A New Fatigue Testing Machine for Investigating the Behavior of Small Shear-Mode Fatigue Cracks

The investigation of the behavior of small shear-mode fatigue cracks in the high-cycle fatigue regime is essential to understand the mechanism of rolling-contact fatigue failures, such as flaking in bearings and shelling in rails, from the fracture mechanics point of view. The stable growth of a shear-mode fatigue crack was achieved by applying static compression to a specimen in a cyclic torsion fatigue test. This loading condition is usually obtained by a combined tension-torsion testing machine with a servo-hydraulic control system. In this study, a new testing machine was developed and found to be superior to the servo-hydraulic testing machine in terms of price, operation/maintenance costs, operating speed, and installation volume. For substantiation and demonstration purposes, a shear-mode fatigue crack growth test with a bearing steel was also carried out using both the new and the conventional servo-hydraulic testing machines. The experiments revealed that under the same loading conditions, nonpropagating shear-mode cracks of similar size and geometry could be obtained by the respective testing machines. Thus, it was concluded that the new testing machine has equivalent capabilities to the servo-hydraulic testing machine in performing shear-mode fatigue crack growth tests.

[1]  L. P. Pook,et al.  The fatigue crack direction and threshold behaviour of mild steel under mixed mode I and III loading , 1985 .

[2]  M. Kaneta,et al.  Analysis of Surface Crack Propagation in Lubricated Rolling Contact , 1985 .

[3]  M. Endo,et al.  Shear mode growth and threshold of small fatigue cracks in SUJ2 bearing steel , 2009 .

[4]  M. Endo,et al.  A practical expression for evaluating the small shear-mode fatigue crack threshold in bearing steel , 2014 .

[5]  M. W. Brown,et al.  Shear mode crack growth and rolling contact fatigue , 1990 .

[6]  Masahiro Endo,et al.  Shear mode threshold for a small fatigue crack in a bearing steel , 2011 .

[7]  E. K. Tschegg,et al.  Mode III and Mode I fatigue crack propagation behaviour under torsional loading , 1983 .

[8]  F. A. McClintock,et al.  Mode III fatigue crack propagation in low alloy steel , 1982 .

[9]  Y. Murakami,et al.  Mode II fatigue crack growth mechanism and threshold in a vacuum and air , 2006 .

[10]  Yukitaka Murakami,et al.  Threshold and growth mechanism of fatigue cracks under mode II and III loadings , 2003 .

[11]  A. K. Hellier,et al.  A practical mixed Mode II/III fatigue test rig , 1987 .

[12]  Masahiro Endo,et al.  DESIGNING OF A TESTING MACHINE FOR SHEAR-MODE FATIGUE CRACK GROWTH , 2012 .

[13]  A. Otsuka,et al.  A new testing method to obtain mode II fatigue crack growth characteristics of hard materials , 2004 .

[14]  Michele Carboni,et al.  Mode II fatigue failures at rail butt-welds , 2005 .