(7.8)--Origin of the reversed yield asy机械工程材料机械工程材料.pdf
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1、Origin of the reversed yield asymmetry in Mg-rare earth alloys at hightemperatureP.Hidalgo-Manrique,a,V.Herrera-Solaz,bJ.Segurado,a,bJ.Llorca,a,bF.Ga lvez,bO.A.Ruano,cS.B.Yidand M.T.Pe rez-PradoaaIMDEA Materials Institute,C/Eric Kandel 2,28906 Getafe,Madrid,SpainbDepartment of Materials Science,Poly
2、technic University of Madrid,E.T.S.de Ingenieros de Caminos,28040 Madrid,SpaincDepartment of Physical Metallurgy,CENIM-CSIC,Av.Gregorio del Amo 8,28040 Madrid,SpaindMagnesium Innovation Centre MagIC,Helmholtz-Zentrum Geesthacht,Max-Planck-Strasse 1,D-21502 Geesthacht,GermanyReceived 10 October 2014;
3、revised 30 March 2015;accepted 30 March 2015Available online 22 April 2015AbstractThe mechanical behaviour in tension and compression of an extruded Mg1 wt.%Mn1 wt.%Nd(MN11)alloy was studied along theextrusion direction in the temperature range?175?C to 300?C at both quasi-static and dynamic strain
4、rates.Microstructural analysis revealed thatthe as-extruded bar presents a recrystallized microstructure and a weak texture that remain stable in the whole temperature range.A remarkablereversed yield stress asymmetry was observed above 150?C,with the compressive yield stress being significantly hig
5、her than the tensile yield stress.The origin of this anomalous reversed yield stress asymmetry,which to date remains unknown,was investigated through the analysis of the macroand microtexture development during deformation,as well as by means of crystal plasticity finite element simulations of a rep
6、resentative volumeelement of the polycrystal.The critical resolved shear stresses of slip and twining for simulated single crystals were obtained as a function of thetemperature by means of an inverse optimisation strategy.Experimental and simulation results suggest that the reversed yield asymmetry
7、 may beprimarily attributed to the non-Schmid behaviour of pyramidal hc+ai slip,which is the dominant deformation mechanism at high temperatures.It is proposed,furthermore,that the asymmetry is enhanced at quasi-static strain rates by the stronger interaction of hc+ai dislocations withthe diffusing
8、solute atoms and particles in compression than in tension.?2015 Acta Materialia Inc.Published by Elsevier Ltd.All rights reserved.Keywords:Magnesium alloys;Reversed yield stress asymmetry;Non-Schmid;PortevinLe Chatelier;Finite element simulation1.IntroductionMg can deform by crystallographic slip an
9、d mechanicaltwinning 1,2.Slip may take place both along the h11?20ior hai direction mainly on basal and prismatic 10?10planes as well as along the h11?23i or hc+ai direction onpyramidal 11?22 planes.Twinning occurs predominantlyon the pyramidal 10?12 planes 3,4 and it plays a key roleduring deformat
10、ion.Indeed,due to the low symmetry ofthe hcp lattice,the number of independent slip systemscapable of accommodating deformation along the c-axisis limited and twinning has to occur in order to avoid inter-granular incompatibilities.As the c/a ratio of Mg is lowerthan the ideal one,pyramidal twinning
11、 is denominated ten-sion or extension twinning,since it can only be activatedwhen the resolved applied stress results in an extension ofthe c-axis 5.Different combinations of deformationsystems may be activated under different deformationmodes for a given texture due to the polar nature of themechan
12、ical twinning.Wrought processes,such as extrusion or rolling,gener-ally give rise to a crystallographic texture where a signifi-cant fraction of grains have their 0001 basal planespreferentially oriented parallel to the extrusion(ED)orthe rolling direction(RD)6.Basal slip,which is usuallythe most ea
13、sily activated deformation mechanism at roomtemperature(RT)2,is severely hindered when loadingalong the ED or the RD due to the low Schmid factor ofthe basal planes in this condition 7.In contrast,tensiontwinning is easily activated under compression,while pris-matic slip is mainly activated under t
14、ension 7.Since thecritical resolved shear stress(CRSS)of non-basal systemsat RT is much higher than that of basal slip and twinning8,9,Mg wrought products are characterised by a distinctRT tensioncompression asymmetry 4,5.The addition of certain rare earth(RE)elements,even indilute concentrations,ha
15、s been recently claimed to be aneffective method for reducing the RT yield asymmetry ofMg wrought products 1015.This is related to the relativeweak texture of RE-containing Mg alloys as compared withpure Mg or conventional Mg alloys.The mechanismresponsible for the texture weakening is not still cle
16、arhttp:/dx.doi.org/10.1016/j.actamat.2015.03.0531359-6462/?2015 Acta Materialia Inc.Published by Elsevier Ltd.All rights reserved.Corresponding author.Available online at ScienceDirectActa Materialia 92(2015) the intense efforts devoted in the past few years toinvestigate MgRE alloys.It has been pro
17、posed that REelements could alter the activity of the different deforma-tion modes leading to weaker textures during hot rollingand/or extrusion.In particular,the activation of non-basalhc+ai slip and/or a greater propensity for contraction anddouble twinning would favour a broader distribution of t
18、hebasal planes 16.This has been sometimes related to theformation of shear bands,which are inclined towardsthe direction of the metal flow and where the basal planesare closely aligned with the band plane 1719.However,the effect of REs on the deformation behaviour is notenough to explain the texture
19、 change in MgRE alloys.Moreover,some investigations suggest that RE additionsalter the nature of static or dynamic recrystallization pro-cesses 2024,resulting in the observed texture randomiza-tion during hot processing.This has been mainly associatedwith preferred nucleation of grains at particles
20、10 andshear bands 21 and with retardation of grain growth byparticles or solutes 20.The influence of RE additions on the mechanical beha-viour of Mg alloys during uniaxial loading at RT is alsonot well understood.Some studies 12,14 suggest that theweak texture alone cannot explain the elimination of
21、 theRT yield asymmetry in RE-containing Mg alloys,whichwould also require a change of the CRSS for the deforma-tion modes with respect to non-RE Mg alloys.It has beenrecently shown that the RE additions lead to a decrease inthe ratio of the CRSS for non-basal slip to the CRSS fortwinning,leading to
22、an enhancement of the activity ofnon-basal slip systems at the expense of twinning 15,which clearly contributes to the reduced mechanical asym-metry of the RE-containing Mg alloys.This effect has beenascribed to changes in the c/a ratio 16,in the Peierlspotentials 19 or in the stacking fault energie
23、s(SFEs)19,25 and even to the anisotropic strengthening effect ofprecipitates 12 and solutes,as well as of the grain refine-ment relative to non-containing RE alloys 26.It is clearthat,whether an effect of texture weakening or an effectof non-basal slip promotion,the reduction of the yieldstress asym
24、metry caused by the RE additions is based ona lower incidence of twinning or,in other words,a higherreliance on slip to accommodate the deformation.Significantly fewer efforts have been devoted to investi-gate the influence of temperature on the mechanical beha-viour of RE-containing alloys 2734.Und
25、erstanding thedeformation mechanisms of these materials at moderatetemperatures is critical,as most deformation processingoperations take place in this temperature range.It has beenobserved that the RE-containing alloys present serrationsin the stressstrain curve 27,29,31,32,indicating the occur-ren
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