Abstract
The effect of elastomer volume fraction and phase morphology on the elastic modulus of ternary composites polypropylene (PP)/ethylene-propylene rubber (EPR)/inorganic filler containing 30 vol % of either spherical or lamellar filler has been investigated. Phase morphology was controlled using maleated polypropylene (MPP) and/or maleated ethylene-propylene elastomer (MEPR). As revealed by SEM observations, composites of MPP/EPR/filler exhibit separation of the filler and elastomer and good adhesion between MPP and the filler, whereas composites of PP/MEPR/filler exhibit encapsulation of the filler by MEPR. Composite models were utilized to estimate upper and lower bounds for the elastic modulus of these materials, which is strongly dependent on the morphology of the ternary composite. A model based on the Kerner equation for perfect separation of the soft inclusions and rigid fillers gives a good prediction of the upper limit for relative elastic modulus as a function of filler and elastomer volume fractions. The lower limit, achieved in the case of perfect encapsulation, depends significantly on the particle shape. Good agreement was found between experimental data and lower limits predicted using the Halpin-Tsai equation for lamellar filler and the Kerner-Nielsen equation for spherical filler. In order to calculate reinforcing efficiency of the core-shell inclusions, the finite element method (ANSYS 4.4A, GT STRUDL) has been used.
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References
L. E. Nielsen, J. Compos. Mater. 1
J. C. Halpin and J. L. Kardos, Polym. Eng. Sci. 16 (1976) 344.
S. W. Tsai and N. J. Pagano, in “Composite Materials Workshop”, edited by S. W. Tsai, J. C. Halpin and N. J. Pagano, (Technomic, Stamford, CT, 1968) p. 233.
B. W. Rosen, Mechanics of Composite Strengthening, in “Fiber Composite Materials”, (ASM, 1965) p. 37.
L. Dilandro, A. T. Dibenedetto and J. Groeger, Polym. Comp. 9 (1988) 209.
L. J. Broutman and B. D. Agarwal, “Analysis of Performance of Fibrous Composites” (J. Wiley, New York, 1980).
V. A. Matonis and N. C. Small, Polym. Eng. Sci. 9 (1969) 91.
V. A. Matonis, Polym. Eng. Sci. 9 (1969) 100.
J. Kolarik, Polym. Comm. 31 (1990) 201.
B. Pukanszky, F. Tudos, J. Kolarik and F. Lednicky, Polym. Compos. 11 (1990) 98.
J. Jancar and J. Kucera, Polym. Eng. Sci. 30 (1990) 714.
C. B. Bucknall, Makromol. Chem., Macromol Symp. 16 (1988) 209.
J. Kolarik, F. Lednicky, J. Jancar and B. Pukanszky, Polym. Commun. 31 (1990) 201.
J. Kolarik, F. Lednicky, and B. Pukanszky, “Proc. 6th Int. Conf. on Compos. Mater.” vol 1 (Elsevier, London, 1987) p. 452.
J. Kolarik and J. Jancar, Polymer 32 (1992) 4961.
J. Jancar, A. Dianselmo and A. T. Dibenedetto, Polymer 34 (1993) 1684.
J. C. Halpin and J. Raisoni, Polym. Eng. Sci. 15 (1975) 183.
J. C. Halpin and J. L. Kardos, J. Appl. Phys. 43 (1972) 2235.
L. J. Broutman and B. D. Agarwal, Polym. Eng. Sci. 14 (1974) 581.
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Jancar, J., Dibenedetto, A.T. The mechanical properties of ternary composites of polypropylene with inorganic fillers and elastomer inclusions. Journal of Materials Science 29, 4651–4658 (1994). https://doi.org/10.1007/BF00376292
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DOI: https://doi.org/10.1007/BF00376292