Energy absorption in carbon fiber honeycomb structures manufactured using a liquid thermoplastic resin

被引:18
作者
Khan, Tayyab [1 ]
Aziz, Alia Ruzanna [1 ]
Irfan, Muhammad S. [1 ]
Cantwell, Wesley J. [1 ]
Umer, Rehan [1 ]
机构
[1] Khalifa Univ Sci & Technol, Dept Aerosp Engn, Abu Dhabi, U Arab Emirates
关键词
Carbon fiber reinforced polymer; thermoplastics; energy absorption; core material; sandwich panels; LOW-VELOCITY IMPACT; SANDWICH PANELS; COMPOSITES; CORE; BEHAVIOR; FAILURE;
D O I
10.1177/00219983221073985
中图分类号
TB33 [复合材料];
学科分类号
摘要
In this study, carbon fiber/thermoplastic (Elium(R)) honeycombs were manufactured using the resin infusion process in a customized metallic mold. Honeycomb cores, based on different carbon fiber layers, were manufactured to achieve four different fiber weight fraction composites. Two different types of specimens, based on a single honeycomb cell and five honeycomb cells, were prepared and subjected to compression loading. The results of these tests were compared with data from similar honeycomb structures based on carbon fiber-reinforced epoxy composite. It has been shown that the compressive strength and the specific energy absorption capacity of the honeycombs increase rapidly with increasing fiber weight fraction. The specific energy absorption capability of the novel thermoplastic honeycomb structures has been shown to be as high as 50 kJ/kg which compares favorably with other energy-absorbing core materials. The thermoplastic honeycomb specimens exhibited a similar specific energy absorption capability and an improved compressive strength compared to their epoxy counterparts. Furthermore, the CF/thermoplastic honeycombs exhibited enhanced structural stability and displayed a more uniform and progressive core failure mode than the longitudinal splitting observed in the CF/epoxy honeycombs. The honeycomb core that exhibited the best performance was then used to manufacture thermoplastic sandwich specimens based on CF/thermoplastic face sheets. Three point bend tests were conducted to determine the flexural strength of the sandwich samples and to identify the failure modes. Optical micrographs revealed that the flexural damage was primarily due to the core crushing and adhesive failure between the core and the composite skins.
引用
收藏
页码:1335 / 1348
页数:14
相关论文
共 60 条
[1]   Experimental and numerical characterization of honeycomb sandwich composite panels [J].
Abbadi, Ahmed ;
Koutsawa, Y. ;
Carmasol, A. ;
Belouettar, S. ;
Azari, Z. .
SIMULATION MODELLING PRACTICE AND THEORY, 2009, 17 (10) :1533-1547
[2]   The effect of loading rate on the compression properties of carbon fibre-reinforced epoxy honeycomb structures [J].
Alia, R. A. ;
Zhou, J. ;
Guan, Z. W. ;
Qin, Q. ;
Duan, Y. ;
Cantwell, W. J. .
JOURNAL OF COMPOSITE MATERIALS, 2020, 54 (19) :2565-2576
[3]   The energy-absorbing characteristics of carbon fiber-reinforced epoxy honeycomb structures [J].
Alia, R. A. ;
Al-Ali, O. ;
Kumar, S. ;
Cantwell, W. J. .
JOURNAL OF COMPOSITE MATERIALS, 2019, 53 (09) :1145-1157
[4]   Experimental investigation of low-velocity impact characteristics of sandwich composites [J].
Anderson, T ;
Madenci, E .
COMPOSITE STRUCTURES, 2000, 50 (03) :239-247
[5]   A Novel Thermoplastic Composite for Marine Applications: Comparison of the Effects of Aging on Mechanical Properties and Diffusion Mechanisms [J].
Bel Haj Frej, Haithem ;
Leger, Romain ;
Perrin, Didier ;
Ienny, Patrick .
APPLIED COMPOSITE MATERIALS, 2021, 28 (04) :899-922
[6]   Quasi-static indentation response of core-shell particle reinforced novel NCCF/Elium® composites at different feed rates [J].
Bhudolia, Somen K. ;
Gohel, Goram ;
Joshi, Sunil C. ;
Leong, Kah Fai .
COMPOSITES COMMUNICATIONS, 2020, 21
[7]   Investigation on Ultrasonic Welding Attributes of Novel Carbon/Elium® Composites [J].
Bhudolia, Somen K. ;
Gohel, Goram ;
Leong, Kah Fai ;
Barsotti, Robert J. .
MATERIALS, 2020, 13 (05)
[8]   Fatigue response of ultrasonically welded carbon/Elium® thermoplastic composites [J].
Bhudolia, Somen K. ;
Gohel, Goram ;
Fai, Leong Kah ;
Barsotti, Robert J., Jr. .
MATERIALS LETTERS, 2020, 264
[9]   Low-velocity impact response of carbon fibre composites with novel liquid Methylmethacrylate thermoplastic matrix [J].
Bhudolia, Somen K. ;
Joshi, Sunil C. .
COMPOSITE STRUCTURES, 2018, 203 :696-708
[10]   Mode I fracture toughness and fractographic investigation of carbon fibre composites with liquid Methylmethacrylate thermoplastic matrix [J].
Bhudolia, Somen K. ;
Perrotey, Pavel ;
Joshi, Sunil C. .
COMPOSITES PART B-ENGINEERING, 2018, 134 :246-253