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Using Explicit Finite Element Analysis to Simulate the Dynamic Response and Predict the Structural Damage Associated with a Real-Life Process Equipment Failure Due to an Internal Detonation

机译:使用显式有限元分析来模拟动态响应,并预测由于内部爆炸引起的与现实生活设备故障相关的结构损坏

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Simulating the realistic blast loading associated with an internal detonation occurring within a pressure vessel or heat exchanger is extremely challenging. Unlike evaluation of external blast loading on structures due to far-field explosions, where typical overpressure-time histories can be reasonably defined based on empirical data, investigating confined detonations presents additional complications such as accounting for internal blast wave reflection that can yield multiple blast waves and considering potential pressure build up due to the accumulation and temperature rise of gaseous explosion by-products. The subsequent impulsive peak reflected overpressure from confined detonations acting on a structure can be extremely high due to the often times, close proximity of the blast source to the vessel wall or pressure boundary. This establishes the possibility of significant structural damage for process equipment subjected to an internal detonation, even for relatively modest amounts of concentrated explosive products. Performing dynamic computational simulations of internal detonations is valuable in assessing the structural response and possible failure modes of critical process equipment such as process piping, pressure vessels, or heat exchangers. Furthermore, assessing the potential damage from an internal detonation within such a structure and predicting ensuing damage to surrounding equipment if the containment vessel catastrophically fails can provide valuable information about protecting structures from explosions and implementing designs that promote blast damage mitigation and process safety. Additionally, determining a damage threshold for a given amount of concentrated chemical explosives can guide process engineers in mitigating the potential for accidental detonations that pose a significant risk to the structural integrity of pressure containing equipment. This paper discusses the underlying theory of blast analysis and examines the practical application of non-linear, finite element based, explicit computational techniques for simulating the load acting on a structure due to internal and external blasts. The investigation of a recent, real-life industry failure of a heat exchanger due to a suspected internal detonation is discussed. This particular failure resulted in gross rupture of the pressure boundary and significant damage to nearby equipment. Explicit, three-dimensional blast analysis is performed on the heat exchanger in question, and an internal detonation is simulated to reasonably replicate the considerable damage actually observed in the field. This analysis permits the determination of an approximate amount of concentrated product that caused the accidental explosion; that is, the plausible equivalent amount of explosives is back-calculated based on the predicted damage to the finite element model of the equipment in question. Computational iterations of varying charge amounts are performed and the predicted amount of permanent damage is documented so sensitivity to the hypothesized charge amount can be quantified from a structural response standpoint. Furthermore, explicit blast analysis of nearby equipment is performed to predict the magnitude of plastic deformation actually observed due to external blast loading.
机译:模拟与压力容器或热交换器内发生的内部爆炸相关的现实爆破载荷极具挑战性。不同于结构对结构的外部爆炸加载的评估,其中可以基于经验数据合理地定义典型的过压 - 时间历史,调查受限的爆炸提出了额外的并发症,例如核对内部爆炸波反射,可以产生多个爆炸波由于气体爆炸副产品的积累和温度升高,因此考虑潜在的压力累积。由于通常时,从作用在结构上作用在结构上的限制爆炸的后续脉冲峰值反射过压力,这是极高的,由于通常时间,血管壁或压力边界靠近喷射源或压力边界。这也建立了对内部爆炸进行内部爆炸的过程设备的显着结构损坏的可能性,即使对于相对适度的浓缩爆炸产品,也是如此。执行内部爆炸的动态计算模拟是有价值的,用于评估临界过程设备的结构响应和可能的故障模式,例如工艺管道,压力容器或热交换器。此外,如果遏制船灾难性失败可以评估这种结构内的内部爆炸中的潜在损坏,并预测随后对周围设备的损坏可以提供有关保护结构免受爆炸和实施促进爆炸损伤缓解和过程安全的设计的有价值的信息。另外,确定给定量的浓缩化学炸药的损伤阈值可以引导工艺工程师,以减轻造成含有设备压力结构完整性的显着风险的偶然爆炸的可能性。本文讨论了爆炸分析的潜在理论,并检查了基于非线性,有限元,显式计算技术的实际应用,用于模拟由于内部和外部爆炸引起的载荷作用。讨论了由于疑似内部爆炸引起的近期现实生活工业故障的调查。这种特别的故障导致压力边界的严重破裂和对附近设备的显着损坏。在有问题的热交换器上进行显式,三维爆炸分析,模拟内部爆炸以合理地复制实际观察到的损坏。该分析允许测定导致意外爆炸的近似量的浓缩产品;也就是说,基于对所讨论设备的设备的有限元模型的预测损坏来回计算可合理的等效量。执行不同电荷量的计算迭代,并记录预测的永久性损坏量,使得对假设电荷量的敏感性可以从结构响应观点来量化。此外,执行附近设备的显式爆炸分析,以预测由于外部爆破负荷,实际观察到的塑性变形的大小。

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