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Novel Bicomponent Functional Fibers with Sheath/Core Configuration Containing Intumescent Flame-Retardants for Textile Applications

机译:具有鞘芯延缓剂的鞘/芯结构的新型双组分功能纤维,用于纺织应用

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摘要

The objective of this study is to examine the effect of intumescent flame-retardants (IFR’s) on the spinnability of sheath/core bicomponent melt-spun fibers, produced from Polylactic acid (PLA) single polymer composites, as IFR’s have not been tested in bicomponent fibers so far. Highly crystalline PLA-containing IFR’s was used in the core component, while an amorphous PLA was tested in the sheath component of melt-spun bicomponent fibers. Ammonium polyphosphate and lignin powder were used as acid, and carbon source, respectively, together with PES as a plasticizing agent in the core component of bicomponent fibers. Multifilament fibers, with sheath/core configurations, were produced on a pilot-scale melt spinning machine, and the changes in fibers mechanical properties and crystallinity were recorded in response to varying process parameters. The crystallinity of the bicomponent fibers was studied by differential scanning calorimetry and thermal stabilities were analyzed by thermogravimetric analysis. Thermally bonded, non-woven fabric samples, from as prepared bicomponent fibers, were produced and their fire properties, such as limiting oxygen index and cone calorimetry values were measured. However, the ignitability of fabric samples was tested by a single-flame source test. Cone calorimetry showed a 46% decline in the heat release rate of nonwovens, produced from FR PLA bicomponent fibers, compared to pure PLA nonwovens. This indicated the development of an intumescent char by leaving a residual mass of 34% relative to the initial mass of the sample. It was found that the IFRs can be melt spun into bicomponent fibers by sheath/core configuration, and the enhanced functionality in the fibers can be achieved with suitable mechanical properties.
机译:本研究的目的是检查膨胀阻燃剂(IFR)对由聚乳酸(PLA)单聚合物复合材料制备的鞘/芯双组分熔纺纤维的可纺性的影响,因为IFR尚未在双组分中进行测试到目前为止纤维。在核心组分中使用含有高结晶PLA的IFR,而在熔融纺丝双组分纤维的鞘部件中测试了无定形PLA。多磷酸铵和木质素粉末分别用作酸和碳源,在双组分纤维的核心组分中作为塑化剂。具有护套/芯结构的多丝纤维在先导型熔融纺纱机上产生,并且响应于不同的工艺参数,记录纤维机械性能和结晶度的变化。通过差示扫描量热法研究了双组分纤维的结晶度,通过热重分析分析了热稳定性。测量来自制备的双组分纤维的热粘合的非织造织物样品及其火灾性质,例如限制氧指数和锥形量热值。然而,通过单焰源试验测试织物样品的可燃性。与纯PLA非织造织物相比,由FR PLA双组分纤维产生的非织造织物的热释放速率下降46%。这表明通过相对于样品的初始质量留下34%的剩余物质,这表明膨胀型焦炭的发展。发现IFRS可以通过护套/芯结构将IFR熔化成双组分纤维,并且可以通过合适的机械性能来实现纤维中的增强功能。

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