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Plasticizing Polystyrene with Waste Leather Buffing Dust: a Drive Towards Waste-Polymer Composite Synthesis

机译:用废皮革抛光粉增塑聚苯乙烯:推动废聚合物合成的动力

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This is the first report on the use of waste chrome-tanned Indian leather buffing dust for plasticizing atactic polystyrene (PS). There is no eifective re-use of waste leather buffing dust reported till today. This waste material, after preliminary characterization, has been dispersed in solvated polystyrene. Resultant composites prepared therefrom via solution cast method exhibit a drastic drop in surface hardness up to certain modifier concentration, beyond which it increases. Addition of surfactants during dispersion of the buffing dust at the optimum level further reduces surface hardness. Para-toluene sulphonic acid (PTSA) has been found to be a better compatibilizer than more conventional sodium lauryl sulphate (LS) in this system. The compatibilized composites show substantial "yield behaviour" when stretched and the breaking strain has been improved drastically from 0.2% in pure polystyrene to 25% in PTSA compatibilized system without any loss in strength. Accordingly, the breaking energy has been increased to much greater than that of the virgin polymer Effective plasticization of the composites has lowered the glass transition temperature (Tg); PTSA containing composite has shown the minimum value, possibly due to generation of more free volume around the rigid polystyrene molecules on account of its effective adsorption over finer dust particles. Accelerated thermal degradation study shows greater thermal stability of the composites as compared to virgin polymer and this possibly resulted due to the presence of chromium content in the waste, which acts as heat sinks.
机译:这是有关使用废铬鞣制的印度皮革抛光粉尘来增塑无规立构聚苯乙烯(PS)的第一份报告。迄今为止,尚未有效地重复使用废弃的皮革抛光粉尘。经过初步表征,该废料已经分散在溶剂化的聚苯乙烯中。通过溶液浇铸法由其制备的所得复合材料在达到一定改性剂浓度之前,表面硬度急剧下降,超过此浓度则增加。在抛光粉尘以最佳水平分散期间添加表面活性剂会进一步降低表面硬度。已发现在该系统中,对甲苯磺酸(PTSA)比更常规的月桂基硫酸钠(LS)更好。相容的复合材料在拉伸时表现出明显的“屈服性能”,断裂应变已从纯聚苯乙烯中的0.2%大幅提高到PTSA相容系统中的25%,而强度没有任何损失。因此,断裂能已经增加到远大于原始聚合物的断裂能。复合材料的有效塑化降低了玻璃化转变温度(Tg)。含PTSA的复合材料已显示出最小值,这可能是由于其在较细的粉尘颗粒上的有效吸附而在刚性聚苯乙烯分子周围产生了更多的自由体积。加速的热降解研究表明,与原始聚合物相比,复合材料具有更高的热稳定性,这可能是由于废料中含有铬(作为散热器)而导致的。

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