PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Development of ultrafine grained Al–Zn–Mg–Cu alloy by equal channel angular pressing: microstructure, texture and mechanical properties

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In this article, an effort has been made to investigate the evolution of microstructure, texture and mechanical properties of AA 7075 alloy during equal channel angular pressing (ECAP) by route BC at room temperature at a pressing speed of 1 mm/min. Transmission electron microscopy (TEM) revealed the presence of rod-like (MgZn2) precipitates in annealed conditions which were broken after two ECAP passes along with remarkable grain refinement due to high imposed strain after the second pass. After two consecutive ECAP passes, hardness, yield strength, and tensile strength of the alloy increased significantly in comparison to initial annealed condition. The fraction of high angle boundaries (HABs) and grain misorientation angle significantly increased after ECAP passes compared to the initial condition. Texture measurements were performed by X-ray diffractometer (XRD), on TD plane (parallel to extrusion direction). Texture results revealed the dominance of Cθ and A∗2θ components after the first pass and the presence of strong Bθ, B¯θ and A¯θ components along with weaker A∗2θ,Cθ components after the second pass. Scanning electron microscopy (SEM) revealed that the average dimple size was gradually reduced with increasing the ECAP passes.
Rocznik
Strony
82--98
Opis fizyczny
Bibliogr. 63 poz., rys., tab., wykr.
Twórcy
  • Department of Metallurgy and Materials Engineering, Indian Institute of Engineering Science and Technology, Howrah 711103, India
  • Department of Metallurgy and Materials Engineering, Indian Institute of Engineering Science and Technology, Howrah 711103, India
  • Department of Metallurgical and Materials Engineering, National Institute of Technology, Tiruchirappalli, India
autor
  • Department of Materials Engineering, Indian Institute of Science, Bangalore 560012, India
  • EEMMeCS Department, Metals Science and Technology Group, Ghent University, 9052 Ghent, Belgium
  • Department of Metallurgical and Materials Engineering, National Institute of Technology, Tiruchirappalli, India
  • Department of Metallurgical and Materials Engineering, National Institute of Technology, Tiruchirappalli, India
  • Department of Metallurgical and Materials Engineering, National Institute of Technology, Tiruchirappalli, India
Bibliografia
  • [1] Lee SH, Saito Y, Sakai T, Utsunomiya H. Microstructures and mechanical properties of 6061 aluminum alloy processed by accumulative roll-bonding. Mater Sci Eng A. 2002;325:228–35.
  • [2] Stoica GM, Fielden DE, McDaniels R, Liu Y, Huang B, Liaw PK, Xu C, Langdon TG. An analysis of the shear zone for metals deformed by equal-channel angular processing. Mater Sci Eng A. 2005;410:239–42.
  • [3] Ferrasse S, Segal VM, Alford F. Effect of additional processing on texture evolution of Al0.5Cu alloy processed by equal channel angular extrusion (ECAE). Mater Sci Eng A. 2004;372:44–55.
  • [4] Kim JK, Jeong HG, Hong SI, Kim YS, Kim WJ. Effect of aging treatment on heavily deformed microstructure of a 6061 aluminum alloy after equal channel angular pressing. Scr Mater. 2001;45:901–7.
  • [5] Shadabroo MS, Eivani AR, Jafarian HR, Razavi SF, Zhou J. optimization of interpass annealing for a minimum recrystallized grain size and further grain refinement towards nanostructured AA6063 during equal channel angular pressing. Mater Charact. 2016;112:160–8.
  • [6] Roven HJ, Liu M, Werenskiold JC. Dynamic precipitation during severe plastic deformation of an Al–Mg–Si aluminium alloy. Mater Sci Eng A. 2008;483:54–8.
  • [7] Ebrahimi M, Attarilar S, Shaeri MH, Gode C, Armoon H, Djavanroodi F. An investigation into the effect of alloying elements on corrosion behavior of severely deformed Cu-Sn alloys by equal channel angular pressing. Arch Civ Mech Eng. 2019;19:842–50.
  • [8] Dadbakhsh S, Taheri AK, Smith CW. Strengthening study on 6082 Al alloy after combination of aging treatment and ECAP process. Mater Sci Eng A. 2010;527:4758–66.
