Acta Polytechnica CTU Proceedings doi:10.14311/APP.2016.3.0071 Acta Polytechnica CTU Proceedings 3:71–74, 2016 © Czech Technical University in Prague, 2016 available online at http://ojs.cvut.cz/ojs/index.php/app DEFORMATION CHARACTERISTICS OF CHOPPED FIBRE COMPOSITES SUBJECTED TO QUASI-STATIC TENSILE LOADING Jan Šleichrta,∗, Marcel Adornaa, Michaela Neühauserováa, Nela Fenclováa, Veronika Petráňováb a Czech Technical University In Prague, Faculty of Transportation Sciences, Konviktská 20, 120 00 Prague 1, Czech Republic b Czech Academy of Sciences, Institute of Theoretical and Applied Mechanics, Prosecká 76, 190 00, Prague 9, Czech Republic ∗ corresponding author: sleicjan@fd.cvut.cz Abstract. This work presents deformation behaviour of cost effective chopped fiber composites. Use of chopped fibre is advantageous for manufacturing however complex shape parts production technology could be challenging. Batches of samples with different fibres composition were subjected to uni-axial tensile loading to obtain overall materials properties and inspection of proper manufacturing based on local deformation inhomogeneities. Both crossbeam displacement and optical strain measurement were used for elastic characteristics evaluation. Deformation response was derived from full-field optical strain measurements based on digital image correlation method. Relatively large variation of mechanical properties testing of samples was found. Keywords: chopped fibre composites, full-field measurement, digital image correlation. 1. Introduction Carbon fiber reinforced thermoplastic composite be- come a standard construction material in last decades mainly for its good strength to weight ratio, chemi- cal resistivity and recyclable [1]. Moreover operating of light weight structures is economically beneficial. Because of damage-tolerance approach used for the composite material a comprehensive knowledge of the material deformation response is required [2]. The high strength composites are in the large majority manufactured as long fibres composited. This mate- rial was intensively investigated on macro- mezzo- and micro-level to obtain the detailed information about its deformation response to the various type of the loading [3, 4] and description of the internal damage propagation [5, 6]. However there have excellent me- chanical properties its production cost is relatively high and manufacturing of complex shaped parts is challenging. For less loaded complex shaped parts are an appropriate solution usage of chopped fibre composite [7]. This cost effective material allows due to the stochastic orientation of the carbon fibre pellets manufacturing of the parts with variable thickness, holes and branchings [8]. Presented article is focused on deformation be- haviour of newly developed chopped fibre composite subjected to quasi-static loading. Prototyped material prepared by custom designed molding system have to be inspected to discover detect defects in materials and to describe its deformation behaviour. Full-field opti- cal strain field measurement method [9] was employed for assessed of reliability of the manufacturing tech- Figure 1. Detail of damage structure after tensile test obtained by scanning electron microscope. nology based on overall material properties and local deformation inhomogeneities. The collapsed structure of the composite specimen can be seen in Fig. 1. 2. Experimental Procedure 2.1. Specimen Description Dog bone shaped samples (Fig. 2) with width of 20 ± 0.4 mm and thickness of 2.5 ± 0.1 mm were man- ufactured using custom designed mould. Two sets of samples were prepared from carbon pellets with dimensions 25 × 6 mm and 13 × 3.25 mm respectively bounded with a thermoplastic matrix. Thickness of the pellets was 0.14 mm in both cases. Density of the final material was around 1.35 g · cm−3. The orien- tation of the pellets was completely random because the process of filling pellets into the shape was uncon- trolled. The temperature of glass transition was 90 ◦. 71 http://dx.doi.org/10.14311/APP.2016.3.0071 http://ojs.cvut.cz/ojs/index.php/app J. Šleichrt, M. Adorna, M. Neühauserová et al. Acta Polytechnica CTU Proceedings Figure 2. Visualization of sample shape. Figure 3. Experimental devices: 1-LED light source, 2-specimen, 3-camera, 4-loading device. Final samples were cut from the plate using water-jet cutter. Finally, the surface of sample was equipped by random pattern point for image processing. 