Full metadata
Title
Micromechanics based multiscale modeling of the inelastic response and failure of complex architecture composites
Description
Advanced composites are being widely used in aerospace applications due to their high stiffness, strength and energy absorption capabilities. However, the assurance of structural reliability is a critical issue because a damage event will compromise the integrity of composite structures and lead to ultimate failure. In this dissertation a novel homogenization based multiscale modeling framework using semi-analytical micromechanics is presented to simulate the response of textile composites. The novelty of this approach lies in the three scale homogenization/localization framework bridging between the constituent (micro), the fiber tow scale (meso), weave scale (macro), and the global response. The multiscale framework, named Multiscale Generalized Method of Cells (MSGMC), continuously bridges between the micro to the global scale as opposed to approaches that are top-down and bottom-up. This framework is fully generalized and capable of modeling several different weave and braids without reformulation. Particular emphasis in this dissertation is placed on modeling the nonlinearity and failure of both polymer matrix and ceramic matrix composites.
Date Created
2011
Contributors
- Liu, Guang (Author)
- Chattopadhyay, Aditi (Thesis advisor)
- Mignolet, Marc (Committee member)
- Jiang, Hanqing (Committee member)
- Li, Jian (Committee member)
- Rajadas, John (Committee member)
- Arizona State University (Publisher)
Topical Subject
- Mechanics
- Materials Science
- Aerospace Engineering
- Ceramic Matrix
- Composites
- Micromechanics
- Multiscale modeling
- Polymeric Matrix
- Textile Composites
- Aerospace Engineering
- Composite materials--Fracture--Mathematical models.
- Composite Materials
- Stress-strain curves--Mathematical models.
- Stress-strain curves
- Polymeric composites--Fracture--Mathematical models.
- Polymeric composites
Resource Type
Extent
xiv, 190 p. : ill. (some col.)
Language
eng
Copyright Statement
In Copyright
Primary Member of
Peer-reviewed
No
Open Access
No
Handle
https://hdl.handle.net/2286/R.I.9505
Statement of Responsibility
by Kuang Liu
Description Source
Retrieved on Oct. 12, 2012
Level of coding
full
Note
thesis
Partial requirement for: Ph.D., Arizona State University, 2011
bibliography
Includes bibliographical references (p. 167-172)
Field of study: Aerospace engineering
System Created
- 2011-09-22 01:51:00
System Modified
- 2021-08-30 01:50:51
- 3 years 2 months ago
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