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首页> 外文期刊>Journal of Power and Energy Engineering >Verification Protocols for the Lightning Protection of a Large Scale Scientific Instrument in Harsh Environments: A Case Study
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Verification Protocols for the Lightning Protection of a Large Scale Scientific Instrument in Harsh Environments: A Case Study

机译:验证协议在恶劣环境中大规模科学仪器的避雷保护:案例研究

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This paper is devoted to the study of the most suitable protocols needed to verify the lightning protection and ground resistance quality in a large-scale scientific facility located on a site with high risk of lightning strikes. We illustrate this work by reviewing a case study: the largest telescopes of the Northern Hemisphere Cherenkov Telescope Array, CTA-N. This array hosts sensitive and high-speed optoelectronics instrumentation and sits on a clear, free from obstacle terrain at around 2400 m above sea level. The site offers a top-quality sky but also features challenging conditions for a lightning protection system: the terrain is volcanic and has electrical resistivities well above 1 kOhm·m. In addition, the environment often exhibits humidities well below 5%, and strong winds pose challenging conditions. On the other hand, the high complexity of a Cherenkov telescope structure does not allow a straightforward application of lightning protection standards. We describe here how the risk assessment of direct strike impacts was made and how contact voltages and ground system were both tested. Finite Element Simulation (COMSOL Multiphysics) has been used to estimate the current flowing through the parts of the earthing system designed for the telescopes in the case of a direct strike impact. This work is intended to provide assistance to scientists and managers involved in the construction of scientific installations, particularly those in charge of defining verifiable reliability and safety requirements for lightning protection.
机译:本文致力于研究最适合验证位于雷击风险高风险的大型科学设施中避雷保护和地电阻质量所需的最佳方案。我们通过审查案例研究来说明这项工作:最大的北半球Cherenkov望远镜阵列CTA-N的最大望远镜。该阵列主持敏感和高速光电子仪器,并坐在明确,免于海平面约为2400米的障碍地形。该网站提供顶级天空,但还具有灰尘保护系统的挑战条件:地形是火山,电阻率远高于1 kohm·m。此外,环境往往呈现出低于5%的湿度,强风构成具有挑战性的条件。另一方面,Cherenkov望远镜结构的高复杂性不允许直接应用防雷标准。我们在此描述了如何制定直接攻击影响的风险评估以及如何进行接触电压和地面系统。有限元仿真(COMSOL多发性)已被用于估计流过流过的电流,在直接打击冲击的情况下为望远镜设计的接地系统的部件。这项工作旨在为参与科学设施建设的科学家和经理提供援助,特别是那些负责限定防雷保护的可证实可靠性和安全要求。

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