Sources of anisotropy in metals are discusssed as well as ways of interpreting and modelling this behaviour. A number of case studies are presented relating to mechanical and magnetic properties.
DehoffA. M., KirkaM. M., ListF. A., UnocicK. A. and SamesW. J.: ‘Crystallogaphic texture engineering through novel melt strategies via electron beam melting: Inconel 718’, Mater. Sci. Technol., 2015, 31, 939–944.
4.
HosfordW. F.: ‘The mechanics of crystals and textured polycrystals’, 1993, Oxford, Oxford Univ. Press.
5.
MorrisonW. B.: ‘Influence of testing direction on the mechanical properties of wrought steel’, Met. Technol., 1975, 2, 33–41.
6.
ForsythP. J. E. and StubbingtonC. A.: ‘Directionality in structure-property relationships: aluminium and titanium alloys’, Met. Technol., 1975, 2, 158–177.
7.
NilssonA. S.: ‘Anisotropy in duplex stainless steel’, ‘Report IM-2551’; 1990, Stockholm, Sweden, Swedish Institute of Metals Research.
8.
BramfittB. L. and MarderA. R.: ‘The influence of microstructure and crystallographic texture on the strength and notch toughness of a low-carbon steel’, in ‘Processing and properties of low carbon steels’, (ed. GrayJ. M.., 191–224; 1973, Cleveland, TMS-AIME.
9.
TchorzewskiR. M. and HutchinsonW. B.: ‘Anisotropy of fracture toughness in textured titanium-6A1-4V’, Metall. Trans., 1978, 9A, 1113–1124.
10.
NyeJ. F.: ‘Physical properties of crystals’, 1969, Oxford University Press.
van HoutteP., van BaelA., SeefeldtM. and DelannayL.: ‘The application of multiscale modelling for the prediction of plastic anisotropy and deformation textures’, Mater. Sci. Forum, 2005, 495–497, 31–44.
13.
BungeH.-J.: ‘Texture analysis in materials science’, 1982, London, Butterworth.
14.
EnglerO., GottsteinG., PospiechJ. and JuraJ.: ‘Statistics, evaluation and representation of single grain orientation measurements’, Mater. Sci. Forum, 1993, 157–162, 259–273.
LedbetterH. M. and NaimonE. R.: ‘Elastic properties of metals and alloys’, J. Phys. Chem. Ref. Data, 1974, 3, 897–935.
17.
van HoutteP., DelannayL. and SamajdarI.: ‘Quantitative prediction of rolling textures in low carbon steels by means of the lamel model’, Textures Microstruct., 1999, 31, 109–149.
18.
CrumbachM., PomanaG., WagnerP. and GottsteinG.: ‘A Taylor-type deformation texture model considering grain interaction and material properties’ ‘Recrystallisation and grain growth’, 1053–1068; 2001, Berlin, Springer.
19.
LebensohnR. A. and ToméC. N.: ‘A self-consistent approach for the simulation of plastic deformation and texture development of polycrystals: application to Zirconium alloys’, Acta Met. Mater., 1993, 41, 2611–2644.
20.
BateP.: ‘Modelling deformation microstructure with the crystal plasticity finite-element method’, Philos. Trans. R. Soc. London, 1999, A357, 1589–1601.
21.
TaylorG. I.: ‘Plastic strain in metals’, J. Inst. Met., 1938, 62, 307–324.
22.
ChapuisC. H. and DriverJ. H.: ‘Temperature dependency of slip and twinning in plane strain compressed magnesium single crystals’, Acta Mater., 2011, 59, 1986–1994.
23.
KellyE. W. and HosfordW. F.: ‘Plane strain compression of magnesium and magnesium alloy crystals’, Trans. Met. Soc. AIME, 1968, 242, 5–13.
24.
HutchinsonB. and DavisT.: ‘The effect of strain path changes on the plastic flow properties of steel’, Proc. 4th Conf. on ‘the Behaviour of Metals’, Stockholm, Sweden, August 1983, 1227–1233.
25.
WilsonD. V. and BateP. S.: ‘Influences of cell walls and grain boundaries on transient responses of an IF steel to changes in strain path’, Acta Met. Mater., 1994, 42, 1099–1111.
26.
CullityB. D. and GrahamC. D.: ‘Introduction to magnetic materials’, 2009, Hoboken, NJ, IEEE Press.
27.
HutchinsonW. B. and SwiftJ. G.: ‘Anisotropy in some soft magnetic materials’, Texture, 1972, 1, 117–123.
28.
KestensL. and JacobsS.: ‘Texture control during the manufacturing of nonoriented electrical steels’, Texture Stress Microstruct., 2008, 2008, ID 173803, DOI: 10.1155/2008/173083
29.
SidorJ. J., VerbekenK., GomesE., SchneiderJ., CavilloP. R. and KestensL. A. I.: ‘Through process texture evolution and magnetic properties of high Si non-oriented steels’, Mater. Charact., 2012, 71, 49–57.
