TY - JOUR
T1 - Experimental investigation of the strength of polymer-steel direct adhesion (PSDA) joints with micro-structures ablated by laser
AU - Huang, Bincheng
AU - Sun, Lingyu
AU - Li, Lijun
AU - Zhang, Lin
AU - Lin, Yi
AU - Che, Jiangtao
N1 - Publisher Copyright:
© 2017 Elsevier B.V.
PY - 2017/11
Y1 - 2017/11
N2 - The key issue for polymer-steel direct-adhesion (PSDA) technology is to find an effective and efficient way to enhance the adhesion strength. A high-power precision laser processing method was utilized to form a periodic microstructure on the metal surface before PSDA joining. The corresponding theoretical model was proposed to optimize the processing parameters and establish the relationship between microstructures and adhesion fracture energy. Additionally, single-lap tensile shear tests of PSDA samples with various mircostructures were carried out. The experimental results show that the proposed method could increase the ultimate tensile load by nearly 1.5 times higher than the traditional chemical surface pretreatment. Due to the processing of periodic microstructure could be controlled accurately by machines, the dimensional precision was improved. The investigation also discovered that the packing arrangement of interfacial microstructures affects the adhesion strength and fracture energy, but independent of the roughness. The present method is demonstrated to be an effective, efficient, and economic interface treatment for polymer-steel hybrid structures.
AB - The key issue for polymer-steel direct-adhesion (PSDA) technology is to find an effective and efficient way to enhance the adhesion strength. A high-power precision laser processing method was utilized to form a periodic microstructure on the metal surface before PSDA joining. The corresponding theoretical model was proposed to optimize the processing parameters and establish the relationship between microstructures and adhesion fracture energy. Additionally, single-lap tensile shear tests of PSDA samples with various mircostructures were carried out. The experimental results show that the proposed method could increase the ultimate tensile load by nearly 1.5 times higher than the traditional chemical surface pretreatment. Due to the processing of periodic microstructure could be controlled accurately by machines, the dimensional precision was improved. The investigation also discovered that the packing arrangement of interfacial microstructures affects the adhesion strength and fracture energy, but independent of the roughness. The present method is demonstrated to be an effective, efficient, and economic interface treatment for polymer-steel hybrid structures.
KW - Adhesion mechanism
KW - Dissimilar materials joint
KW - Metal-Polymer hybrid (MPH)
KW - Periodic microstructure
KW - Precision laser processing
UR - https://www.scopus.com/pages/publications/85021146192
U2 - 10.1016/j.jmatprotec.2017.06.031
DO - 10.1016/j.jmatprotec.2017.06.031
M3 - 文章
AN - SCOPUS:85021146192
SN - 0924-0136
VL - 249
SP - 407
EP - 414
JO - Journal of Materials Processing Technology
JF - Journal of Materials Processing Technology
ER -