首页> 外文会议>International Conference on Woodfiber-Plastic Composites(and other natural fibers); 20050523-25; Madison,WI(US) >Development of a Wood Fiber Panel Product Containing Polypropylene/Polyester Bicomponent Fiber
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Development of a Wood Fiber Panel Product Containing Polypropylene/Polyester Bicomponent Fiber

机译:包含聚丙烯/聚酯双组分纤维的木纤维板产品的开发

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The feasibility of manufacturing engineered wood composites with nonwoven textile technology was investigated. Recently, technology has evolved for combining wood fibers with plastics to make panel products. Polypropylene and polyethylene are most commonly used due to cost, ease of processing, and compatibility with wood fibers. Attempts have been made to incorporate stronger polymer fibers into a wood product, but these have been limited by problems associated with wood fiber and polymer adhesion. Fibers from polymer blends have been increasingly used to modify the physical properties of fabrics. These bicomponent fibers consist of at least two components, running parallel in the fiber throughout the length. Each of the components of the fiber retains its own characteristic properties. Bicomponent fibers are classified as side-by-side, sheath core, and sea-island. With sheath-core fibers, the core component is completely surrounded by the sheath component. The sheath component has areas of interaction with the core and the surrounding medium. Commonly, the sheath polymer has a lower melting temperature than the core. During heating, the sheath will melt and diffuse through the surrounding fibers, acting as a binder. This study focused on the development of a wood/ bicomponent fiber composite panel. A polypropylene/ polyester bicomponent fiber was blended (10%, 30%, and 50% by weight) with the wood fiber prior to the application of resin. The panels were pressed to 12.5 mm at 177℃ for 3 minutes. The polypropylene sheath of the bicomponent fiber melts at 168℃, leaving the polyester core intact. The panels were tested and compared to medium density fiberboard manufactured using the same process parameters. Significant improvements were seen in both physical and mechanical properties of the panels containing the bicomponent fibers.
机译:研究了用非织造纺织技术制造工程木复合材料的可行性。最近,已经出现了将木纤维与塑料结合起来制成面板产品的技术。由于成本,易于加工以及与木纤维的相容性,最常使用聚丙烯和聚乙烯。已经尝试将更强的聚合物纤维掺入木制品中,但是这些已经受到与木纤维和聚合物粘附性相关的问题的限制。来自聚合物共混物的纤维已被越来越多地用于改变织物的物理性能。这些双组分纤维由至少两种组分组成,在纤维的整个长度上平行。纤维的每种成分均保留其自身的特性。双组分纤维分为并列型,皮芯型和海岛型。对于皮芯纤维,芯组分完全被皮组分包围。鞘组分具有与核和周围介质相互作用的区域。通常,外皮聚合物的熔融温度低于芯。在加热过程中,护套将熔化并扩散穿过周围的纤维,充当粘合剂。这项研究的重点是木材/双组分纤维复合板的开发。在施加树脂之前,将聚丙烯/聚酯双组分纤维与木纤维混合(按重量计10%,30%和50%)。将板在177℃下压至12.5mm 3分钟。双组分纤维的聚丙烯护套在168℃熔化,而聚酯芯保持完整。测试板并与使用相同工艺参数制造的中密度纤维板进行比较。包含双组分纤维的面板的物理和机械性能均得到了显着改善。

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