2.2. Experimental Setup Experimental setup consists of Instron 3382 (Instron, Inc.) loading device for tensile measurements and digi- tal single-lens reflex camera with accessories. Displace- ment controlled tests were performed with 10µm · s−1 loading rate. Force was measured by high-durability load cell with loading capacity 50 kN. Strain was mea- sured optically using EOS 550D (Canon, Japan) cam- era equipped with macro-objective EF100mm/1:2.8L Macro (Canon, Japan). Complete equipment is de- picted in Fig. 3. Artificial pattern on the sample sur- face was illuminated by laboratory LED light source KL 2500 (Shott, Germany). Images were captured in equidistant time intervals and were labeled by unique time stamp for a precise synchronization of DIC and force log. 2.3. Digital Image Correlation Strain was evaluated from the acquired image se- quence using custom DIC software [10] based on Lucas-Kanade tracking algorithm [11]. Evaluating script was written in Matlab environment. In the first image (prior the loading) an array of tracking features (10 × 15 points) was defined. As shown in Fig. 4, the displacement of each point was identified. Paths of each point were used to calculation local deformation in measured object. Figure 4. Detail of the displacement of a point during measurement. Based on shifts of points the map of displacement was formed to verification DIC method. Obtained data were further processed to establish full-field strain maps. 3. Results 3.1. Full-Field Strain Map For representation inhomogeneities and local deforma- tion in object full field maps were created. Calculation and evaluation those processes were completed using Matlab script as well. Displacements and strains cal- culated in each correlation point using set of Matlab scripts are represented by strain maps depicted in Fig. 5 to 9. From the results of the displacement map- ping of the sample no. 22 (see Fig. 5) expected linear behaviour without significant local inhomogeneities was observed. Strains maps of selected samples of both types of pellets represented by sample no. 22 consisted of 13.0 × 3.25 mm depicted in Fig. 8 and by sample no. 45 consisted of 25.0 × 6.0 mm depicted in Fig. 9 discovered local strain concentrations (represented by red colour) indicating material imperfections. In case of 13.0 × 3.25 mm pellets the absolute values are lower but spread on larger area compared to 25.0 × 6.0 mm pellets specimen where deformation are higher in dis- continuous area. 3.2. Young’s Modulus Calculation of Young’s modulus was done by three different approaches. Firstly, results were computed from crossbeam displacement and force log. Another results were calculated using displacements of points acquired from DIC. Average displacement of first and last line of points was used to comparison with results calculated from 5th and 11th line of points. Similarly, results of two ways of calculation from DIC method were found. 72 vol. 3/2016 Deformation Characteristics of Chopped Fibre Composites Figure 5. Map of the total displacements of points. Figure 6. Full-field strain map of the sample 22 (smaller pellets). Figure 7. Full-field strain map of the sample 45 (bigger pellets). • Green curve - optical strain measurement, calcu- lated between first and last row of grid. • Yellow curve - optical strain measurement, calcu- lated between 5th and 11th row of grid. • Red curve - calculated from crossbeam displace- ment. Figure 8. Stress-strain diagram of 13 × 3.25 mm pellets; Sample 22. Figure 9. Stress-strain diagram of 25 × 6 mm pellets; Sample 45. 4. Conclusions Deformation behaviour of chopped fibre composites represented by stress-strain curves and strain maps was described based on optical measurement of stan- dard tensile test. Similar elastic properties in compar- ison with long fibre samples [3] and small differences in Young’s modulus values in each set were observed. In contrary significant differences in ultimate stress (80 − 150 MPa) were observed. Differences caused by fabrication technology mainly given by imperfec- tions in the material structure was measured. As expected, the values of strains was significantly lower using optical evaluation method. Strains derived from cross-head displacement were affected by backlash of the grips of the loading device. With respect to the measured data, the reliability of the optical method for investigation of local strain concentrations was proven. Delivered sets of tested material were consid- ered still unsuitable for small structural parts for the mass production. The investigated composite mate- rial and requires further improvements of fabrication process. Acknowledgements The research was supported by Grant Agency of Czech Technical University in Prague (project no. SGS15/225/OHK2/3T/16), by Technology Agency from 73 J. Šleichrt, M. Adorna, M. Neühauserová et al. Acta Polytechnica CTU Proceedings the Czech Republic (Grant no. TA03010209) and by insti- tutional support RVO: 68378297. References [1] D. Steenkamer, J. Sullivan. On the recyclability of a cyclic thermoplastic composite material. Composites Part B: Engineering 29(6):745–752, 1998. [2] J. Gallagher, U. S. A. Force. USAF damage tolerant design handbook: guidelines for the analysis and design of damage tolerant aircraft structures : final report for period September 1980 to March 1984. No. v. 1 in USAF Damage Tolerant Design Handbook: Guidelines for the Analysis and Design of Damage Tolerant Aircraft Structures : Final Report for Period September 1980 to March 1984. 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