scholarly journals 220 Discussion on Superplastic Deformation of Zn-22wt%Al Alloy under Proportional Loading Conditions

2001 ◽  
Vol 2001.50 (0) ◽  
pp. 87-88
Author(s):  
Yang CHEN ◽  
Masataka TOKUDA ◽  
Tadashi INABA ◽  
Akira KURAKAKE
1988 ◽  
Vol 52 (11) ◽  
pp. 1043-1050 ◽  
Author(s):  
Eiichi Sato ◽  
Kazuhiko Kuribayashi ◽  
Ryo Horiuchi

Author(s):  
Charles R. Krouse ◽  
Grant O. Musgrove ◽  
Taewoan Kim ◽  
Seungmin Lee ◽  
Muhyoung Lee

Abstract When considering mechanical components that are subjected to complex loading conditions, it is difficult to achieve accurate predictions of low-cycle fatigue life. For multiaxial and non-proportional loads, the principal strain directions vary in three-dimensional space with time. The commonly accepted methods to determine fatigue life under such loading conditions are based on a critical plane approach, and they rely heavily on accurate strain range estimates. However, there is no singly accepted method to determine the critical plane, equivalent strain magnitude, or equivalent strain direction. Furthermore, current suggestions are computationally intensive and challenging to implement. This paper offers a novel and concise method to accurately determine equivalent strain range and equivalent strain direction under multiaxial, non-proportional loading in three-dimensional space. A practical approach is provided for implementing the method, and an example of an application using a finite element model of a first stage turbine blade is discussed. To demonstrate the approach, ANSYS Mechanical was used to simulate a turbine blade under transient loading conditions and to determine the resulting strains. Equivalent strain range results were applied to a Coffin-Manson relation to determine the low-cycle fatigue life of every node within the finite element model of the first stage turbine blade. The post-processing of the strain predictions, which yielded the equivalent strain range and equivalent strain direction, is discussed in detail.


2020 ◽  
Vol 797 ◽  
pp. 140263
Author(s):  
S. Bi ◽  
Z.Y. Liu ◽  
B.H. Yu ◽  
G.N. Ma ◽  
L.H. Wu ◽  
...  

2006 ◽  
Vol 46 (5) ◽  
pp. 694-697 ◽  
Author(s):  
Shuichi Fudetani ◽  
Shigeyuki Mizunari ◽  
Masahiko Horihata ◽  
Yasunori Torisaka ◽  
Mitsuji Hirohashi

1999 ◽  
Vol 601 ◽  
Author(s):  
S. Hanada ◽  
W. Fang

AbstractMicrostructures of a binary Nb-15.8at%Al alloy ingot were controlled by isothermal forging and heat treatment to produce equiaxed, fine grains of Nb3Al and Nb solid solution (Nb33). Nb3Al/Nb33 two phase alloy (in-situ composite) is found to exhibit superplasticity especially when one of the constituent phases, Nb33, is supersaturated. During superplastic deformation Nb33 transforms to Nb3Al, and Al content in Nb33 decreases. After superplastic deformation the microstructure consisting of equiaxed grains is left unchanged, although a slight grain growth is observed. It is suggested that stress induced by grain boundary sliding is effectively accommodated through dislocation glide and climb in the soft Nb33


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