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Materials with periodic internal structure: Computation based on homogenization and comparison with experimentThe combination of thermal and mechanical loading expected in practice means that constitutive equations of metal matrix composites must be developed which deal with time-independent and time-dependent irreversible deformation. Also, the internal state of composites is extremely complicated which underlines the need to formulate macroscopic constitutive equations with a limited number of state variables which represent the internal state at the micro level. One available method for calculating the macro properties of composites in terms of the distribution and properties of the constituent materials is the method of homogenization whose formulation is based on the periodicity of the substructure of the composite. A homogenization procedure was developed which lends itself to the use of the finite element procedure. The efficiency of these procedures, to determine the macroscopic properties of a composite system from its constituent properties, was demonstrated utilizing an aluminum plate perforated by directionally oriented slits. The selection of this problem is based on the fact that, extensive experimental results exist, the macroscopic response is highly anisotropic, and that the slits provide very high stress gradients which severely test the effectiveness of the computational procedures. Furthermore, both elastic and plastic properties were investigated so that the application to practical systems with inelastic deformation should be able to proceed without difficulty. The effectiveness of the procedures was rigorously checked against experimental results and with the predictions of approximate calculations. Using the computational results it is illustrated how macroscopic constitutive equations can be expressed in forms of the elastic and limit load behavior.
Document ID
19910002804
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Jansson, S.
(California Univ. Santa Barbara, CA, United States)
Leckie, F. A.
(California Univ. Santa Barbara, CA, United States)
Onat, E. T.
(California Univ. Santa Barbara, CA, United States)
Ranaweera, M. P.
(California Univ. Santa Barbara, CA, United States)
Date Acquired
September 6, 2013
Publication Date
October 1, 1990
Subject Category
Structural Mechanics
Report/Patent Number
NAS 1.26:185303
NASA-CR-185303
Report Number: NAS 1.26:185303
Report Number: NASA-CR-185303
Accession Number
91N12117
Funding Number(s)
PROJECT: RTOP 510-01-01
CONTRACT_GRANT: NAG3-894
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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