  • [9] Cardoso KR, Travessa DN, Botta WJ, Jorge AM. High Strength AA7050 Al alloy processed by ECAP: microstructure and mechanical properties. Mater Sci Eng A. 2011;528:5804–11.
  • [10] Pirgazi H, Akbarzadeh A, Petrov R, Kestens L. Microstructure evolution and mechanical properties of AA1100 aluminum sheet processed by accumulative roll bonding. Mater Sci Eng A. 2008;497:132–8.
  • [11] Nagasekhar AV, Tickhon Y. Optimal tool angles for equal channel angular extrusion of strain hardening materials by finite element analysis. Comput Mater Sci. 2004;30:489–95.
  • [12] Cepeda-Jiménez CM, García-Infanta JM, Ruano OA, Carreńo F. High strain rate superplasticity at intermediate temperatures of the Al 7075 alloy severely processed by equal channel angular pressing. J Alloys Compd. 2011;509:8649–56.
  • [13] Kumar SR, Gudimetla K, Venkatachalam P, Ravisankar B, Jayasankar K. Microstructural and mechanical properties of Al 7075 alloy processed by equal channel angular pressing. Mater Sci Eng A. 2012;533:50–4.
  • [14] Cardoso KR, Travessa DN, Jorge AM, Botta WJ. Microstructure evolution of AA7050 Al alloy during equal-channel angular pressing. Mater Res. 2012;5:1732–8.
  • [15] Li S, Beyerlein IJ, Bourke MAM. Texture formation during equal channel angular extrusion of fcc and bcc materials: comparison with simple shear. Mater Sci Eng, A. 2005;394:66–77.
  • [16] Djavanroodi F, Ahmadian H, Naseri R, Koohkan K, Ebrahimi M. Experimental investigation of ultrasonic assisted equal channel angular pressing process. Arch Civ Mech Eng. 2016;16:249–55.
  • [17] Ebrahimi M, Shaeri MH, Naseri R, Gode C. Equal channel angular extrusion for tube configuration of Al-Zn-Mg-Cu alloy. Mater Sci Eng, A. 2018;731:569–76.
  • [18] Valiev RZ, Estrin Y, Horita Z, Langdon TG, Zehetbauer MJ, Zhu YT. Producing bulk ultrafine-grained materials by severe plastic deformation. JOM. 2006;58:33–9.
  • [19] Leo P, Cerri E, Marco PPD, Roven HJ. Properties and deformation behaviour of severe plastic deformed aluminium alloys. J Mater Process Technol. 2007;182:207–14.
  • [20] Serban N, Ghiban N, Cojocaru V. Mechanical behavior and microstructural development of 6063-T1 aluminum alloy processed by equal-channel angular pressing (ECAP): pass number influence. JOM. 2012;64:607–14.
  • [21] S. Suwas, B. Beausir, L.S. Toth, J.J. Fundenberger, G. Gottstein. Texture evolution in commercially pure titanium after warm equal channel angular extrusion. Acta Mater. 2011;59:1121–33.
  • [22] Shaeri MH, Shaeri M, Salehi MT, Seyyedein SH, Djavanroodi F. Microstructure and texture evolution of Al-7075 alloy processed by equal channel angular pressing. Trans Nonferrous Met Soc China. 2015;25:1367–75.
  • [23] Esmaeilia A, Noghania MT, Shaeria MH, Razzaghiana A. 5th International biennial conference on ultrafine grained and nanostructured materials. In: Proc.UFGNSM15., 2015.
  • [24] Zhao YH, Liao XZ, Jin Z, Valiev RZ, Zhu YT. Microstructures and mechanical properties of ultrafine grained 7075 Al alloy processed by ECAP and their evolutions during annealing. Acta Mater. 2004;52:4589–99.
  • [25] Ghosh A, Ghosh M, Shankar G. On the role of precipitates in controlling microstructure and mechanical properties of Ag and Sn added 7075 alloys during artificial ageing. Mater Sci Eng A. 2018;738:399–411.
  • [26] Islamgaliev R, Yunusova N, Sabirov I, Sergueeva A, Valiev RZ. Deformation behavior of nanostructured aluminum alloy processed by severe plastic deformation. Mater Sci Eng A. 2001;319:877–81.
