Investigation of low-velocity impact behavior of aluminum honeycomb composite sandwiches with GNPs doped BFR laminated face-sheets and interfacial adhesive for aircraft structures

被引:17
作者
Demirci, Mehmet Turan [1 ]
机构
[1] Selcuk Univ, Technol Fac, Dept Met & Mat Engn, Konya, Turkey
关键词
aluminum honeycomb; basalt fiber reinforcement (BFR); composite sandwich; graphene Nano platelets (GNPs); low-velocity impact (LVI); CARBON-FIBER; FRACTURE-TOUGHNESS; MECHANICAL-PROPERTIES; PANELS; DAMAGE; PERFORMANCE; CORES; CFRP;
D O I
10.1002/pc.26882
中图分类号
TB33 [复合材料];
学科分类号
摘要
The low-velocity impacts that represent the equipment drop during maintenance and production, crash and drops of luggage that may occur during transportation and bird strikes during takeoff may occur in aircraft parts where honeycomb composite structures are used. Therefore, the low-velocity impact (LVI) resistance of aircraft components is crucial. In this study, the effect of graphene nano platelets (GNPs) on the LVI behaviors of the BFR (basalt fiber reinforcement) laminated face-sheets and the interface adhesive between the face-sheet and the aluminum honeycomb core for composite sandwich structures were investigated. LVI tests were applied to GNPs doped and un-doped BFR/aluminum composite sandwich samples to determine the values of the impact forces, displacements, interaction times, and absorbed energy at two different energy levels of 10 J and 20 J. The surface damages in the impact zones of the GNPs doped and un-doped BFR laminated top face-sheets of the sandwich samples were investigated on a macro scale with liquid penetrant. The damage formation and development of GNPs were detected in the cross-sectional micro-images of the top face-sheets. SEM analysis was accomplished to define the fracture mechanisms provided by GNPs. As a consequence of tests and damage analysis, it was reported that GNPs increase the impact resistance of BFR/aluminum honeycomb composite sandwiches and limit and reduce damage development. GNPs showed increases in force and rebound energies of approximately 16.1% and 21.1% for 10 J, and approximately 8.2% and 14.7% for 20 J, respectively.
引用
收藏
页码:5675 / 5689
页数:15
相关论文
共 66 条
[1]   A feasibility study on additive manufactured hybrid metal/composite shock absorbers [J].
Acanfora, V. ;
Saputo, S. ;
Russo, A. ;
Riccio, A. .
COMPOSITE STRUCTURES, 2021, 268
[2]   On the Effects of Core Microstructure on Energy Absorbing Capabilities of Sandwich Panels Intended for Additive Manufacturing [J].
Acanfora, Valerio ;
Castaldo, Rossana ;
Riccio, Aniello .
MATERIALS, 2022, 15 (04)
[3]  
Altin, 2020, INT J AUTOMOT ENG TE, V9, P11
[4]  
[Anonymous], 2017, ASTM INT STAND, V15, P16
[5]   Nano-structured sandwich composites response to low-velocity impact [J].
Avila, Antonio F. ;
Carvalho, Maria Gabriela R. ;
Dias, Eder C. ;
da Cruz, Diego T. L. .
COMPOSITE STRUCTURES, 2010, 92 (03) :745-751
[6]   Nano-hybridization effects of nano-silica and nano-graphene platelet on mechanical properties of E-glass/epoxy nanocomposites [J].
Aydogus, Osman ;
Demirci, Mehmet Turan .
JOURNAL OF COMPOSITE MATERIALS, 2022, 56 (05) :779-796
[7]   Fatigue analysis of honeycomb-composite sandwich beams [J].
Belingardi, G. ;
Martella, P. ;
Peroni, L. .
COMPOSITES PART A-APPLIED SCIENCE AND MANUFACTURING, 2007, 38 (04) :1183-1191
[8]   Some Identities of Harmonic and Hyperharmonic Fibonacci Numbers [J].
Cetin, Mirac ;
Kizilates, Can ;
Yesil Baran, Fatma ;
Tuglu, Naim .
GAZI UNIVERSITY JOURNAL OF SCIENCE, 2021, 34 (02) :493-504
[9]   A review of low-velocity impact on sandwich structures [J].
Chai, G. B. ;
Zhu, S. .
PROCEEDINGS OF THE INSTITUTION OF MECHANICAL ENGINEERS PART L-JOURNAL OF MATERIALS-DESIGN AND APPLICATIONS, 2011, 225 (L4) :207-230
[10]   Fracture toughness and failure mechanism of graphene based epoxy composites [J].
Chandrasekaran, Swetha ;
Sato, Narumichi ;
Toelle, Folke ;
Muelhaupt, Rolf ;
Fiedler, Bodo ;
Schulte, Karl .
COMPOSITES SCIENCE AND TECHNOLOGY, 2014, 97 :90-99