suche in Google Scholar
[49] C.W.Lee, J.H.Han, J.Yoon, M.C.Shin, S.I.Kwun: Surf. Coat. Technol.204 (2010) 2223–2229. 10.1016/j.surfcoat.2009.12.014Suche in Google Scholar
[50] M.Göken, H.W.Höppel: Adv. Mater.23 (2011) 2663. 10.1002/adma.201100407Suche in Google Scholar
[51] Y.Liu, D.Bufford, H.Wang, C.Sun, X.Zhang: Acta Mater.59 (2011) 1924. 10.1016/j.actamat.2010.10.052Suche in Google Scholar
[52] B.Ham, X.Zhang: Mater. Sci. Eng. A528 (2011) 2028. 10.1016/j.msea.2010.10.101Suche in Google Scholar
[53] J.D.Embury, R.M.Fisher: Acta Metall.14 (1966) 147. 10.1016/0001-6160(66)90296-3Suche in Google Scholar
[54] D.Raabe, P.P.Choi, Y.J.Li, A.Kostka, X.Sauvage, F.Lecouturier, K.Hono, R.Kirchheim, R.Pippan, D.Embury: MRS Bull.35 (2010) 982. 10.1557/mrs2010.703Suche in Google Scholar
[55] Y.J.Li, P.P.Choi, C.Borchers, S.Westerkamp, S.Goto, D.Raabe, R.Kirchheim: Acta Mater.59 (2011) 3965. 10.1016/j.actamat.2010.08.015Suche in Google Scholar
[56] C.Jeonga, T.Oyab, J.Yanagimoto: J. Mater. Process. Technol.213 (2013) 614. 10.1016/j.jmatprotec.2012.10.017Suche in Google Scholar
© 2015, Carl Hanser Verlag, München
Artikel in diesem Heft
- Contents
- Contents
- Original Contributions
- A novel roll-bonding methodology for the cross-scale analysis of phase properties and interactions in multiphase structural materials
- Excellent cold rollability in a single pass of an Mg-4Er (wt.%) alloy
- An experimental study of the precipitation kinetics of pre-rolled Ni-Span-C 902 superalloy
- Influences of high temperature on the microstructural, electrical and mechanical properties of Ni-23 wt.% Al alloy
- Investigation of the wear resistance and microstructure of Al/SiC metal matrix composites as a function of reinforcement volume fraction and reinforcement to matrix particle size ratio applying artificial neural network
- Influence of zinc (II) ion concentration on Ni–Zn–P coatings deposited onto aluminum and their corrosion behavior
- Joining steel to aluminum alloy by resistance spot welding with a rivet
- Electrophysical and structure-sensitive properties of liquid Ga–In alloys
- Short Communications
- Synthesis and characterization of the novel nanocomposite Co(OH)2/graphene as supercapacitor materials
- Preparation of MnAlC flakes by surfactant-assisted ball-milling and the effects of annealing
- An improved two-stage sintering method for tungsten heavy alloys: conventional solid-phase sintering followed by microwave heating
- Effect of excess Pb on ferroelectric characteristics of conductive Al-doped ZnO and Sn-doped In2O3 top electrodes in PbLaZrTiOx capacitors
- Effects of La–Zn substituent and calcination temperature on the microstructure and magnetic properties of Sr-ferrites
- Predicting the corrosion tendency of α-brass in acidic and alkaline tap water
- People
- 10.3139/146.610026
- DGM News
- DGM News
Artikel in diesem Heft
- Contents
- Contents
- Original Contributions
- A novel roll-bonding methodology for the cross-scale analysis of phase properties and interactions in multiphase structural materials
- Excellent cold rollability in a single pass of an Mg-4Er (wt.%) alloy
- An experimental study of the precipitation kinetics of pre-rolled Ni-Span-C 902 superalloy
- Influences of high temperature on the microstructural, electrical and mechanical properties of Ni-23 wt.% Al alloy
- Investigation of the wear resistance and microstructure of Al/SiC metal matrix composites as a function of reinforcement volume fraction and reinforcement to matrix particle size ratio applying artificial neural network
- Influence of zinc (II) ion concentration on Ni–Zn–P coatings deposited onto aluminum and their corrosion behavior
- Joining steel to aluminum alloy by resistance spot welding with a rivet
- Electrophysical and structure-sensitive properties of liquid Ga–In alloys
- Short Communications
- Synthesis and characterization of the novel nanocomposite Co(OH)2/graphene as supercapacitor materials
- Preparation of MnAlC flakes by surfactant-assisted ball-milling and the effects of annealing
- An improved two-stage sintering method for tungsten heavy alloys: conventional solid-phase sintering followed by microwave heating
- Effect of excess Pb on ferroelectric characteristics of conductive Al-doped ZnO and Sn-doped In2O3 top electrodes in PbLaZrTiOx capacitors
- Effects of La–Zn substituent and calcination temperature on the microstructure and magnetic properties of Sr-ferrites
- Predicting the corrosion tendency of α-brass in acidic and alkaline tap water
- People
- 10.3139/146.610026
- DGM News
- DGM News