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Thethermal-mechanicaldegradation ofmineral-filled polypropylene-ethylenecopolymer composites during extrusion process

机译:挤出过程中填充聚丙烯 - 乙基聚合物复合材料的含有含有含有含有聚丙烯 - 乙基 - 乙基聚合物复合材料

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This work proposes a new understanding of the side effect of mineral fillers in polymer compounding that caused different levels of thermo-mechanical degradation (TMD) during extrusion. Three mineral fillers, silica (random shape), kaolin (platy), and wollastonite (needle-like), were selected and compounded with the polypropylene-ethylene copolymer (PPcoE) using a twin-screw extruder. Their influences on the TMD of PPcoE were examined by checking the substances in the extrudates using Fourier transform infrared spectroscopy. The built-up shear stress causing by mineral filler in PPcoE composite (Delta tau(com)) as the root of TMD was measured and estimated using capillary rheometer. In this study, TMD is classified as two levels: chain scission and oxidization. These fillers were found to accelerate the TMD mechanism and generate the oxidised products during extrusion. The silica filler caused the highest Delta tau(com), the lowest tensile strength, and elongation at break of PPcoE composites. The kaolin filler gave the most potent accelerating effect on oxidization, resulted in the formation of tertiary alcohol, and the highest ester contents in PPcoE composites; although, its composite had the lowest Delta tau(com)among the fillers. Lastly, wollastonite filler provided higher Delta tau(com)than kaolin composite, the second-highest formation of alkene products, yet better retention in elongation at break compared to the silica-filled PPcoE composite. In general, the side effect of mineral filler on TMD was a larger particle size always comes with higher chain scission, simpler particle morphology gives a smoother built-up shear stress and minimizes TMD, and filler having hydroxyl groups catalyzes the oxidization TMD.
机译:这项工作对聚合物复合中矿物填料的副作用提出了新的认识,这些副作用在挤出过程中导致了不同程度的热机械降解(TMD)。选择了三种矿物填料,二氧化硅(无规形状)、高岭土(板状)和硅灰石(针状),并使用双螺杆挤出机与聚丙烯-乙烯共聚物(PPcoE)复合。通过使用傅里叶变换红外光谱检查挤出物中的物质,研究了它们对PPcoE TMD的影响。利用毛细管流变仪测量和估算了PPcoE复合材料(Delta tau(com))中矿物填料作为TMD根源引起的累积剪切应力。在本研究中,TMD分为两个级别:断链和氧化。发现这些填料可加速TMD机理,并在挤出过程中生成氧化产物。二氧化硅填料导致PPcoE复合材料的δtau(com)最高,拉伸强度和断裂伸长率最低。高岭土填料对氧化的加速作用最强,导致叔醇的形成,在PPcoE复合材料中酯含量最高;尽管如此,其复合材料的δtau(com)在填料中最低。最后,硅灰石填料比高岭土复合材料提供更高的δτ(com),这是烯烃产品的第二高生成量,但与填充二氧化硅的PPcoE复合材料相比,硅灰石填料的断裂伸长率保持率更好。一般来说,矿物填料对TMD的副作用是,较大的粒径总是伴随着较高的断链,较简单的颗粒形态会产生更平滑的累积剪切应力,并使TMD最小化,并且具有羟基的填料会催化氧化TMD。

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