Strain growth is a phenomenon observed in the elastic response of containment vessels subjected to internal blast loading. The local dynamic response of a containment vessel may become larger in a later stage than its response in the earlier stage. In order to understand the possible mechanisms of the strain growth phenomenon in a cylindrical vessel, dynamic elastic responses of a finite-length cylindrical shell with different boundary conditions subjected to internal pressure pulse are studied by finite-element simulation using LS-DYNA. It is found that the strain growth in a finite-length cylindrical shell with sliding–sliding boundary conditions is caused by nonlinear modal coupling. Strain growth in a finite-length cylindrical shell with free–free or simply supported boundary conditions is primarily caused by the linear modal superposition, possibly enhanced by the nonlinear modal coupling. The understanding of these strain growth mechanisms can guide the design of cylindrical containment vessels.
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April 2017
Research-Article
Strain Growth in a Finite-Length Cylindrical Shell Under Internal Pressure Pulse
Qi Dong,
Qi Dong
Institute of Chemical Materials,
China Academy of Engineering Physics,
PO Box 919-319,
Mianyang 621999, China
e-mail: dongqi@caep.cn
China Academy of Engineering Physics,
PO Box 919-319,
Mianyang 621999, China
e-mail: dongqi@caep.cn
Search for other works by this author on:
Q. M. Li,
Q. M. Li
School of Mechanical,
Aerospace and Civil Engineering,
The University of Manchester,
Pariser Building,
Manchester M13 9PL, UK;
Aerospace and Civil Engineering,
The University of Manchester,
Pariser Building,
Manchester M13 9PL, UK;
State Key Laboratory of Explosion
Science and Technology,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: qingming.li@manchester.ac.uk
Science and Technology,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: qingming.li@manchester.ac.uk
Search for other works by this author on:
Jinyang Zheng
Jinyang Zheng
Institute of Chemical Machinery
and Process Equipment,
Zhejiang University,
Hangzhou 310027, China
e-mail: jyzh@zju.edu.cn
and Process Equipment,
Zhejiang University,
Hangzhou 310027, China
e-mail: jyzh@zju.edu.cn
Search for other works by this author on:
Qi Dong
Institute of Chemical Materials,
China Academy of Engineering Physics,
PO Box 919-319,
Mianyang 621999, China
e-mail: dongqi@caep.cn
China Academy of Engineering Physics,
PO Box 919-319,
Mianyang 621999, China
e-mail: dongqi@caep.cn
Q. M. Li
School of Mechanical,
Aerospace and Civil Engineering,
The University of Manchester,
Pariser Building,
Manchester M13 9PL, UK;
Aerospace and Civil Engineering,
The University of Manchester,
Pariser Building,
Manchester M13 9PL, UK;
State Key Laboratory of Explosion
Science and Technology,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: qingming.li@manchester.ac.uk
Science and Technology,
Beijing Institute of Technology,
Beijing 100081, China
e-mail: qingming.li@manchester.ac.uk
Jinyang Zheng
Institute of Chemical Machinery
and Process Equipment,
Zhejiang University,
Hangzhou 310027, China
e-mail: jyzh@zju.edu.cn
and Process Equipment,
Zhejiang University,
Hangzhou 310027, China
e-mail: jyzh@zju.edu.cn
1Corresponding author.
Contributed by the Pressure Vessel and Piping Division of ASME for publication in the JOURNAL OF PRESSURE VESSEL TECHNOLOGY. Manuscript received February 7, 2016; final manuscript received December 27, 2016; published online February 3, 2017. Assoc. Editor: Albert E. Segall.
J. Pressure Vessel Technol. Apr 2017, 139(2): 021213 (8 pages)
Published Online: February 3, 2017
Article history
Received:
February 7, 2016
Revised:
December 27, 2016
Citation
Dong, Q., Li, Q. M., and Zheng, J. (February 3, 2017). "Strain Growth in a Finite-Length Cylindrical Shell Under Internal Pressure Pulse." ASME. J. Pressure Vessel Technol. April 2017; 139(2): 021213. https://doi.org/10.1115/1.4035696
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