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高压变电站中极低频非均匀电场在工人身上感应电流的数值评估及与实验结果的比较。

Numerical evaluation of currents induced in a worker by ELF non-uniform electric fields in high voltage substations and comparison with experimental results.

作者信息

Tarao Hiroo, Korpinen Leena H, Kuisti Harri A, Hayashi Noriyuki, Elovaara Jarmo A, Isaka Katsuo

机构信息

Kagawa National College of Technology, Takamatsu, Japan.

出版信息

Bioelectromagnetics. 2013 Jan;34(1):61-73. doi: 10.1002/bem.21738. Epub 2012 Jun 11.

Abstract

An ungrounded human, such as a substation worker, receives contact currents when touching a grounded object in electric fields. In this article, contact currents and internal electric fields induced in the human when exposed to non-uniform electric fields at 50 Hz are numerically calculated. This is done using a realistic human model standing at a distance of 0.1-0.5 m from the grounded conductive object. We found that the relationship between the external electric field strength and the contact current obtained by calculation is in good agreement with previous measurements. Calculated results show that the contact currents largely depend on the distance, and that the induced electric fields in the tissues are proportional to the contact current regardless of the non-uniformity of the external electric field. Therefore, it is concluded that the contact current, rather than the spatial average of the external electric field, is more suitable for evaluating electric field dosimetry of tissues. The maximum induced electric field appears in the spinal cord in the central nervous system tissues, with the induced electric field in the spinal cord approaching the basic restriction (100 mV/m) of the new 2010 International Commission on Non-Ionizing Radiation Protection guidelines for occupational exposure, if the contact current is 0.5 mA.

摘要

一个未接地的人,比如变电站工人,在电场中接触接地物体时会受到接触电流。在本文中,对人体在50赫兹非均匀电场中暴露时所产生的接触电流和内部电场进行了数值计算。这是通过使用一个真实的人体模型来完成的,该模型站在距离接地导电物体0.1 - 0.5米的位置。我们发现计算得到的外部电场强度与接触电流之间的关系与先前的测量结果吻合良好。计算结果表明,接触电流在很大程度上取决于距离,并且组织中的感应电场与接触电流成正比,而与外部电场的不均匀性无关。因此,可以得出结论,接触电流比外部电场的空间平均值更适合用于评估组织的电场剂量。最大感应电场出现在中枢神经系统组织的脊髓中,如果接触电流为0.5毫安,脊髓中的感应电场接近2010年国际非电离辐射防护委员会职业暴露新指南的基本限制(100毫伏/米)。

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