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INTUMESCENT FLAME RETARDANT POLYAMIDE 11 NANOCOMPOSITES

机译:天然阻燃聚酰胺11纳米复合材料

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摘要

Current polyamide 11 and 12 are lacking in fire retardancy and high strength/high heat resistance characteristics for a plethora of fabricated parts that are desired and required for performance driven applications. The introduction of selected nanoparticles such as surface modified montmorillonite (MMT) clay or carbon nanofibers (CNFs), combined with a conventional inrumescent flame retardant (FR) additive into the polyamide 11/polyamide 12 (PA11/PA12) by melt processing conditions has resulted in the preparation of a family of inrumescent polyamide nanocomposites. These inrumescent polyamide 11 and 12 nanocomposites exhibit enhanced polymer performance characteristics, I.e., fire retardancy, high strength and high heat resistance and are expected to expand the market opportunities for polyamide 11 and polyamide 12 polymer manufacturers.The objective of this research is to develop improved polyamide 11 and 12 polymers with enhanced flame retardancy, thermal, and mechanical properties for selective laser sintering (SLS) rapid manufacturing (RM). In the present study, a nanophase was introduced into the polyamide 11 and combining it with a conventional inrumescent FR additive via twin screw extrusion. Arkema RILSAN~R polyamide 11 molding polymer pellets were examined with two types of nanoparticles: chemically modified montmorillonite (MMT) organoclays, and carbon nanofibers (CNFs); and Clairant's Exolit? OP 1230 inrumescent FR additive were used to create a family of FR inrumescent polyamide 11 nanocomposites.Transmission electron microscopy (TEM) was used to determine the degree of nanoparticles dispersion. Injection molded specimens were fabricated for physical, thermal, and flammability measurements. Thermal stability of these intumescent polyamide 11 nanocomposites was examined by TGA. Flammability properties were obtained using the Cone Calorimeter at an external heat flux of 35 kW/m and UL 94 Test Method. Heat deflection temperatures (HDT) were also measured. TEM micrographs, physical, thermal, and flammability properties are presented. FR intumescent polyamide 11 nanocomposites properties are compared with polyamide 11 baseline polymer. Based on flammability and mechanical material performance, selective polymers including polyamide 11 nanocomposites and control polyamide 11 will becryogenically ground into fine powders for SLS RM processing. SLS specimens will be fabricated for thermal, flammability, and mechanical properties characterization.
机译:当前的聚酰胺11和12缺乏阻燃性,并且对于性能驱动的应用来说是期望和要求的大量的制造零件的高强度/高耐热特性。通过熔融加工条件将选定的纳米颗粒(例如表面改性的蒙脱土(MMT)粘土或碳纳米纤维(CNF))与常规的阻燃型阻燃剂(FR)结合引入聚酰胺11 /聚酰胺12(PA11 / PA12)中制备了一系列的聚酰胺纳米复合材料。这些起泡的聚酰胺11和12纳米复合材料具有增强的聚合物性能特征,即阻燃性,高强度和高耐热性,并有望为聚酰胺11和聚酰胺12聚合物制造商扩大市场机会。具有增强的阻燃性,热和机械性能的聚酰胺11和12聚合物,可用于选择性激光烧结(SLS)快速制造(RM)。在本研究中,将纳米相引入聚酰胺11中,并通过双螺杆挤出将其与常规的发光型FR添加剂结合。用两种类型的纳米颗粒检查了Arkema RILSAN〜R聚酰胺11成型聚合物粒料:化学改性的蒙脱土(MMT)有机粘土和碳纳米纤维(CNF);和克莱兰特的《 Exolit》?使用OP 1230发光型FR添加剂创建了FR发光型聚酰胺11纳米复合材料系列。透射电子显微镜(TEM)用于确定纳米颗粒的分散程度。制备注塑样品用于物理,热和可燃性测量。通过TGA检查了这些膨胀型聚酰胺11纳米复合材料的热稳定性。使用锥形量热仪在35 kW / m的外部热通量和UL 94测试方法下获得可燃性。还测量了热变形温度(HDT)。给出了TEM显微照片,物理,热和可燃性。 FR膨胀型聚酰胺11纳米复合材料的性能与聚酰胺11基准聚合物进行了比较。基于易燃性和机械材料性能,包括聚酰胺11纳米复合材料和对照聚酰胺11在内的选择性聚合物将被低温研磨成细粉,用于SLS RM加工。将制造SLS样品以进行热,可燃性和机械性能表征。

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