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Application of CFD Models for the Onshore Process Industry

机译:CFD模型在陆上加工业中的应用

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The evolution of technology has made the application of complex computational fluid dynamics (CFD) models practical for the onshore process industry. Previously, CFD models were extremely complex and required computing capacity in excess of the typical desktop PC and expertise beyond most skilled engineers. Creating CFD models had also been a cumbersome and time intensive task, resulting in a cost exceeding that within reach of most process industries. However, advances in computing capacity together with easier to use programs have allowed skilled engineers the ability to apply these tools to enclosed processes at onshore process plants for a reasonable cost. These enclosed processes previously had few practical means of evaluating explosion hazards. Limitations of commonly used approaches include: 1. The use of external vapor cloud explosion blast curves is not a valid application, though often used due to the lack of other available means. 2. The Shell Code for Overpressure Predictions in gas Explosions~1 [SCOPE] model is a cost-effective tool, but has limitations in the available venting surface and deluge modeling, limiting its application to onshore facilities as a screening-level analysis. 3. NFPA 68 calculations have also been used, but inappropriately in the process industry since congestion levels cannot be accounted for by this method. Over the last several years, ABS Consulting has performed multiple studies evaluating process buildings for internal explosions to evaluate both dispersion and explosion and their effects on nearby structures using the Flame Acceleration Simulator~2 (FLACS) CFD model. Significant factors that can be accounted for with the CFD models include: fan activation, natural ventilation, hydrocarbon monitoring, leak isolation, sprinkler activation and a significant amount of vent surface area from openings and frangible panels. Most of these studies had been previously evaluated using other methods that were very conservative and resulted in significant damage predictions to nearby buildings. In the majority of cases, the CFD models reduced these damage predictions and provided confidence that accurate and cost-effective modeling methods were now available to the onshore process industry. Examples presented in this paper show how CFD models were used to minimize the blast effects of internal explosions, sometimes by helping to design fire protection and other automated actions, and examples of actions that can inadvertently increase building damage predictions.
机译:技术的发展已使复杂计算流体动力学(CFD)模型的应用对于陆上加工行业变得切实可行。以前,CFD模型非常复杂,所需的计算能力超过了典型的台式PC和大多数熟练工程师之外的专业知识。创建CFD模型也是一项繁琐且耗时的任务,其成本超过了大多数流程工业所能承受的范围。但是,计算能力的提高以及易于使用的程序使熟练的工程师能够以合理的成本将这些工具应用于陆上加工厂的封闭式过程。这些封闭的过程以前几乎没有评估爆炸危险的实用方法。常用方法的局限性包括:1.尽管由于缺乏其他可用方法而经常使用外部蒸气云爆炸曲线,但这并不是有效的应用。 2.《壳牌天然气爆炸超压预测法》〜1 [SCOPE]模型是一种经济高效的工具,但在可用的通风面和洪水模型方面存在局限性,将其作为筛选级别分析的应用仅限于陆上设施。 3.也使用了NFPA 68的计算方法,但是在过程工业中是不适当的,因为这种方法无法解决拥塞水平。在过去的几年中,ABS咨询公司使用火焰加速模拟器〜2(FLACS)CFD模型进行了多项研究,评估了建筑物内部爆炸的过程,以评估扩散和爆炸及其对附近结构的影响。 CFD模型可以考虑的重要因素包括:风扇启动,自然通风,碳氢化合物监控,泄漏隔离,喷淋头启动以及来自开口和易碎面板的大量排气表面积。这些研究中的大多数以前都使用其他非常保守的方法进行了评估,从而对附近的建筑物造成了重大的破坏预测。在大多数情况下,CFD模型减少了这些损害的预测,并为目前陆上加工行业可以使用准确而经济的建模方法提供了信心。本文提供的示例说明了如何使用CFD模型来最大程度地减少内部爆炸的爆炸影响,有时还可以通过帮助设计消防和其他自动行动来进行设计,以及可以无意中增加建筑物破坏预测的行动示例。

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