In this research, an analysis technique is developed to model orthotropic composite toroids and optimize the fiber layup, accounting for the natural variation in thickness due to fiber stacking. The behavior of toroids is difficult to model using membrane shell theories due to a singularity in the strain-displacement relations occurring at the toroid crest that yields discontinuous displacement results. A technique is developed here where the constitutive properties of multilayered toroidal shells are determined using lamination theory, and the toroid strains and line loads are determined using finite element analysis. The toroid strains are rotated into the fiber directions, allowing the fiber stress and transverse stress distributions to be determined for each layer. The fiber layup is modified heuristically until an optimum is found. An optimum is reached when the maximum fiber and transverse direction stresses of each shell layer are equal, minimizing wasted fibers and excess weight. Test cases are analyzed to verify the accuracy of the finite element model and an example composite toroid with Kevlar/epoxy material properties is optimized. The analysis technique developed here can decrease the time and cost associated with the development of orthotropic toroidal pressure vessels, resulting in lighter, cheaper, and more optimal structures. The models developed can be expanded to include a steel liner and a broader range of fiber winding patterns.
Skip Nav Destination
e-mail: matthew.j.vick-1@ou.edu
e-mail: gramoll@ou.edu
Article navigation
October 2012
Design And Analysis
Finite Element Study on the Optimization of an Orthotropic Composite Toroidal Shell
Matthew J. Vick,
Matthew J. Vick
Department of Aerospace and Mechanical Engineering,
e-mail: matthew.j.vick-1@ou.edu
University of Oklahoma
, 865 Asp Avenue, Felgar Hall, Room 237, Norman, OK 73019
Search for other works by this author on:
Kurt Gramoll
Kurt Gramoll
Department of Aerospace and Mechanical Engineering,
e-mail: gramoll@ou.edu
University of Oklahoma
, 865 Asp Avenue, Felgar Hall, Room 237, Norman, OK 73019
Search for other works by this author on:
Matthew J. Vick
Department of Aerospace and Mechanical Engineering,
University of Oklahoma
, 865 Asp Avenue, Felgar Hall, Room 237, Norman, OK 73019e-mail: matthew.j.vick-1@ou.edu
Kurt Gramoll
Department of Aerospace and Mechanical Engineering,
University of Oklahoma
, 865 Asp Avenue, Felgar Hall, Room 237, Norman, OK 73019e-mail: gramoll@ou.edu
J. Pressure Vessel Technol. Oct 2012, 134(5): 051201 (7 pages)
Published Online: August 27, 2012
Article history
Received:
February 5, 2011
Revised:
December 21, 2011
Published:
August 27, 2012
Citation
Vick, M. J., and Gramoll, K. (August 27, 2012). "Finite Element Study on the Optimization of an Orthotropic Composite Toroidal Shell." ASME. J. Pressure Vessel Technol. October 2012; 134(5): 051201. https://doi.org/10.1115/1.4005873
Download citation file:
Get Email Alerts
Cited By
Stress Analysis of ASME Section X Flanges Using Classical Lamination Theory
J. Pressure Vessel Technol (June 2023)
Theoretical Analysis of Free Vibration and Transient Response of Rectangular Plate–Cavity System Under Impact Loading
J. Pressure Vessel Technol (June 2023)
Integral Hydro-Bulge Forming Method of Spherical Pressure Vessels Using a Triangle Patch Polyhedron
J. Pressure Vessel Technol (June 2023)
Random Fatigue Analysis of Cryogenic Liquid Tanker Under Road Spectrum Load and a Simplified Algorithm
J. Pressure Vessel Technol (June 2023)
Related Articles
Geometrically Nonlinear Free Vibration of Laminated Composite Plate Embedded With Piezoelectric Layers Having Uncertain Material Properties
J. Vib. Acoust (December,2012)
Optimal Design of Laminated-Composite Circular-Cylindrical Shells Subjected to Combined Loads
J. Appl. Mech (March,1988)
Analytical and Experimental Studies of Short-Beam Interlaminar Shear Strength of G-10CR Glass-Cloth/Epoxy Laminates at Cryogenic Temperatures
J. Eng. Mater. Technol (January,2001)
Numerical Simulation of Mechanical Effects in Composite Structures by the Finite Element Method
J. Pressure Vessel Technol (May,2001)
Related Proceedings Papers
Related Chapters
Fiber-Reinforced Plastic Pressure Vessels and ASME RTP-1–Reinforced Thermoset Plastic Corrosion-Resistance Equipment
Online Companion Guide to the ASME Boiler and Pressure Vessel Codes
Data Tabulations
Structural Shear Joints: Analyses, Properties and Design for Repeat Loading
Low Velocity Impact Analysis of Anisotropic Composite Laminates with Ellastically Restrained Edges
Proceedings of the 2010 International Conference on Mechanical, Industrial, and Manufacturing Technologies (MIMT 2010)