Welding is known to introduce complex three-dimensional residual stresses of substantial magnitude into pressure vessels and pipe-work. For safety-critical components, where welded joints are not stress-relieved, it can be of vital importance to quantify the residual stress field with high certainty in order to perform a reliable structural integrity assessment. Finite element modeling approaches are being increasingly employed by engineers to predict welding residual stresses. However, such predictions are challenging owing to the innate complexity of the welding process (Hurrell et al., Development of Weld Modelling Guidelines in the UK, Proceedings of the ASME Pressure Vessels and Piping Conference, Prague, Czech Republic, July 26–30, 2009, pp. 481–489). The idea of creating weld residual stress benchmarks against which the performance of weld modeling procedures and practitioners can be evaluated is gaining increasing acceptance. A stainless steel beam 50 mm deep by 10 mm wide, autogenously welded along the 10 mm edge, is a candidate residual stress simulation benchmark specimen that has been studied analytically and for which neutron and synchrotron diffraction residual stress measurements are available. The current research was initiated to provide additional experimental residual stress data for the edge-welded beam by applying, in tandem, the slitting and contour residual stress measurement methods. The contour and slitting results were found to be in excellent agreement with each other and correlated closely with published neutron and synchrotron residual stress measurements when differences in gauge volume and shape were accounted for.

References

1.
Hurrell
,
P.
,
Watson
,
C.
,
Bouchard
,
P. J.
,
Smith
,
M.
,
Dennis
,
R.
,
Leggatt
,
N.
,
Bate
,
S.
, and
Warren
,
A.
, 2009, “
Development of Weld Modelling Guidelines in the UK
,”
Proceedings of the ASME Pressure Vessels and Piping Conference
,
Prague, Czech Republic
, July 26–30, pp.
481
489
.
2.
Budden
,
P. J.
, ed.
Section III.15: Calculation of Residual Stresses in Weldments, R6 Revision 4, Assessment of the Integrity of Structures Containing Defects
(
British Energy
,
Gloucester, UK
, 2009).
3.
Bouchard
,
P. J.
, 2008,
"Code Characterisation of Weld Residual Stress Levels and the Problem of Innate Scatter,"
Int. J. Pressure Vessels Piping
,
85
, pp.
152
165
.
4.
Lu
,
J.
, ed.
Handbook of Measurement of Residual Stresses
(
The Fairmont Press
,
Lilburn, GA
, 1996).
5.
Mirzaee-Sisan
,
A.
,
Smith
,
D. J.
, and
Truman
,
C. E.
, 2007, “
Characterising Residual Stresses in Rectangular Beam Specimens Following Thermo-Mechanical Loading
,”
J. Strain Anal. Eng. Des.
,
42
(
2
), pp.
79
93
.
6.
Nadri
,
B.
,
Bouchard
,
P. J.
,
Truman
,
C. E.
, and
Smith
,
D. J.
,
"A Statistical Framework for Analysing Weld Residual Stresses for Structural Integrity Assessment,"
ASME Pressure Vessels and Piping Division Conference
,
Chicago, Illinois, USA
, 2008, pp.
369
376
.
7.
Schindler
,
H. J.
, and
Bertschinger
,
P.
, 1997, “
Some Steps Towards Automation of the Crack Compliance Method to Measure Residual Stress Distributions
,”
International Conference on Residual Stresses
,
Linkoping, Sweden,
Vol.
2
, pp.
682
687
.
8.
Prime
,
M. B.
, 1999, “
Residual Stress Measurement by Successive Extension of a Slot: The Crack Compliance Method
,”
Appl. Mech. Rev.
,
52
(
2
), pp.
75
96
.
9.
Prime
,
M. B.
, 2001, “
Cross-Sectional Mapping of Residual Stresses by Measuring the Surface Contour After a Cut
,”
J. Eng. Mater. Technol.
,
123
(
2
), pp.
162
168
.
10.
Schindler
,
H. J.
,
Cheng
,
W.
, and
Finnie
,
I.
, 1997, “
Experimental Determination of Stress Intensity Factors Due to Residual Stress
,”
Exp. Mech.
,
37
, pp.
272
277
.
11.
Schindler
,
H. J.
, and
Finnie
,
I.
, 1997, “
Experimental Determination of Residual Stresses and the Resulting Stress Intensity Factors in Rectangular Plates
,”
Proceedings of the 9th International Conference on Fracture
, Vol.
1
, pp.
523
530
.
12.
Wu
,
X. R.
, and
Carson
,
A. J.
,
Weight Functions and Stress Intensity Factor Solution
(
Pergamon Press
,
Oxford
, 1991).
13.
Schindler
,
H. J.
, and
Bertschinger
,
P.
, 1997,
"Some Steps Towards Automation of the Crack Compliance Method to Measure Residual Stress Distributions
”,
Proceedings of the 5th International Conference on Residual Stress
, Vol.
1
, pp.
682
687
.
14.
Fett
,
T.
, and
Munz
,
D.
,
Stress Intensity Factors and Weight Functions
(
Computational Mechanics Publications
,
Southampton, UK
, 1977).
15.
Zhang
,
Y.
,
Ganguly
,
S.
,
Edwards
,
L.
, and
Fitzpatrick
,
M. E.
, 2004, “
Cross-sectional Mapping of Residual Stresses in a VPPA Weld Using the Contour Method
,”
Acta Mater.
,
52
, pp.
5225
5232
.
16.
Zhang
,
Y.
,
Ganguly
,
S.
,
Stelmukh
,
V.
,
Fitzpatrick
,
M. E.
, and
Edwards
,
L.
, 2003, “
Validation of the Contour Method of Residual Stress Measurement in a MIG 2024 Weld by Neutron and Synchrotron X-Ray Diffraction
,”
J. Neutron Res.
,
11
(
4
), pp.
181
185
.
17.
Prime
,
M. B.
,
Hill
,
M. R.
,
DeWald
,
A. T.
,
Sebring
,
R. J.
,
Dave
,
V. R.
, and
Cola
,
M. J.
, 2002, “
Residual Stress Mapping in Welds Using the Contour Method
,”
Proceedings of the 6th International Conference: Trends in Welding Research
, April 15–19, pp.
891
896
.
18.
Boor
,
C.
, 2000,
Spline Toolbox User’s Guide
,
The Math Works, Inc.
,
Natick, MA
, p. matlab.
19.
Pagliaro
,
P.
,
Prime
,
M. B.
,
Robinson
,
J. S.
,
Clausen
,
B.
,
Swendon
,
H.
,
Steinzig
,
M.
, and
Zuccarello
,
B.
, 2010, “
Measuring Inaccessible Residual Stresses Using Multiple Methods and Superposition
,”
Exp. Mech.
,
50
(
2
), pp.
187
194
.
You do not currently have access to this content.