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DC Arc Hazard Mitigation Design at a Nuclear Research Facility

机译:核研究设施的直流电弧危害缓解设计

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Although potential arc heat and blast energy from dc sources may be significant, the risk assessment for exposure to dc energy sources is often not performed because the requirement to do so is not understood. Making the task of quantifying dc arc energies more intimidating is that the professional engineer often assumes liability for any errors or omissions that may result in injury, or worse. Compounding the issue even further is that the analysis work is often based on tools, methods, and verifications for dc arc heat and blast energies that are incomplete and immature. Explained here is one approach taken to perform an arc heat and blast analysis for a research facility, specifically a concentrated load supplied by eight 1-MW silicon-controlled rectifiers regulating 300 Vdc outputs to tightly arranged terminations at a load. During the course of the research, the connections were to be reconfigured, followed by a planned retuning of the regulated dc output using handheld multimeters at the load terminations, without wearing personal protective equipment. After assessing the risk, the research engineers were easily convinced that a full analysis is needed to be performed with risk mitigation design.
机译:尽管来自直流电源的潜在电弧热和爆炸能量可能很大,但是由于不了解这样做的要求,因此经常不进行暴露于直流电源的风险评估。使直流电弧能量量化的任务更加令人生畏的是,专业工程师经常对可能导致伤害或更严重的任何错误或遗漏承担责任。使问题更加复杂的是,分析工作通常基于工具,方法和对不完全且不成熟的直流电弧热和爆炸能量的验证。这里介绍的是对研究设施进行电弧热和爆炸分析的一种方法,特别是由八个1-MW硅控整流器提供的集中负载,这些整流器将300 Vdc输出调节到负载上紧密排列的终端。在研究过程中,将重新配置连接,然后计划在负载终端使用手持万用表对调节后的直流输出进行重新调整,而无需佩戴个人保护设备。在评估了风险之后,研究工程师很容易地确信需要通过风险缓解设计来进行全面分析。

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