火电厂建筑结构:耐火极限分析

S. Puzach, T. Eremina, F. Portnov
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摘要

介绍。对某火电厂某建筑金属结构的耐火极限进行了实际分析。采用实验和计算相结合的方法确定了建筑结构的耐火极限。为了解决这个问题而进行的研究的温度设置与真实火灾的温度相同。研究目的和目的。分析的目的是利用考虑实际火灾情况的热质交换分析方法,确定火电厂建筑结构的耐火极限。按照预定目标,完成以下工作:分析火电厂建筑结构消防安全方面的技术规范和法规主要规定;论证热质交换分析方法的主要规定;考虑到真实的火灾情况;考虑到真实火灾发展中最危险的情况,证明有必要提高防火剂的真实耐火极限。研究方法。分析了一维情况下的传热方程,确定了建筑结构内部的温度分布。本文采用基于场的分析方法来解决这一问题。这种方法通常适用于具有复杂几何结构的前提,如果一个几何维度超过其他几何维度。结果和讨论。以锅炉房炉油泄漏为例,分析了对金属结构影响最大的最危险火灾情景。作者还讨论了最危险的火灾传播情况,即轴承金属结构的加热:锅炉室内炉油泄漏的燃烧。计算表明,在所选择的火灾发展情景下,在火灾发生15分钟后,承重金属结构的最高温度远低于500°С的临界温度。对火电厂结构(包括其金属结构)的耐火性计算进行了分析,发现在紧急情况下,对最危险的火灾表现的耐火性超过了要求的R15值。锅炉房承重金属结构不需要防火。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Building structures of thermal power plants: analysis of fire resistance limits
Introduction. The author analyzes real-life fire resistance limits of metal structures for one building of a thermal power plant. Experimental and computational methods were applied to identify the fire resistance limits of building structures. The temperature setting of the research, conducted to solve the problem, was the same as that of a real fire.Research goal and objectives. The purpose of the analysis is to identify the fire resistance limits of structures comprising the building of a thermal power plant using the method of heat-mass exchange analysis that takes account of conditions of a real fire. The following objectives are to be attained in compliance with the pre-set goal:to analyze the principal provisions of technical norms and regulations in terms of the fire safety of building structures of thermal power plants;to justify the principal provisions for the method of heat-mass exchange analysis, taking into account real-life fire conditions;to justify the need to improve the real-life fire resistance limits by fire-proofing agents with account taken of the most dangerous scenario of the real fire development.Methods of research. The heat-transfer equation is analyzed to identify the distribution of temperatures inside a building structure for a one-dimensional case. The field-based method of analysis is applied to solve this problem. This method is generally applied to premises having complex geometric configuration, if one geometric dimension exceeds the others.Results and their discussion. The authors have analyzed the most dangerous fire scenario characterized by the most dangerous impact on metal structures, such as the furnace oil fire spill in a boiler room.The authors also address the most dangerous fire propagation scenario in terms of the heating of bearing metal structures: the combustion of furnace oil spills in a boiler room. The computations have proven that in case of the selected fire development scenario maximal temperatures of bearing metal structures are much lower than the critical temperature of 500 °С fifteen minutes after the onset of fire.Conclusions. Having analyzed the fire resistance computations of thermal power plant structures, including their metal constructions, the have found that in case of emergency, resistance to the most dangerous manifestations of fire exceeds the required R15 value. No fireproofing of bearing metal structures in the boiler room is needed.
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