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Enhancing bonding synergy and mechanical response of metal/composite hybrid joints through physicochemical surface pretreatment

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Enhancing bonding synergy and mechanical response of metal/composite hybrid joints through physicochemical surface pretreatment. / Wang, Suyu; Wang, Wenquan; Xu, Yuxin et al.
In: Journal of Materials Processing Technology, Vol. 315, 117923, 30.06.2023.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

APA

Wang, S., Wang, W., Xu, Y., Tian, Y., Zhang, X., & Huang, H. (2023). Enhancing bonding synergy and mechanical response of metal/composite hybrid joints through physicochemical surface pretreatment. Journal of Materials Processing Technology, 315, Article 117923. https://doi.org/10.1016/j.jmatprotec.2023.117923

Vancouver

Wang S, Wang W, Xu Y, Tian Y, Zhang X, Huang H. Enhancing bonding synergy and mechanical response of metal/composite hybrid joints through physicochemical surface pretreatment. Journal of Materials Processing Technology. 2023 Jun 30;315:117923. Epub 2023 Feb 27. doi: 10.1016/j.jmatprotec.2023.117923

Author

Wang, Suyu ; Wang, Wenquan ; Xu, Yuxin et al. / Enhancing bonding synergy and mechanical response of metal/composite hybrid joints through physicochemical surface pretreatment. In: Journal of Materials Processing Technology. 2023 ; Vol. 315.

Bibtex

@article{92d22cd20eb040f6a97b463a7bdd0d5a,
title = "Enhancing bonding synergy and mechanical response of metal/composite hybrid joints through physicochemical surface pretreatment",
abstract = "Light metal/carbon fiber reinforced polymer (CFRP) hybrid structures have been considered a key component for lightweight and advanced multi-material structures in modern automotive and aerospace applications. In this study, directional physicochemical surface pretreatment routes based on the conceptual process of geometric configuration and chemical modification were designed for the reliable joining of A6061 aluminum alloy (Al alloy) and carbon fiber reinforced polyamide 66 (CFRP) via friction stir lap welding (FSLW). The effects of surface pretreatment parameters were clarified and an effective coupled treatment strategy was proposed. Micro-textures with uniform geometric grooves with average width w = 13.17 ± 3.27 μ m and average depth d = 122.45 ± 12.83 μ m processed by laser ablation (LA) and flower-like AlOOH nanostructures synthesized by hot water treatment (HWT) promoted mechanical interlocking and chemical bonding at the macro/micro/nanoscale. For this reason, the high interfacial bonding strength of 30.2MPa and joint efficiency of 67.2% were achieved, and continuous superficial resin of the CFRP matrix adhered to the fracture surface of Al alloy during the failure process. More effectively, the interfacial structures and chemical compositions were analyzed by transmission electron microscopy (TEM), and the formation of C-O-Al and hydrogen bonds was attributed to the γ-Al2O3·yH2O layer and AlOx·yH2O atom clusters, which was verified to enhance the interfacial bonding. This first exploratory study on Al alloy/CFRP interfacial bonding at the nanoscale based on physicochemical coupling surface pretreatment provides an in-depth understanding of the joining of light metals and polymer-matrix composites.",
keywords = "Carbon fiber reinforced polymer (CFRP), Friction stir lap welding (FSLW), Surface treatments, Interfacial structures, Mechanical response",
author = "Suyu Wang and Wenquan Wang and Yuxin Xu and Yingtao Tian and Xinge Zhang and Hu Huang",
year = "2023",
month = jun,
day = "30",
doi = "10.1016/j.jmatprotec.2023.117923",
language = "English",
volume = "315",
journal = "Journal of Materials Processing Technology",
issn = "0924-0136",
publisher = "Elsevier BV",

}

RIS

TY - JOUR

T1 - Enhancing bonding synergy and mechanical response of metal/composite hybrid joints through physicochemical surface pretreatment

