传导200Hz高频大交流电流的磁管加热功率预测。

A. Chen, A. Nysveen, J. Lervik, M. Høyer-Hansen
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引用次数: 2

摘要

在直接电加热系统(DEHs)中,生产管道也充当主动导体,传导大交流电流产生热量,该系统是为海底工艺而开发的,以保护通过管道到上层工艺平台或海岸的井流。热源是导电的,在管道中有迟滞功率损耗。目前,所有实现的deh工作在50Hz。通过以更高的频率运行系统,可以进一步提高DEHs的加热能力,以便在更低的电流下获得相同的功率。因此,可以减少电源线的交叉。此外,在更高的频率下运行直接导致更好的系统利用率和更少的管道交流腐蚀。这将进一步降低安装和操作成本,并延长系统使用寿命。在DEHs设计中,预测加热功率是输入电流和频率的函数,从而选择合适的频率和电流是关键。本文根据实验测量的材料质量密度、电导率、B-H曲线和磁滞B-H回路能量等特性,对加热功率作为电流和频率的函数进行了分析评价。为了验证分析结果,进行了有限元模拟和样机试验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Prediction of Heating Power in Magnetic Pipe Conducting Large AC Current With High Frequencies Up to 200Hz.
In direct electrical heating system (DEHs), which is developed for subsea process to safeguard well stream through pipelines to topside process platform or shore, the production pipeline is also acts as an active conductor conducting large AC current to generate heat. The heating source is conductive and hysteresis power losses in the pipe. Currently, the all implemented DEHs operate at 50Hz. There is a potential to further improve the heating capacity of the DEHs by operating the system at higher frequency so that the same power can be achieved at lower current. Consequently, the cross-session of the power cable can be reduced. Furthermore, operation in higher frequency directly results in better system utilization and less AC corrosion of the pipeline. This will further reduce the installation and operational cost and increase the system lifetime. For DEHs design it is critical to predict the heating power as function of input current and frequency so that proper frequency and current can be selected correspondingly. This paper analytically evaluate the heating power as functions of current and frequency based on experimentally measured material properties such as mass density, conductivity, B-H curve and hysteresis B-H loop energy. To verify the analytical results, both FEM simulation and prototype test are performed.
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