Title: Bead on Plate Simulations
1- Bead on Plate Simulations
- Colin Elcoate - Frazer Nash Consultancy Ltd
- for British Energy Generation Ltd
- (on behalf of the Industry Management Committee)
- FEAT TUG 9th May 2002
2Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
3Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
4Bead on Plate Simulations
- Background
- Accurate prediction of residual stresses in
repair welds - Axisymmetric and 3D shell models (ABAQUS) did not
give very good comparison with experiment - Initial FEAT analyse by RMS under VORSAC
- Demonstrated excellent potential
- Work continued through IMC, BEGL and NPOWER
5Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
6Bead on Plate Simulations
7Bead on Plate Simulations
8Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
9Bead on Plate Simulations
- Moving Torch
- Ellipsoidal distribution
- 70 efficiency - ratio of heat entering the work
piece to the electrical heat input (typically
66-85) - Sensible predicted fusion boundary
10Bead on Plate Simulations
11Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
12Bead on Plate Simulations
- Lumped Approach
- 70 efficiency - ratio of heat entering the work
piece to the electrical heat input - Heat deposition representative of moving torch -
only changes in time and z (along the bead) - Predicted fusion boundary deeper than equivalent
moving torch simulation
13Bead on Plate Simulations
14Bead on Plate Simulations
Lumped model heat deposition normalised power
factor
15Bead on Plate Simulations
Lumped model non-dimensional transient heat
deposition
16Bead on Plate Simulations
Moving Torch
Lumped Approach
Comparison of fusion boundary at mid-length of
bead
17Bead on Plate Simulations
Comparison of fusion boundary at mid-length of
bead
18Bead on Plate Simulations
Macro-graph along the bead
19Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
20Bead on Plate Simulations
- Comparison
- Comparisons carried out between the FEAT moving
torch and lumped approaches - Comparison of the moving torch analysis against
published numerical results (different material)
gave good comparison of stress distribution
21Bead on Plate Simulations
Torch
Moving Torch
Lumped Approach
Comparison of parent plate top surface
longitudinal stress
22Bead on Plate Simulations
Torch
Moving Torch
Lumped Approach
Comparison of parent plate bottom surface
longitudinal stress
23Bead on Plate Simulations
Torch
Moving Torch
Lumped Approach
Comparison of parent plate top surface transverse
stress
24Bead on Plate Simulations
Torch
Moving Torch
Lumped Approach
Comparison of parent plate bottom surface
transverse stress
25Bead on Plate Simulations
Moving Torch
Lumped Approach
Comparison of longitudinal stress at mid-length
cross section
26Bead on Plate Simulations
Moving Torch
Lumped Approach
Comparison of longitudinal stress on symmetry
plane
27Bead on Plate Simulations
Moving Torch
Lumped Approach
Comparison of transverse stress at mid-length
cross section
28Bead on Plate Simulations
Moving Torch
Lumped Approach
Comparison of transverse stress on symmetry plane
29Bead on Plate Simulations
Stress comparison at 2mm below top plate surface
along longitudinal plate axis
30Bead on Plate Simulations
Stress comparison at 2mm above bottom plate
surface along longitudinal plate axis
31Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
32Bead on Plate Simulations
- Problems Encountered
- Annealing (molten strain)
- Plasticity algorithm robustness
33Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
34Bead on Plate Simulations
- Further/Current Developments
- NPOWER/BEGL funded repair weld simulation
- FEAT/ABAQUS hybrid
- ABAQUS 6.2 Annealing feature
- Include creep and reheat cracking
- Bead on plate simulations very good
- Repair weld ongoing (lumped)
35Bead on Plate Simulations
- Contents
- Background
- FEAT Models
- Moving torch
- Lumped approach
- Comparisons
- Problems encountered
- Further/Current Developments (2002/2003)
- Conclusion
36Bead on Plate Simulations
- Conclusions
- Work ongoing to provide BEGL with a robust
simulation tool for repair welds - Improved hardware and software provides
manageable run times - Hybrid approach currently adopted with FEAT doing
all the hard work