This paper describes a sequence of residual stress measurements made to determine a two-dimensional map of biaxial residual stress in a nozzle mockup having two welds, one a dissimilar metal (DM) weld and the other a stainless steel (SS) weld. The mockup is cylindrical, designed to represent a pressurizer surge nozzle of a nuclear pressurized water reactor (PWR), and was fabricated as part of a weld residual stress measurement and finite-element (FE) modeling round-robin exercise. The mockup has a nickel alloy DM weld joining an SS safe end to a low-alloy steel cylinder and stiffening ring, as well as an SS weld joining the safe end to a section of SS pipe. The biaxial mapping experiments follow an approach described earlier, in PVP2012-78885 and PVP2013-97246, and comprise a series of experimental steps and a computation to determine a two dimensional map of biaxial (axial and hoop) residual stress near the SS and DM welds. Specifically, the biaxial stresses are a combination of a contour measurement of hoop stress in the cylinder, slitting measurements of axial stress in thin slices removed from the cylinder wall, and a computation that determines the axial stress induced by measured hoop stress. At the DM weld, hoop stress is tensile near the OD (240 MPa) and compressive at the ID (−320 MPa), and axial stress is tensile near the OD (370 MPa) and compressive near the midthickness (−230 MPa) and ID (−250 MPa). At the SS weld, hoop stress is tensile near the OD (330 MPa) and compressive near the ID (−210 MPa), and axial stress is tensile at the OD (220 MPa) and compressive near midthickness (−225 MPa) and ID (−30 MPa). The measured stresses are found to be consistent with earlier work in similar configurations.
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February 2016
Research-Article
Biaxial Residual Stress Mapping for a Dissimilar Metal Welded Nozzle
Michael R. Hill,
Michael R. Hill
Department of Mechanical and
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
e-mail: mrhill@ucdavis.edu
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
e-mail: mrhill@ucdavis.edu
Search for other works by this author on:
Mitchell D. Olson,
Mitchell D. Olson
Department of Mechanical and
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
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Adrian T. DeWald
Adrian T. DeWald
Hill Engineering, LLC
3035 Prospect Park,
Rancho Cordova, CA 95670
3035 Prospect Park,
Rancho Cordova, CA 95670
Search for other works by this author on:
Michael R. Hill
Department of Mechanical and
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
e-mail: mrhill@ucdavis.edu
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
e-mail: mrhill@ucdavis.edu
Mitchell D. Olson
Department of Mechanical and
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
Aerospace Engineering,
University of California,
One Shields Avenue,
Davis, CA 95616
Adrian T. DeWald
Hill Engineering, LLC
3035 Prospect Park,
Rancho Cordova, CA 95670
3035 Prospect Park,
Rancho Cordova, CA 95670
1Corresponding author.
Contributed by the Pressure Vessel and Piping Division of ASME for publication in the JOURNAL OF PRESSURE VESSEL TECHNOLOGY. Manuscript received September 30, 2014; final manuscript received August 19, 2015; published online September 18, 2015. Assoc. Editor: Xian-Kui Zhu.
J. Pressure Vessel Technol. Feb 2016, 138(1): 011404 (9 pages)
Published Online: September 18, 2015
Article history
Received:
September 30, 2014
Revised:
August 19, 2015
Citation
Hill, M. R., Olson, M. D., and DeWald, A. T. (September 18, 2015). "Biaxial Residual Stress Mapping for a Dissimilar Metal Welded Nozzle." ASME. J. Pressure Vessel Technol. February 2016; 138(1): 011404. https://doi.org/10.1115/1.4031504
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