Mapping the coupled role of structure and materials in mechanics of platelet-matrix composites
Despite significant progresses on understanding and mimicking the delicate nano/microstructure of biomaterials such as nacre, decoding the indistinguishable merger of materials and structures in controlling the tradeoff in mechanical properties has been long an engineering pursuit. Herein, we focus...
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Published in | Journal of the mechanics and physics of solids Vol. 112; pp. 169 - 186 |
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Main Authors | , |
Format | Journal Article |
Language | English |
Published |
London
Elsevier Ltd
01.03.2018
Elsevier BV |
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Abstract | Despite significant progresses on understanding and mimicking the delicate nano/microstructure of biomaterials such as nacre, decoding the indistinguishable merger of materials and structures in controlling the tradeoff in mechanical properties has been long an engineering pursuit. Herein, we focus on an archetype platelet-matrix composite and perform ∼400 nonlinear finite element simulations to decode the complex interplay between various structural features and material characteristics in conferring the balance of mechanical properties. We study various combinatorial models expressed by four key dimensionless parameters, i.e. characteristic platelet length, matrix plasticity, platelet dissimilarity, and overlap offset, whose effects are all condensed in a new unifying parameter, defined as the multiplication of strength, toughness, and stiffness over composite volume. This parameter, which maximizes at a critical characteristic length, controls the transition from intrinsic toughening (matrix plasticity driven without crack growths) to extrinsic toughening phenomena involving progressive crack propagations. This finding, combined with various abstract volumetric and radar plots, will not only shed light on decoupling the complex role of structure and materials on mechanical performance and their trends, but provides important guidelines for designing lightweight staggered platelet-matrix composites while ensuring the best (balance) of their mechanical properties. |
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AbstractList | Despite significant progresses on understanding and mimicking the delicate nano/microstructure of biomaterials such as nacre, decoding the indistinguishable merger of materials and structures in controlling the tradeoff in mechanical properties has been long an engineering pursuit. Herein, we focus on an archetype platelet-matrix composite and perform ~400 nonlinear finite element simulations to decode the complex interplay between various structural features and material characteristics in conferring the balance of mechanical properties. We study various combinatorial models expressed by four key dimensionless parameters, i.e. characteristic platelet length, matrix plasticity, platelet dissimilarity, and overlap offset, whose effects are all condensed in a new unifying parameter, defined as the multiplication of strength, toughness, and stiffness over composite volume. This parameter, which maximizes at a critical characteristic length, controls the transition from intrinsic toughening (matrix plasticity driven without crack growths) to extrinsic toughening phenomena involving progressive crack propagations. This finding, combined with various abstract volumetric and radar plots, will not only shed light on decoupling the complex role of structure and materials on mechanical performance and their trends, but provides important guidelines for designing lightweight staggered platelet-matrix composites while ensuring the best (balance) of their mechanical properties. Despite significant progresses on understanding and mimicking the delicate nano/microstructure of biomaterials such as nacre, decoding the indistinguishable merger of materials and structures in controlling the tradeoff in mechanical properties has been long an engineering pursuit. Herein, we focus on an archetype platelet-matrix composite and perform ∼400 nonlinear finite element simulations to decode the complex interplay between various structural features and material characteristics in conferring the balance of mechanical properties. We study various combinatorial models expressed by four key dimensionless parameters, i.e. characteristic platelet length, matrix plasticity, platelet dissimilarity, and overlap offset, whose effects are all condensed in a new unifying parameter, defined as the multiplication of strength, toughness, and stiffness over composite volume. This parameter, which maximizes at a critical characteristic length, controls the transition from intrinsic toughening (matrix plasticity driven without crack growths) to extrinsic toughening phenomena involving progressive crack propagations. This finding, combined with various abstract volumetric and radar plots, will not only shed light on decoupling the complex role of structure and materials on mechanical performance and their trends, but provides important guidelines for designing lightweight staggered platelet-matrix composites while ensuring the best (balance) of their mechanical properties. |
Author | Shahsavari, Rouzbeh Farzanian, Shafee |
Author_xml | – sequence: 1 givenname: Shafee surname: Farzanian fullname: Farzanian, Shafee organization: Department of Civil and Environmental Engineering, Rice University, Houston, TX 77005, USA – sequence: 2 givenname: Rouzbeh surname: Shahsavari fullname: Shahsavari, Rouzbeh email: rouzbeh@rice.edu organization: Department of Civil and Environmental Engineering, Rice University, Houston, TX 77005, USA |
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CitedBy_id | crossref_primary_10_1063_1_5017200 crossref_primary_10_1002_smll_201702863 crossref_primary_10_1016_j_jeurceramsoc_2019_08_034 crossref_primary_10_1016_j_compositesa_2019_105551 crossref_primary_10_1021_acsnano_0c02038 crossref_primary_10_1016_j_jmps_2020_104157 crossref_primary_10_1002_smll_201900656 crossref_primary_10_1021_acsami_7b15803 crossref_primary_10_1016_j_compstruct_2020_112071 crossref_primary_10_1016_j_jmps_2018_12_002 crossref_primary_10_1016_j_mechmat_2019_103215 crossref_primary_10_1021_acsami_7b15377 crossref_primary_10_1016_j_compscitech_2021_109254 |
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Keywords | Numerical modeling Mechanical properties Fracture Design guidelines Platelet-matrix composites |
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SubjectTerms | Biomedical materials Combinatorial analysis Composite materials Computer simulation Decoding Decoupling Design guidelines Finite element analysis Finite element method Fracture Fracture toughness Mechanical properties Microstructure Nacre Numerical modeling Parameters Plastic properties Platelet-matrix composites Stiffness Studies Toughening |
Title | Mapping the coupled role of structure and materials in mechanics of platelet-matrix composites |
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