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Characterization and Study of Biodegradation Effect on the Creep Behavior of High Density Polyethylene/ Cellulose Blend

机译:生物降解对高密度聚乙烯/纤维素共混物蠕变行为的表征和研究

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High density polyethylene (HDPE) and cellulose (CELL) were used to prepare the samples used in this study. A fungal strain was isolated from the dumpsite capable of adhering to HDPE surface.The fungal strain was identified as Aspergillus niger. Blendcomposition was varied and the effect of Aspergillus niger on the creep properties investigated.Creep measurements were performed at 30 °C, 40 °C, 50 °C and 60 °C. Viscoelastic behavior of HDPE/CELL blends was found to be governed by temperature, CELL loading and inoculation. As expected with CELL loading, creep performance of the HDPE/CELL blends improved on addition of CELL but decreased with temperature increase and on inoculation. Creep compliance and creep strain increased with inoculation indicating that A.niger ruptured the blends hence increased chain motion. Wiliam-Landel Ferry (WLF) model offered a better long-term prediction based on the short-term creep data by shifting curves along the logarithmic time-axis to obtain a master curve. Time-temperature superposition technique produced smooth master creep curves through horizontal shifts.
机译:高密度聚乙烯(HDPE)和纤维素(CELL)用于制备本研究中使用的样品。从垃圾场分离出能够附着在HDPE表面的真菌菌株,该菌株被鉴定为黑曲霉。改变共混物的组成并研究黑曲霉对蠕变性能的影响。在30°C,40°C,50°C和60°C下进行蠕变测量。发现HDPE / CELL共混物的粘弹性行为受温度,CELL负载和接种的影响。正如CELL加载所预期的那样,HDPE / CELL共混物的蠕变性能随加入CELL而改善,但随温度升高和接种而降低。蠕变顺应性和蠕变应变随着接种量的增加而增加,表明黑曲霉使混合物破裂,因此链运动增加。 Wiliam-Landel Ferry(WLF)模型通过沿对数时间轴移动曲线以获得主曲线,从而基于短期蠕变数据提供了更好的长期预测。时间-温度叠加技术通过水平移动产生平滑的主蠕变曲线。

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