Flame retarded plasticized poly(lactic acid) using phosphorus-based additives

被引:1
作者
Yesil, Sertan [1 ]
Aytac, Ayse [2 ,3 ]
Selim, Fatma [2 ]
机构
[1] Atilim Univ, Dept Chem Engn, TR-06830 Ankara, Turkiye
[2] Kocaeli Univ, Engn Fac, Dept Chem Engn, Kocaeli, Turkiye
[3] Kocaeli Univ, Dept Polymer Sci & Technol, Kocaeli, Turkiye
关键词
Polymer-matrix composites (PMCs); flame/fire retardancy; mechanical testing; thermal analysis; AMMONIUM POLYPHOSPHATE; COMBUSTION PROPERTIES; FIRE-RETARDANT; POLYLACTIDE; PLA; BLENDS; AGENT;
D O I
10.1177/08927057241305539
中图分类号
TB33 [复合材料];
学科分类号
摘要
In this study, the synergistic effect of the flame-retardant additives on the properties of poly(lactic acid) (PLA) was investigated and at the same time, it was tried to increase the toughness of PLA by adding small amounts of phosphate-based additives to plasticized PLA as binary and ternary mixtures. Poly(ethylene glycol) (PEG) was used as a plasticizer. As flame retardant additives, ammonium polyphosphate (APP), tri-phenyl phosphate (TPP), and boron phosphate (BP) were used. Characterization of the composites was carried out by tensile test, impact test, differential scanning calorimetry (DSC), thermal gravimetric analyses (TGA), scanning electron microscopy (SEM), limiting oxygen index (LOI), and UL-94 horizontal burning tests. In addition, TGA-FTIR analyses were carried out to understand the thermal degradation mechanism of composites during combustion. According to the SEM micrographs of the burnt surfaces of the samples, a smooth and flat structure is observed in PLA/PEG/5TPP-5BP sample, while a porous structure and branching formations are observed in other composite samples. Among the composite samples, the best flame retardancy features were observed in the composite containing PLA/PEG/5APP-2.5TPP-2.5BP sample, and the highest impact strength and elongation at break values were obtained in the composite containing PLA/PEG/5APP-5TPP sample.
引用
收藏
页数:24
相关论文
共 46 条
[11]   Plasticizing polylactide - The effect of different plasticizers on the mechanical properties [J].
Jacobsen, S ;
Fritz, HG .
POLYMER ENGINEERING AND SCIENCE, 1999, 39 (07) :1303-1310
[12]   Synergistic effect between a novel hyperbranched charring agent and ammonium polyphosphate on the flame retardant and anti-dripping properties of polylactide [J].
Ke, Chen-Hao ;
Li, Juan ;
Fang, Ke-Yi ;
Zhu, Qi-Liang ;
Zhu, Jin ;
Yan, Qing ;
Wang, Yu-Zhong .
POLYMER DEGRADATION AND STABILITY, 2010, 95 (05) :763-770
[13]   Flame-retardant action of red phosphorus/magnesium oxide and red phosphorus/iron oxide compositions in recycled PET [J].
Laoutid, F. ;
Ferry, L. ;
Lopez-Cuesta, J. M. ;
Crespy, A. .
FIRE AND MATERIALS, 2006, 30 (05) :343-358
[14]   New halogen-free fire retardant for engineering plastic applications [J].
Levchik, SV ;
Bright, DA ;
Alessio, GR ;
Dashevsky, S .
JOURNAL OF VINYL & ADDITIVE TECHNOLOGY, 2001, 7 (02) :98-103
[15]   Tough and flame-retardant poly(lactic acid) composites prepared via reactive blending with biobased ammonium phytate and in situ formed crosslinked polyurethane [J].
Li, De-Fu ;
Zhao, Xi ;
Jia, Yun-Wan ;
Wang, Xiu-Li ;
Wang, Yu-Zhong .
COMPOSITES COMMUNICATIONS, 2018, 8 :52-57
[16]   Influence of ammonium polyphosphate on the flame retardancy and mechanical properties of ramie fiber-reinforced poly(lactic acid) biocomposites [J].
Li Shumao ;
Ren Jie ;
Yuan Hua ;
Yu Tao ;
Yuan Weizhong .
POLYMER INTERNATIONAL, 2010, 59 (02) :242-248
[17]  
Liyan L., 2024, INT J BIO MACROMOL, V265, P130648
[18]   Poly(lactic acid):: plasticization and properties of biodegradable multiphase systems [J].
Martin, O ;
Avérous, L .
POLYMER, 2001, 42 (14) :6209-6219
[19]   Polylactides - Degradable polymers for fibres and films [J].
Meinander, K ;
Niemi, M ;
Hakola, JS ;
Selin, JF .
MACROMOLECULAR SYMPOSIA, 1997, 123 :147-153
[20]  
Melovy 3D printing innovation, 2024, PROPERTIES FLAME RET