Development of Hierarchical FRP Composites Through Inter‐Ply Hybridization and CNT Incorporation Approaches: An Emphasis on the Effects of In Situ Testing Temperature

ABSTRACT The push for development of economic materials for cross‐dimensional applications has led to the introduction of hybridized FRP composites specially with inter‐ply configuration. The present investigation focuses on the development of an industry oriented hybrid composite whose flexural properties are similar to those of a neat CFRP composite with a substantially reduced cost. The current research study starts with a neat CFRP composite and further is modified sequentially by replacing carbon fiber plies by equal number of glass fiber plies while keeping the stacking sequence symmetric in a 12‐layered laminated composite. By replacing six carbon fiber plies at the center, the hybrid composite exhibited ~96% flexural strength as that of the neat CFRP composite. The glass fiber composite reservoir core acts as a toughness reservoir which is reflected in the post peak stress gradual failure behavior of the composite. For further enhancement in flexural performance, fiber modification and matrix modification were carried out by electrophoretic deposition and mechanical shear mixing methods, respectively. Employing these modification strategies resulted in enhancing the flexural properties of hybrid composites to a bit higher values as compared to that of the neat CFRP laminate. The flexural modulus was enhanced by 18% in the case of matrix modification and by ~17% using fiber modification techniques. The matrix modified C 3 G 6 C 3 MM composite exhibited ~6% higher flexural strength at 60°C and retained ~90% of strength at 85°C as compared to the unmodified C 3 G 6 C 3 MM. The features of fractured surfaces were studied using SEM.

Authors

Institutions

Publication Details

Journal
Polymer Composites
Published
2026-09-28
DOI
https://doi.org/10.1002/pc.71644
Primary Topic
Fiber-reinforced polymer composites
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Development of Hierarchical FRP Composites Through Inter‐Ply Hybridization and CNT Incorporation Approaches: An Emphasis on the Effects of In Situ Testing Temperature

Shashank Choudhary, Monika Nidhi, Bankim Chandra Ray, Rajesh Kumar Prusty et al.
Polymer Composites
Fiber-reinforced polymer composites
article

Development of Hierarchical FRP Composites Through Inter‐Ply Hybridization and CNT Incorporation Approaches: An Emphasis on the Effects of In Situ Testing Temperature

Shashank Choudhary, Monika Nidhi, Bankim Chandra Ray, Rajesh Kumar Prusty, Enamul Hussain Khan, Rohith Gandi, Tanmoy Adhikary, Pinaki Biswas
article en

Abstract

ABSTRACT The push for development of economic materials for cross‐dimensional applications has led to the introduction of hybridized FRP composites specially with inter‐ply configuration. The present investigation focuses on the development of an industry oriented hybrid composite whose flexural properties are similar to those of a neat CFRP composite with a substantially reduced cost. The current research study starts with a neat CFRP composite and further is modified sequentially by replacing carbon fiber plies by equal number of glass fiber plies while keeping the stacking sequence symmetric in a 12‐layered laminated composite. By replacing six carbon fiber plies at the center, the hybrid composite exhibited ~96% flexural strength as that of the neat CFRP composite. The glass fiber composite reservoir core acts as a toughness reservoir which is reflected in the post peak stress gradual failure behavior of the composite. For further enhancement in flexural performance, fiber modification and matrix modification were carried out by electrophoretic deposition and mechanical shear mixing methods, respectively. Employing these modification strategies resulted in enhancing the flexural properties of hybrid composites to a bit higher values as compared to that of the neat CFRP laminate. The flexural modulus was enhanced by 18% in the case of matrix modification and by ~17% using fiber modification techniques. The matrix modified C 3 G 6 C 3 MM composite exhibited ~6% higher flexural strength at 60°C and retained ~90% of strength at 85°C as compared to the unmodified C 3 G 6 C 3 MM. The features of fractured surfaces were studied using SEM.

Polymer Composites
National Institute of Technology Rourkela (IN), Tata Steel (India) (IN)
Industry, innovation and infrastructure
Openalex Percentile: Top 21%
Fiber-reinforced polymer composites
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.