DEPENDENCE OF THE HIGH-FREQUENCY COMPONENTS OF THE MAGNETOELASTIC VOLTAGE ON PLASTIC-DEFORMATION AND STRESS AMPLITUDE DURING STEPWISE CYCLIC STRESSING OF FERROMAGNETIC MATERIAL

Citation
P. Ruuskanen et P. Kettunen, DEPENDENCE OF THE HIGH-FREQUENCY COMPONENTS OF THE MAGNETOELASTIC VOLTAGE ON PLASTIC-DEFORMATION AND STRESS AMPLITUDE DURING STEPWISE CYCLIC STRESSING OF FERROMAGNETIC MATERIAL, Philosophical magazine. A. Physics of condensed matter. Defects and mechanical properties, 68(6), 1993, pp. 1233-1249
Citations number
18
Categorie Soggetti
Physics, Applied
ISSN journal
01418610
Volume
68
Issue
6
Year of publication
1993
Pages
1233 - 1249
Database
ISI
SICI code
0141-8610(1993)68:6<1233:DOTHCO>2.0.ZU;2-#
Abstract
The high-frequency components F-H of the magnetoelastic voltage u(B) i nduced during cyclic stressing of ferromagnetic material has been inve stigated. The true root mean square value B-M of the high-frequency co mponents was measured as a function of stress amplitude sigma. The eff ect of strain ageing on the behaviour of B-M was also studied. It was found that B-M depends on the stress amplitude, plastic deformation, t he dislocation arrangements and the mobility of individual dislocation s. During successive stepwise increases in the stress amplitude it was found that the B-M value of F-H increases in the elastic and micropla stic deformation range. B-M reaches a maximum at a stress amplitude co rresponding to the onset of the macroscopic plastic deformation Delta epsilon(pl). In technically pure iron the onset of the macroscopic def ormation range Delta epsilon(pl) was measured to be 0.5 x 10(-4). The B-M value of the high-frequency components F-H decreases when the stre ss amplitude exceeds the value sigma(B) corresponding to the onset of the macroscopic plastic deformation range. The decrease in the high-fr equency components F-H was found to depend on the macroscopic plastic deformation range Delta epsilon(pl). The reason for the decrease in B- M is both reversible and irreversible plastic deformation. The stress amplitude sigma(B), corresponding to the onset of macroscopic plastic deformation was found to be close to the fatigue limit of the test mat erial. Thus this relationship between the magnetic changes and plastic deformation can be used as a non-destructive method to measure the fa tigue limit of ferromagnetic material. This was confirmed with several different kinds of structural steel.