首页> 外文会议>U.S.-Japan conference on composite materials >Thermochemical Behavior and Mechanical Strength of Liquid Crystalline Polymers-Magnesium Silicate Based Nanocomposites Investigated by Pyrolysis GCMS, Scanning Electron Microscopy and DSC
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Thermochemical Behavior and Mechanical Strength of Liquid Crystalline Polymers-Magnesium Silicate Based Nanocomposites Investigated by Pyrolysis GCMS, Scanning Electron Microscopy and DSC

机译:液晶聚合物的热化学行为和机械强度 - 通过热解GCMS研究,扫描电子显微镜和DSC研究了液晶聚合物 - 镁基硅酸镁的纳米复合材料

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Compared to traditional thermoplastic polymers liquid crystalline polymers would be superior in demanding material applications. Having a very small specific heat and a very good environmental stress and thermal stability liquid crystalline polymers also have competitive mechanical materials properties compared to conventional thermoplastics. LCP's characteristic feature is it's rigid rod-shaped aromatic polymer structure. Because of highly oriented macromolecules LCP's mechanical strength properties are different in fiber direction compared to transverse direction. Thermal expansion coefficients are smaller in the direction of melt orientation (machine direction with injection molded parts) but higher in transverse directions. Other drawbacks of injection molded LCP products have sometimes been poor surface quality and weak weld and knit line strengths. Significant progress has been achieved during recent years in development of LCP combination materials and their processing techniques. Particular LCP injection molding tools have been developed for pilot and commercial production of various parts in electronics and medical applications. Our research team has studied molecular structure - materials property relationships of LCPs and LCP based nanocomposites in order to decrease anisotropy and improve strength and toughness of weld and knit lines in injection molded parts. Electron microscopy (SEM and EDX) was used in this investigation for analyzing changes in microstructure as a consequence of changes in LCP materials compositions and processing parameters, differential scanning calorimetry (DSC) for monitoring and understanding of changes of LCP crystal structures in melting and solidifying processes and pyrolysis gas chromatography - mass spectrometry (GCMS) for analyzing potential thermal degradation of LCP materials in mechanochemical processing, compounding and injection molding processes, as well as in DSC analysis.
机译:与传统的热塑性聚合物相比,液晶聚合物在苛刻的材料应用中将优越。与常规的热塑性塑料相比,具有非常小的比热和非常良好的环境应力和热稳定性液晶聚合物也具有竞争力的机械材料性能。 LCP的特征是它是刚性杆状芳族聚合物结构。由于高度取向的大分子,LCP的机械强度特性与横向相比纤维方向不同。在熔体取向方向(机器方向具有注塑部件的机器方向)的方向上,热膨胀系数较小,但横向较高。注塑模型LCP产品的其他缺点有时表面质量差,焊缝弱和针织线强度。近年来在LCP组合材料的发展及其加工技术方面取得了重大进展。特定的LCP注塑工具已经为电子和医疗应用中的各个部件的飞行员和商业生产而开发。我们的研究团队研究了LCP和LCP基纳米复合材料的分子结构材料性能关系,以降低各向异性,并在注塑部件中提高焊接的强度和韧性和针织线。在该研究中使用了电子显微镜(SEM和EDX),以分析了LCP材料组合物和加工参数,差示扫描量热法(DSC)的变化,用于监测和理解LCP晶体结构在熔化和凝固方面的变化的情况下进行微观结构的变化方法和热解气相色谱 - 质谱(GCMS)分析机械化学加工,复合和注塑工艺中LCP材料的潜在热降解,以及DSC分析。

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