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Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology

Year 2023, Volume: 36 Issue: 1, 322 - 334, 01.03.2023
https://doi.org/10.35378/gujs.861242

Abstract

The processing parameters to disperse active filler within a polymer matrix to enhance the polymers’ properties should be selected carefully to achieve the best dispersion. In this research, Box-Behnken Design (BBD), an experimental design for response surface methodology (RSM), with three levels was used as a design of experiment (DOE) to analyze the effect of processing parameters on the thermal and rheological properties of high-density polyethylene-organoclay (HDPE-OC) composites prepared by adding organoclay (OC) to high density polyethylene (HDPE) using melt blending method. HDPE-OC composites were characterized morphologically by SEM and XRD, and thermally by DSC and TGA, and tested rheologically. Investigated factors were filler amount, mixing temperature and screw speed. The evaluated responses were melting temperature, degradation temperature, storage modulus, and complex viscosity of HDPE-OC composites. The effect of each factor on the responses was determined through an analysis of variance (ANOVA). The obtained data was used to predict the responses by fitting into a second order equation with MINITAB software. Constructed models were verified using validation experiments therefore optimum melt blending processing parameters obtained as 1.5 wt.% of OC, mixing temperature of 183 °C, and screw speed of 77 rpm for HDPE-OC composites.

Thanks

The authors would like to thank Borouge Innovation Center to provide HDPE, and Khalifa University for completing the experimental work in their research labs. The authors acknowledge the invaluable feedback provided by Prof. Dr. Chris Macosko (Emeritus Professor in Chemical Engineering and Materials Science, University of Minnesota, USA), on the draft of this manuscript.

References

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  • [32] Acharya, H., Srivastava, S. K., “Influence of nanodispersed organoclay on rheological and swelling properties of ethylene propylene diene terpolymer”, Macromolecular Research, 14(2): 132-139, (2006).
  • [33] Dong, Y., Bhattacharyya, D., “Effects of clay type, clay/compatibilizer content and matrix viscosity on the mechanical properties of polypropylene/organoclay nanocomposites”, Composites Part A: Applied Science and Manufacturing, 39(7): 1177-1191, (2008).
  • [34] Zhang, G., Wu, T., Lin, W., Tan, Y., Chen, R., Huang, Z., Yin, X., Qu, J., “Preparation of polymer/clay nanocomposites via melt intercalation under continuous elongation flow”, Composites Science and Technology, 145: 157-164, (2017).
Year 2023, Volume: 36 Issue: 1, 322 - 334, 01.03.2023
https://doi.org/10.35378/gujs.861242

