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http://dx.doi.org/10.5714/CL.2015.16.4.241

Influence of laminated orientation on the mechanical and thermal characteristics of carbon-fiber reinforced plastics  

Shin, Hee-Jae (Department of Mechanical Engineering, Jeonju University)
Kwac, Lee-Ku (Department of Carbon and Nano Engineering, Jeonju University)
Lee, Min-Sang (Department of Mechanical Engineering, Jeonju University)
Kim, Hong-Gun (Department of Mechanical and Automotive Engineering, Jeonju University)
Publication Information
Carbon letters / v.16, no.4, 2015 , pp. 241-246 More about this Journal
Abstract
Rapid industrial development in recent times has increased the demand for light-weight materials with high strength and structural integrity. In this context, carbon fiber-reinforced plastic (CFRP) composite materials are being extensively used. However, laminated CFRPs develop faults during impact because CFRPs are composed of mixed carbon fiber and epoxy. Moreover, their fracturing behavior is very complicated and difficult to interpret. In this paper, the effect of the direction of lamination in CFRP on the absorbed impact energy and impact strength were evaluated, including symmetric ply (0°/0°, −15°/+15°, −30°/+30°, −45°/+45°, and −90°/+90°) and asymmetric ply (0°/15°, 0°/30°, 0°/45°, and 0°/90°), through drop-weight impact tests. Further, the thermal properties of the specimens were measured using an infrared camera. Correlations between the absorbed impact energy, impact strength, and thermal properties as determined by the drop-weight impact tests were analyzed. These analyses revealed that the absorbed impact energy of the specimens with asymmetric laminated angles was greater than that of the specimens with symmetric laminated angles. In addition, the asymmetry ply absorbed more impact energy than the symmetric ply. Finally, the absorbed impact energy was inversely proportional to the thermal characteristics of the specimens.
Keywords
carbon fiber reinforced plastic; drop-weight impact test; infrar ed camera; absorbed impact energy; impact strength;
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1 Kim TH. Analysis of Correlation according to the Orientation of Carbon Fiber Composite Mechanical and Thermal Properties, Jeonju University, Jeonju, MS Thesis (2012).
2 American Society for Testing Materials D7136/D7136M. ASTM D7136/D7136M-15, Standard Test Method for Measuring the Damage Resistance of a Fiber-Reinforced Polymer Matrix Composite to a Drop-Weight Impact Event, ASTM International, West Conshohocken, PA, 2015. http://dx.doi.org/10.1520/D7136_D7136M-15.   DOI
3 Stanley P. Applications and potential of thermoelastic stress analysis. J Mater Process Technol, 64, 359 (1997). http://dx.doi.org/10.1016/S0924-0136(96)02587-3.   DOI
4 Jun JK, Kwon OY, Lee U. Damage assessment of curved composite laminate structures subjected to low-velocity impact. Korean Soc Compos Mater, 14, 22 (2001).
5 Camponeschi ET Jr. Compression of Composite Materials: A Review. In: O’Brien TK, ed. Composite Materials: Fatigue and Fracture, Vol. 3, ASTM, Philadelphia, 550 (1991).
6 Shin HJ, Kwac LK, Ko SH, Kim TH, Kim HG. A study on impact strength of CFRP using infrared thermography. Adv Mater Res, 628, 390 (2013). http://dx.doi.org/10.4028/www.scientific.net/AMR.628.390.
7 Shin HJ. The Strength Evaluation and Nondestructive Testing of Carbon Fiber Composites, Jeonju University, Jeonju, MS Thesis (2013).