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Stochastic Reassembly Strategy for Managing Information Complexity in Heterogeneous Materials Analysis and Design

Publication ,  Journal Article
Xu, H; Greene, MS; Deng, H; Dikin, D; Brinson, C; Kam Liu, W; Burkhart, C; Papakonstantopoulos, G; Poldneff, M; Chen, W
Published in: Journal of Mechanical Design
October 1, 2013

Design of high performance materials system requires highly efficient methods for assessing microstructure–property relations of heterogeneous materials. Toward this end, a domain decomposition, affordable analysis, and subsequent stochastic reassembly approach is proposed in this paper. The approach hierarchically decomposes the statistically representative cell (representative volume element (RVE)) into computationally tractable unrepresentative ones (statistical volume element (SVE)) at the cost of introducing uncertainty into subdomain property predictions. Random property predictions at the subscale are modeled with a random field that is subsequently reassembled into a coarse representation of the RVE. The infinite dimension of microstructure is reduced by clustering SVEs into bins defined by common microstructure attributes, with each bin containing a different apparent property random field. We additionally mitigate the computational burden in this strategy by presenting an algorithm that minimizes the number of SVEs required for convergent random field characterization. In the proposed method, the RVE thus becomes a coarse representation, or mosaic, of itself. The mosaic approach maintains sufficient microstructure detail to accurately predict the macroproperty but becomes far cheaper from a computational standpoint. A nice feature of the approach is that the stochastic reassembly process naturally creates an apparent-SVE property database whose elements may be used as mosaic building blocks. This feature enables material design because SVE-apparent properties become the building blocks of new, albeit conceptual, material mosaics. Some simple examples of possible designs are shown. The approach is demonstrated on polymer nanocomposites.

Duke Scholars

Published In

Journal of Mechanical Design

DOI

EISSN

1528-9001

ISSN

1050-0472

Publication Date

October 1, 2013

Volume

135

Issue

10

Publisher

ASME International

Related Subject Headings

  • Design Practice & Management
  • 4017 Mechanical engineering
  • 4007 Control engineering, mechatronics and robotics
  • 1203 Design Practice and Management
  • 0913 Mechanical Engineering
 

Citation

APA
Chicago
ICMJE
MLA
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Xu, H., Greene, M. S., Deng, H., Dikin, D., Brinson, C., Kam Liu, W., … Chen, W. (2013). Stochastic Reassembly Strategy for Managing Information Complexity in Heterogeneous Materials Analysis and Design. Journal of Mechanical Design, 135(10). https://doi.org/10.1115/1.4025117
Xu, Hongyi, M Steven Greene, Hua Deng, Dmitriy Dikin, Catherine Brinson, Wing Kam Liu, Craig Burkhart, George Papakonstantopoulos, Mike Poldneff, and Wei Chen. “Stochastic Reassembly Strategy for Managing Information Complexity in Heterogeneous Materials Analysis and Design.” Journal of Mechanical Design 135, no. 10 (October 1, 2013). https://doi.org/10.1115/1.4025117.
Xu H, Greene MS, Deng H, Dikin D, Brinson C, Kam Liu W, et al. Stochastic Reassembly Strategy for Managing Information Complexity in Heterogeneous Materials Analysis and Design. Journal of Mechanical Design. 2013 Oct 1;135(10).
Xu, Hongyi, et al. “Stochastic Reassembly Strategy for Managing Information Complexity in Heterogeneous Materials Analysis and Design.” Journal of Mechanical Design, vol. 135, no. 10, ASME International, Oct. 2013. Crossref, doi:10.1115/1.4025117.
Xu H, Greene MS, Deng H, Dikin D, Brinson C, Kam Liu W, Burkhart C, Papakonstantopoulos G, Poldneff M, Chen W. Stochastic Reassembly Strategy for Managing Information Complexity in Heterogeneous Materials Analysis and Design. Journal of Mechanical Design. ASME International; 2013 Oct 1;135(10).

Published In

Journal of Mechanical Design

DOI

EISSN

1528-9001

ISSN

1050-0472

Publication Date

October 1, 2013

Volume

135

Issue

10

Publisher

ASME International

Related Subject Headings

  • Design Practice & Management
  • 4017 Mechanical engineering
  • 4007 Control engineering, mechatronics and robotics
  • 1203 Design Practice and Management
  • 0913 Mechanical Engineering