Abstract

References

  • [1] Fu, S., Sun, Z., Huang, P., Li, Y., Hu, N., “Some basic aspects of polymer nanocomposites: A critical review”, Nano Materials Science, 1(1): 2-30, (2019).
  • [2] Bhattacharya, M., “Polymer Nanocomposites—A Comparison between Carbon Nanotubes, Graphene, and Clay as Nanofillers”, Materials, 9(4): 262, (2016).
  • [3] Ray, S.S., Okamoto, M., “Polymer/layered silicate nanocomposites: a review from preparation to processing”, Progress in Polymer Science, 28(11): 1539-1641, (2003).
  • [4] Li, J., Gunister, E., Barsoum, I., “Effect of graphene oxide as a filler material on the mechanical properties of LLDPE nanocomposites”, Journal of Composite Materials, 53(19): 2761–2773, (2019).
  • [5] Chafidz, A., Ali, M.A., Elleithy, R., “Morphological, thermal, rheological, and mechanical properties of polypropylene-nanoclay composites prepared from masterbatch in a twin-screw extruder”, Journal of Materials Science, 46(18): 6075–6086, (2011).
  • [6] Ray, S.S., “Clay-Containing Polymer Nanocomposites: From Fundamentals to Real Applications”, Elsevier Publishing, United Kingdom, 1-387, (2013).
  • [7] Gunister, E., Cobanoglu, İ., İsci, S., “The effect of polyurethane on NaMt and OnaMt dispersions,” Progress in Organic Coatings, 65(3): 357–361, (2009).
  • [8] Theng, B.K.G., “Clay-Polymer Interactions: Summary and Perspectives”, Clays and Clay Minerals, 30(1): 1-10, (1982).
  • [9] Katti, D.R., Katti, K.S., Raviprasad, M., Gu, C., “Role of Polymer Interactions with Clays and Modifiers on Nanomechanical Properties and Crystallinity in Polymer Clay Nanocomposites”, Journal of Nanomaterials, 15, (2012).
  • [10] Rahman, Md.R., “Silica and Clay Dispersed Polymer Nanocomposites”, In Woodhead Publishing Series in Composites Science and Engineering, Woodhead Publishing, (2018).
  • [11] Peacock, A.J., Handbook of polyethylene: structures, properties, and applications, New York: Marcel Dekker, (2000).
  • [12] Gabr, M.H., Okumura, W., Ueda, H., Kuriyama, W., Uzawa, K., Kimpara, I., “Mechanical and thermal properties of carbon fiber/polypropylene composite filled with nano-clay”, Composites Part B: Engineering, 69: 94–100, (2015).
  • [13] Chen, C., Samaniuk, J., Baird, D.G., Devoux, G., Zhang, M., Moore, R.B., Quigley, J.P., “The preparation of nano-clay/polypropylene composite materials with improved properties using supercritical carbon dioxide and a sequential mixing technique”, Polymer, 53(6): 1373–1382, (2012).
  • [14] Arunvisut, S., Phummanee, S., Somwangthanaroj, A., “Effect of clay on mechanical and gas barrier properties of blown film LDPE/clay nanocomposites”, Journal of Applied Polymer Science, 106(4): 2210–2217, (2007).
  • [15] Osman, M.A., Rupp, J.E.P., Suter, U.W., “Effect of non-ionic surfactants on the exfoliation and properties of polyethylene-layered silicate nanocomposites”, Polymer, 46(19): 8202–8209, (2005).
  • [16] Ramachandran, A., George, K.E., George, T.S., Krishnan, A., “Optimisation of processing conditions of PP/HDPE/nano kaolinite clay composites by response surface methodology”, International Journal of Plastics Technology, 16(2): 136–149, (2012).
  • [17] Hwang, S., Liu, S., Hsu, P.P., Yeh, J., Yang, J., Chang, K., Chu, S., “Morphology, mechanical, thermal and rheological behavior of microcellular injection molded TPO-clay nanocomposites prepared by kneader”, International Communications in Heat and Mass Transfer, 38(5): 597–606, (2011).
  • [18] Wang, K.H., Choi, M.H., Koo, C.M., Xu, M., Chung, I.J., Jang, M.C., Choi, S.W.,Song, H.H., “Morphology and physical properties of polyethylene/silicate nanocomposite prepared by melt intercalation”, Journal of Polymer Science Part B: Polymer Physics, 40(14): 1454–1463, (2002).
  • [19] Lee, J.H., Jung, D., Hong, C.E., Rhee, K.Y., Advani, S.G., “Properties of polyethylene-layered silicate nanocomposites prepared by melt intercalation with a PP-g-MA compatibilizer”, Composites Science and Technology, 65(13): 1996–2002, (2005).
  • [20] Ghanbari, A., Heuzey, M.C., Carreau, P.J., Ton-That, M.T., “Morphological and rheological properties of PET/clay nanocomposites”, Rheologica Acta, 52(1): 59–74, (2013).
  • [21] Grigoriadi, K., Giannakas, A., Ladavos, A., Barkoula, N.M., “Thermomechanical behavior of polymer/layered silicate clay nanocomposites based on unmodified low density polyethylene”, Polymer Engineering & Science, 53(2): 301–308, (2013).
  • [22] https://sigmachemtrade.com/wp-content/uploads/2019/08/BB2588-.pdf, Access date: 24.01.2022.
  • [23] Jiang, X., Drzal, L.T., “Multifunctional high density polyethylene nanocomposites produced by incorporation of exfoliated graphite nanoplatelets 1: Morphology and mechanical properties”, Polymer Composite, 31(6): 1091–1098, (2010).
  • [24] Crist, B., Mirabella, F.M., “Crystal thickness distributions from melting homopolymers or random copolymers”, Journal of Polymer Science Part B: Polymer Physics, 37(21): 3131–3140, (1999).
  • [25] Gunister, E., Pestreli, D., Unlu, C.H., Atıcı, O., Gungor, N., “Synthesis and characterization of chitosan-MMT biocomposite systems”, Carbohydrate Polymers, 67(3): 358–365, (2007).
  • [26] Durmus, A., Woo, M., Kasgoz, A., Macosko, C.W., Tsapatsis, M., “Intercalated linear low density polyethylene (LLDPE)/clay nanocomposites prepared with oxidized polyethylene as a new type compatibilizer: Structural, mechanical and barrier properties”, European Polymer Journal, 43(9): 3737–3749, (2007).
  • [27] Mathews, P.G., Design of experiments with MINITAB. Milwaukee, Wis: ASQ Quality Press, (2005).
  • [28] Montgomery, D.C., Design and Analysis of Experiments. John Wiley & Sons, (2008).
  • [29] Balachandran, M., Devanathan, S., Muraleekrishnan, R., Bhagawan, S.S.,“Optimizing properties of nanoclay–nitrile rubber (NBR) composites using Face Centred Central Composite Design,” Materials Design, 35: 854–862, (2012).
  • [30] Kukreja, T.R., Kumar, D., Prasad, K., Chauhan, R.C., Choe, S., Kundu, P.P., “Optimisation of physical and mechanical properties of rubber compounds by response surface methodology-Two component modelling using vegetable oil and carbon black”, European Polymer Journal, 38(7): 1417–1422, (2002).
  • [31] Chaudhuri, S., Chakraborty, R., Bhattacharya, P., “Optimization of biodegradation of natural fiber (Chorchorus capsularis): HDPE composite using response surface methodology”, Iranian Polymer Journal, 22(11): 865–875, (2013).
  • [32] Acharya, H., Srivastava, S. K., “Influence of nanodispersed organoclay on rheological and swelling properties of ethylene propylene diene terpolymer”, Macromolecular Research, 14(2): 132-139, (2006).
  • [33] Dong, Y., Bhattacharyya, D., “Effects of clay type, clay/compatibilizer content and matrix viscosity on the mechanical properties of polypropylene/organoclay nanocomposites”, Composites Part A: Applied Science and Manufacturing, 39(7): 1177-1191, (2008).
  • [34] Zhang, G., Wu, T., Lin, W., Tan, Y., Chen, R., Huang, Z., Yin, X., Qu, J., “Preparation of polymer/clay nanocomposites via melt intercalation under continuous elongation flow”, Composites Science and Technology, 145: 157-164, (2017).
There are 34 citations in total.