  • [27] Zhenga LJ, Chena CQ, Zhoua TT, Liua PY, Zeng MG. Structure and properties of ultrafine-grained Al-Zn-Mg-Cu and Al-Cu-Mg-Mn alloys fabricated by ECA pressing combined with thermal treatment. Mater Character. 2003;49:455–61.
  • [28] Vaseghi M, Kim HS. A combination of severe plastic deformation and ageing phenomena in Al–Mg–Si Alloys. Mater Des. 2012;36:735–40.
  • [29] Shaeri MH, Salehi MT, Seyyedein SH, Abutalebi MR, Park JK. Microstructure and mechanical properties of Al-7075 alloy processed by equal channel angular pressing combined with aging treatment. Mater Des. 2014;57:250–7.
  • [30] Wang SC, Starink MJ, Gao N, Qiao XG, Xu C, Langdon TG. Texture evolution by shear on two planes during ECAP of a high-strength aluminum alloy. Acta Mater. 2008;56:3800–9.
  • [31] Valiev RZ, Langdon TG. Principles of equal-channel angular pressing as a processing tool for grain refinement. Prog Mater Sci. 2006;51:881–981.
  • [32] Shaeri MH, Shaeri M, Ebrahimi M, Salehi MT, Seyyedein SH. Effect of ECAP temperature on microstructure and mechanical properties of Al–Zn–Mg–Cu alloy. Prog Mater Sci. 2016;26:182–91.
  • [33] Shaeri MH, Salehi MT, Seyyedein SH, Abutalebi MR, Park JK. Characterization of microstructure and deformation texture during equal channel Angular pressing of Al–Zn–Mg–Cu alloy. J Alloys Compd. 2013;576:350–7.
  • [34] Suwas S, Toth LS, Fundenberger JJ, Eberhardt A, Skrotzki W. Evolution of crystallographic texture during equal channel angular extrusion of silver. Scripta Mater. 2003;49:1203–8.
  • [35] Naghdy S, Kestens L, Hertelé S, Verleysen P. Evolution of microstructure and texture in commercial pure aluminium subjected to high pressure torsion processing. Mater Character. 2016;120:285–94.
  • [36] Eldanaf EA, Soliman MS, Almajid AA, El-Rayes MM. Enhancement of mechanical properties and grain size refinement of commercial purity aluminum 1050 processed by ECAP. Mater Sci Eng A. 2007;458:226–34.
  • [37] Zha M, Li Y, Mathiesen RH, Bjřrge R, Roven HJ. Microstructure evolution and mechanical behavior of a binary Al–7 Mg alloy processed by equal-channel angular pressing. Acta Mater. 2015;84:42–54.
  • [38] Ghosh A, Ghosh M. Tensile and impact behaviour of thermo mechanically treated and micro-alloyed medium carbon steel bar. Constr Build Mater. 2018;192:657–70.
  • [39] Bracke L, Verbeken K, Kestens L, Penning J. Microstructure and texture evolution during cold rolling and annealing of a high Mn TWIP steel. Acta Mater. 2009;57:1512–24.
  • [40] Zhang Y, Jin S, Trimby PW, Liao X, Murashkin MY, Valiev RZ, Liu J, Cairney JM, Ringer SP, Sha G. Dynamic precipitation, segregation and strengthening of an Al-Zn-Mg-Cu alloy (AA7075) processed by high-pressure torsion. Acta Mater. 2019;162:19–32.
  • [41] Tang L, Xu G, Deng Y, Gan H, Ma A, Yin Z. Mechanical properties and microstructure of an Al-Zn-Mg-Sc-Zr alloy processed by warm equal channel angular pressing and subsequent aging. JOM. 2018;70:2684–91.
  • [42] Tang L, Peng X, Huang J, Ma A, Deng Y, Xu G. Microstructure and mechanical properties of severely deformed Al-Mg-Sc-Zr alloy and their evolution during annealing. Mater Sci Eng A. 2019;754:295–308.
  • [43] Dieter GE. Mechanical metallurgy, SI metric edition. Singapore: McGraw-Hill Book Company; 1988.
  • [44] Mandal G, Roy C, Ghosh SK, Chatterjee S. Structure-property relationship in a 2 GPa grade micro-alloyed ultrahigh strength steel. J Alloys Compd. 2017;705:817–27.
