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PROTECTING ESSENTIAL REFINING OPERATIONS USING BLAST-RESISTANT ELECTRICAL EQUIPMENT SHELTERS

机译:使用抗爆炸电气设备避难所保护基本精炼操作

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This is an introduction to modular steel equipment shelters designed for areas with potential explosion hazards. It serves to review the chronological development of the concept of modular blast resistance, discuss processing industry events driving market demands, and catalog some typical industry responses to date. The paper also reviews levels of industry risk in the context of life safety and protection for essential/critical systems. For the purpose of this discussion, the first tier of risk (personnel protection and life safety) is briefly discussed to provide adequate background. The paper examines the second tier of risk (essential/critical equipment and electrical systems) that facility managers are becoming increasingly concerned with. The paper compares the industry guidelines, the known criterion, and the available governing standards for design and construction of modular blast resistant structures. It presents a contemporary approach to the second tier of risk and examines the supporting data and analysis. The paper illustrates the process by discussing the design, construction and testing of one company's blast resistant modular systems. This includes design verification employing both Single-Degree-of-Freedom models, and Finite Element Analysis (FEA). Further validation of the computer modeling techniques was provided by shock tube testing of structural assemblies, under a range of peak pressures from 5.5 to 60.0 kPa (0.8 to 8.7 psi). Readers are able to gain knowledge and confidence in the extension of the definition of blast-resistant shelters to include electrical equipment enclosures, further reducing risk and minimizing down-time in the event of an explosive event.
机译:这是模块化钢材设备庇护所介绍,专为具有潜在爆炸危害的区域设计。它有助于审查模块化爆炸抵抗概念的时间顺序发展,讨论加工行业活动驾驶市场需求,并对一些典型的行业响应目录。本文还介绍了生命安全和保护基本/关键系统保护的行业风险水平。出于本讨论的目的,简要讨论了第一层风险(人员保护和生命安全)以提供适当的背景。本文研究了设施管理者越来越关注的第二层风险(必要/关键设备和电气系统)。本文比较了行业指南,已知标准和可用的设计和构建模块化爆炸结构的可用标准。它呈现了第二层风险的当代方法,并检查支持数据和分析。本文通过讨论了一家公司爆炸模块化系统的设计,构建和测试来说明了该过程。这包括采用自由度模型和有限元分析(FEA)的设计验证。通过结构组件的冲击管测试提供了计算机建模技术的进一步验证,在5.5至60.0kPa(0.8至8.7psi)的峰值压力范围内提供。读者能够在延长爆炸避难所的定义中获得知识和信心,以包括电气设备外壳,进一步降低风险并在爆炸事件发生时最小化拖欠时间。

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