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The Effect of the Cooling Process on the Crystalline Morphology and Dielectric Properties of Polythene

机译:冷却过程对聚乙烯结晶形态和介电性能的影响

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摘要

In this study, LDPE samples were prepared by melt blending with different cooling processes, which were natural air cooling, rapid air cooling, water cooling and oil cooling, respectively. According to polarization microscope (PLM) and differential scanning calorimeter (DSC) tests of these four low-density polyethylene (LDPE) samples, the effect of different cooling processes on polythene crystalline morphology could be studied. According to conductivity, dielectric frequency spectra and space charge tests, the effect of crystalline morphology on dielectric macroscopic properties could be explored. The microstructure characteristic results indicated the cooling medium significantly affected polythene crystalline morphology. When the samples were produced with natural air cooling, the crystalline grain size was large. On the other hand, after rapid air cooling, water cooling and oil cooling processes, the samples’ crystalline grain dispersed uniformly, and the grain sizes were lower. The space charge testing results indicate the samples produced with water cooling and oil cooling processes restrained the electrode injection in the process of pressurization. During short-circuits, the rates of charge release of these two samples were fast, and the remaining space charges were fewer. The conductivity and dielectric frequency spectra testing results indicated the conductivities of samples produced with water cooling and oil cooling processes were both less than those of samples produced with a natural air cooling process. Besides, with increasing experimental frequency, the relative dielectric constants of all testing samples decreased. Among them, the relative dielectric constant of the LDPE sample with the natural air cooling process was the largest. However, the crystalline structures of samples produced with rapid air cooling and water cooling processes were close, which restrained the movement of polymer macromolecule chains. Thus, the dielectric constants were lower. Additionally, because of the influence of relaxation polarization and dipole polarization, the dielectric losses of LDPE with water cooling and oil cooling processes increased to varying degrees.
机译:在这项研究中,LDPE样品是通过采用不同的冷却工艺进行熔融共混制备的,这些工艺分别是自然风冷,快速风冷,水冷和油冷。根据这四种低密度聚乙烯(LDPE)样品的偏光显微镜(PLM)和差示扫描量热仪(DSC)测试,可以研究不同冷却工艺对聚乙烯晶体形态的影响。根据电导率,介电频谱和空间电荷测试,可以探讨晶体形态对介电宏观性能的影响。微观结构特征结果表明冷却介质显着影响聚乙烯的晶体形态。当用自然空气冷却生产样品时,晶粒尺寸大。另一方面,经过快速的空气冷却,水冷却和油冷却过程,样品的晶粒均匀分散,并且晶粒尺寸较小。空间电荷测试结果表明,水冷却和油冷却过程产生的样品在加压过程中限制了电极的注入。在短路期间,这两个样品的电荷释放速率很快,剩余的空间电荷更少。电导率和介电频谱测试结果表明,水冷却和油冷却过程产生的样品的电导率均小于自然空气冷却过程产生的样品的电导率。此外,随着实验频率的增加,所有测试样品的相对介电常数均降低。其中,LDPE样品在自然空气冷却过程中的相对介电常数最大。然而,用快速空气冷却和水冷却过程制备的样品的晶体结构是紧密的,这限制了聚合物大分子链的运动。因此,介电常数较低。此外,由于弛豫极化和偶极极化的影响,LDPE在水冷和油冷过程中的介电损耗均有不同程度的增加。

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