In this paper, we developed an exact analytical 3D elasticity solution to investigate mechanical behavior of a thick multilayered anisotropic fiber-reinforced pressure vessel subjected to multiple mechanical loadings. This closed-form solution was implemented in a computer program, and analytical results were compared to finite element analysis (FEA) calculations. In order to predict through-thickness stresses accurately, three-dimensional finite element meshes were used in the FEA since shell meshes can only be used to predict in-plane strength. Three-dimensional FEA results are in excellent agreement with the analytical results. Finally, using the proposed analytical approach, we evaluated structural damage and failure conditions of the composite pressure vessel using the Tsai–Wu failure criteria and predicted a maximum burst pressure.

References

1.
Wang
,
R. G.
,
He
,
X. D.
,
Hu
,
Z. H.
,
Liu
,
W. B.
, and
Shi
,
J.
,
2010
, “
Structural Analysis of Composite Vessel With Ultra-Thin Metallic Liner
,”
Acta Mater. Compositae Sin.
,
27
, pp.
131
138
.
2.
Parnas
,
L.
, and
Katirci
,
N.
,
2002
, “
Design of Fiber-Reinforced Composite Pressure Vessels Under Various Loading Conditions
,”
Compos. Struct.
,
58
(
1
), pp.
83
95
.
3.
Bhavya
,
S.
,
Kumar
,
P.
,
Kalam
,
R.
, and
Abdul
,
S.
,
2012
, “
Failure Analysis of a Composite Cylinder
,”
IOSR J. Mech. Civ. Eng.
,
3
(
3
), pp.
1
7
.
4.
Kardomateas
,
G. A.
,
2001
, “
Elasticity Solutions for Sandwich Orthotropic Cylindrical Shells Under External/Internal Pressure or Axial Force
,”
AIAA J.
,
39
(
4
), pp.
713
729
.
5.
Xia
,
M.
,
Kemmochi
,
K.
, and
Takayanagi
,
H.
,
2001
, “
Analysis of Filament-Wound Fiber-Reinforced Sandwich Pipe Under Combined Internal Pressure and Thermomechanical Loading
,”
Compos. Struct.
,
51
(
3
), pp.
273
283
.
6.
Yuan
,
F. G.
, and
Choi
,
K.
,
1995
, “
Composite Laminated Shells Under Transverse End Load
,”
Mech. Compos. Mater. Struct.
,
2
(
2
), pp.
139
162
.
7.
Wild
,
P. M.
, and
Vickers
,
G. W.
,
1997
, “
Analysis of Filament-Wound Cylindrical Shells Under Combined Centrifugal, Pressure and Axial Loading
,”
Composites, Part A
,
28
(
1
), pp.
47
55
.
8.
Madhavi
,
M.
,
Rao
,
K. V. J.
, and
Narayana Rao
,
K.
,
2009
, “
Design and Analysis of Filament Wound Composite Pressure Vessel With Integrated-End Domes
,”
Defence Sci. J.
,
59
(
1
), pp.
73
81
.
9.
Marzbanrad
,
J.
,
Paykani
,
A.
,
Afkar
,
A.
, and
Ghajar
,
M.
,
2013
, “
Finite Element Analysis of Composite High-Pressure Hydrogen Storage Vessels
,”
J. Mater. Environ. Sci.
,
4
(
1
), pp.
63
74
.
10.
Yeh
,
M.-K.
, and
Liu
,
T.-H.
,
2017
, “
Finite Element Analysis of Graphite/Epoxy Composite Pressure Vessel
,”
J. Mater. Sci. Chem. Eng.
,
5
(
7
), pp.
19
28
.
11.
Tabakov
,
P. Y.
, and
Summers
,
E. B.
,
2006
, “
Lay-Up Optimization of Multilayered Anisotropic Cylinders Based on a 3-D Elasticity Solution
,”
Comput. Struct.
,
84
(
5–6
), pp.
374
384
.
12.
Dong
,
Q.
,
Wang
,
P.
,
Yi
,
C.
, and
Hu
,
B.
,
2016
, “
Dynamic Failure Behavior of Cylindrical Glass Fiber Composite Shells Subjected to Internal Blast Loading
,”
ASME J. Pressure Vessel Technol.
,
138
(
6
), p.
060901
.
13.
Kwon
,
Y. W.
,
Ponshock
,
T.
, and
Molitoris
,
J. D.
,
2016
, “
Failure Loading of Metallic and Composite Cylinders Under Internal Pressure Loading
,”
ASME J. Pressure Vessel Technol.
,
138
(
6
), p.
060903
.
14.
Pinto
,
M.
,
Matos
,
H.
,
Gupta
,
S.
, and
Shukla
,
A.
,
2016
, “
Experimental Investigation on Underwater Buckling of Thin-Walled Composite and Metallic Structures
,”
ASME J. Pressure Vessel Technol.
,
138
(
6
), p.
060905
.
15.
Ellul
,
B.
,
Camilleri
,
D.
,
Grech
,
J.
, and
Muscat
,
M.
,
2016
, “
Filament Wound Composite Pressure Vessels and Pipes Subject to an Internal Pressure: An Experimental and Material Characterization Study
,”
ASME J. Pressure Vessel Technol.
,
138
(
6
), p.
060907
.
16.
Achour
,
A.
,
Albedah
,
A.
,
Benyahia
,
F.
,
Bouiadjra
,
A. A. B.
, and
Ouinas
,
D.
, “
Analysis of Repaired Cracks With Bonded Composite Wrap in Pipes Under Bending
,”
ASME J. Pressure Vessel Technol.
,
138
(
6
), p.
060909
.
17.
Flugge
,
W.
,
2013
,
Stresses in Shells
,
Springer-Verlag
,
New York
.
18.
Lekhnitskii
,
S. G.
,
1968
,
Anisotropic Plates
,
Gordon and Breach Science Publishers
,
New York
.
19.
Gobson
,
R. F.
,
1994
,
Principles of Composite Materials Mechanics
,
McGraw-Hill
,
New York
.
20.
Tornabene
,
F.
,
Liverani
,
A.
, and
Caligiana
,
G.
,
2012
, “
Static Analysis of Laminated Composite Curved Shells and Panels of Revolution With a Posteriori Shear and Normal Stress Recovery Using Generalized Differential Quadrature Method
,”
Int. J. Mech. Sci.
,
61
(1), pp.
71
97
.
21.
Love
,
A. E. H.
,
1927
,
A Treatise on the Mathematical Theory of Elasticity
,
Cambridge University Press
,
Cambridge, UK
.
22.
huang
,
J.
, and
Wang
,
X.
,
2009
, “
Numerical and Experimental Investigations on the Axial Crushing Response of Composite Tubes
,”
Compos. Struct.
,
91
(
2
), pp.
222
228
.
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