首页> 外文会议>International Conference on Simulation and Modeling Methodologies, Technologies and Applications >Experimental/FEM Optimization of Medium Voltage Rubber Insulated Electric Cables Vulcanized with Steam Water: Differential Scanning Calorimetry (DSC) and Rheometer Experimental Results
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Experimental/FEM Optimization of Medium Voltage Rubber Insulated Electric Cables Vulcanized with Steam Water: Differential Scanning Calorimetry (DSC) and Rheometer Experimental Results

机译:中压橡胶绝缘电缆的实验/有限元优化用蒸汽水硫化:差示扫描量热法(DSC)和流变仪实验结果

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The standard industrial process to produce medium voltage electric cables based on EPDM consists of crosslinking by peroxides with high temperature steam (pressurized water vapor). Suboptimal material crosslinking is usually due to a decrease of the temperature along the vulcanization pipe. Temperature variations are connected to variations in steam pressure into pipe system. In the present paper a combined numerical and experimental approach to optimize the production process of medium voltage rubber insulated electric cables vulcanized with steam water is presented. The numerical part, discussed in an accompanying paper, is based on the utilization of Finite Elements and an optimization Genetic Algorithm (GA) approach. Here, attention is focused on the experimental investigation. In particular, the final crosslinking degree is experimentally obtained by means of a DSC determination of non-decomposed peroxide from the external layer to the core of the cable insulation. The final task is to minimize the difference between numerically predicted and experimentally determined crosslinking degree using a steam temperature profile along the pipe to explain the variations. A preliminary evaluation of kinetic reaction constants of rubber cured with peroxides is here provided by means of a previously presented kinetic model.
机译:基于EPDM生产中等电压电缆的标准工业过程包括通过过氧化物与高温蒸汽(加压水蒸气)交联。次优材料交联通常是由于沿硫化管的温度降低。温度变化与蒸汽压力的变化连接到管道系统中。本文介绍了优化中压橡胶绝缘电缆硫化用蒸汽水的中压橡胶绝缘电缆生产过程的组合数值和实验方法。在附带纸张中讨论的数值部分基于利用有限元和优化遗传算法(GA)方法。在这里,关注专注于实验调查。特别地,通过DSC测定来自外层的非分解过氧化物到电缆绝缘的核心的DSC测定来实验地获得最终交联度。最终任务是使用沿管道的蒸汽温度曲线来最小化数值预测和实验确定的交联度之间的差异以解释变型。通过先前呈现的动力学模型提供了用过氧化物固化的橡胶的动力学反应常数的初步评价。

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