Loss of coherency and interphase α/β angular deviation from the Burgers orientation relationship in a Ti-6Al-4V alloy compressed at 800 °C

被引:69
作者
Cabibbo, M. [1 ]
Zherebtsov, S. [2 ]
Mironov, S. [3 ]
Salishchev, G. [2 ]
机构
[1] Univ Politecn Marche, DIISM, I-60131 Ancona, Italy
[2] Belgorod State Univ, Lab Bulk Nanostruct Mat, Belgorod 308015, Russia
[3] Tohoku Univ, Grad Sch Engn, Dept Mat Proc, Sendai, Miyagi 9808579, Japan
关键词
ROOM-TEMPERATURE DEFORMATION; FCC-BCC INTERFACES; STRUCTURAL LEDGES; CONTINUOUS RECRYSTALLIZATION; PHASE BOUNDARIES; TITANIUM-ALLOYS; ELECTRON-MICROSCOPY; BETA-PHASE; TRANSFORMATIONS; MICROSTRUCTURE;
D O I
10.1007/s10853-012-6842-z
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The mutual relationship between phases in two-phase titanium alloys, alpha(HCP) and beta(BCC), is such that: {0001}(alpha)parallel to{110}(beta); < 11 (2) over bar0 >(alpha)parallel to < 111 >(beta), which in literature are known as Burgers orientation relationships. The coherency of the two phases is controlled by this crystallographic mutual relationship. Loss of coherency between phases during deformation can originate from a non-parallelism between the two boundary crystallographic planes. This study focuses on alpha(HCP)/beta(BCC) interface coherency evolution in a lamellar Ti-6Al-4V alloy subjected to hot compression at 800 degrees C. The strain rate was 10(-3) s(-1) and deformation was carried out to average true strains of epsilon = 0.29, 0.69, and 1.20. Loss of coherency was found at strains epsilon >= 0.50. For these strains, the lamellar alpha + beta microstructure also evolved to a spheroidized morphology. The loss of interface coherency was thus associated with the acceleration of the lamellar microstructure dynamic spheroidization.
引用
收藏
页码:1100 / 1110
页数:11
相关论文
共 49 条
[1]   Role of interphases in the deformation mechanisms of an α/β titanium alloy at 20 K [J].
Ambard, A ;
Guétaz, L ;
Louchet, F ;
Guichard, D .
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2001, 319 :404-408
[2]   On structural mechanism of continuous recrystallization in ferritic stainless steel after large strain processing [J].
Belyakov, A ;
Kimura, Y ;
Tsuzaki, K .
NANOMATERIALS BY SEVERE PLASTIC DEFORMATION, 2006, 503-504 :323-328
[3]   Strain-induced grain evolution in polycrystalline copper during warm deformation [J].
Belyakov, A ;
Gao, W ;
Miura, H ;
Sakai, T .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 1998, 29 (12) :2957-2965
[4]  
Belyakov A, 2001, PHILOS MAG A, V81, P2629, DOI 10.1080/01418610110042876
[5]   The role of crystallographic and geometrical relationships between α and β phases in an α/β titanium alloy [J].
Bhattacharyya, D ;
Viswanathan, GB ;
Denkenberger, R ;
Furrer, D ;
Fraser, HL .
ACTA MATERIALIA, 2003, 51 (16) :4679-4691
[6]   The origins of heterogeneous deformation during primary hot working of Ti-6Al-4V [J].
Bieler, TR ;
Semiatin, SL .
INTERNATIONAL JOURNAL OF PLASTICITY, 2002, 18 (09) :1165-1189
[7]  
Bieler TR, 2005, ALLOYS TITANIUM ENCY, P65
[8]   Transmission electron microscopy study of strain-induced low- and high-angle boundary development in equal-channel angular-pressed commercially pure aluminum [J].
Cabibbo, M. ;
Blum, W. ;
Evangelista, E. ;
Kassner, M. E. ;
Meyers, M. A. .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2008, 39A (01) :181-189
[9]   Characterisation of phases in nanostructured, multilayered titanium alloys by analytical and high-resolution electron microscopy [J].
Czyrska-Filemonowicz, A. ;
Buffat, P. A. .
MICRON, 2009, 40 (01) :15-21
[10]   ORIENTATION RELATIONSHIPS IN PRECIPITATION SYSTEMS [J].
DAHMEN, U .
ACTA METALLURGICA, 1982, 30 (01) :63-73