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Rice straw fiber-reinforced high-density polyethylene composite: Effect of fiber type and loading

机译:稻草纤维增强高密度聚乙烯复合材料:纤维类型和载荷的影响

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Composite panels using virgin and recycled high-density polyethylene (VHDPE and RHDPE) and five types of natural fibers including four rice straw components (i.e., rice husk, rice straw leaf, rice straw stem, and whole rice straw) and wood fiber as control were made by melt compounding and compression molding. Fiber characteristics and the influences of fiber type and loading rate on HDPE crystallization behavior and composite mechanical properties were investigated. Fiber length and aspect ratio distributions for all fibers followed a lognormal distribution after milling with two parameters defining the curve location (i.e., mean fiber length/aspect ratio) and shape (i.e., mean fiber length/aspect ratio distribution). For both VHDPE and RHDPE, rice straw fiber systems had comparable mechanical properties with those of wood composites. Increase in fiber loading led to increased moduli and decreased tensile and impact strength. Composite panels with rice husk had the smallest storage moduli, but their impact strength was comparable or better than that of other straw fibers. Very little difference in mechanical properties existed among leaf, stem, and whole straw fibers. The particular recycled HDPE resin and its composites had significantly better moduli and strength properties compared to the virgin HDPE systems due to additives used during initial processing. X-ray diffraction experiments showed that introducing fiber to HDPE matrix did not change characteristic peak position, but the fiber increased crystalline thickness of HDPE system. Differential scanning calorimetry experiments showed that VHDPE had significantly larger peak heat flow during cooling run than the RHDPE, indicating higher crystallization rates for VHDPE. The use of fiber in both resin systems led to the reduced peak heat flow rate. The study showed that rice straw fibers can work well with both VHDPE and RHDPE as reinforcing filler. Future work will deal with effect of coupling treatments of the straw fibers in single phase or commingled plastics composite systems.
机译:复合板使用原始和回收的高密度聚乙烯(VHDPE和RHDPE)和五种天然纤维,包括四种稻草成分(即稻壳,稻草叶,稻草茎和全稻草)和木纤维作为对照通过熔融混合和压缩成型制成。研究了纤维的特性以及纤维类型和加载速率对HDPE结晶行为和复合力学性能的影响。研磨后,所有纤维的纤维长度和长宽比分布遵循对数正态分布,其中两个参数定义曲线位置(即平均纤维长度/长宽比)和形状(即平均纤维长度/长宽比分布)。对于VHDPE和RHDPE而言,稻草纤维系统的机械性能与木材复合材料相当。纤维载荷的增加导致模量增加,抗张强度和冲击强度降低。具有稻壳的复合板的储能模量最小,但其冲击强度与其他稻草纤维相当或更好。叶片,茎和整个秸秆纤维之间的机械性能差异很小。由于在初始加工过程中使用了添加剂,与原始HDPE系统相比,特定的再生HDPE树脂及其复合材料的模量和强度性能明显更好。 X射线衍射实验表明,将纤维引入HDPE基质并没有改变特征峰的位置,但纤维增加了HDPE体系的晶体厚度。差示扫描量热法实验表明,VHDPE在冷却过程中的峰值热流比RHDPE大得多,这表明VHDPE的结晶速率更高。在两种树脂体系中使用纤维导致峰值热流率降低。研究表明稻草纤维可以与VHDPE和RHDPE一起用作增强填料。未来的工作将涉及单相或混合塑料复合系统中秸秆纤维的偶联处理效果。

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