不同加热速率对混合火灾模拟实时度的影响

IF 2.3 3区 工程技术 Q2 ENGINEERING, MULTIDISCIPLINARY Fire Technology Pub Date : 2024-01-03 DOI:10.1007/s10694-023-01527-z
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引用次数: 0

摘要

摘要 在许多工程实践中,结构在火灾中的整体耐火性能被证明比基于孤立结构构件测试的规定耐火性能更有优势。混合火灾模拟(HFS)是近年来流行的一种新型方法,非常适合分析结构在火灾中的整体性能。根据该方法的原理,结构中行为未知或无法确定数值模型的部分(受火影响)将进行物理测试,而结构的其他部分则进行数值模拟。HFS 方法可以捕捉到受火灾影响的结构构件与邻近的低温下部结构之间的有益相互作用机制。由于火灾试验中温度的持续上升、现有的热惯性以及暴露在火中的结构的材料行为与速度和温度有关,因此混合火灾模拟的实时性是必要的。对于与结构防火工程相关的较高应用加热率的混合防火模拟而言,这一挑战更为严峻。在本文范围内,(a) 介绍了一种稳健而严格的实时 HFS 方法;(b) 针对一个热力学基准问题,对各种应用加热率的不同混合火灾模拟进行了一系列概念验证研究;(c) 讨论了与结构防火工程相关的四种具有代表性的加热率混合火灾模拟的重要结果;(d) 强调了在 HFS 程序中采用适当计算方法更新受火结构构件刚度的重要性;以及 (e) 证明了所应用的 HFS 方法在界面误差和实时程度方面的精度和准确性。
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The Impact of Various Heating Rates on Real-Time Degree of Hybrid Fire Simulation

Abstract

Global fire performance of structures in fire is proven to be more advantageous in many cases of engineering practice than the prescriptive fire resistance based on isolated structural member testing. Hybrid fire simulation (HFS) is a novel well-suited method trending in recent years for analysis of global performance of structures in fire. In the principles of this method, the part of a structure which has unknown behavior or is uncertain to be numerically modeled (subjected to fire) would be physically tested, while the rest of the structure is numerically simulated. HFS method enables capturing the beneficial interaction mechanisms evolving between fire-exposed structural members and the adjacent cooler substructure. Due to the continuous temperature increase in a fire test and the existing thermal inertia as well as the rate- and temperature-dependent material behavior of structures exposed to fire, a real-time performance in hybrid fire simulation counts as a necessity. This challenge is more critical for hybrid fire simulations with higher applied heating rates relevant to structural fire engineering. Within scope of this paper, (a) a robust and rigorous approach for real-time HFS is presented; (b) a series of proof-of-concept studies of different hybrid fire simulations with various applied heating rates are carried out for a thermomechanical benchmark problem; (c) the important results of four representative hybrid fire simulations with relevant heating rates to structural fire engineering are discussed; (d) the importance of an appropriate calculation method for stiffness update of the fire-exposed structural member over HFS procedure is highlighted, and e) the precision and accuracy of the applied HFS approach with respect to interface error and real-time degree are evidenced.

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来源期刊
Fire Technology
Fire Technology 工程技术-材料科学:综合
CiteScore
6.60
自引率
14.70%
发文量
137
审稿时长
7.5 months
期刊介绍: Fire Technology publishes original contributions, both theoretical and empirical, that contribute to the solution of problems in fire safety science and engineering. It is the leading journal in the field, publishing applied research dealing with the full range of actual and potential fire hazards facing humans and the environment. It covers the entire domain of fire safety science and engineering problems relevant in industrial, operational, cultural, and environmental applications, including modeling, testing, detection, suppression, human behavior, wildfires, structures, and risk analysis. The aim of Fire Technology is to push forward the frontiers of knowledge and technology by encouraging interdisciplinary communication of significant technical developments in fire protection and subjects of scientific interest to the fire protection community at large. It is published in conjunction with the National Fire Protection Association (NFPA) and the Society of Fire Protection Engineers (SFPE). The mission of NFPA is to help save lives and reduce loss with information, knowledge, and passion. The mission of SFPE is advancing the science and practice of fire protection engineering internationally.
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