Details

Primary Language English
Subjects Engineering
Journal Section Material Science
Authors

Abdallah Yassin This is me 0000-0002-9460-1442

Ebru Günister 0000-0002-7797-604X

Publication Date March 1, 2023
Published in Issue Year 2023 Volume: 36 Issue: 1

Cite

APA Yassin, A., & Günister, E. (2023). Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology. Gazi University Journal of Science, 36(1), 322-334. https://doi.org/10.35378/gujs.861242
AMA Yassin A, Günister E. Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology. Gazi University Journal of Science. March 2023;36(1):322-334. doi:10.35378/gujs.861242
Chicago Yassin, Abdallah, and Ebru Günister. “Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology”. Gazi University Journal of Science 36, no. 1 (March 2023): 322-34. https://doi.org/10.35378/gujs.861242.
EndNote Yassin A, Günister E (March 1, 2023) Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology. Gazi University Journal of Science 36 1 322–334.
IEEE A. Yassin and E. Günister, “Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology”, Gazi University Journal of Science, vol. 36, no. 1, pp. 322–334, 2023, doi: 10.35378/gujs.861242.
ISNAD Yassin, Abdallah - Günister, Ebru. “Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology”. Gazi University Journal of Science 36/1 (March 2023), 322-334. https://doi.org/10.35378/gujs.861242.
JAMA Yassin A, Günister E. Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology. Gazi University Journal of Science. 2023;36:322–334.
MLA Yassin, Abdallah and Ebru Günister. “Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology”. Gazi University Journal of Science, vol. 36, no. 1, 2023, pp. 322-34, doi:10.35378/gujs.861242.
Vancouver Yassin A, Günister E. Optimization of Thermal and Rheological Properties of HDPE-Organoclay Composite Using Response Surface Methodology. Gazi University Journal of Science. 2023;36(1):322-34.