...
首页> 外文期刊>Journal of Thermal Analysis and Calorimetry >Thermal property determination of hybridized kenaf/PALF reinforced HDPE composite by thermogravimetric analysis
【24h】

Thermal property determination of hybridized kenaf/PALF reinforced HDPE composite by thermogravimetric analysis

机译:热重分析测定洋麻/ PALF增强HDPE复合材料的热性能

获取原文
获取原文并翻译 | 示例
           

摘要

This article presents the thermal degradation behavior of hybridized kenaf (bast)/pineapple leaf fiber (PALF) reinforced high density polyethylene (HDPE) composites by thermogravimetric and derivative thermogravimetric analyses (TG/DTG) with respect to the proportions of fiber in the composite, variation in fiber loading and fiber length. It was observed that the thermal decomposition of all the samples had taken place within the scheduled temperature range of 35–615 °C. For hybrid composites prepared at 40% fiber loading, the initial peak between 236.9 and 331 °C corresponds to a mass loss of between 23 and 26%, and expectedly, PALF composite and 1:1 hybrid composite have the highest mass lost at this point. Main decomposition temperature as revealed from DTG curves occurred around 467 °C for all except composite prepared with 0.75 and 2 mm fiber length. The mass loss at this temperature was between 64.4 and 73.7%. However, at 464.87 °C, around 98% of neat HDPE had already degraded. Decomposition temperature of other composites was a little higher than the temperature at which HDPE concluded decomposition. Kenaf composite on its own showed initial thermal resistance, but above 240 °C, a sharp increase in decomposition occurred with temperature. Interestingly, hybridization took care of this. Kenaf and PALF composite have shown weaker thermal stability compared to neat HDPE at lower temperatures. The introduction of more fiber into the matrix at onset caused the thermal stability of the hybridized composite to decrease. This reduction in thermal stability of the hybrid with increase in fiber loading became obvious after the dehydration process. Decomposition of hybrid composite is directly proportional to increase in fiber loading. However, at 385 °C, where neat HDPE started decomposing, the percentage degradation of the hybrid showed inverse proportionality with increase in fiber loading. As observed, the size of the lignin and hemicelluloses shoulders in DTG curves deepen with increase in fiber loading, an indication of increased presence with increase in fiber loading.
机译:本文通过热重分析和导数热重分析(TG / DTG),针对复合材料中纤维的比例,提出了洋麻(韧皮)/菠萝叶纤维(PALF)增强高密度聚乙烯(HDPE)复合材料的热降解行为,纤维负载和纤维长度的变化。据观察,所有样品的热分解发生在计划的35–615°C温度范围内。对于以40%的纤维负载量制备的杂化复合材料,其初始峰在236.9至331°C之间对应于23%至26%的质量损失,并且可以预期的是,此时PALF复合材料和1:1杂化复合材料的质量损失最高。从DTG曲线揭示的主要分解温度发生在467℃左右,除了制备的纤维长度为0.75mm和2mm的复合材料外。在该温度下的质量损失在64.4和73.7%之间。但是,在464.87°C下,约98%的纯HDPE已经降解。其他复合材料的分解温度略高于HDPE分解的温度。红麻复合材料本身具有初始耐热性,但在240°C以上时,分解随温度急剧上升。有趣的是,杂交解决了这一问题。与较低温度下的纯HDPE相比,红麻和PALF复合材料的热稳定性较弱。在开始时向基质中引入更多的纤维导致杂交复合材料的热稳定性降低。脱水过程后,随着纤维负载量的增加,混合纤维的热稳定性降低。杂化复合材料的分解与纤维负荷的增加成正比。但是,在385°C,纯HDPE开始分解的情况下,杂化纤维的降解百分率与纤维负荷的增加成反比。如观察到的,DTG曲线中木质素和半纤维素肩的尺寸随着纤维负载的增加而加深,这表明随着纤维负载的增加存在的增加。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号