The deformation of round tensile bars subject to dynamic loading is studied numerically using two different plasticity theories: J 2 -flow theory and J 2 -deformation theory. Time development of neck localization is visualized and a comparison of the necking patterns obtained using the two different
Effects of inertia on dynamic neck formation in tensile bars
โ Scribed by Kristina Nilsson
- Publisher
- Elsevier Science
- Year
- 2001
- Tongue
- English
- Weight
- 450 KB
- Volume
- 20
- Category
- Article
- ISSN
- 0997-7538
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โฆ Synopsis
Neck localization during high rate extension of round bars is analyzed numerically. An axisymmetric problem formulation is given and the material is described as rate independent and elastic-plastic. The time history of neck development is investigated and effects of geometry and initial thickness imperfections are visualized. Studies of both weakly and strongly developed necks are performed, revealing the occurrence of multiple necks in some loading cases. The influence on neck formation from background inertia (lateral inertia) corresponding to the inertia originating from homogeneous deformation of the bar is examined somewhat qualitatively by introducing an artificial volume load. Calculations show that in the present analysis, background inertia does not have any noticeable influence on the necking pattern unless the effect is artificially magnified by three orders of magnitude so that it becomes comparable to the yield stress.
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