30.
HosfordW. F. and CadellA. M.: ‘Metal forming: mechanics and metallurgy’, 2007, Cambridge, Cambridge Univ. Press.
31.
WilsonD. V.: ‘Plastic anisotropy in sheet metals’, J. Inst. Met., 1996, 94, 84–93.
32.
HutchinsonB.: ‘Practical aspects of texture control in low carbon steel’, Mater. Sci. Forum, 1994, 157–162, 1917–1928.
33.
HirschJ.: ‘Texture evolution and earing in aluminium can sheet’, Mater. Sci. Forum, 2005, 495–497, 1565–1572.
34.
RobertsC. S.: ‘Magnesium and its alloys’, 1960, New York, Wiley.
35.
AgnewS. R. and DuyguluO.: ‘Plastic anisotropy and the role of non-basal slip in magnesium alloy AZ31B’, Int. J. Plast., 2005, 21, 1161–1193.
36.
BarnettM. R., KeshavarzZ., BeerA. G. and AtwellD.: ‘Influence of grain size on the compressive deformation of wrought Mg–3Zn–1Al’, Acta Mater., 2004, 52, 5093–5103.
MukaiT., YamanoiT., WatanabeH. and HigashiK.: ‘Ductility enhancement in AZ31 magnesium alloy by controlling its grain structure’, Scr. Mater., 2001, 45, 89–94.
39.
LiB., JoshiS. P., AzevedoK., MaE., RameshK. T. and FigueiredoR. B.: ‘Dynamic testing at high strain rates of an ultra-fine grained magnesium alloy processed by ECAP’, Mater. Sci. Eng., 2009, A517, 24–29.
40.
PoggialiF. S. J., SilvaC. L. P., PereiraP. H. R., FigueiredoR. B. and CetlinP. R.: ‘Determination of mechanical anisotropy of magnesium processed by ECAP’, J. Mater. Res Technol., 2014, 3, 331–337.
41.
StanfordN. and BarnettM. R.: ‘The origin of ‘rare earth’ texture development in extruded Mg-based alloys and its effect on tensile ductility’, Mater. Sci. Eng., 2008, A496, 399–408.
42.
BohlenJ., NürnbergM. R., SennJ. W., LetzigD. and AgnewS. R.: ‘The texture and anisotropy of magnesium–zinc–rare earth alloy sheets’, Acta Mater., 2007, 55, 2101–2112.
43.
GriffithsD.: ‘Explaining texture weakening and improved formability in magnesium rare earth alloys’, Mater. Sci. Technol., 2015, 31, 10–24.
44.
LotterU. and MeyerL.: ‘Texture and yield strength anisotropy of microalloyed thermomechanically treated high-strength steels’, Met. Technol., 1977, 4, 27–31.
45.
InagakiH., KuriharaK. and KozasuI.: ‘Influence of crystallographic texture on the strength and toughness of control-rolled high tensile strength steel’, Trans. ISIJ, 1977, 17, 75–81.
46.
PorterD. and EasterlingK.: ‘Phase transformations in metals and alloys’, 2009, CRC Press.
47.
HutchinsonB., RydeL. and BateP.: ‘Transformation textures in steels’, Mater. Sci. Forum, 2005, 495–497, 1141–1149.
48.
BaeJ.-B., ChoiS.-H., KimK. S. and KangK. B.: ‘Study of texture development and anisotropy of mechanical properties of API-X80 line pipe steel for spiral-welded pipe’, Mater. Sci. Forum, 2005, 495–497, 531–536.
49.
PyshmintsevI., GervasyevA., PetrovR. H., CarreteroV. C. and KestensL.: ‘Crystallographic texture as a factor enabling ductile fracture arrest in high strength pipeline steel’, Mater. Sci. Forum, 2012, 702–703, 770–773.
50.
ZongC., ZhuG. and MaoW.: ‘Effect of crystallographic texture on the anisotropy of Charpy impact behaviour in pipeline steel’, Mater. Sci. Eng., 2013, A563, 1–7.
51.
JooM. S., SuhD.-W., Sanchez MourinoN., PetrovR., KestensL. A. I. and BhadeshiaH. K. D. H.: ‘Experiments to separate the effect of texture on anisotropy of pipeline steel’, Mater. Sci. Eng., 2012, A556, 601–606.
52.
TägtströmP. and HutchinsonW. B.: ‘The influence of crystallographic texture and nitrogen content on Young's modulus of 304 and 316 stainless steel sheet’, Applications of Stainless Steel ‘92, Stockholm, Sweden, June 1992, Jernkontoret, 83–93.
53.
ChinG. Y.: ‘Processing of copper alloys’, US Patent 3,663,311; 1972.
54.
FrommertM., ZobristC., LahnL., BöttcherA., RaabeD. and ZaeffererS.: ‘Texture measurement of grain oriented electrical steel after secondary recrystallisation’, J. Magn. Magn. Mater., 2008, 320, e657–e660.