周蜜, 左芯睿, 王冬冬, 等. 基于直击雷先导发展模型的舰船雷击附着点计算及试验验证[J]. 中国舰船研究, 2023, 18(4): 50–58. doi: 10.19693/j.issn.1673-3185.03148
引用本文: 周蜜, 左芯睿, 王冬冬, 等. 基于直击雷先导发展模型的舰船雷击附着点计算及试验验证[J]. 中国舰船研究, 2023, 18(4): 50–58. doi: 10.19693/j.issn.1673-3185.03148
ZHOU M, ZUO X R, WANG D D, et al. Calculation of lightning attachment points on ships based on lightning leader progression model and experimental verification[J]. Chinese Journal of Ship Research, 2023, 18(4): 50–58. doi: 10.19693/j.issn.1673-3185.03148
Citation: ZHOU M, ZUO X R, WANG D D, et al. Calculation of lightning attachment points on ships based on lightning leader progression model and experimental verification[J]. Chinese Journal of Ship Research, 2023, 18(4): 50–58. doi: 10.19693/j.issn.1673-3185.03148

基于直击雷先导发展模型的舰船雷击附着点计算及试验验证

Calculation of lightning attachment points on ships based on lightning leader progression model and experimental verification

  • 摘要:
      目的  为设置并完善舰船防雷措施,对舰船关键设备的雷击风险和避雷针防护效果进行评估。
      方法  首先,构建能模拟自然先导发展状况的先导发展模型,并引入舰船模型对舰船的雷电附着过程进行分析计算;然后,研究下行雷电先导发展至舰船四周不同区域时的舰船表面电场分布、各位置受到雷击的可能性,以及避雷针对雷击风险的防护效果;最后,在实验室中开展缩比模型放电试验并验证计算结果。
      结果  结果显示,雷击附着点主要集中在舰船结构相对突出的位置,避雷针可改善舰船表面的电位分布,起到雷击防护作用,但最终雷击点的确定与下行先导的发展区域有关。
      结论  结合计算结果与舰船缩比模型雷击附着试验结果,能够分析舰船直击雷防护薄弱环节,雷击附着点的最终位置与双向先导的连接情况关系紧密,所提先导发展模型能较好地对不同先导发展方位下受到雷击的舰船区域进行预测。

     

    Abstract:
      Objective  In order to improve lightning protection measures for ships, it is vital to evaluate the lightning strike risk and lightning rod protection effect.
      Methods  This paper proposes a leader development model that can simulate the natural leader progression, and introduces a ship model to analyze its lightning attachment process. Analyses are made of the electric field distribution on the surface of the ship when the downward leader is approaching at different areas, of the probability of the ship being struck by lightning at each location, and of the protection effect of the lightning rod on the ship. Finally, the calculation results are verified by a ship scaled-down model discharge test carried out in the laboratory.
      Results  The lightning strike attachment point is mainly concentrated in the relatively protruding position of the structure on the ship, and the lightning rod has a positive effect on the potential distribution on the surface of the ship. However, the final lightning strike point is determined by the development area of the downward leader.
      Conclusions  Combining simulation analysis with the test results, the weak points of direct lightning protection on the surface of the ship are obtained. It is found that the location of the final lightning strike attachment point of the ship is closely related to the connection process of the by-directional leaders, and that the proposed leader progression model can provide accurate predictions of lightning strike points.

     

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