Abstract

To investigate the failure behavior of piping systems under severe seismic loads considering beyond design basis event (BDBE), an experimental approach to use pipes made of simulation materials was applied. “Simulation material” means the substitute material for steel to realize the structural experiment by the existing testing facilities. The simulation materials adopted in this study were pure lead (Pb) or lead-antimony (Pb-Sb) alloy. Using pipe elbows made of simulation materials, static loading tests on elbows and shaking table tests on simple piping system models composed of one or two elbows and an additional mass were conducted. From the static loading tests, the load–deflection relationship of an elbow under monotonic loading was obtained as well as the fatigue failure modes under cyclic loading depending on the several cyclic displacement levels. From the shaking table tests, several failure modes were obtained, namely, “collapse by self-weight,” “collapse by a few cycles of input,” “ratchet and subsequent collapse,” “overall deformation,” and “no failure.” It was considered that the occurrence of these failure modes was affected by the ratio of the input frequency to the specimen's natural frequency, the ratio of additional mass weight to the limit mass weight, the configuration of the specimen, and the input acceleration level. The experimental results indicated that it was crucial to understand the structure's ultimate behavior when treating BDBE, and that the research approach using simulation material is effective to investigate the ultimate behavior of piping systems.

References

1.
Kasahara
,
N.
, and
Sato
,
T.
,
2017
, “
Difference of Strength Evaluation Approach Between for DBE and for BDBE
,”
ASME
Paper No. PVP2017-65478.10.1115/PVP2017-65478
2.
Fujita
,
K.
,
Shiraki
,
K.
,
Kitada
,
K.
, and
Nakamura
,
T.
,
1978
, “
Vibration Damaged Experiments of Curved Piping for Investigating the Seismic Ultimate Strength
,”
Trans. JSME
,
44
(
386
), pp.
3437
3445
.10.1299/kikai1938.44.3437
3.
Tagart
,
S. W.
Jr.
,
Tang
,
Y. K.
,
Guzy
,
D. J.
, and
Ranganath
,
S.
,
1990
, “
Piping Dynamic Reliability and Code Rule Change Recommendations
,”
Nucl. Eng. Des.
,
123
(
2–3
), pp.
373
385
.10.1016/0029-5493(90)90258-Y
4.
Touboul
,
F.
,
Blay
,
N.
, and
Lacire
,
M. H.
,
1999
, “
Experimental, Analytical, and Regulatory Evaluation of Seismic Behavior of Piping Systems
,”
ASME J. Pressure Vessel Technol.
,
121
(
4
), pp.
388
392
.10.1115/1.2883720
5.
Yoshino
,
K.
,
Endou
,
R.
,
Sakaida
,
T.
,
Yokota
,
H.
,
Fujiwaka
,
T.
,
Asada
,
Y.
, and
Suzuki
,
K.
,
2000
, “
Study on Seismic Design of Nuclear Power Plant Piping in Japan Part 3: Component Test Results
,”
ASME
Paper No. PVP2000.10.1115/PVP2000
6.
Nakamura
,
I.
,
Otani
,
A.
, and
Shiratori
,
M.
,
2010
, “
Comparison of Failure Modes of Piping Systems With Wall Thinning Subjected to in-Plane, Out-of-Plane, and Mixed Mode Bending Under Seismic Load: An Experimental Approach
,”
ASME J. Pressure Vessel Technol.
,
132
(
3
), p.
031001
.10.1115/1.4001517
7.
Varelis
,
G. E.
,
Karamanos
,
S. A.
, and
Gresnigt
,
A. M.
,
2013
, “
Pipe Elbows Under Strong Cyclic Loading
,”
ASME J. Pressure Vessel Technol.
,
135
(
1
), p. 011207.10.1115/1.4007293
8.
Ravikiran
,
A.
,
Dubey
,
P. N.
,
Agrawal
,
M. K.
,
Reddy
,
G. R.
,
Singh
,
R. K.
, and
Vaze
,
K. K.
,
2015
, “
Experimental and Numerical Studies of Ratcheting in a Pressurized Piping System Under Seismic Load
,”
ASME J. Pressure Vessel Technol.
,
137
(
3
), p. 031011.10.1115/1.4028619
9.
Nakamura
,
I.
, and
Kasahara
,
N.
,
2015
, “
An Experimental Investigation on Failure Modes of Piping Components Under Excessive Seismic Load
,”
Transactions of SMiRT-23
, Manchester, UK, Aug. 10–14, Division V, Paper No. 437.https://repository.lib.ncsu.edu/bitstream/handle/1840.20/34021/SMiRT-23_Paper_437.pdf?sequence=1&isAllowed=y
10.
Nakamura
,
I.
, and
Kasahara
,
N.
,
2016
, “
Trial Model Tests With Simulation Material to Obtain Failure Modes of Pipes Under Excessive Seismic Loads
,”
ASME
Paper No. PVP2016-63422.10.1115/PVP2016-63422
11.
Nakamura
,
I.
, and
Kasahara
,
N.
,
2018
, “
Improved Model Tests to Investigate the Failure Modes of Pipes Under Beyond Design Basis Earthquakes
,”
ASME
Paper No. PVP2018-84424.10.1115/PVP2018-84424
12.
Nakamura
,
I.
, and
Kasahara
,
N.
,
2020
, “
Investigation on Failure Behaviors of Piping Systems Under Seismic Loads Using a Simulation Material
,”
Trans. JSME (Jpn)
,
86
(
888
), p.
20
.10.1299/transjsme.20-00187
13.
Nakamura
,
I.
, and
Kasahara
,
N.
,
2020
, “
Investigation on Failure Behavior of Two-Elbow Piping System Models Made of the Simulation Material Under Excessive Seismic Loads
,”
ASME
Paper No. PVP2020-21140.10.1115/PVP2020-21140
14.
Nakamura
,
I.
, and
Kasahara
,
N.
,
2019
, “
Discussion on Failure Behaviour of Piping Systems Subjected to Excessive Seismic Loads
,”
Transactions SMiRT-25
, Charlotte, NA, Aug. 4–9, Division XI.
15.
Karamanos
,
S. A.
,
2016
, “
Mechanical Behavior of Steel Pipe Bends: An Overview
,”
ASME J. Pressure Vessel Technol.
,
138
(
4
), p.
041203
.10.1115/1.4031940
16.
Bari
,
M. A. A.
,
Sakemi
,
R.
, and
Kasahara
,
N.
,
2017
, “
Failure Mode Map of Pipes Under Dynamic Loadings
,”
ASME
Paper No. PVP2017-65635.10.1115/PVP2017-65635
17.
Bari
,
M. A. A.
,
Sakemi
,
R.
,
Sato
,
T.
, and
Kasahara
,
N.
,
2017
, “
Numerical and Experimental Study on Structural Failure Modes Under Seismic Loading
,”
Transactions SMiRT-24
, Busan, Republic of Korea, Division II, Aug. 20–25, Paper No. 02-08-03.http://www.lib.ncsu.edu/resolver/1840.20/35872
18.
Hashidate
,
R.
,
Onizawa
,
T.
,
Wakai
,
T.
, and
Kasahara
,
N.
,
2019
, “
A Proposal of Inelastic Constitutive Equations of Lead Alloys Used for Structural Tests Simulating Severe Accident Conditions
,”
ASME
Paper No. PVP2019-93820.10.1115/PVP2019-93820
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