  • [45] Ozturk F, Polat A, Toros S, Picu RC. Strain Hardening and Strain Rate Sensitivity Behaviors of Advanced High Strength Steels. J Iron Steel Res Int. 2013;20:68–74.
  • [46] Byun TS, Kim IS. Tensile properties and inhomogeneous deformation of ferrite-martensite dual-phase steels. J Mater Sci. 1993;28:2923–32.
  • [47] Beyerlein IJ, Tóth LS. Texture evolution in equal-channel angular extrusion. Prog Mater Sci. 2009;54:427–510.
  • [48] Eldanaf EA. Texture evolution and fraction of favorably oriented fibers in commercially pure aluminum processed to 16 ECAP passes. Mater Sci Eng A. 2008;492:141–52.
  • [49] Schaeben H, Hielscher R, Bachmann F. Texture analysis with MTEX-free and open source software toolbox. Solid State Phenom. 2010;160:63–8.
  • [50] Li S, Beyerlein IJ, Necker CT, Alexander DJ, Bourke M. Heterogeneity of deformation texture in equal channel angular extrusion of copper. Acta Mater. 2004;52:4859–75.
  • [51] Werenskiold JC, Roven HJ. Microstructure and texture evolution during ECAP of an AlMgSi alloy: observations, mechanisms and modelling. Mater Sci Eng A. 2005;410:174–7.
  • [52] Massion RA, Suwas S, Tóth LS, Skrotzki W, Fundenberger JJ, Eberhardt A. Experiments and modelling of ECAE textures of fcc polycrystals. Mater Sci Forum. 2005;495:839–44.
  • [53] Tóth LS, Massion RA, Germain L, Baik SC, Suwas S. Analysis of texture evolution in equal channel angular extrusion of copper using a new flow field. Acta Mater. 2004;52:1885–98.
  • [54] S. Suwas, R.A. Massion, L.S. Tóth, J.J. Fundenberger, A. Eberhardt. Evolution of crystallographic texture during equal channel angular extrusion of copper: the role of material variables. Mater Trans A. 2006;37:739–53.
  • [55] Gholinia A, Bate P, Prangnell PB. Modelling texture development during equal channel angular extrusion of aluminium. Acta Mater. 2002;50:2121–36.
  • [56] Ferrasse S, Segal VM, Kalidindi SR, Alford F. Texture evolution during equal channel angular extrusion: Part I. Effect of route, number of passes and initial texture. Mater Sci Eng A. 2004;368:28–40.
  • [57] Li S, Beyerlein IJ, Alexander DJ, Vogel SC. Texture evolution during equal channel angular extrusion: effect of initial texture from experiment and simulation. Scr Mater. 2005;52:1099–104.
  • [58] Skrotzki W, To’th LS, Klöden B, Brokmeier HG, Arruffat-Massion R. Texture after ECAP of a cube-oriented Ni single crystal. Acta Mater. 2008;56:3439–49.
  • [59] Venkatachalam P, Roy S, Ravisankar B, Thomas Paul V, Vijayalakshmi M, Suwas S. Texture evolution in an Al–Cu alloy during equal channel angular pressing: the effect of starting microstructure. J Mater Sci. 2011;46:6518–27.
  • [60] Naseri M, Hassani A, Tajally M. Fabrication and characterization of hybrid composite strips with homogeneously dispersed ceramic particles by severe plastic deformation. Ceram Int. 2015;41:3952–60.
  • [61] Naseri M, Reihanian M, Borhani E. A new strategy to simultaneous increase in the strength and ductility of AA2024 alloy via accumulative roll bonding (ARB). Mater Sci Eng A. 2016;656:12–20.
  • [62] Wang JW, Duan QQ, Huang CX, Wu SD, Zhang ZF. Tensile and compressive deformation behaviors of commercially pure Al. processed by equal-channel angular pressing with different dies. Mater Sci Eng A. 2008;496:409–16.
  • [63] Fang DR, Duan QQ, Zhao NQ, Li JJ, Wu SD, Zhang ZF. Tensile properties and fracture mechanism of Al–Mg alloy subjected to equal channel angular pressing. Mater Sci Eng A. 2007;459:137–44.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-d0dc4847-3efc-4510-9166-d6196c7e55e7
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.