Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer composite

This article aims to minimize the adverse impact of Z-pins on the in-plane properties of unidirectional carbon fiber reinforced polymer (CFRP) composites while enhancing their interlaminar fracture toughness by using CF Z-pins. A novel method was developed for implanting fine Z-pins of 0.1 mm diamet...

Full description

Bibliographic Details
Main Authors: Shuo Wang, Min Li, Zhe Che, Shaokai Wang, Yizhuo Gu, Wei Zhang
Format: Article
Language:English
Published: Elsevier 2023-01-01
Series:Journal of Materials Research and Technology
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2238785422018981
_version_ 1797943044628021248
author Shuo Wang
Min Li
Zhe Che
Shaokai Wang
Yizhuo Gu
Wei Zhang
author_facet Shuo Wang
Min Li
Zhe Che
Shaokai Wang
Yizhuo Gu
Wei Zhang
author_sort Shuo Wang
collection DOAJ
description This article aims to minimize the adverse impact of Z-pins on the in-plane properties of unidirectional carbon fiber reinforced polymer (CFRP) composites while enhancing their interlaminar fracture toughness by using CF Z-pins. A novel method was developed for implanting fine Z-pins of 0.1 mm diameter with semi-embedded length in the thickness center of laminate in an ultra-low distribution density of hexagonal array pattern. Mechanical properties and failure mechanisms of different Z-pinned composites were analyzed. Taking traditional CFRP as a reference, the semi-embedded Z-pinned CFRP has considerably increased (by 123%) propagation GIC and negligibly reduced in-plane mechanical properties. Correspondingly, the Z-pinned CFRP with full-thickness embedded length shows a rise of 244% in the propagation GIC and a reduction of less than 9% in the in-plane properties. The failure modes indicate that pull-outs of Z-pins and their fractures both contribute to the enhancement of the fracture toughness of Z-pinned laminates, which are influenced by the distribution density and the embedded length of pins. It manifests that shortening the embedded length of pins can narrow the scope of waviness in planar fibers and relieve the induced stress concentration, which is conducive to improving the retention ratio of in-plane mechanical properties of Z-pinned composites. Finally, with 0.10% areal density, a better balance between interlaminar and in-plane properties of Z-pinned composites is successfully achieved for those with semi-embedded pins. Moreover, the Z-pin enhancement effect on interlaminar toughness is limited by its lower areal distribution density.
first_indexed 2024-04-10T20:18:11Z
format Article
id doaj.art-c44f64f73ca64dbfadcf727a07347445
institution Directory Open Access Journal
issn 2238-7854
language English
last_indexed 2024-04-10T20:18:11Z
publishDate 2023-01-01
publisher Elsevier
record_format Article
series Journal of Materials Research and Technology
spelling doaj.art-c44f64f73ca64dbfadcf727a073474452023-01-26T04:45:59ZengElsevierJournal of Materials Research and Technology2238-78542023-01-012212971306Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer compositeShuo Wang0Min Li1Zhe Che2Shaokai Wang3Yizhuo Gu4Wei Zhang5School of Materials Science and Engineering, Beihang University, No. 37 Xueyuan Road, Haidian District, Beijing 100191, ChinaSchool of Materials Science and Engineering, Beihang University, No. 37 Xueyuan Road, Haidian District, Beijing 100191, China; Ningbo Institute of Technology, Beihang University, Ningbo 315800, China; Corresponding author. School of Materials Science and Engineering, Beihang University, No. 37 Xueyuan Road, Haidian District, Beijing 100191, ChinaSchool of Materials Science and Engineering, Beihang University, No. 37 Xueyuan Road, Haidian District, Beijing 100191, China; Beijing System Design Institute of Mechanical-Electrical Engineering, Beijing 100871, ChinaSchool of Materials Science and Engineering, Beihang University, No. 37 Xueyuan Road, Haidian District, Beijing 100191, China; Ningbo Institute of Technology, Beihang University, Ningbo 315800, ChinaResearch Institute of Frontier Science, Beihang University, No. 37 Xueyuan Road, Haidian District, Beijing 100191, ChinaResearch Institute of Frontier Science, Beihang University, No. 37 Xueyuan Road, Haidian District, Beijing 100191, ChinaThis article aims to minimize the adverse impact of Z-pins on the in-plane properties of unidirectional carbon fiber reinforced polymer (CFRP) composites while enhancing their interlaminar fracture toughness by using CF Z-pins. A novel method was developed for implanting fine Z-pins of 0.1 mm diameter with semi-embedded length in the thickness center of laminate in an ultra-low distribution density of hexagonal array pattern. Mechanical properties and failure mechanisms of different Z-pinned composites were analyzed. Taking traditional CFRP as a reference, the semi-embedded Z-pinned CFRP has considerably increased (by 123%) propagation GIC and negligibly reduced in-plane mechanical properties. Correspondingly, the Z-pinned CFRP with full-thickness embedded length shows a rise of 244% in the propagation GIC and a reduction of less than 9% in the in-plane properties. The failure modes indicate that pull-outs of Z-pins and their fractures both contribute to the enhancement of the fracture toughness of Z-pinned laminates, which are influenced by the distribution density and the embedded length of pins. It manifests that shortening the embedded length of pins can narrow the scope of waviness in planar fibers and relieve the induced stress concentration, which is conducive to improving the retention ratio of in-plane mechanical properties of Z-pinned composites. Finally, with 0.10% areal density, a better balance between interlaminar and in-plane properties of Z-pinned composites is successfully achieved for those with semi-embedded pins. Moreover, the Z-pin enhancement effect on interlaminar toughness is limited by its lower areal distribution density.http://www.sciencedirect.com/science/article/pii/S2238785422018981Z-pinHexagonal arrayEmbedded lengthInterlaminar fracture toughnessMechanical properties
spellingShingle Shuo Wang
Min Li
Zhe Che
Shaokai Wang
Yizhuo Gu
Wei Zhang
Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer composite
Journal of Materials Research and Technology
Z-pin
Hexagonal array
Embedded length
Interlaminar fracture toughness
Mechanical properties
title Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer composite
title_full Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer composite
title_fullStr Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer composite
title_full_unstemmed Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer composite
title_short Balance interlaminar improvement and in-plane adverse impact of hexagonal semi-embedded fine Z-pin reinforced polymer composite
title_sort balance interlaminar improvement and in plane adverse impact of hexagonal semi embedded fine z pin reinforced polymer composite
topic Z-pin
Hexagonal array
Embedded length
Interlaminar fracture toughness
Mechanical properties
url http://www.sciencedirect.com/science/article/pii/S2238785422018981
work_keys_str_mv AT shuowang balanceinterlaminarimprovementandinplaneadverseimpactofhexagonalsemiembeddedfinezpinreinforcedpolymercomposite
AT minli balanceinterlaminarimprovementandinplaneadverseimpactofhexagonalsemiembeddedfinezpinreinforcedpolymercomposite
AT zheche balanceinterlaminarimprovementandinplaneadverseimpactofhexagonalsemiembeddedfinezpinreinforcedpolymercomposite
AT shaokaiwang balanceinterlaminarimprovementandinplaneadverseimpactofhexagonalsemiembeddedfinezpinreinforcedpolymercomposite
AT yizhuogu balanceinterlaminarimprovementandinplaneadverseimpactofhexagonalsemiembeddedfinezpinreinforcedpolymercomposite
AT weizhang balanceinterlaminarimprovementandinplaneadverseimpactofhexagonalsemiembeddedfinezpinreinforcedpolymercomposite