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Comparison of Polyphenylene Sulfide Composites Having Different Processing Temperatures and Glass Fibers

  • Received : 2019.09.19
  • Accepted : 2019.11.13
  • Published : 2019.12.31

Abstract

Polyphenylene sulfide (PPS) is a well-known super engineering plastic with a high melting temperature (above 290℃). It is generally insoluble under regular conditions. Therefore, it can be used for replacing metallic materials. Many researchers are looking at the possibility of replacing aluminum in the engine compartment of an automobile. However, studies on PPS are not common as compared to conventional engineering plastics because only a few companies produce super engineering plastics. In this research, the material properties of PPS composites containing two different kinds of glass fibers and produced under different processing temperatures were investigated. The tensile strength of the PPS composites increased as the processing temperature increased. Although glass fibers with similar aspect ratios were compounded under the same processing condition, one of them yielded a higher mechanical strength.

Keywords

References

  1. Y. J. Hwang, S. K. Jeoung, P-C. Lee, M. S. Yoo, C. M. Hong, and J. U. Ha, "Study on Color Retention of ASA Resin Under Accelerated Weathering Test", Transactions of KSAE, 26, 326 (2018). https://doi.org/10.7467/KSAE.2018.26.3.326
  2. S. B. Kwak, D. G. Lee, J. W. Lee, and J. Y. Lee, "Study on Lightweight and Mechanical Strength of Automotive Part with Plastic Composites", Proceeding of Polymer Society of Korea, 44, 137 (2019).
  3. X. X. Li, S. B. Lee, and U. R. Cho, "Study on Properties Change with a Fire Retardant Content in the Manufacture of Polymer Composites for Cable Sheath", Elastomers Compos., 54, 118 (2019). https://doi.org/10.7473/EC.2019.54.2.118
  4. O. Osokoya, "An Evaluation of Polymer Composites for Car Bumper Beam", IJAutoC, 3, 44 (2017). https://doi.org/10.1504/IJAUTOC.2017.086521
  5. Y. J. Lee, N. J. Beak, and C. M. Hong, "The Characteristics and Applications of Polyphenylene Sulfide", Polymer Science and Technology, 18, 20 (2007).
  6. B.S. Lee, B.C Chun, and Y. C. Chung, "Effect of Metallocene-Catalyzed Polyethylene on the Rheological and Mechanical Properties of Polyphenylene Sulfide/polyethylene blends", Fiber. Polym., 5, 145 (2004). https://doi.org/10.1007/BF02902929
  7. T. Rath, S. Kumar, R. N. Mahaling, C. K. Das, and S. B. Yadaw, "Machanical and Morphological Study of Polyphenylene Sulfide/Liquid Crystalline Polymer Blends Compatibilized with a Maleic Anhydride Grafted Polymer", J. Appl. Polym. Sci., 106, 3721 (2007). https://doi.org/10.1002/app.27047
  8. S. W. Lee, J. Lee, H. S. Choi, D-G. Kim, Y. Yoo, Y. S. Kim, and B. G. Kim, "Synthesis and Analysis of Flow Modifiers for PPS Flowability Enhancement", Polym-Korea, 41, 889 (2017). https://doi.org/10.7317/pk.2017.41.5.889
  9. J. M. Margolis, "Engineering Plastics Handbook", 1st Ed. p. 25-36, McGraw Hill, New York, 2006.
  10. W. Tanthapanichakoon, M. Hata, K. Nitta, M. Furuuchi, and Y. Otani, "Mechanical Degradation of Filter Polymer Materials: Polyphenylene Sulfide", Polym. Degrad. Stab., 91, 2614 (2006). https://doi.org/10.1016/j.polymdegradstab.2006.05.005
  11. W. H. Hill Jr and D. G. Brady, "Properties, Environmental Stability and Molding Characteristics of Polyphenylene Sulfide", Polym. Eng. Sci., 16, 831 (1976). https://doi.org/10.1002/pen.760161211
  12. M. Xanthos, "Functional Fillers for Plastics" 2nd Ed. p. 3-14, Wiley-VCH, Weinheim, Germany, 2010.
  13. T. D. Fornes and D. R. Paul, "Crystallization Behavior of Nylon 6 Nanocomposites", Polymer, 44, 3945 (2003). https://doi.org/10.1016/S0032-3861(03)00344-6
  14. H. Hamada, K. Fujihara, and A. Harada, "The Influence of Sizing Conditions on Bending Properties of Continuous Glass Fiber Reinforced Polypropylene Composites", Compos. Part A- Appl. S., 31, 979 (2000). https://doi.org/10.1016/S1359-835X(00)00010-5