Mechanical and Thermal Properties of Waste Bio-Polymer Compound by Hot Compression Molding Technique
DOI:
https://doi.org/10.15282/jmes.5.2013.4.0055Keywords:
bio-polymer compound, hot compression molding, thermal stability.Abstract
The demand for bio-polymer compound (BPC) has attracted attention in various applications from industrial to medical. Therefore, the mechanical and thermal stability properties of recycling industrial waste BPC are very important to investigate. The waste BPC for this study is based on a mixture of hydroxylated waste cooking oil with hardeners to produce waste bio-polymer foam (WBF). The granulate of WBF was cast into the mold until all spaces were evenly filled and compacted into a homogeneous shape and thickness at 30–45 bar for 2 hours using hot compression molding. This method of BPC fabrication results in a tensile and flexural strength of 4.89 MPa and 18.08 MPa respectively. Meanwhile, the thermal stability of laminated BPC was conducted using a thermal gravimetric analyzer (TGA), and the first degradation of the soft segment occurred at 263°C, then subsequently the second degradation occurred at 351°C and the last at 416°C.
References
Ahmad, H., Hilton, M., Mohd, S., & Mohd Noor, N. (2007). Mechanical properties of palm oil clinker concrete. Paper presented at the Proceedings of EncOn2007.
Annie Paul, S., Boudenne, A., Ibos, L., Candau, Y., Joseph, K., & Thomas, S. (2008). Effect of fiber loading and chemical treatments on thermophysical properties of banana fiber/polypropylene commingled composite materials. Composites Part A: Applied Science and Manufacturing, 39(9), 1582-1588.
Braun, D. (1981). Thermal degradation of poly (vinyl chloride). Developments in polymer degradation, 3, 101.
Bumpus, S. R. J. (2002). Experimental setup and testing of fiber reinforced composite structures. (Master), University of Victoria.
Chandra, R., Singh, S. P., & Gupta, K. (1999). Damping studies in fiber-reinforced composites–a review. Composite Structures, 46(1), 41-51.
Chattopadhyay, D., & Webster, D. C. (2009). Thermal stability and flame retardancy of polyurethanes. Progress in Polymer Science, 34(10), 1068-1133.
Faruk, O., Bledzki, A. K., Fink, H.-P., & Sain, M. (2012). Biocomposites reinforced with natural fibers: 2000–2010. Progress in Polymer Science, 37(11), 1552-1596.
Hardinnawirda, K., & SitiRabiatull Aisha, I. (2012). Effect of rice husks as filler in polymer matrix composites. Journal of Mechanical Engineering and Sciences, 2, 181-186.
Mohamed, W. A. N. W., & Atan, R. (2012). Analysis of excessive heating on the thermal and electrical resistance of a polymer electrolyte membrane fuel cell. International Journal of Automotive and Mechanical Engineering, 5, 648-659.
Rus, A. Z. M. (2009). Material properties of novelty polyurethane based on vegetable oils. Paper presented at the The 11 th International Conference on QiR (Quality in Research), Depok, Indonesia.
Song, Y., Chen, W., Yu, T., Linliu, K., & Tseng, Y. (1996). Effect of isocyanates on the crystallinity and thermal stability of polyurethanes. Journal of applied polymer science, 62(5), 827-834.
Takagi, H., & Asano, A. (2008). Effects of processing conditions on flexural properties of cellulose nanofiber reinforced “green” composites. Composites Part A: Applied Science and Manufacturing, 39(4), 685-689.