Nanocarbon Architecture-Dependent Strengthening and Deformation in Al Matrix Composites

48 Pages Posted: 10 Jun 2024

See all articles by Xiaofeng Chen

Xiaofeng Chen

Kunming University of Science and Technology; Tianjin University

Dongdong Zhao

Norwegian University of Science and Technology (NTNU) - Department of Materials Science and Engineering

Xudong Rong

Tianjin University

Jiajun Li

Tianjin University

Xiang Zhang

Tianjin University

Chunnian He

Tianjin University

Chunsheng Shi

Tianjin University

Enzuo Liu

Tianjin University

Jingmei Tao

Kunming University of Science and Technology

Naiqin Zhao

Tianjin University - Tianjin Key Laboratory of Composite and Functional Materials

Abstract

The extraordinary strength of inner graphene walls in carbon nanotube (CNT) is barely exerted due to the weak inner-wall shear resistance, which extremely limits its load-bearing capability. To overcome such deficiency, nanocarbon architecture engineering from CNT to graphene nanoribbon (GNR) was performed via longitudinal unzipping of multi-walled CNT, which was utilized to reinforce pure Al. Results show that the activation volume of composites at macroyielding point, evaluated by stress relaxation experiments, monotonically decreases from CNT/Al to GNR/Al, which results in the continuous increase of critical resolved shear stress (CRSS) called for dislocation nucleation/cross-slip at the grain boundaries. Shear-lag model and numerical simulations demonstrate the increased load-transfer effect from CNT/Al to GNR/Al. Meanwhile, the isotropic and kinematic hardening in nanocarbon/Al composites were investigated both by loading-unloading-reloading tests and strain hardening model on basis of dislocation behavior, wherein the effective stress was determined as being larger than back stress in the composites. Detailed analysis further indicates that the nanocarbon architecture from CNT to GNR increases the back stress strengthening due to the enhanced dislocation accumulation at nanocarbon/Al interface. Moreover, as CNT was unfolded to GNR, the failure mode of reinforcements in the composites gradually changed from pull-out to breakage.

Keywords: Nanocarbon architecture engineering, Strengthening, Load-transfer effect, Strain hardening, Nanocarbon/Al composites

Suggested Citation

Chen, Xiaofeng and Zhao, Dongdong and Rong, Xudong and Li, Jiajun and Zhang, Xiang and He, Chunnian and Shi, Chunsheng and Liu, Enzuo and Tao, Jingmei and Zhao, Naiqin, Nanocarbon Architecture-Dependent Strengthening and Deformation in Al Matrix Composites. Available at SSRN: https://ssrn.com/abstract=4859829 or http://dx.doi.org/10.2139/ssrn.4859829

Xiaofeng Chen

Kunming University of Science and Technology ( email )

Tianjin University ( email )

92, Weijin Road
Nankai District
Tianjin, 300072
China

Dongdong Zhao (Contact Author)

Norwegian University of Science and Technology (NTNU) - Department of Materials Science and Engineering ( email )

Xudong Rong

Tianjin University ( email )

92, Weijin Road
Nankai District
Tianjin, 300072
China

Jiajun Li

Tianjin University ( email )

92, Weijin Road
Nankai District
Tianjin, 300072
China

Xiang Zhang

Tianjin University ( email )

92, Weijin Road
Nankai District
Tianjin, 300072
China

Chunnian He

Tianjin University ( email )

92, Weijin Road
Nankai District
Tianjin, 300072
China

Chunsheng Shi

Tianjin University ( email )

92, Weijin Road
Nankai District
Tianjin, 300072
China

Enzuo Liu

Tianjin University ( email )

92, Weijin Road
Nankai District
Tianjin, 300072
China

Jingmei Tao

Kunming University of Science and Technology ( email )

Kunming Yunnan China
Kunming
China

Naiqin Zhao

Tianjin University - Tianjin Key Laboratory of Composite and Functional Materials ( email )

Tianjin
China

Do you have a job opening that you would like to promote on SSRN?

Paper statistics

Downloads
14
Abstract Views
111
PlumX Metrics