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Evaluation of Aging Status of Flame-retardant Cross-linked Polyethylene by Measuring Indenter Modulus

机译:测量压延模量测量阻燃交联聚乙烯老化状态的评价

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Polymeric insulation plays an irreplaceable role in a cable. Carbonyl index determined as the ratio of the infrared absorption around 1711 cm-1 due to carbonyl groups to a sample-dependent invariant reference band is often used to predict the lifetime or aging status of polymers. However, due to pre-existing carbonyl groups inside flame-retardant cross-linked polyethylene (FR-XLPE), it is not appropriate to use the carbonyl index to estimate its aging status. Instead, indenter modulus has come into our sight for showing a good monotonic change with the progress of aging. In this paper, sheet-shaped FR-XLPE samples were aged at 100, 135, and 155 °C for various aging periods from 800 to 2000 h. They were aged thermally or concurrently by heat and gamma-rays with a dose rate of 100 Gy/h. For these samples, various measurements were done to understand the aging behavior of FR-XLPE in different properties, including complex permittivity, conduction current, mid-infrared absorption, and indenter modulus. By analyzing the correlations among indenter modulus and other parameters, it has become clear that there are three different aging stages. At the first stage, cross-linking occurs in the sample, which causes a decrease in conduction current and the imaginary part of complex permittivity. However, when the aging enters the second stage, oxidative degradation becomes dominant, which gives a completely opposite change in these parameters. When the aging enters the last stage, the conduction current becomes stable, while the two parts of complex permittivity are still increasing.
机译:聚合物绝缘在电缆中起着不可替代的作用。羰基指数确定为红外吸收的比例约为1711厘米 -1 由于对样品依赖性不变参考带的羰基通常用于预测聚合物的寿命或老化状态。然而,由于阻燃交联聚乙烯(FR-XLPE)内的预先存在的羰基,使用羰基指数估计其老化状态是不合适的。相反,压印模量已经进入我们的视线,以便随着衰老的进展显示出良好的单调变化。本文,片状FR-XLPE样品在100,135和155℃下,各种老化期从800-2000小时。它们通过热量或加热和γ射线同时老化,剂量率为100 gy / h。对于这些样品,完成各种测量以了解不同性质的FR-XLPE的老化行为,包括复杂介电常数,传导电流,中红外吸收和压痕模量。通过分析压痕模量和其他参数之间的相关性,已经清楚地清楚地存在三个不同的老化阶段。在第一阶段,在样品中发生交联,这导致导通电流的降低和复杂介电常数的虚部。然而,当老化进入第二阶段时,氧化降解变得优势,这使得这些参数的完全相反的变化。当老化进入最后阶段时,导通电流变得稳定,而复杂介电常数的两部分仍在增加。

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