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New design basis for the design of high pressure polyethylene reactor bay using an explosion risk analysis and non linear finite analysis

机译:使用爆炸风险分析和非线性有限分析法设计高压聚乙烯反应堆的新设计基础

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High pressure technology used for the production of Low Density Polyethylene (LDPE) requires a particularly high degree of safety to protect both reactor and surroundings from an accidental event. For this reason, historically, such tubular reactors have been enclosed in roofless bunkers designed on empirical data. Recent improvement in production capacities, scientific knowledge and calculation tools now allows historic designs of these concrete structures to be challenged.The study we have conducted has offered a better understanding of the mechanisms involved in case of an accidental release of ethylene (ventilation and atmospheric dispersion conditions, gas detection efficiency) and subsequent explosion inside the reactor bay (maximum overpressure, impulsion duration, etc...).The methodology, using a combination of an explosion risk analysis (with help of 3D CFD tool) and a non linear finite element analysis (NLFEA) calculation tool has made it possible to define a clear and new basis of design for the enclosure walls to explosion overpressure loads. This in turn also offers new possibilities for an optimisation of the concrete wall thickness and design.
机译:用于生产低密度聚乙烯(LDPE)的高压技术要求特别高的安全性,以保护反应堆和周围环境免受意外事件的影响。由于这个原因,从历史上看,这种管式反应器已被封闭在根据经验数据设计的无顶仓中。生产能力,科学知识和计算工具的最新改进现在使这些混凝土结构的历史设计面临挑战。 我们进行的研究提供了对乙烯意外释放(通风和大气扩散条件,气体检测效率)以及随后反应堆内部爆炸(最大超压,脉冲持续时间等)的情况下所涉及机制的更好理解。 )。 该方法结合了爆炸风险分析(借助3D CFD工具)和非线性有限元分析(NLFEA)计算工具,可以为爆炸的围护结构墙定义清晰而新颖的设计基础超压负载。反过来,这也为优化混凝土壁厚和设计提供了新的可能性。

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