This paper summarizes the literature on reconciliation of finite element analyses with in-plane bending experiments on piping elbows. It then describes in detail two four-point-bending tests on straight pipes and two in-plane bending tests on elbows and the corresponding nonlinear finite element analyses. Using a new procedure for obtaining a stress-strain curve for stainless steel using only values for and and a representative stress-strain curve from a test on a similar material specimen, the nonlinear responses of the piping components tested are shown to be simulated more accurately than previously published results.
Issue Section:
Technical Papers
1.
Greenstreet, W. L., 1978, “Experimental Study of Plastic Responses of Pipe Elbows,” ORNL/NUREG-24.
2.
Mello, R. M., and Griffin, D. S., 1974, “Plastic Collapse Loads for Pipe Elbows Using Inelastic Analysis,” ASME J. Pressure Vessel Technol., pp. 177–183.
3.
MARC-CDC, 1971, Nonlinear Finite Element Analysis Program, MARC Analysis Corporation and Control Data Corporation, Minneapolis, MN.
4.
Sobel
, L. H.
, and Newman
, S. Z.
, 1980
, “Comparison of Experimental and Simplified Analytical Results for the In-Plane Plastic Bending and Buckling of an Elbow
,” ASME J. Pressure Vessel Technol.
, 102
, pp. 400
–409
.5.
MARC-CDC, Version H.3. 1977.
6.
Sobel
, L. H.
, and Newman
, S. Z.
, 1986
, “Simplified, Detailed, and Isochronous Analysis and Test Results for the In-Plane Elastic-Plastic and Creep Behavior of an Elbow
,” ASME J. Pressure Vessel Technol.
, 108
, pp. 297
–304
.7.
MARC-CDC, Version H.4. 1979.
8.
Dhalla
, A. K.
, 1987
, “Collapse Characteristics of a Thin-Walled Elbow: Validation of an Analytical Procedure
,” ASME J. Pressure Vessel Technol.
, 109
, pp. 394
–401
.9.
MARC-CDC, 1979.
10.
Suzuki
, N.
, and Nasu
, M.
, 1989
, “Non-Linear Analysis of Welded Elbows Subjected to In-Plane Bending
,” Comput. Struct.
, 32
, No. 3/4
, pp. 871
–881
.11.
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12.
Kussmaul, K., Diem, H. K., Uhlmann, D., and Kobes, E., 1995, “Pipe bend behavior at load levels beyond design,” Trans. 13th Int. Conf. Structural Mechanics and Reactor Technology, SMiRT 13, Brazil.
13.
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14.
SAN, 1980, Frderungsvorhaben BMI SR 79, SDK-Report No. 3304 SR 79-01, June.
15.
Ju, G., 1991 “Bifurcation and Localization Instabilities in Plastic Bending of Cylindrical Shells,” Ph.D. dissertation, University of Texas at Austin.
16.
Hassan, T., Bari, S., and Matzen, V. C., 1997-98, “Monotonic Tests on 2 inch, Schedule 40 Elbows,” data developed at the Center for Nuclear Power Plant Structures, Equipment and Piping, North Carolina State University.
17.
ANSYS v5.4, 1994, ANSYS, Inc.
18.
ANSYS v5.4, 1997, Help Manual, 4.181, SHELL181.
19.
ANSYS v5.4, 1997, Help Manual, 4.43, SHELL43.
20.
ABAQUS v6.1, Web-based Help Manual, 15.5.1-1.
21.
Yu, L., 1998. “Elbow Stress Indices Using Finite Element Analysis,” Ph.D. dissertation, North Carolina State University, Raleigh, NC.
22.
ANSYS v5.4, 1997, Help Manual, 4.60, PIPE60.
23.
Tan, Y., and Matzen, V. C., 2001. “Correlation of In-Plane Bending Test and FEA Results for Thin-Walled Elbows,” to be published in Nucl. Eng. Des..
24.
Tan, Y., Wilkins, K., and Matzen, V. C., 2001. “Correlation of Test and FEA Results for Elbows Subjected to Out-of-Plane Loading,” to be published in Nucl. Eng. Des..
25.
Be´ranger, G., Henry, G., and Sanz, G., eds., 1996. The Book of Steel, preface by P. Lacombe, trans. from French by J. H. Davidson, Andover: Intercept, p. 219.
Copyright © 2002
by ASME
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