elogesh
Mechanical
- May 10, 2002
- 187
Hai,
I have a doubt regarding non-linear analysis.
When I started to work in FEM, I begined with linear static structural analysis.Then I understood the concerns about stress singularity in the sharp re-entrant corners due to the absence of filleted regions,mainly for simplifying the geometry.This simplification resulted in better overall economy.
After getting confidence in linear analysis, I started working on non-linear analysis.I use ANSYS-Multiphysics, General purpose finite element package for both the linear as well as non-linear analysis.The package has good material constitutive model for representing the non-linear materials.
I have taken simple structure with fillets removed subjected to pressure load(Bending problem). Then used material models with following properties to define both linear as well as non-linear region(Elasto-plastic analysis).The linear region is defined by young's modulus and poisson's ratio. The non-linear region defined by Tangent modulus and yield strength. I have used Iso-tropic hardening(Without bauschinger effect).The material is steel.
Applied pressure load, stress the few regions beyond the yield strength and the stiffnes in those regions changed to tangent modulus.But the issue is there are few regions in structure having stress singularity. Therefore those singularity regions reachs the stress values above the yield strength and hence Modulus changes from E to Et.But in realistic the stresses at the singularity regions may be less due to the presence of fillets.
I have few ideas running in mind to tackle this singularity, meanwhile I want to know,how usualy people used to deal with material non-linearity(Elasto-plastic) with stress singularity? Can you share your experiences in this regard?
The objective in this analysis is to findout the permeanent deformation after the removal of load.
Looking forward for your comments/suggestions/feed backs.
If there is anything technically wrong,please correct me.
Thanks for spending your time in reading this thread.
With advanced Thanks and Regards,
Logesh.E
I have a doubt regarding non-linear analysis.
When I started to work in FEM, I begined with linear static structural analysis.Then I understood the concerns about stress singularity in the sharp re-entrant corners due to the absence of filleted regions,mainly for simplifying the geometry.This simplification resulted in better overall economy.
After getting confidence in linear analysis, I started working on non-linear analysis.I use ANSYS-Multiphysics, General purpose finite element package for both the linear as well as non-linear analysis.The package has good material constitutive model for representing the non-linear materials.
I have taken simple structure with fillets removed subjected to pressure load(Bending problem). Then used material models with following properties to define both linear as well as non-linear region(Elasto-plastic analysis).The linear region is defined by young's modulus and poisson's ratio. The non-linear region defined by Tangent modulus and yield strength. I have used Iso-tropic hardening(Without bauschinger effect).The material is steel.
Applied pressure load, stress the few regions beyond the yield strength and the stiffnes in those regions changed to tangent modulus.But the issue is there are few regions in structure having stress singularity. Therefore those singularity regions reachs the stress values above the yield strength and hence Modulus changes from E to Et.But in realistic the stresses at the singularity regions may be less due to the presence of fillets.
I have few ideas running in mind to tackle this singularity, meanwhile I want to know,how usualy people used to deal with material non-linearity(Elasto-plastic) with stress singularity? Can you share your experiences in this regard?
The objective in this analysis is to findout the permeanent deformation after the removal of load.
Looking forward for your comments/suggestions/feed backs.
If there is anything technically wrong,please correct me.
Thanks for spending your time in reading this thread.
With advanced Thanks and Regards,
Logesh.E