Modeling Aspects of Running Ductile Fracture Propagation in High Pressure Line Pipes

M. Paredes
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引用次数: 1

Abstract

Multi-physics simulations are becoming increasingly important in the time where full-scale test facilities and materials are turning out costly. Moreover, the new transition trend of energy production from fossil fuels to renewable sources like solar, wind and hydrogen is pushing forward the development of new technologies for harvesting, storage and transportation. For the latter, the existing pipeline network is intended to be utilized for moving a mixture of hydrogen with natural gases from clean hydrogen production centers to consumers. Understanding the coupling of fluid-structure interaction with thermodynamics of the mixtures is imperative to assure more reliable and fail-safe operations of the infrastructure for production and transportation. In this short survey, a phenomenological fracture model along with coupled Eulerian-Lagrangian/Fluid-Structure interaction model is reviewed. It is shown that the obtained simulation results are in good agreement with experimental tests at laboratory scale and full-scale settings.
高压管线运行韧性断裂扩展的建模方法
在全尺寸测试设备和材料变得昂贵的时代,多物理场模拟变得越来越重要。此外,能源生产从化石燃料向太阳能、风能和氢能等可再生能源过渡的新趋势正在推动新技术的发展,包括收获、储存和运输。对于后者,现有的管道网络旨在用于将氢气与天然气的混合物从清洁氢气生产中心运送到消费者手中。了解流体-结构相互作用与混合物热力学的耦合对于确保生产和运输基础设施的更可靠和故障安全运行至关重要。本文综述了现象学裂缝模型以及欧拉-拉格朗日/流固耦合模型。结果表明,所得到的模拟结果与实验室规模和全尺寸设置下的实验结果吻合较好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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