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首页> 外文期刊>Polymer Degradation and Stability >Long-term performance of poly (vinyl chloride) cables. Part 1: Mechanical and electrical performances
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Long-term performance of poly (vinyl chloride) cables. Part 1: Mechanical and electrical performances

机译:聚氯乙烯电缆的长期性能。第1部分:机械和电气性能

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摘要

Cables insulated with plasticized poly(vinyl chloride) were aged in air at temperatures between 80℃ and 180℃ and their conditions were assessed by indenter modulus measurements, tensile testing, infrared (IR) spectroscopy and differential scanning calorimetry (DSC). Electrical testing of oven-aged cable samples was performed in order to relate the electrical functionality during a high-energy line break (HELB) to the mechanical properties and to establish a lifetime criterion. The mechanical data taken at room temperature after ageing could be superimposed with regard to ageing time and temperature. The ageing—temperature shift factor showed an Arrhenius temperature dependence. The jacketing material showed an immediate increase in stiffness (indenter modulus and Young's modulus) and a decrease in the strain at break on ageing; these changes were dominated by loss of plasticizer by migration which was confirmed by IR spectroscopy and DSC. The core insulation showed smaller changes in these mechanical parameters; the loss of plasticizer by migration was greatly retarded by the closed environment, according to data obtained by IR spectroscopy and DSC, and the changes in the mechanical parameters were due to chemical degradation (de-hydrochlorination). A comparison of data obtained from this study and data from other studies indicates that extrapolation of data for the jacketing insulation can be performed according to the Arrhenius equation even down to service temperatures (20—50℃). The low-temperature deterioration of the jacketing is, according to this scheme, dominated by loss of plasticizer by migration.
机译:用增塑的聚氯乙烯绝缘的电缆在空气中在80℃至180℃的温度下老化,并通过压模模量测量,拉伸测试,红外(IR)光谱和差示扫描量热法(DSC)评估其状况。进行了烤箱老化电缆样品的电气测试,以使高能断线(HELB)期间的电气功能与机械性能相关联,并建立使用寿命标准。老化后在室温下获得的机械数据可以与老化时间和温度相叠加。老化-温度变化因子显示出阿累尼乌斯温度依赖性。护套材料立即显示出刚度(压头模量和杨氏模量)的增加和老化时断裂应变的降低;这些变化主要是由于迁移引起的增塑剂损失,红外光谱和DSC证实了这一变化。芯部绝缘在这些机械参数中显示出较小的变化。根据红外光谱和DSC获得的数据,在封闭的环境中,迁移引起的增塑剂损失大大受到抑制,并且机械参数的变化是由于化学降解(脱氯化氢)引起的。从本研究中获得的数据与其他研究中的数据进行比较,结果表明,即使在使用温度(20–50℃)下,也可以根据Arrhenius方程对套管绝缘进行数据外推。根据该方案,护套的低温劣化主要是由于迁移而损失的增塑剂。

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