AU - Wang, Suyu

AU - Wang, Wenquan

AU - Xu, Yuxin

AU - Tian, Yingtao

AU - Zhang, Xinge

AU - Huang, Hu

PY - 2023/6/30

Y1 - 2023/6/30

N2 - Light metal/carbon fiber reinforced polymer (CFRP) hybrid structures have been considered a key component for lightweight and advanced multi-material structures in modern automotive and aerospace applications. In this study, directional physicochemical surface pretreatment routes based on the conceptual process of geometric configuration and chemical modification were designed for the reliable joining of A6061 aluminum alloy (Al alloy) and carbon fiber reinforced polyamide 66 (CFRP) via friction stir lap welding (FSLW). The effects of surface pretreatment parameters were clarified and an effective coupled treatment strategy was proposed. Micro-textures with uniform geometric grooves with average width w = 13.17 ± 3.27 μ m and average depth d = 122.45 ± 12.83 μ m processed by laser ablation (LA) and flower-like AlOOH nanostructures synthesized by hot water treatment (HWT) promoted mechanical interlocking and chemical bonding at the macro/micro/nanoscale. For this reason, the high interfacial bonding strength of 30.2MPa and joint efficiency of 67.2% were achieved, and continuous superficial resin of the CFRP matrix adhered to the fracture surface of Al alloy during the failure process. More effectively, the interfacial structures and chemical compositions were analyzed by transmission electron microscopy (TEM), and the formation of C-O-Al and hydrogen bonds was attributed to the γ-Al2O3·yH2O layer and AlOx·yH2O atom clusters, which was verified to enhance the interfacial bonding. This first exploratory study on Al alloy/CFRP interfacial bonding at the nanoscale based on physicochemical coupling surface pretreatment provides an in-depth understanding of the joining of light metals and polymer-matrix composites.

AB - Light metal/carbon fiber reinforced polymer (CFRP) hybrid structures have been considered a key component for lightweight and advanced multi-material structures in modern automotive and aerospace applications. In this study, directional physicochemical surface pretreatment routes based on the conceptual process of geometric configuration and chemical modification were designed for the reliable joining of A6061 aluminum alloy (Al alloy) and carbon fiber reinforced polyamide 66 (CFRP) via friction stir lap welding (FSLW). The effects of surface pretreatment parameters were clarified and an effective coupled treatment strategy was proposed. Micro-textures with uniform geometric grooves with average width w = 13.17 ± 3.27 μ m and average depth d = 122.45 ± 12.83 μ m processed by laser ablation (LA) and flower-like AlOOH nanostructures synthesized by hot water treatment (HWT) promoted mechanical interlocking and chemical bonding at the macro/micro/nanoscale. For this reason, the high interfacial bonding strength of 30.2MPa and joint efficiency of 67.2% were achieved, and continuous superficial resin of the CFRP matrix adhered to the fracture surface of Al alloy during the failure process. More effectively, the interfacial structures and chemical compositions were analyzed by transmission electron microscopy (TEM), and the formation of C-O-Al and hydrogen bonds was attributed to the γ-Al2O3·yH2O layer and AlOx·yH2O atom clusters, which was verified to enhance the interfacial bonding. This first exploratory study on Al alloy/CFRP interfacial bonding at the nanoscale based on physicochemical coupling surface pretreatment provides an in-depth understanding of the joining of light metals and polymer-matrix composites.

KW - Carbon fiber reinforced polymer (CFRP)

KW - Friction stir lap welding (FSLW)

KW - Surface treatments

KW - Interfacial structures

KW - Mechanical response

U2 - 10.1016/j.jmatprotec.2023.117923

DO - 10.1016/j.jmatprotec.2023.117923

M3 - Journal article

VL - 315

JO - Journal of Materials Processing Technology

JF - Journal of Materials Processing Technology

SN - 0924-0136

M1 - 117923

ER -