首页> 外文期刊>Rubber Chemistry and Technology >INVESTIGATION OF DIFFERENT CROSS-LINKING METHODS OF EOC:PDMS THERMOPLASTIC ELASTOMERS FOR CABLE INSULATION APPLICATION WITH SPECIAL REFERENCE TO THERMAL, RHEOLOGICAL, CREEP, AND ELECTRICAL PROPERTIES
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INVESTIGATION OF DIFFERENT CROSS-LINKING METHODS OF EOC:PDMS THERMOPLASTIC ELASTOMERS FOR CABLE INSULATION APPLICATION WITH SPECIAL REFERENCE TO THERMAL, RHEOLOGICAL, CREEP, AND ELECTRICAL PROPERTIES

机译:EC的不同交联方法的研究:PDMS热塑性弹性体的电缆绝缘应用,特别是热,流变,蠕变和电气性能

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摘要

This article demonstrates the influence of different cross-linking methods of the ethylene octene copolymer (EOC)polydimethylsiloxane (PDMS) rubber blends. From rheology analysis, it is understood that the EOC with a high co-monomer content has better radiation cross-linkability as compared with the EOC with a low co-monomer content. Also, from the curing study using an oscillating die rheometer, it was found that as the octene content increases, the cross-linking efficiency of the peroxide to cross-link that particular EOC decreases. The tensile strength of the EOC2:PDMS blend with a high co-monomer content was drastically improved by 39% on irradiation with a dosage of 50 kGy, whereas for the EOC: PDMS blend with a low co-monomer content, the tensile strength was drastically improved by 60% on peroxide cross-linking. It is inferred that both the peroxide and radiation cross-linked blends show higher creep resistance compared with the neat blends. From the thermal studies, it was found that through blending and subsequent radiation cross-linking, the maximum degradation temperature of the high-octene-content EOC was increased from 480.5 degrees C to 509.1 degrees C. The crosslinked blends show higher-volume resistivity as compared with the un-cross-linked counterparts.
机译:本文展示了乙烯辛烯共聚物(EOC)聚二甲基硅氧烷(PDMS)橡胶共混物的不同交联方法的影响。从流变分析中,应当理解,与具有低共聚单体含量的EOC相比,具有高共聚单体含量的EOC具有更好的辐射交联性。此外,通过使用振荡模流仪的固化研究,发现随着辛烯含量的增加,过氧化氧化物的交联效率将特定的EOC减少。 EoC2的拉伸强度:具有高共聚单体含量的PDMS混合物在用50kGy的用量的照射时大幅提高39%,而对于EOC:PDMS与低共同含量的混合物,抗拉强度是在过氧化物交联方面大幅提高了60%。推断过氧化氧化物和辐射交联共混物与纯净的共混物相比显示出更高的蠕变电阻。从热学研究中发现,通过混合和随后的辐射交联,高辛烯含量的最大降解温度从480.5℃升至509.1℃。交联的共混物显示出更高体积的电阻率与联合联系的同行相比。

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